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研究生:鍾怡君
研究生(外文):Yi Chun Chung
論文名稱:不同季節、畜舍、性別和週齡對黑羽土雞之生長發育、屠體性狀和脂肪酸組成之影響
論文名稱(外文):Effect of Different Season, Housing, Sex and Age on the Growth Development, Carcass Characteristics, and Fatty Acids Composition of Black Native Chickens
指導教授:夏良宙夏良宙引用關係
指導教授(外文):Liang Chou Hsia
學位類別:碩士
校院名稱:國立屏東科技大學
系所名稱:畜產系所
學門:獸醫學門
學類:獸醫學類
論文種類:學術論文
論文出版年:2007
畢業學年度:96
語文別:中文
論文頁數:248
中文關鍵詞:屠體脂肪酸組成土雞季節
外文關鍵詞:CarcassFatty Acid CompositionNative ChickenSeason
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本研究之目的在探討不同飼養季節、畜舍和週齡對黑羽土雞各部位生長發育狀況及屠體中脂肪酸組成之影響,以期更加的瞭解黑羽土雞各部位從小到大之生長發育狀況,以及其胸肉、腿肉和腹脂中從小到大之脂肪酸組成的變化。試驗一為不同季節、畜舍和週齡對中型黑羽土雞生長發育、屠體性狀和脂肪酸組成之研究。本試驗主要分成冬季和夏季飼養商業用中型黑羽土雞。冬季和夏季皆各飼養4000隻雞,且平均分配至兩棟畜舍(水簾式畜舍及開放式畜舍),每棟2000隻雞,公母各半,且採用公母分飼之方式。試驗期間,飼料及水採任食任飲之方式。每畜舍及性別處理逢機挑選100隻雞供試驗用,套上腳標並於每週秤重作為體重資料之來源直至12週齡試驗結束為止。自4週齡開始至12週齡試驗結束為止,每週每棟畜舍之公母雞各犧牲3隻進行屠體分切,以測定屠體各部位生長情形、肌肉剪力和保水性、骨骼強度及脂肪酸組成。試驗二為不同畜舍和週齡對大型黑羽土雞生長發育、屠體性狀和脂肪酸組成之研究。本試驗採商業用大型黑羽土雞4000隻,其試驗處理及試驗期間之飼養流程同試驗一。試驗期間為雞隻孵化後飼養至13週齡試驗結束為止。自4週齡開始至13週齡試驗結束為止,其屠體各部位生長情形、肌肉剪力和保水性、骨骼強度及脂肪酸組成之測定,皆同試驗一。


試驗一結果顯示,中型黑羽土雞無論是飼養在不同季節、畜舍以及不同性別之間,雖然其體重的部分以冬季飼養之雞隻明顯較夏季重,且公雞較重於母雞,但是其相對增重方面則皆是無差異的,並且皆在雞隻飼養至11週齡時,其相對增重皆會降至10%以下,因此雞隻飼養至11週齡以後再繼續飼養下去,其生長效率會非常差,為了減少成本浪費,建議雞隻飼養至11週齡時即可上市。各部位生長發育方面,以內臟器官的發育為最早,接著是骨骼的生長,然後是肌肉的生長,最後則是脂肪的蓄積。生殖器官方面,以睪丸販賣之重量觀點來看,建議中型黑羽土雞之公雞可在11至12週齡上市;而以母雞之卵巢發育來看,建議中型黑羽土雞之母雞在性成熟(12週齡)以前上市。肌肉強度方面,中型黑羽土雞飼養至11週齡以後,其肌肉強度幾乎不會再變得更強,因此建議雞隻可在11週齡時上市;且脂肪產量較高較為肥胖之雞隻,會使其肌肉強韌度減低。肌肉保水性方面,中型黑羽土雞之飼養全期,其肌肉保水性隨著週齡的增加並無明顯之變化。骨骼強度方面,隨著週齡的增加其脛骨長度及脛骨強度皆會隨之增加;且生長較快速體重較重之雞隻,會使其脛骨強度變差。脂肪酸方面,雞隻飼養在較低溫的環境下(冬季和水簾式畜舍),其腿肉中之C16:0及C18:1的含量會增加;雞隻飼養在冬季會使其脂肪組織中的C18:2含量增加;公雞屠體中的必需脂肪酸含量高於母雞;而雞隻屠體中之C18:2含量會隨著週齡的增加而有增加之趨勢。

試驗二結果顯示,大型黑羽土雞無論是飼養在不同畜舍以及不同性別之間,雖然其體重的部分以飼養在水簾式畜舍之雞隻有較飼養在開放式畜舍重,且公雞顯著重於母雞,但是其相對增重方面則皆是無差異的,並且皆在雞隻飼養至11週齡時,其相對增重皆會降至10%以下,因此雞隻飼養至11週齡以後再繼續飼養下去,其生長效率會非常差,為了減少成本浪費,建議雞隻飼養至11週齡時即可上市。各部位生長發育方面,以內臟器官的發育為最早,接著是骨骼的生長,然後是肌肉的生長,最後則是脂肪的蓄積。生殖器官方面,以睪丸販賣之重量觀點來看,建議大型黑羽土雞之公雞在11週齡時即可上市;而以母雞之卵巢發育來看,建議大型黑羽土雞之母雞在性成熟(13週齡)以前上市。肌肉強度方面,大型黑羽土雞飼養至11週齡以後,其肌肉強度會變得較差,因此建議雞隻可在11週齡時上市。肌肉保水性方面,大型黑羽土雞之飼養全期,其肌肉保水性隨著週齡的增加並無明顯之變化。骨骼強度方面,隨著週齡的增加其脛骨長度及脛骨強度皆會隨之增加。脂肪酸方面,公雞屠體中的必需脂肪酸含量高於母雞;而雞隻屠體中之C18:2含量會隨著週齡的增加而有增加之趨勢。

整個試驗研究中顯示,在生長趨勢方面,冬季飼養之黑羽土雞其生長較夏季飼養好,水簾式畜舍有較開放式畜舍好之趨勢,且公雞生長較母雞好,但是在相對增重方面,無論是不同飼養季節、畜舍及不同性別之間則皆無差異,並且雞隻飼養至11週齡時,其相對增重皆會降至10%以下,此時雞隻之生長效率變差。黑羽土雞各部位之生長發育方面,內臟器官的發育主要是在4週齡以前;骨骼的生長主要發生在4至6週齡之間;肌肉的生長主要發生在7至10週齡之間;而脂肪的蓄積主要從10週齡以後開始,且隨著週齡的增加而持續增加。脂肪產量較高且較為肥胖的雞隻,其肌肉強韌度會減低;生長較快速且體重較重的雞隻,其脛骨強度會變差。冬季飼養之雞隻其脂肪組織中之C18:2含量會增加。雞隻隨著飼養週齡的增加,其屠體內之C18:2含量也會逐漸增加。必需脂肪酸(EFA)含量方面,以公雞屠體中的含量較母雞高。最後,以增重、睪丸、肌肉產量、肌肉剪力和肌肉保水性之觀點綜合來看,建議黑羽土雞約在11週齡即可上市。以屠體品質(屠體中脂肪酸組成)之觀點來看,建議中型黑羽土雞可在10至11週齡上市,而大型黑羽土雞可在11至12週齡上市。
The objective of the study was to determine the effects of different season, housing, age on the carcass growth of black native chicken and fatty acid composition in carcass to understand the growth status of different body parts and changes in fatty acid composition in breast meat, thigh meat and leaf fat from young until mature. In Experiment 1, effects of different season, housing and age were studied on the growth performance, carcass characteristics and fatty acid composition of medium type black native chicken. The commercial medium type black native chicken was kept during winter and summer. Four thousand birds were kept during winter and summer, evenly allocated into two houses (wet pad housing and open type housing), two thousand birds in each house, the number of males and females was even and were kept separately. During the trial, feed and water were provided ad libitum. For every housing and sex treatment, 100 birds were selected and attached with leg bands, the birds were weighed weekly as the source for body weight data until the trial ended at 12 weeks of age. From 4-week until 12 week-old as the trial ended, 3 male and female birds from each housing
were sacrificed weekly to evaluate the growth status of different carcass parts, muscle shear force and water holding capacity, bone strength and fatty acid composition. In Experiment 2, the effects of different housing and age on the growth, carcass characteristics and fatty acid composition of large type black native chicken were studied. Four thousand commercial large type black native chickens were used, the treatments and management flow of the trial were similar as Experiment 1. The duration of the study commenced from post hatching until 13 weeks of age. From 4-week until 13-week old, the growth status of different body parts, muscle shear force and water holding capacity, bone strength and fatty acid composition measurements were similar as Experiment 1.

The results in trial 1 indicated that regardless of season, housing, and sexes, although medium type black native chicken in winter had significant heavier weight than those kept in summer, males were heavier than females, but relative weight gain was not significantly different. At 11-week old, relative weight gain reduced below 10%, hence, keeping the birds continuously after 11 weeks, growth rate was poor, considering economic purposes, the birds were suggested to be marketed at 11-week old. For the growth development in each part, the growth of the internal organs was the earliest, followed by bones, muscle and finally the deposition of fat. For reproduction organs, considering testis weight for market, it was proposed that medium type black native male chicken should be marketed at 11 to 12 weeks of age; for the growth of ovary, suggested medium type black native female chicken should be marketed before 12-week old. For muscle shear force, after keeping medium type black native chicken for 11 weeks, muscle shear force would not be higher, hence suggesting that the birds should be marketed at 11-week old; higher fat production from obese birds would lower muscle shear force. For water holding capacity, during the experimental period, medium type black native chicken muscle water holding capacity had no significant changes as the birds grew older. For bone strength, tibia length and strength increased as the age increased; fast growing and heavy birds had poorer bone strength. For FA, keeping chickens in cooler environment (winter and wet pad housing), C16:0 and C18:1 content in the thigh would increase; keeping chickens in winter would increase C18:2 in fat tissue; EFA in male carcass was higher than females, C18:2 content in carcass would increase as the age increased.

The results in trial 2 showed that regardless of housing and sexes, although large type black native chickens in wet pad housing had significant heavier weight than those kept in open type housing, males were heavier than females, but relative weight gain was not significantly different. At 11-week old, relative weight gain reduced below 10%, hence, keeping the birds continuously after 11 weeks, growth rate was poor, considering economic purposes, birds was suggested to be marketed at 11-week old. For the growth development in each part, the growth of the internal organs was the earliest, followed by bones, muscle and finally the deposition of fat. For reproduction organs, considering testis weight for market, it was proposed that large type black native male chickens should be marketed at 11 weeks of age; for the growth of ovary, suggested large type black native female chickens should be marketed before 13-week old. For muscle shear force, after keeping large type black native chicken for 11 weeks, muscle shear force became poor, hence suggested that the birds should be marketed at 11-week old; higher fat production from obese birds would lower muscle shear force. For water holding capacity, during the experimental period, medium type black native chicken muscle water holding capacity had no significant changes as the birds grew older. For bone strength, tibia length and strength increased as the age increased. For FA, EFA in male carcass were higher than female, C18:2 content in carcass would increase as the age increased.

The whole study indicated that for growth, black native chickens kept in winter were better than those kept in summer, wet pad housing was also tended to be better than open type housing, the growth for males was better than females, but for relative weight gain, regardless of season, housing and sexes, there no significant differences. At 11-week old, relative weight gain reduced below 10%, growth rate was poor. For the growth development of the carcass parts in black native chickens, the growth for internal organs was before 4-week old, bone growth took place between 4 to 6-week old; muscle growth happened mainly between 7 to 10-week old; while fat deposition commenced after 10-week old and would increase as the age increased. Higher fat production from obese birds would lower muscle shear force; fast growing and heavy birds had poorer bone strength. C18:2 content in the fat tissue from birds kept in winter would increase. As the age increased, C18:2 content in carcass would increase gradually. For EFA content, male was higher than female. Lastly, viewing from weight gain, testis, muscle production, muscle shear force and muscle water holding capacity, it was suggested that black native chicken could be marketed at 11-week old. For carcass quality (FA composition in carcass), it was suggested that medium type black native chicken could be marketed at 10 to 11-week old while that large type black native chicken could be marketed at 11 to 12-week old.
中文摘要…………………………………………………………………...Ⅰ
Abstract…………………………………………………………………….Ⅳ
誌謝 Ⅷ
目錄 Ⅹ
圖表目錄 ⅩⅢ
壹、前言…………………………..………………………………………….1
貳、文獻探討……………………………………..………………………….2
一、雞隻之生長與發育…………………………..……………………..….2
(一) 生長曲線………………………………………………………...…2
(二) 蛋白質與水分……………………………...………………………4
(三) 肌肉……………………………...…………………………………6
(四) 礦物質……………………………………...………………………7
二、雞隻之生長性能……………………………………………………….9
(一) 增重………………………………………………………………...9
(二) 飼料效率………………………………………………………….15
(三) 屠體性狀………………………………………………………….16
(四) 脂肪量…………………………………………………………….19
三、脂肪酸的作用機制…………………………………………………...29
(一) 脂肪酸的種類…………………………………………………….29
(二) 脂肪酸在體內的轉換機制……………………………………….33
(三) 飽和脂肪酸的作用……………………………………………….40
(四) 不飽和脂肪酸的作用…………………………………………….41
四、影響雞隻脂肪酸組成的因素………………………………………47
(一) 遺傳因素………………………………………………………….47
(二) 營養因素………………………………………………………….50
(三) 環境因素………………………………………………………….57
五、家禽肉產品之品質…………………………………………………...59
(一) 外觀及風味……………………………………………………….59
(二) 氧化程度………………………………………………………….62
(三) 柔韌度及多汁性…………………………………………………65
參、材料與方法…………………………………………………………….69
一、試驗一:不同季節、畜舍和週齡對中型黑羽土雞生長發育、
屠體性狀和脂肪酸組成之研究……………………………69
(一) 試驗處理………………………………………………………….69
(二) 試驗管理………………………………………………………….74
(三) 資料收集………………………………………………………….77
二、試驗二:不同畜舍和週齡對大型黑羽土雞生長發育、屠體
性狀和脂肪酸組成之研究………………..……………….89
(一) 試驗處理………………………………………………………….89
(二) 試驗管理………………………………………………………….90
(三) 資料收集………………………………………………………….90
三、統計分析……………………………………………………………...91
肆、結果與討論…………………….………………………………………92
一、試驗一:不同季節、畜舍和週齡對中型黑羽土雞生長發育、
屠體性狀和脂肪酸組成之研究…………………………...92
(一) 體增重………………………………………….…………………92
(二) 各部位生長和發育……………………………………………...101
(三) 肌肉剪力與保水性……………………………………………...118
(四) 骨骼強度………………………………………………………...125
(五) 脂肪酸…………………………………………………………...129
二、試驗二:不同畜舍和週齡對大型黑羽土雞生長發育、屠體
性狀和脂肪酸組成之研究…………………...…………139
(一) 體增重………………………………………...…………………139
(二) 各部位生長和發育……………………………………………...145
(三) 肌肉剪力與保水性……………………………………………...157
(四) 骨骼強度……………………………………………………...…162
(五) 脂肪酸…………………………………………………………165
伍、結論…………………………………………………………………...171
參考文獻…………………………………………………………...……..172
附錄……………………………………………………………………….208
作者簡介……………………………………………………….…………248
















圖表目錄
圖1 必需脂肪酸和其他不飽和脂肪酸的結構式………………….….31
圖2 次亞麻油酸轉換成DHA時輔因子的重要性…………………….38
圖3 油酸的代謝轉換過程……………………………………………..38
圖4 必需脂肪酸轉變成其他多元不飽和脂肪酸的過程……………..39
圖5 試驗一之試驗雞種-商業用中型黑羽土雞....................................70
圖6 開放式土雞舍畜舍……………………………….……………….71
圖7 開放式土雞舍之放牧區…………………………………………..71
圖8 水簾式土雞舍……………………………………………………..72
圖9 試驗一之開放式土雞舍平面圖…………………………………..73
圖10 試驗一之水簾式土雞舍平面圖……………………….………….73
圖11 水簾式土雞舍之水簾及風扇調控設備……………………….…..76
圖12 雞隻屠宰流程圖…………………………………………………..78
圖13 各部位分切後之示意圖…………………………………………..80
圖14 肌肉剪力值測定之胸、腿肉及標準規格之樣品…………...…….81
圖15 肌肉剪力值測定機………………………………………………..81
圖16 壓力機(Carver laboratory press) ………………………….………82
圖17 保水性樣品………………………………………………………..83
圖18 面積儀(Planimeter) …………………………………………….…83
圖19 骨骼強度測定之樣品-脛骨…………………………………...….84
圖20 微電腦拉力機……………………………………………………..85
圖21 脂肪酸萃取與甲基化……………………………………………..87
圖22 氣相色層分析儀(Gas Chromatograph;GC)及注射針…………...88
圖23 脂肪酸標準品……………………………………………………..88
圖24 試驗二之試驗雞種-商業用大型黑羽土雞....................................89
圖25 不同季節對中型黑羽土雞之體重和相對增重的關係…………..93
圖26 不同畜舍對中型黑羽土雞之體重和相對增重的關係…………..96
圖27 不同性別對中型黑羽土雞之體重和相對增重之關係…………..99
圖28 中型黑羽土雞內臟器官、骨骼、肌肉及脂肪佔屠體百分
比與週齡之關係…………………………………………………113
圖29 不同季節和週齡對中型黑羽土雞睪丸絕對重和屠體百分
比之關係……………………………………………….………..114
圖30 不同畜舍和週齡對中型黑羽土雞睪丸絕對重和屠體百分
比之關係……………………………………….………………..115
圖31 不同季節和週齡對中型黑羽土雞卵巢絕對重和屠體百分
比之關係……………………………………………….………..116
圖32 不同畜舍和週齡對中型黑羽土雞卵巢絕對重和屠體百分
比之關係………………………………….……………………..117
圖33 不同畜舍和週齡對中型黑羽土雞肌肉強度之關係……………123
圖34 不同畜舍和週齡對中型黑羽土雞肌肉保水性之關係…………124
圖35 不同季節和週齡對中型黑羽土雞之脛骨長度和強度之影
響………………………………………………………………...126
圖36 不同畜舍和週齡對中型黑羽土雞之脛骨長度和強度之影
響………………………………………………………………...127
圖37 不同性別和週齡對中型黑羽土雞之脛骨長度和強度之影
響……………………………………………………………...…128
圖38 不同週齡對中型黑羽土雞總胸肉、腿肉及腹脂中總脂肪
酸含量佔屠體百分比之關係……………………….…………..136
圖39 不同週齡對中型黑羽土雞屠體中各脂肪酸含量百分比之
關係……………………………………………….……………..137
圖40 不同畜舍和週齡對大型黑羽土雞之體重和相對增重之關
係………………………………………….……………………..140
圖41 不同性別和週齡對大型黑羽土雞週增重之影響………………143
圖42 大型黑羽土雞內臟器官、骨骼、肌肉及脂肪佔屠體百分
比與週齡之關係…………………………………………………154
圖43 不同畜舍和週齡對大型黑羽土雞睪丸絕對重和屠體百分
比之關係………………………………………….……………..155
圖44 不同畜舍和週齡對大型黑羽土雞卵巢絕對重和屠體百分
比之關係…………………………………….…………………..156
圖45 不同畜舍和週齡對大型黑羽土雞肌肉強度之影響……………160
圖46 不同畜舍和週齡對大型黑羽土雞肌肉保水性之影響…………161
圖47 不同畜舍和週齡對大型黑羽土雞脛骨長度及強度之關係……163
圖48 不同性別和週齡對大型黑羽土雞脛骨長度及強度之關係……164
圖49 不同週齡對大型黑羽土雞總胸肉、腿肉及腹脂中總脂肪
酸含量佔屠體百分比之關係………………………….………..168
圖50 不同週齡對大型黑羽土雞屠體中各脂肪酸含量百分比之
關係…………………………………………………….………..169
表1 試驗一之餵飼計畫(中型黑羽土雞夏季)……………………..…74
表2 試驗一之餵飼計畫(中型黑羽土雞冬季) …………………….…75
表3 試驗一之疫苗計畫…………………………………………..……75
表4 水簾式土雞舍之水簾及風扇馬達啟動設定溫度……………..…76
表5 屠體各部位分切定義……………………………………..….……79
表6 試驗二之餵飼計畫………………………………………………..90
表7 不同季節和週齡對中型黑羽土雞隻日增重之影響…………..…94
表8 不同畜舍和週齡對中型黑羽土雞隻日增重之影響…………..…97
表9 不同性別和週齡對中型黑羽土雞隻日增重之影響……………100
表10 不同季節對中型黑羽土雞屠體各部位重量之影響……………102
表11 不同季節對中型黑羽土雞屠體各部位佔屠體百分比之影
響………………………………………………………….……..103
表12 不同畜舍對中型黑羽土雞屠體各部位重量之影響……………105
表13 不同畜舍對中型黑羽土雞屠體各部位佔屠體百分比之影
響…………………………………………………….…………..106
表14 不同性別對中型黑羽土雞屠體各部位重量之影響……………108
表15 不同性別對中型黑羽土雞屠體各部位佔屠體百分比之影
響……………………………………………………….………..109
表16 不同週齡對中型黑羽土雞屠體各部位重量之影響………….…112
表17 不同季節對中型黑羽土雞肌肉剪力和保水性之影響…………120
表18 不同畜舍對中型黑羽土雞肌肉剪力和保水性之影響…………121
表19 不同性別對中型黑羽土雞肌肉剪力和保水性之影響…………122
表20 不同季節對中型黑羽土雞胸肉、腿肉及腹脂中脂肪酸組
成之影響…………………………………………………………130
表21 不同畜舍對中型黑羽土雞胸肉、腿肉及腹脂中脂肪酸組
成之影響…………………………………………………………132
表22 不同性別對中型黑羽土雞胸肉、腿肉及腹脂中脂肪酸組
成之影響…………………………………………………………134
表23 不同畜舍和週齡對大型黑羽土雞隻日增重之影響……………141
表24 不同性別和週齡對大型黑羽土雞隻日增重之影響……………144
表25 不同畜舍對大型黑羽土雞屠體各部位重量之影響……………146
表26 不同畜舍對大型黑羽土雞屠體各部位佔屠體百分比之影
響……………………………………………………..………….147
表27 不同性別對大型黑羽土雞屠體各部位重量之影響……………149
表28 不同性別對大型黑羽土雞屠體各部位佔屠體百分比之影
響…………………………………………………………..…….150
表29 不同週齡對大型黑羽土雞屠體各部位重量之影響……………153
表30 不同畜舍對大型黑羽土雞肌肉剪力和保水性之影響…………158
表31 不同性別對大型黑羽土雞肌肉剪力和保水性之影響…………159
表32 不同畜舍對大型黑羽土雞胸肉、腿肉及腹脂中脂肪酸組
成之影響…………………………………………………………166
表33 不同性別對大型黑羽土雞胸肉、腿肉及腹脂中脂肪酸組
成之影響…………………………………………………………167

附圖1 試驗一夏季水簾式中型黑羽土雞畜舍最高溫度與最低溫
度…………………………..……………………………...……208
附圖2 試驗一夏季開放式中型黑羽土雞畜舍最高溫度與最低溫度……………………………..………………...………………208
附圖3 試驗一冬季水簾式中型黑羽土雞畜舍最高溫度與最低溫度………………………...…………………..…………………209
附圖4 試驗一冬季開放式中型黑羽土雞畜舍最高溫度與最低溫度……..…………………………………………...……………209
附圖5 試驗二水簾式大型黑羽土雞畜舍最高溫度與最低溫度…..…210
附圖6 試驗二開放式大型黑羽土雞畜舍最高溫度與最低溫度…..…210
附表1 不同畜舍和週齡對夏季飼養中型黑羽土雞隻日攝食量及
飼料利用效率之影響……………..……………………………211
附表2 不同畜舍和週齡對冬季飼養中型黑羽土雞隻日攝食量及
飼料利用效率之影響……………………….…………………212
附表3 不同季節和週齡對中型黑羽土雞隻日攝食量及飼料利用
效率之影響…………..…………………………………………213
附表4 不同畜舍和週齡對大型黑羽土雞隻日攝食量及飼料利用
效率之影響………..……………………………………………214
附表5 不同季節對中型黑羽土雞胸肉中脂肪酸組成之影響………..215
附表6 不同季節對中型黑羽土雞腿肉中脂肪酸組成之影響…..……216
附表7 不同季節對中型黑羽土雞腹脂中脂肪酸組成之影響……..…217
附表8 不同畜舍對中型黑羽土雞胸肉中脂肪酸組成之影響……..…218
附表9 不同畜舍對大型黑羽土雞胸肉中脂肪酸組成之影響…..…....219
附表10 不同畜舍對中型黑羽土雞腿肉中脂肪酸組成之影響…..……220
附表11 不同畜舍對大型黑羽土雞腿肉中脂肪酸組成之影響…..……221
附表12 不同畜舍對中型黑羽土雞腹脂中脂肪酸組成之影響…..……222
附表13 不同畜舍對大型黑羽土雞腹脂中脂肪酸組成之影響…..……223
附表14 不同性別對中型黑羽土雞胸肉中脂肪酸組成之影響……..…224
附表15 不同性別對大型黑羽土雞胸肉中脂肪酸組成之影響…..……225
附表16 不同性別對中型黑羽土雞腿肉中脂肪酸組成之影響…..……226
附表17 不同性別對大型黑羽土雞腿肉中脂肪酸組成之影響…..……227
附表18 不同性別對中型黑羽土雞腹脂中脂肪酸組成之影響…..……228
附表19 不同性別對大型黑羽土雞腹脂中脂肪酸組成之影響…..……229
附表20 不同週齡對中型黑羽土雞胸肉中脂肪酸組成之影響…..……230
附表21 不同週齡對大型黑羽土雞胸肉中脂肪酸組成之影響…..……231
附表22 不同週齡對中型黑羽土雞腿肉中脂肪酸組成之影響…..……232
附表23 不同週齡對大型黑羽土雞腿肉中脂肪酸組成之影響…..……233
附表24 不同週齡對中型黑羽土雞腹脂中脂肪酸組成之影響…..……234
附表25 不同週齡對大型黑羽土雞腹脂中脂肪酸組成之影響…..……235
附表26 不同季節、畜舍、性別和週齡對中型黑羽土雞屠體各部
位重量之關係………………...…………………………...……236
附表27 不同季節、畜舍、性別和週齡對中型黑羽土雞屠體各部
位佔屠體百分比之關係…………………………...…...………237
附表28 不同季節、畜舍、性別和週齡對中型黑羽土雞肌肉剪力
之關係…………………………...………………...……………238
附表29 不同季節、畜舍、性別和週齡對中型黑羽土雞肌肉保水
性之關係………………………...…………………...…………239
附表30 不同季節、畜舍、性別和週齡對中型黑羽土雞骨骼長度
及強度之關係…………………...………………...……………240
附表31 不同季節、畜舍、性別和週齡對中型黑羽土雞胸肉、腿
肉和腹脂中各脂肪酸含量百分比之關係………...…...………241
附表32 不同畜舍、性別和週齡對大型黑羽土雞屠體各部位重量
之關係……………………………………...……...……………242
附表33 不同畜舍、性別和週齡對大型黑羽土雞屠體各部位佔屠
體百分比之關係…………………………......…………………243
附表34 不同畜舍、性別和週齡對大型黑羽土雞肌肉剪力之關係……244
附表35 不同畜舍、性別和週齡對大型黑羽土雞肌肉保水性之關
係……………………...………………………...………………245
附表36 不同畜舍、性別和週齡對大型黑羽土雞骨骼長度及強度
之關係………………...………………………………...………246
附表37 不同畜舍、性別和週齡對大型黑羽土雞胸肉、腿肉和腹
脂中各脂肪酸含量百分比之關係………...………...…………247
王勝德、林亮全、詹德芳。1997。臺灣土雞與白肉雞肌肉品質差異之研究。中國農業化學會誌 35(2):192-201。
田中桂一。1998。含高量n-3系多不飽和脂肪酸雞蛋與雞肉的生產。飼料營養雜誌 7:4-16。
白秋菊。1992。雞隻脂質代謝之特徵。飼料營養雜誌 3:89-94。
吳常信。2005。中國家禽研究。四川科學技術出版社,四川。
周淑敏。2006。不同雞種與禽舍型式對雞隻生長和發育之影響。碩士論文。國立屏東科技大學。
林陽山、陳明造。1991。蛋白質營養與屠體品質。飼料營養雜誌 6:3-18。
林順富、葉東柏、陳師瑩、顏瑞鴻、蕭慧美。2004。偉明圖書有限公司,台北。
邱文石、范揚廣、李德南。1990。飼糧蛋白質與能量含量對土雞營養分利用及屠體組成的影響。中畜會誌 19(1-2):1-10。
徐阿里。1998。土雞之營養需要。飼料營養雜誌 1:13-21。
許振忠。1993。飼料營養成分與家禽屠體脂肪蓄積。飼料營養雜誌 6:73-79。
許瓊瑛。1991。肉雞體組成之研究。飼料營養雜誌 1:87-94。
連塗發與楊國鑫。1992。不同油脂對肉雞生長性能和免疫反應之影響。中國畜牧學會會誌 21(3):247-253。
陳明造。1995。影響禽肉品質的因素(下)。中國畜牧雜誌 (27) 1:109-113。
陳明造。2000。肉品加工原理與應用(修訂版)。藝軒圖書出版社,台北市。
陳厚基。1991a。飼料脂肪部分之不飽和脂肪酸與飽和脂肪酸年輕雞之添加脂肪的利用及代謝熱能的效果。飼料營養雜誌 3:74-82。
陳厚基。1991b。雞蛋、雞肉之高品質化及低成本化之技術性課題。飼料營養雜誌 12:90-99。
陳國隆、吳建平、洪炎明。2000。臺灣土雞之閹雞與公雞、母雞屠體性狀與肌肉品質之比較。中畜會誌 29(1):77-88。
馮緒明。1994。不同來源脂肪對肉雞的影響。飼料營養雜誌 4:11-23。
萬添春。1993。影響肉雞屠體品質因素的探討。飼料營養雜誌 6:7-18。
鄭長義。1996。DHA畜產品之生產與營養。飼料營養雜誌 1:37-44。
鄭長義。1997。肉雞與蛋雞之營養需要(下)。飼料營養雜誌 12:10-27。
羅德富。1992。油脂在禽畜飼料上的飼養效果。飼料營養雜誌 9:50-53。
Ackman, R. G. 1981. Problems in introducing new chromatographic techniques for lipid analyses. Chem. Industry, October, 17:715-722.
Ackman, R. G. 1986. Perspectives on eicosapentaenoic acid (EPA). n-3 News 1:1-4.
Adams, R. L., F. N. Andrews, E. E. Gardiner, W. E. Fontaine, and C. W. Carrick. 1962a. The effects of environmental temperature on the growth and nutritional requirements of the chick. Poult. Sci. 41:588-594.
Adams, R. L., F. N. Andrews, J. C. Rogler and C. W. Carrick. 1962b. The protein requirement of 4-week old chicks as affected by temperature. J. Nutrition. 77:121-126.
Adams, R. L., and J. C. Rogler. 1968. The effects of environmental temperature on the protein requirements and response to energy in slow and fast growing chicks. Poult. Sci. 47:579-586.
Ahn, D. U., F. H. Wolfe, and J. S. Sim. 1995. Dietary α-linolenic acid and mixed tocopherols, and packaging influences on lipid stability in broiler chicken breast and leg muscle. J. of Food Sci. 60(5):1013-1018.
Ajuhay, A. O., K. H. Lee, R. T. Hardin, and J. S. Sim. 1991. Changes in the yield and in the fatty acid composition of whole carcass and selected meat portions of broiler chickens fed full-fat oil seeds. Poult. Sci. 70:2304-2314.
Ajuyah, A. O., K. J. Lee, R. T. Hardin, and J. S. Sim. 1991. Changes in the yield and in the fatty acid composition of whole carcass and selected meat portions of broiler chickens fed full-fat oil seeds. Poult. Sci. 70:2304-2314.
Akiba, Y., M. Toyomizu, K. Takahashi, and K. Sato. 2001. Nutrition: the key role for optimization of growth and carcass quality in broiler chickens. Asian-Aust. J. Anim. Sci. 14:148-163.
Alao, S. J., and D. Balnave. 1984. Growth and carcass composition of broiler fed sunflower oil and olive oil. Br. Poult. Sci. 25:209-219.
Alao, S. J., and D. Balnave. 1985. Nutritional significance of different fat sources for growing broilers. Poult. Sci. 64:1602-1604.
Aman, N. and W. A. Becker. 1983. Genetic correlations between six- and seven-week-old broilers. Poult. Sci. 62:1918-1920.
Andik, I., S. Z. Sonhoffer, M. Fardas, and P. Schmidt. 1963. Ambient temperature and survival on a protein-deficient diet. Br. J. Nutr. 17:257-261.
Angel, S., Z. G. Weinberg, O. Polishuk, M. Heit, I. Plavnik, and I. Bartov. 1985. A connection between a dietary coccidiostat and skin tears of female broiler chickens. Poult. Sci. 64:294-296.
Anonymous, 1984. Hubbard probes line between growth and fat pads. Pages 74-79 in Broiler Industry. October 1984.
Anthony, N. B., D. A. Emmerson, K. E. Nestor, W. L. Bacon, P. B. Siegel, and E. A. Dunnington. 1991. Comparison of growth curves of weight selected populations of turkeys, quails and chickens. Poult. Sci. 70:13-19.
Arafa, A. S., M. A. Boone, D. M. Janky, M. R. Wilson, R. D. Miles, and R. M. Harms. 1983. Energy restriction as a mean of reducing fat pads in broilers. Poult. Sci. 62:314-320.
Arslan, C. 2004. Effects of diets supplemented with grass meal and sugar beet pulp meal on absominal fat fatty acid profile and ceacal volatile fatty acid composition in geese. Revue Med. Vet. 155:619-623.
Artman, N. R. 1964. Interactions of fats and fatty acids as energy sources for the chick. Poult. Sci. 43:994-1004.
Asghar, A., C. F. Lin, J. I. Gray, D. J. Buckley, A. M. Booren, and C. J. Fleagal. 1990. Effects of dietary oils and alphatocopherol supplementation on membranal lipid oxidation in broiler meat. J. Food Sci. 55:46-50.
Atteh, J. O., S. Leeson, and R. J. Julian. 1983. Effects of dietary levels and types of fat on performance and mineral metabolism of broiler chicks. Poult. Sci. 62:2403-2411.
Austic, R. E. 1985. Feeding poultry in hot and cold climates. Pages 123-136 in: stress physiology in livestock. M. K. Youcef, ed. CRC Press, Boca Raton, FL.
Awad, A. B., L. L. Bernerdis, and C. S. Fink. 1990. Failure to demonstrate an effect of dietary fatty acid composition on body weight, body composition and parameters of lipid metabolism in mature rats. J. Nutr. 120:1277-1282.
Azman, M. A., I. H. Cerci, and N. Birben. 2005. Effects of various dietary fat sources on performance and body fatty acid composition of broiler chickens. Turk J. Vet. Anim. Sci. 29:811-819.
Bacon, W. L., A. H. Cantor, and M. A. Coleman. 1981. Effect of dietary energy, environmental temperature, and sex of market broilers on lipoprotein composition. Poult. Sci. 60:1282-1286.
Baiao, N. C. and L. J. C. Lara. 2005. Oil and fat in broiler nutrition. Brazilian J. of Poult. Sci. 7(3):129-141.
Barott, H. G. and E. M. Pringle. 1950. The effect of temperature of environment during the period from 18 to 32 days of age. J. Nutr. 41:25-30.
Barrot, H. G. and E. M. Pringle. 1949. The effect of various types of brooding on growth and feed consumption of chickens during the first eighteen days after hatch. Poult. Sci. 49:450-456.
Barrot, H. G. and E. M. Pringle. 1950. The effect of environment on growth and feed and water consumption of chickens. 3. the effect of temperature of environment during the period from 18 to 32 days of age. J. Nutr. 41:25-30.
Barrot, H. G. and E. M. Pringle. 1974. The effect of environment on growth and feed and water consumption of chickens. 1. he effect of temperature of environment during the first nine days after hatch. J. Nutr. 34:53-67.
Bartov, I. 1987. Combined effect of age and ambient temperature on the comparative growth of broiler chicks fed tallow and soybean oil. Poult. Sci. 66:273-279.
Bartov, I., and S. Bornstein. 1976a. Effects of degree of farness in broilers on other carcass characteristics: relationship between fatness and the composition of carcass fat. Br. Poult. Sci. 17:17-27.
Bartov, I., and S. Bornstein. 1976b. Effects of degree of farness in broilers on other carcass characteristics: relationship between fatness and the stability of meat and adipose tissue. Br. Poult. Sci. 17:29-38.
Bartov, I., B. Lipstein, and S. Bornstein. 1974. Differential effects of dietary acidulated soybean oil soapstock, cottonseed oil soapstock and tallow on broiler carcass fat characteristics. Poult. Sci. 53:115-124.
Bavelaar, F. J. and A. C. Beynen. 2003. Relationships between dietary fatty acid composition and either melting point or fatty acid profile of adipose tissue in broilers. Meat Sci. 64:133-140.
Baziz, H. A., P. A. Geraert, J. C. E. Padilha, and S. Guillaumin. 1996. Chronic heat exposure enhances fat deposition and modifies muscle and fat partition in broiler carcasses. Poult. Sci. 75:505-513.
Beane, W. L., P. B. Siegel, and H. S. Siegel. 1965. Light environment as a factor in growth and feed efficiency of meat-type chickens. Poult. Sci. 44:1009-1012.
Beare, J. L., J. A. Campbell, C. G. Youngs, and B. M. Craig. 1963. Effects of saturated fat in rats fed rapeseed oil. Can. J. Biochem. Physiol. 41:605-612.
Becker, W. A., J. V. Spencer, L. W. Mirosh, and J. A. Verstrate. 1979a. Prediction of fat and fat free live weight in broiler chickens using backskin fat, abdominal fat and live body weight. Poult. Sci. 58:853-842.
Becker, W. A., J. V. Spencer, L. W. Mirosh, and J. A. Verstrate. 1979b. Heritabilities and genetic correlation of live and carcass weights and abdominal fat in female broilers. Poult. Sci. 58:1035.
Becker, W. A., J. V. Spencer, L. W. Mirosh, and J. A. Verstrate. 1981. Abdominal and carcass fat in five broiler strains. Poult. Sci. 60:693-697.
Becker, W. A., J. V. Spencer, L. W. Mirosh, and J. A. Verstrate. 1984. Genetic variation of abdominal fat, body weight, and carcass weight in a female broiler line. Poult. Sci. 63:607-611.
Belay, T. and R. G. Teeter. 1996. Virginiamycin and caloric density effects on live performance, blood serum metabolite concentration, and carcass composition of broilers reared in thermoneutral and cycling ambient temperatures. Poult. Sci. 75:1383-1392.
Belury, M. A., K. P. Nickel, C. E. Bird, and Y. Wu. 1996. Dietary conjugated linoleic acid modulation of phorbol ester skin tumor promotion. Nutr. Cancer 26:149-157.
Bennett, C. D. and S. Leeson. 1990. Body composition of the broiler-breeder pullet. Poult. Sci. 69:715-720.
Blake, W. L. and S. D. Clarke. 1990. Suppression of hepatic fatty acid synthase and S14 gene transcription by dietary polyunsaturated fat. J. Nutr. 120:225-231.
Blakely, R. M., H. I. MacGregor, and D. Hanel. 1965. Performance of turkeys on finishing diets containing different fats. Can. J. Animal Sci. 45:59-61.
Blanch, A., A. C. Barroeta, M. D. Baucells, X. Serrano, and F. Puchal. 1996. Utilization of different fats and oils by adult chickens as a source of energy, lipid and fatty acids. Anim. Feed Sci. Tech. 61:335-342.
Bligh, E. G. and W. J. Dyer. 1959. A rapid method of total lipid extraction and purification. Can. J. Biochem. Physiol. 37:911-917.
Brake, J., G. B. Havenstein, S. E. Scheideler, P. R. Ferket, and D. V. Rives. 1993. Relationship of sex, age, and body weight to broiler carcass yield and offal production. Poult. Sci. 72:1137-1145.
Brue, R. N. and J. D. Latshaw. 1985. Energy utilization by the broiler chicken as affected by various fats and levels. Poult. Sci. 64:2119-2130.
Cahaner, A., N. Deeb, and M. Gutman. 1993. Effects of the plumage-reducing naked neck (Na) gene on the performance of fast-growing broilers at normal and high ambient temperatures. Poult. Sci. 72:767-775.
Cahaner, A. and F. Leenstra. 1992. Effects of high temperature on growth and efficiency of male and female broilers from liness selected for high wright gain, favorable feed conversion, and high or low fat content. Poult. Sci. 71:1237-1250.
Cahaner, A., Z. Nitsan, and I. Nir. 1986. Weight and fat content of adipose and nonadipose tissues in broilers selected for or against abdominal adipose tissue. Poult. Sci. 65:215-222.
Cahaner, A., Y. Pinchasov, and I. Nir. 1995. Effects of dietary protein under high ambient temperature on body weight, breast meat yield, and abdominal fat deposition of broiler stocks differing in growth rate and fatness. Poult. Sci. 74:968-975.
Carew, L. B., R. H. Machemer, R. W. Sharp, and D. C. Foss. 1972. Fat absorption by the very young chick. Poult. Sci. 51:738-742.
Carroll, K. K. 1965. Dietary fat and the fatty acid composition of tissue lipids. J. Amer. Oil Chem. Soc. 42:516-528.
Cartwright, A. L., H. L. Marks, and D. R. Campion. 1986. Adipose tissue cellularity and growth characteristics of unselected and selected broiler: implications for the development of body fat. Poult. Sci. 65:1021-1027.
Cartwright, A. L., H. L. Marks, and D. R. Campion. 1988. Adipose cellularity in nonselected and selected broiler stocks: measurements at equal weights and ages. Poult. Sci. 67:1338-1344.
Castellini, C., C. Mugnai, and A. D. Bosco. 2002. Effect of organic production system on broiler carcass and meat quality. Meat Sci. 60:219-225.
Cerniglia, G. J., J. A. Hebert, and A. B. Watts. 1983. The effect of constant ambient temperature and ration on the performance of sexed broilers. Poult. Sci. 62:746-754.
Cerniglia, G. J., K. L. Koonce, and A. B. Watts. 1976. The effect of constant ambient temperature and ration on the performance of sexed broilers. Poult. Sci. 55:2017.
Chambers. J. R. and A. Fortin. 1984. Live body and carcass measurements as predictors of chemical composition of carcasses of male broiler chickens. Poult. Sci. 63:2187-2196.
Chambers, J. R., A. Fortin, and A. A. Grunder. 1983. Relationship between carcass fatness and feed efficiency and its component traits in broiler chickens. Poult. Sci. 62:2201-2207.
Chanmugam, P., M. Boudreau, T. Boutte, R. S. Park, J. Hebert, L. Berrio, and D. H. Hwang. 1992. Incorporation of different types of n-3 fatty acids into tissue lipids of poultry. Poult. Sci. 71:516-521.
Charles, D. R. 1986. Temperature for broilers. World’s Poult. Sci. J. 42:249-258.
Charles, D. R., C. M. Groom, and T. S. Bray. 1981. The effects of temperatures on broilers: interactions between temperatures and feeding regime. Br. Poult. Sci. 22:475-481.
Chen, H. Y. and S. H. Chiang. 2005. Effect of dietary polyunsaturated/saturated fatty acid ratio on heat production and growth performance of chicks under different ambient temperature. Anim. Feed Sci. and Tech. 120:299-308.
Chen, P. H., R. H. Common, N. Nickolaiczuk, and H. F. MacRae. 1965. Some effects of added dietary fats on the lipid composition of hens egg yolk. J. Food Sci. 30:838-845.
Cherry, J. A., P. B. Siegel, and W. L. Beane. 1978. Genetic-nutritional relationships in growth and carcass characteristics of broiler chickens. Poult. Sci. 57:1482-1487.
Christie, W. W., G. Dobson, and F. D. Gunstone. 1997. Isomers in commercial samples of conjugated linoleic acid. Lipids 32:1231.
Chu, T. K. and F. A. Kummerow. 1950. The deposition of linolenic acid in chickens fed linseed oil. Poult. Sci. 29:846-851.
Clarke, S. D. 2001. Polyunsaturated fatty acid regulation of gene transcription: a molecular mechanism to improve the metabolic syndrome. J. Nutr. 131:1129-1132.
Combs, G. 1976. Nutrition and management aspects of non-ruminant animals related to reduction of fat content in meat. Pages 116-142 in: Fat Content and Composition of Animal Products. National Research Council. Board on Agriculture and Renewable Resources. National Academy of Science. Washingtion.DC.
Conquer, J. A. and B. J. Holub. 1996. Supplementation with an algae source of docosahexaenoic acid increases (n-3) fatty acid status and alters selected risk factors for heart disease in vegetarian subjects. J. Nutr. 126:3032-3039.
Conquer, J. A. and B. J. Holub. 1997. Dietary docosahexaenoic acid as a source of eicosapentaenoic acid in vegetarians and omnivores. Lipids 32:341-345.
Couch, J. R., F. Farr, M. A. Zayla, J. A. Lorena, and C. R. Creger. 1964. Fatty acid composition of egg yolk and tissue from hens fed varying levels of different fat sources. Federation Proc. 23:551.
Cowan, P. L. and W. Michie. 1978. Environmental temperature and broiler performance: the use of diets containing increased amounts of protein. Br. Poult. Sci. 19:601-605.
Crawley, S. W., D. R. Sloan, and K. K. Hale. 1980. Yields and composition of edible and inedible by-products of broilers processed at 6, 7, and 8 weeks of age. Poult. Sci. 59:2243-2246.
Crenshaw, T. D., E. R. Peo, A. J. Lewis, and B. D. Moser. 1981. Bone strength as a trait for assessing mineralization in swine: a critical review of techniques involved. J. of Anim. Sci. 53(3):827-835.
Crespo, N. and E. Esteve-Garcia. 2001. Dietary fatty acid profile mosifies abdominal fat deposition in broiler chickens. Poult. Sci. 80:71-78.
Crespo, N. and E. Esteve-Garcia. 2002a. Dietary polyunsaturated fatty acids decrease fat deposition in separable fat depots but not in the remainder carcass. Poult. Sci. 81:512-518.
Crespo, N. and E. Esteve-Garcia. 2002b. Nutrient and fatty acid deposition in broilers fed different dietary fatty acid profiles. Poult. Sci. 81:1533-1542.
Cruockshank, E. M. 1934. Studies on fat metabolism in the fowl. Ⅰ. the composition of the egg fat and depot fat of the fowl as affected by the ingestion of large amounts of different fat. Biochem. J. 28:965-977.
Cunnane, S. C. and M. J. Anderson. 1977. The majority of dietary linoleate in growing rats is β-oxidized or stored in visceral fat. J. Nutr. 127:146-152.
Dale, N. M. and H. L. Fuller. 1979. Effects of diet composition on feed intake and growth of chicks under heat stress. Ⅰ. dietary fat levels. Poult. Sci. 58:1529-1534.
Dale, N. M. and H. L. Fuller. 1980. Effect of diet composition on feed intake and growth of chicks under heat stress. Ⅱ. Constant vs. cycling temperatures. Poult. Sci. 59:1434-1441.
Darren, J. and J. Bruce. 2004. Omega-3 fatty acids from fish oils and cardiovascular disease. Molecular and Cellular Biochemistry 263:217-225.
Darrow, M. I. and E. O. Essary. 1955. Influence of fats in rations on storage of poultry. Poult. Sci. 34:427-431.
Dean, P., W. F. Lamoreux, J. R. Aitkin, and F. G. Proudfoot. 1969. Flavor associated with fish meal in diets fed to broiler chickens. Can. J. Anim. Sci. 49:11-15.
Deaton, J. W., L. F. Kubena, T. C. Chen, and F. N. Reece. 1974. Factors influencing the quantity of abdominal fat in broilers. 2. cage versus floor rearing. Poult. Sci. 53:574-576.
Deaton, J. W. and B. D. Lott. 1985. Age and dietary energy effect on broiler abdominal fat deposition. Poult. Sci. 64:2161-2164.
Deaton, J. W., J. L. Mcnaughton, F. N. Reece, and B. D. Lott. 1981. Abdominal fat of broilers as influenced by dietary level of animal fat. Poult. Sci. 60:1250-1253.
Deaton, J. W., J. L. Mcnaughton, and B. D. Lott. 1983. The effect of dietary energy level and broiler body weight on abdominal fat. Poult. Sci. 62:2394-2397.
Deaton, J. W. and F. N. Reece. 1970. Temperature and light and broiler growth. Poult. Sci. 49:44-46.
Deaton, J. W., F. N. Reece, B. D. Lott, L. F. Kubena, and J. D. May. 1972. The efficiency of cooling broilers in summer as measured by growth and feed utilization. Poult. Sci. 51:69-71.
Deaton, J. W., F. N. Reece, and J. L. McNaughton. 1978. The effect of temperature during the growing period on broiler performance. Poult. Sci. 57:1070-1074.
Deaton, J. W., F. N. Reece, and T. H. Vardaman. 1968. The effect of temperature and density on broiler performance. Poult. Sci. 47:293-300.
Donaldson, W. E. 1985. Lopogenesis and body fat in chicks: effects of calorie-protein ratio and dietary fat. Poult. Sci. 64:1199-1204.
Donaldson, W. E., G. F. Combs, and R. L. Romoser. 1956. Studies on energy levels in poultry rations. 1. the effect of calorie:protein ratio of the ration on growth, nutrient utilization and body composition of chicks. Poult. Sci. 35:1100-1105.
Du, M., D. U. Ahn, and J. L. Sell. 2000. Effects of dietary conjugated linoleic acid and linoleic:linolenic acid ratio on polyunsaturated fatty acid status in laying hens. Poult. Sci. 79:1749-1756.
Edwards, H. M. 1967. Studies of essential fatty acid deficiency of the growing domestic cock. Poult. Sci. 46:1128.
Edwards, H. M. 1971. Effect of type of fat supplementation on the body composition of broilers. Feedstuffs. 43(16):66-70.
Edwards, H. M. and F. Denman. 1975. Carcass composition studies. 2. influences of breed, sex and diet on gross composition of the carcass and fatty acid composition of the adipose tissue. Poult. Sci. 54:1230-1238.
Edwards, H. M., F. Denman, A. Abou-Ashour and D. Nugara. 1973. Carcass composition studies. 1. influences of age, sex and type of dietary fat supplementation on total carcass and fatty acid composition. Poult. Sci. 52:934-948.
Edwards, H. M. and J. E. Marion. 1963. Influence of dietary menhaden oil on growth rate and tissue fatty acids of the chick. J. Nutr. 81:123.
Edwards, H. M. and K. N. May. 1965. Studies with menhaden oil in practical-type broiler rations. Poult. Sci. 44:685-689.
El-Husseiny, O. and C. R. Creger. 1980. The effet of ambient temperature on carcass energy gain in chickens. Poult. Sci. 59:2307-2311.
El Husseiny, O. and C. R. Creger. 1981. Effect of ambient temperature on mineral retention and balance of the broiler chicks. Poult. Sci. 60(Suppl. 1):1651(Abstract).
Essary, E. O., L. E. Dawson, E. L. Wisman, and C. E. Holmes. 1960. Influence of different levels of fat and protein in the diet on areas of fat deposition in fryers. Poult. Sci. 39:1249.
Evans, M. E., J. M. Brown, and M. K. McIntosh. 2002. Isomer-specific effects of conjugated linoleic acid (CLA) on adiposity and lipid metabolism. J. of Nutr. Bio. 13:508-516.
Faber, H. V. 1964. Stress and general adaptation syndrome in poultry. World’s Poult. Sci. J. 203:175-182.
Farrell, D. J. 1974. Effects of dietary energy concentration on unilization of energy by carcass analysis and predicted using tritium. Br. Poult. Sci. 15:25-41.
Farrell, D. J. and S. Swain. 1977. Effects of temperature treatments on the energy and nitrogen metabolism of fed chickens. Poult. Sci. 18:735-748.
Fisher, C. 1984. Fats in animal nutrition. Pages 437-470 in: Fat deposition in broilers. J. Wiseman, ed. Butterworths, London, England.
Fisher, H. and G. A. Leveille. 1957. Observations on the cholesterol, linoleic and linolenic acid content of eggs as influenced by dietary fats. J. Nutr. 63:119-129.
Fletcher, D. L. and D. M. Thomason. 1980. The influence of environmental and processing conditions on the physical carcass quality factors associated with oily bird syndrome. Poult. Sci. 59:731-736.
Foleg, J., M. Lees, and C. H. Sloane-Stanley. 1957. A simple method for isolation and purification of total lipids from animal tissues. J. Biol. Chem. 226:497-509.
Fraps, G. S. 1943. Relation of the protein, fat and energy of the ration to the composition of chickens. Poult. Sci. 22:421-424.
Fry, J. L., P. Van Walleghem, P. W. Waldroup, and R. H. Harms. 1965. Fish meal studies: efrects of levels and sources of fishy flavor in broiler meat. Poult. Sci. 44:1016-1019.
Fuller, H. L. and M. Rendon. 1977. Energetic efficiency of different fats for growth of young chicks. Poult. Sci. 56:549-557.
Gardner, F. A., W. Hopkins, and J. H. Denton. 1980. A comparison of consumer methods of storing chicken broilers at home. Poult. Sci. 59:743-747.
Garg, M. L., E. Sebokova, A. Wierzbicki, A. B. R. Thomson, and M. T. Clandinin. 1988. Differential effects of dietary linoleic and γ-linolenic acid on lipid metabolism in rat tissues. Lipids 23:847-852.
Geraert, P. A., S. Guillaumin, and B. Leclercq. 1993. Are genetically lean broilers more resistant to hot climate? Br. Poult. Sci. 34:643-653.
Goodwin, T. L., L. D. Andrews, and J. E. Webb. 1969. The influence of age, sex, and energy level on the tenderness of broilers. Poult. Sci. 48:548-552.
Grey, T. C., D. Robinson, J. M. Jones, S. W. Stock, and N. L. Thomas. 1983. Effect of age and sex on the composition of muscle and skin from a commercial broiler strain. Br. Poult. Sci. 24:219-231.
Griffin, H. D., K. Guo, D. Windsor, and S. C. Butterwith. 1992. Adipose tissue lipogenesis and fat deposition in leaner broiler chickens. J. Nutr. 122:363-368.
Griffin, J. G. and T. H. Vardaman. 1971a. Effects of radiant heat on market-size broiler chicks grown in a cyclic high temperature environment. Poult. Sci. 50:459-463.
Griffin, J. G. and T. H. Vardaman. 1971b. Diurnal cyclic high temperature in broiler production: effects of lowering the cool part of temperature cycle on performances. Poult. Sci. 50:463-466.
Griffin, J. G., T. H. Vardaman, and R. T. Parkhurst. 1969. The influence of cyclic ambient air temperature on condemnation and performance of broiler chickens. Poult. Sci. 48:970-974.
Griffiths, L., S. Lesson, and J. D. Summers. 1977a. Fat deposition in broilers: effect of dietary energy to protein balance, and early life caloric restriction on productive performance and abdominal fat pad size. Poult. Sci. 56:638-646.
Griffiths, L., S. Lesson, and J. D. Summers. 1977b. Influence of energy system and level of various fat sources on performance and carcass composition of broilers. Poult. Sci. 56:1018-1026.
Griffiths, L., S. Lesson, and J. D. Summers. 1978. Studies on abdominal fat with four commercial strains of male broiler chicken. Poult. Sci. 57:1198-1203.
Guenter, W., D. B. Bragg, and P. A. Kondra. 1971. Effect of dietary linoleic acid on fatty acid composition of egg yolk, liver and adipose tissue. Poult. Sci. 50:845-850.
Haag, M. 2003. Essential fatty acids and the brain. Can. J. Psychiatry 48:195-203.
Haller, R. W. and M. L. Sunde. 1973. Effects of heat and light crossed gradients room testing on the growth and performance of broiler type chicks. Poult. Sci. 52:74-80.
Hardin, J. O., J. L. Milligan, and V. D. Sidwell. 1964. The influence of solvent extracted fish meal and stabilized fish oil in broiler rations on performance and on the flavor of broiler. Poult. Sci. 43:858-860.
Hargis, P. S. and M. VanElswyk. 1993. Manipulating the fatty acid composition of poultry meat and eggs for the heslth conscious consumer. World’s Poult. Sci. J. 49:251-264.
Harris, W. S. 1989. Fish oils and plasma lipid and lipoprotein metabolism in humans: a critical review. J. Lipid Res. 30:785-807.
Hartung, T. E. 1955. Floor space for broilers. Poult. Sci. 34:1200.
Hartung, T. E. and G. W. Froning. 1967. Lipid stability as influenced by strain, sex and age of turket. Poult. Sci. 46:1270.
Harvey, S., C. G. Scanes, A. Chadwick, and N. J. Bolten. 1979. Growth hormone and prolactin secretion in growing domestic fowl: Influence of sex and breed. Br. Poult. Sci. 20:9-17.
Hegsted, D. M., C. Whyman, A. Gotsis, and S. D. Andrus. 1960. Effects of the composition of dietary fat upon the composition of adipose tissue. Amer. J. Clin. Nutr. 8:209-213.
Herold, P. M. and J. E. Kinsella. 1986. Fish oil consumption and decreased risk of cardiovascular disease: a comparison of findings from animal and human feeding trials. Am. J. Clin. Nutr. 43:566-598.
Heuser, G. F. 1951. Protein-a review. Poult. Sci. 20:362-367.
Hilditch, T. P., E. C. Jones, and A. J. Rhead. 1934. CX. The body fats of the hen. Biochem. J. 28:786-795.
Hill, F. W. and M. Dansky. 1954. Studies of the energy requirements of chickens. 1. the effect of dietary energy level on growth and feed consumption. Poult. Sci. 33:112-119.
Hood, R. L. 1982. The cellular basis for growth of the abdominal fat pad in broiler-type chickens. Poult. Sci. 61:117-121.
Hood, R. L. 1984. Cellular and biochemical aspects of fat deposition in the broiler chicken. World’s Poult. Sci. J. 40:160-169.
Hood, R. L. and R. A. E. Pym. 1982. Correlated responses for lipogenesis and adipose tissue cellularity in chickens selected for body weight gain, food consumption, and food conversion efficiency. Poult. Sci. 61:122-127.
Hornstein, K., P. F. Crowe, and M. J. Heimberg. 1961. Fatty acid composition of meat tissue lipids. J. Food Sci. 26:581.
Howe, P., B. Meyer, S. Record, and K. Baghurst. 2006. Dietary intake of long-chain ω-3 polyunsaturated fatty acid: contribution of meat sources. Nutr. 22:47-53.
Howes, J. R., W. Grub, and C. A. Rollo. 1962. The effects of constant high temperature regimes upon broiler growth, feed efficiency, body composition and carcass quality. Poult. Sci. 41:1652.
Howlider, M. A. R. and S. P. Rose. 1987. Temperature and growth of broilers. World’s Poult. Sci. J. 43:228-237.
Howlider, M. A. R. and S. P. Rose. 1989. Rearing temperature and the meat yield of broilers. Br. Poult. Sci. 30:61-67.
Hrdinka, C., W. Zollitsch, W. Knaus, and F. Lettner. 1996. Effects of dietary fatty acid pattern on melting point and composition of adipose tissue and intramuscular fat of broiler. Poult. Sci. 75:208-215.
Hsieh, H. F., S. H. Chiang, and M. Y. Lu. 2002. Effect of dietary monounsaturated/saturated fatty acid ratio on fatty acid composition and oxidative stability of tissues in broilers. Anim. Feed Sci. and Tech. 95:189-204.
Hulan, H. W., R. G. Ackman, W. M. N. Ratnayake, and F. G. Proudfoot. 1988. Omega-3 fatty acid levels and performance of broiler chicks fed redfish meal or refish oil. Can. J. Anim. Sci. 68:533-547.
Hulan, H. W., R. G. Ackman, W. M. N. Ratnayake, and F. G. Proudfoot. 1989. Omega-3 fatty acid levels and general levels of redfish meal. Poult. Sci. 68:153-162.
Hulan, H. W. and F. G. Proudfoot. 1987. Effects of light soure, ambient temperature and dietary energy soure on the general performance and incidence of leg abnormalities of roaster chicken. Poult. Sci. 66:645-651.
Hulan, H. W., F. G. Proudfoot, and D. M. Nash. 1984. The effects of different dietary fat sources on general performance and carcass fatty acid composition of broiler chickens. Poult. Sci. 63:324-332.
Hurwitz, S. M., W. U. Eisner, I. Bartov, G. Riesenfeld, M. Sharvit, A. Niv, and S. Bornstein. 1980. The energy requirements and performance of growing chickens and turkeys as affected by environmental temperature. Poult. Sci. 59:2290-2299.
Husseiny, O. EL. and C. R. Creger. 1980. The effect of ambient temperature on carcass energy gain in chickens. Poult. Sci. 59:2307-2311.
Huston, T. M. 1965. The influence of different environmental temperature on immature fowls. Poult. Sci. 44:1032-1036.
Ip, C., J. A. Scimeca, and H. Thompson. 1995. Effect of timing and duration of dietary conjugated linoleic acid on mammary cancer prevention. Nutr. Cancer 24:241-247.
Jeffrey, F. P. and R. E. Britt. 1941. Effect of confinement in laying cages on the physical composition of hens. Poult. Sci. 20:302-303.
Jen, J. J., W. P. Williams, S. C. Acton, and V. A. Paynter. 1971. Effect of dietary fats on the fatty acid contents of chicken adipose tissue. J. Food Sci. 36:925-929.
Jen, J. J., W. P. Williams, and V. A. Paynter. 1970. The effect of dietary fats on the fatty acid distribution of chicken adipose tissues. Poult. Sci. 49:1400-1401.
Jensen, L. S., I. Bartov, M. J. Beirne, J. R. Veltmann, and D. L. Fletcher. 1980. Reproduction of the oily bird syndrome in broilers. Poult. Sci. 59:2256-2266.
Johnson, A. R., A. C. Fogerty, J. A. Pearson, and F. S. Shenstone. 1969. Fatty acid desaturasa systems of hen liver and their inhibition by cyclopropene fatty acids. Lipids 4:265-269.
Joiner, W. P. and T. M. Huston. 1957. The influence of high environmental temperature on immature domestic fowl. Poult. Sci. 36:973-977.
Jones, J. E. and B. D. Barnett. 1973. The effect of dietary fat on turket hen resistance to high environmental temperature. Poult. Sci. 52:1506-1509.
Joshi, S. K. and J. L. Sell. 1964. Comparative dietary value of soybean oil, sunflower oil, rapeseed oil and animal tallow for turkey poults. Can. J. Animal Sci. 44:34-38.
Katz, M. A., L. R. Dugan, and L. E. Dawson. 1966. Fatty acids in neutral lipids and phospholipids from chicken tissues. J. Food Sci. 31:717-720.
Kempster, H. L. 1938. The influence of summer temperatures on the rate of growth of chickens. Poult. Sci. 17:259-263.
Ketels, E. and G. DeGroote. 1989. Effect of ratio of unsaturated to saturated fatty acids of the dietary lipid fraction on untilization and metabolizable energy of added fats in young chickens. Poult. Sci. 68:1506-1512
Kim, J. W., C. H. Lee, and I. K. Han. 1993. Effects of dietary thyroxine on growth performance and carcass quality of broilers fed different levels of dietary protein. AJAS. 6(4):527-539.
Kinsella, J. E., K. S. Broughton, and J. W. Whelan. 1990. Dietary unsaturated fatty acids: interactions and possible needs in relation to eicosanoid synthesis. J. Nutr. Biochem. 1:123-141.
Knizetova, H, J. Hyanek, and A. Veselsky. 1994. Analysis of growth curves of fowl. Ⅲ. Geese. Br. Poult. Sci. 35:335-344.
Kralik, G., Z. Skrtic, G. Kusec, and J. Kadlec. 2003. The influence of rape seed/oil on the quality of chicken carcasses. Czech J. Anim. Sci. 48(2):77-84.
Kratzer, H. F. and E. D. Williams. 1948. The relation of pyridoxine to the growth of chicks fed rations containing linseed meal. J. Nutr. 30:297-305.
Kris-Etherton, P. M., D. Shaffer, S. Yu-Poth, P. Huth, K. Moriarty, V. Fishell, R. L. Hargrove, G. Zhao, and T. D. Etherton. 2000. Polyunsaturated fatty acids in the food chain in the united states. Am. J. Clin. Nutr. 71:S179-S188.
Kubena, L. F., J. W. Deaton, T. C. Chen, and F. N. Reece. 1974a. Factors influencing the quantity of abdominal fat in broilers. 1. rearing temperature, sex, age or weight, and dietary choline chloride and inositol supplementation. Poult. Sci. 53:211-214.
Kubena, L. F., T. C. Chen, J. W. Deaton, and F. N. Reece. 1974b. Factors influencing the quantity of abdominal fat in broilers. 3. dietary energy levels. Poult. Sci. 53:974-978.
Kubena, L. F., B. D. Lott, J. W. Deaton, F. N. Reede, and J. D. May. 1972. Body composition of chicks as influences by environmental temperature and selected dietary factors. Poult. Sci. 51:517-522.
Kubena, L. F., F. N. Reece, J. W. Deaton, and J. D. May. 1973. The effect of dietary fat level on heat prostration of broilers. Poult. Sci. 52:1691-1693.
Kuenzel, W. J. and N. T. Kuenzel. 1977. Basal metabolic rate in growing chicks gallus domesticus. Poult. Sci. 56:619-627.
Lauterio, T. J. and C. G. Scanes. 1987. Hormonal responses to protein restriction in two strains of chickens with different growth characteristics. J. Nutr. 117:758-763.
Leclercq, B. 1983. The influence of dietary protein level on the growing performances of genetically lean or fat chickens. Br. Poult. Sci. 24:581-587.
Leclercq, B., J. C. Blum, and J. P. Boyer. 1980. Selecting broilers for low or high abdominal fat: initial observations. Br. Poult. Sci. 21:107-113.
Lee, K. N., J. M. Storkson, and M. W. Pariza. 1995. Dietary conjugated linoleic acid changes fatty acid composition in different tissues by decreasing monounsaturated fatty acids. Page 183 in: IFT Annual Meeting. Book of Abstracts. Anaheim, CA.
Leenstra, F. R. 1986. Effect of age, sex, genotype and environment on fat deposition in broiler chickens-a review. World’s Poult. Sci. 42:12-25.
Leenstra, F. and A. Cahaner. 1991. Gentype x environment interactions using fast growing lean or fat broiler chickens originating from the Netherlands and Israel, raised at normal or low temperature. Poult. Sci. 70:2028-2039.
Leenstra, F. and A. Cahaner. 1992. Effects of low, normal, and high temperatures on slaughter yield of broilers from lines selected for high weight gain, favorable feed conversion, and high or low fat content. Poult. Sci. 71:1994-2006.
Leenstra, F. R. and R. Pit. 1987. Fat deposition in a broiler sire strain. 2. comparisons among lines selected for less abdominal fat, lower feed conversion and higher body weight after restricted and ad libitum feeding. Poult. Sci. 66:193-202.
Leenstra, F. R. and R. Pit. 1988. Fat deposition in a broiler sire strain. 3. heritability of and genetic correlations among body weight, abdominal fat, and feed conversion. Poult. Sci. 67:1-9.
Leenstra, F. R., P. F. G. Vereijken, and R. Pit. 1986. Fat deposition in a broiler sire strain. 1. phenotypic and genetic variation in, and correlations between, abdominal fat, body weight, and feed conversion. Poult. Sci. 65:1225-1235.
Leeson, S. and J. O. Atteh. 1995. Utilization of fats and fatty acids by turkey poults. Poult. Sci. 74:2003-2010.
Leeson, S. and J. D. Summers. 1980. Production and carcass characteristics of the broiler chicken. Poult. Sci. 59:786-798.
Leeson, S. and J. D. Summers. 1984. Influence of nutrient density on growth and carcass composition of weight-segrefated leghorn pullets. Poult. Sci. 63:1764-1772.
Leveille, G. A., D. R. Romsos, Y. Y. Yeh, and E. K. O’Hea. 1975. Lipid biosynthesis in the chick. A consideration of site of synthesis, influence of diet and possible regulatory mechanisms. Poult. Sci. 54:1075-1093.
Li, Y. and B. A. Watkins. 1998. Conjugated linoleic acids alter bone fatty acid composition and reduce ex vivo prostaglandin E-2 biosynthesis in rats fed n-6 or n-3 fatty acid. Lipids 33:417-425.
Lin, C. Y. 1981. Relationship between increased body weight and fat deposition in broilers. World’s Poult. Sci. J. 37:106-110.
Lin, M. J., W. S. Chiou, S. C. Chang, J. Croom, and Y. K. Fan. 2003. Feeding value of high-oil corn for taiwan country chicken. Anim. Sci. 16(9):1348-1354.
Lin, C. Y., G. W. Friars, and E. T. Moran. 1980. Genetic and environmental aspects of obesity in broilers. World’s Poult. Sci. J. 36:103-111.
Lin, C. F., J. I. Gray, D. J. Buckley, A. M. Booren, and C. J. Flegal. 1989. Effects of dietary oils and α-tocopherol supplementation on lipid composition and stability of broiler meat. J. Food Sci. 54:1457-1460.
Lin, C. Y. and J. C. Hsu. 2003. Comparison of some selected growth, physiological and bone characteristics of capon, slip and intact birds in Taiwan country chicken cockerels. Aust. J. Anim. Sci. 16(1):50-56.
Lipstein, B. and S. Bornstein. 1973. The effect of dietary fish oil soapstock on the performance, carcass fat and flavour of broilers. Br. Poult. Sci. 14:277-287.
Lipstein, B., P. Budowski, and S. Bornstein. 1966. Effect of autoxidation on the nutritive value of acidulated soybean soapstock in chicks. Poult. Sci. 45:1480-1488.
Lipstein, B., S. Bornstein, and P. Budowski. 1970. Studies with acidulated cottonseed oil soapstock. 4. its effect on the fatty acid composition if broiler carcass lipids. Poult. Sci. 49:1631-1638.
Lopez-Bote, C. J., A. R. Sanz, A. I. Rey, A. Castano, B. Isabel, and J. Thos. 1998. Effect of free-range feeding on n-3 fatty acid and α-tokopherol content and oxidative stability of eggs. Anim. Feed Sci. and Tech. 72:33-40.
Lopez-Ferrer, S., M. D. Baucells, A. C. Barroeta, and M. A. Grashorn. 1999. N-3 enrichment of chicken meat using fish oil: alternative substitution with rapeseed and linseed oils. Poult. Sci. 78:356-365.
Lopez-Ferrer, S., M. D. Baucells, A. C. Barroeta, and M. A. Grashorn. 2001a. n-3 Enrichment of chicken meat. 1. use of very long-chain fatty acids in chicken diets and their influence on meat quality: fish oil. Poult. Sci. 80:741-752.
Lopez-Ferrer, S., M. D. Baucells, A. C. Barroeta, and M. A. Grashorn. 2001b. n-3 Enrichment of chicken meat. 2. use of precursors of long-chain polyunsaturated fatty acids: linseed oil. Poult. Sci. 80:753-761.
Mabray, C. J. and P. W. Waldroup. 1981. The influence of dietary energy and amino levels on abdominal fat pad development of the broiler chicken. Poult. Sci. 60:151-159.
Machlin, L. J. and R. S. Gordon. 1961. Effect of dietary fatty acids and cholesterol on growth and fatty acid composition of the chicken. J. Nutr. 75:157-164.
Machlin, L. J. and R. S. Gordon. 1962. Effect of dietary fat on the fatty acid composition of eggs and tissue of the hen. Poult. Sci. 41:1340-1343.
Madsen, L., A. C. Rustan, H. Vaagenes, K. Berge, E. Dyroy, and R. K. Berge. 1999. Eicosapentaenoic and docosahexaenoic acid affect mitochondrial and peroxisomal faty acid oxidation in relation to substrate preference. Lipids 34:951-963.
Maes, M., W. J. Stevens, L. S. Declerck, C. H. Bridts, D. Peeters, C. Schotte, and P. Cosyns. 1993. Significantly increased expression of T-cell activation markers (interleukin-2 and HLA-DR) in depression: futher evidence for an inflammatory process during that illness. Prog. Neuropsychopharmacol Biol. Psychiatry 17:241-255.
Magruder, N. D. and J. W. Nelson. 1967. The effect of ‘heated’ and normal environment on the performance of growing turkeys. Poult. Sci. 46(Suppl. 1):1287(Abstract).
Marchi, M. D., M. Cassandro, E. Lunardi, G. Baldan, and P. B. Siegel. 2005. Carcass characteristics and qualitative meat traits of the padovana breed of chicken. International J. of Poult. Sci. 4(4):233-238.
Marion, J. E. 1965. Effect of age and dietary fat on the lipids of chicken muscle. J. Nutr. 85:38-44.
Marion, J. E. 1969. Oxidation of chicken tissue lipids as influenced by age and sex. Poult. Sci. 48:301-304.
Marion, J. E., T. S. Boggess, and J. G. Woodroof. 1967. Effect of dietary fat and protein on lipid composition and oxidation in chicken muscle. J. Food Sci. 32:426-429.
Marion, J. E. and H. M. Edwards. 1963. Effect of age on the response of chickens to dietary protein and fat. J. Nutr. 79:53-61.
Marion, J. E. and W. O. Miller. 1968. Phospholipids and component fatty acids of chicken tissues. Poult. Sci. 47:1453-1459.
Marion, J. E. and J. G. Woodroof. 1963. The fatty acid composition of breast, thigh and skin tissues of chicken broilers as influenced by dietary fats. Poult. Sci. 42:1202-1207.
Marion, J. E. and J. G. Woodroof. 1965. Lipid fractions of chicken broiler tissues and their fatty acid composition. J. Food Sci. 30:38-43.
Marion, J. E. and J. G. Woodroof. 1966. Composition and stability of broiler carcass as affected by dietary protein and fat. Poult. Sci. 45:241-247.
Marks, H. L. 1990. Genotype by diet interactions in body and abdominal fat weight in broilers. Poult. Sci. 69:879-886.
McDowell, L. R. 1989. Essential fatty acids. Vitamins in animal nutrition comparative aspects to human nutrition. Anim. Sci. Department Uni. of Florida Gainesville, Florida. 17:91-421.
Mecchi, E. P., M. F. Pool, M. Nonaka, A. A. Klose, S. J. Marsden, and R. J. Lillie. 1956. Further studies on tocopherol content and stability of carcass fat of chickens and turkeys. Poult. Sci. 35:1246-1251.
Merkley, J. W., B. T. Weinland, G. W. Malone, and G. W. Chaloupka. 1980. Evaluation of five commercial broiler crosses. 2. eviscerated yield and component parts. Poult. Sci. 59:1755-1760.
Merritt, E. S. 1966. Estimates by sex of genetic parameters for body weight and skeletal dimensions in a randombred strain of meat type fowl. Poult. Sci. 45:118-125.
Mickelberry, W. C., J. G. Rogler, and W. J. Stadelman. 1966. The influence of dietary fat and environmental temperature upon chick growth and carcass composition. Poult. Sci. 45:313-321.
Mickelberry, W. C., D. V. Schwall, and W. J. Stadelman. 1962. The effect of ice: water coolant ratios upon moisture absorption and rate of chilling of eviscerated chicken carcasses. Poult. Sci. 41:1550-1553.
Miller, D., E. H. Gruger, K. C. Leong, and G. Knobl. 1967. Effect of refined menhaden oils on the flavor and fatty acid composition of broiler flesh. J. Food Sci. 32:342-345.
Miller, D., K. C. Leong, and P. Smith. 1969. Effect of feeding and withdrawal of menhaden oil on the ω3 and ω6 fatty acid content of broiler tissues. J. Food Sci. 34:136-141.
Miller, E. C., H. Menge, and C. A. Denton. 1962. Effect of dietary fat on tissue fat and plasma cholesterol level in broilers. Poult. Sci. 41:970-974.
Milligan, J. L., J. E. Marr, R. C. Eaton, P. E. Kifer, and H. L. Wilcke. 1957. Environmental studies on broiler chicks. Poult. Sci. 36:1141.
Miller, D. and P. Robisch. 1969. Comparative effect of herring, menhaden, and safflower oils on broiler tissues fatty acid composition and flavor. Poult. Sci. 48:2146-2157.
Milligan, J. L. and P. N. Winn. 1964. The influence of temperature and humidity on broiler performance in environmental chambers. Poult. Sci. 43:817-824.
Mitchell, H. H., L. E. Card and T. S. Hamilton. 1926. The growth of white Plymouth rock chickens. Illinois Agr. Exp. Sta. Bul. 278:71-132.
Mitchell, H. H., L. E. Card and T. S. Hamilton. 1931. A technical study of the growth of white leghorn chickens. Illinois Agr. Exp. Sta. Bul. 367:1-139.
Mohrhauer, H. and R. T. Holman. 1963. Effects of linolenic acid upon the metabolism of linoleic acid. J. Nutr. 81:67-74.
Moran, E. T. 1979. Carcass quality changes with the broiler chicken after dietary protein restriction during the growing phase and finishing period compensatory growth. Poult. Sci. 58:1257-1270.
Moran, E. T. 1995. Body composition. World Ani. Sci. C9-poultry production 7:139-156.
Moran, E. T. and H. L. Orr. 1969. Influence of strain on the yield of commercial parts from the chicken broiler carcass. Poult. Sci. 48:725-728.
Morrison, W. R. and L. M. Smith. 1964. Preparation of fatty acid methyl esters and dimethylacetals from lipids with boron trifluoride-methanol. J. Lipid Res. 5:600-608.
Nam, K. T., H. A. Lee, B. S. Min, and C. W. Kang. 1997. Influence of dietary supplementation with linseed and vitamin E on fatty acids, α-tocopherol and lipid peroxidation in muscles of broiler chicks. Anim. Feed Sci. Tech. 66:149-158.
Nelson, J. R. 1976. Carcass quality of broiler turkey as influenced by dietary fat type, sex and cooking. Ph. D. Disseration, University of Guelph, Canada, 163 pp.
Neudoerffer, T. S. and C. H. Lea. 1966. Effects of dietary fish oil on the composition and stability of turkey depot fat. Br. J. Nutr. 20:581-594.
Neudoerffer, T. S. and C. H. Lea. 1967. Effects of dietary polyunsaturated fatty acids on the composition of the individual lipids of turkey breast and leg muscle. Br. J. Nutr. 21:691-714.
Newell, G. W., J. L. Fry, and R. H. Thayer. 1956. The effect of fat in the ration on fat deposition in broilers. Poult. Sci. 35:1162-1163.
Nir, I., Z. Nitsan, and S. Keren-Zvi. 1988. Fat deposition in bird. Pages 141-174 in: Leanness in domestic birds: genetic, metabolic and hormonal aspects. B. Leclercq and C. C. Whitehead, ed. Butterworths, London, UK.
Northcutt. J. K. 2006. Factors affecting poultry meat quality. The Uni. of Georgia of Agricultural and Environmental Sci. Online Available: http://pubs. case.uga.edu/caespubs/pubcd/b1157-w.html. Accessed Mar. 10,2006.
Ntambi, J. M. 1991. Dietary regulation of stearoyl-CoA desaturase Ⅰgene expression in mouse liver. J. Biol. Chem. 267:10925-10930.
Nugara, D. and H. M. Edwards. 1970. Changes in fatty acid composition of cockerel testes due to age and fat deficiency. J. Nutr. 100:156-160.
O’Keefe, S. F., F. G. Proudfoot, and R. G. Ackman. 1995. Lipid oxidation in meats of omega-3 fatty acid-enriched broiler chickens. Food Research International 28(4):417-424.
Olomu, J. M. and V. E. Baracos. 1991. Influence of dietary flaxseed oil on the performance, muscle protein deposition and fatty acid compositon of broiler chicks. Poult. Sci. 70:1403-1411.
Olson, D. W., M. L. Sunde, and H. R. Bird. 1972. The effect of temperature on metabolizable energy determination and utilization by the growing chick. Poult. Sci. 51:1915-1922.
Osman, A. M., E. S. Tawfik, F. W. Klein, and W. Hebeler. 1989. Effect of environmental temperature on growth, carcass traits and meat quality of broilers of both sexes and different ages. Arch. Geflugelkd. 53:158-175.
Ousterhout, L. E. 1981. The effect of strain, sex, diet, age and lighting on broiler performance and processing parameters. Poult. Sci. 60:1707.
Pan, P. R., B. C. Dilworth, E. J. Day, and T. C. Chen. 1979. Effect of season of the year, sex and dietary fats on broiler performance, abdominal fat and preen gland secretion. Poult. Sci. 58:1564-1574.
Park, Y., K. Albright, W. Lju, J. Storkson, M. Cook, and M. Pariza. 1997. Effect of conjugated linoleic acid on body composition in mice. Lipids 32:853-858.
Peason, A. W. and E. T. Bulter. 1978. Environmental temperature as a factor in the aetiology of fatty liver haemorrhagic syndrome in rhe fowl. Res. Vet. Sci. 25:133-138.
Pfaff, F. E. and R. E. Austic. 1976. Influence of diet on development of the abdominal fat pad in the pullet. J. Nutr. 106:443-450.
Phetteplace, H. W. and B. A. Watkins. 1989. Effects of various n-3 lipid sources on fatty acid composition in chicken tissues. J. Food Compos. Anal. 2:104-117.
Phetteplace, H. W. and B. A. Watkins. 1990. Lipid measurements in chickens fed different combinations of chicken fat and menhaden oil. J. Agric. Food Chem. 38:1848-1853.
Phetteplace, H. W. and B. A. Watkins. 1992. Influence of dietary n-6 and n-3 polyunsaturates on lipids in chickens divergently selected for body weight. Poult. Sci. 71:1513-1519.
Pinchasov, Y. and I. Nir. 1992. Effect of dietary polyunsaturated fatty acid concentration on performance, fat deposition and carcass fatty acid composition in broiler chickens. Poult. Sci. 71:1504-1512.
Pitcovski, J., Y. Pinchasov, M. Meron, and I. Malka. 1994. The influence of sex, climate and body weight on skin tears and muscle damage during plucking of broiler chickens. Poult. Sci. 73:733-738.
Plavnik. I. and S. Hurwitz. 1982. Organ weights and body composition in chickens as related to the energy and amino aicd requirements: effects of strain , sex, and age. Poult. Sci. 62:152-163.
Polak, T., A. Holcman, V. Stibilj, and B. Zlender. 2002. The fatty acid composition of broilers from free range rearing. Zb. Bioteh. Univ. Ljubl., Kmet. Zooteh. 80(1):71-80.
Prince, R. P., J. H. Whitaker, L. D. Matterson, and R. E. Luginbuhl. 1965. Response of chickens to temperature and relation humidity environments. Poult. Sci. 44:73-77.
Proudfoot, F. G., W. F. Lamoreux, and J. R. Aitken. 1971. Performance of commercial broiler genotypes on fish meal diets with a charcoal supplement. Poult. Sci. 50:1124-1130.
Rand, N. T., F. A. Kumerow, and H. M. Scott. 1957. The relationship of dietary protein, fat and energy on the amount, composition and origin of chick carcass fat. Poult. Sci. 36:1151.
Reece, F. N., J. W. Deaton, J. D. May, and K. N. May. 1971. Cage versus floor rearing of broiler chickens. Poult. Sci. 50:1786-1790.
Reece, F. N. and J. L. Mcnaughton. 1982. Effects of dietary nutrient density on broiler performance at low and moderate environmental temperatures. Poult. Sci. 61:2208-2211.
Reiser, R. 1950. The metabolism of polyunsaturated fatty acids in growing chickens. Ibid. 42:325.
Reiser, R. 1951a. The metabolism of polyunsaturated fatty acids in growing chicks. J. Nutr. 42:325-336.
Reiser, R. 1951b. The synthesis and interconversions of polyunsaturated fatty acid by the laying hen. Ibid. 44:159.
Renner, R. and F. W. Hill. 1960. The utilization of corn oil, lard and tallow by chickens of various ages. Poult. Sci. 39:849-855.
Ricard, F. H., B. Leclercq, and C. Touraille. 1983. Selecting broilers for low or high abdominal fat: distribution of carcass fat and quality of meat. Br. Poult. Sci. 24:511-516.
Rinehart, K. E., D. E. Green, and J. L. Williamson. 1975. The influence of selected nutrition and management factors on broiler carcass composition. Poult. Sci. 54:1809-1810.
Roberts, C. W. 1964. Estimation of early growth rate in the chicken. Poult. Sci. 43:238-252.
Roberts, C. W. 1965. One-week body weight and bi-weekly early growth rate as related to 7-week body weight in the chicken. 44:947-952.
Russell, W. C., M. W. Taylor, and L. J. Polskin. 1940. Fat requirement of the growing chick. J. Nutr. 19:555.
Sahasrabudhe, M. R., N. F. Delorme, and D. F. Wood. 1985. Neutral and polar lipids in chicken parts and their fatty acid composition. Poult. Sci. 64:910-916.
Salmon, R. E. 1969. Soybean versus rapeseed oil in turkey starter diets. Poult. Sci. 48:87-93.
Salmon, R. E., H. L. Classen, and R. K. McMillan. 1983. Effect of starter and finisher protein on performance, carcass grade and meat yield of broiler. Poult. Sci. 62:837-845.
Salmon, R. E. and J. B. O’Neil. 1971. The effect of the level and source of dietary fat on the growth, feed efficiency, grade and carcass composition of turkeys. Poult. Sci. 50:1456-1467.
Salmon, R. E. and J. B. O’Neil. 1973. The effect of the level and source and of a change of source of dietary fat on the fatty acid composition of the depot fat and the thigh and breast meat of turkeys as related to age. Poult. Sci. 52:302-314.
Sanz, M. 2000. Effect of dietary fat saturation on the quantity and quality of fat in broiler chickens. Universidad Politenica de Madrid, pp. 217-238.
Sanz, M., A. Flores, and C. J. Lopez-Bote. 1999. Effect of fatty acid saturation in broiler diets on abdominal fat and breast muscle fatty acid composition and susceptibility to lipid oxidation. Poult. Sci. 78:378-382.
Sanz, M., A. Flores, and C. J. Lopez-Bote. 2000. The metabolic use of energy from dirtary fat in broilers is affected by fatty acid saturation. Br. Poult. Sci. 41:61-68.
Sanz, M., A. Flores, D. E. Perez, P. Ayala, and C. J. Lopez-Bote. 1999. Higher lipid accumulation in broilers fed on saturated fats than in those fed unsaturated fats. Br. Poult. Sci. 40:95-101.
Sanz, M., C. J. Lopez-Bote, D. Monoyo, and J. M. Bautista. 2000. Abdominal fat deposition and fatty acid synthesis are lower and β-oxidation is higher in broiler chickens fed diets containing unsaturated rather than saturated fat. J. Nutr. 130:3034-3037.
Scaife, J. R., J. Moyo, H. Galbraith, W. Michie, and V. Campbell. 1994. Effect of different dietary supplemental fats and oils on the tissue fatty acid composition and growth of female broilers. Br. Poult. Sci. 35:107-118.
Scanes, C. G. 1991. Symposium: avian growth and development introduction. Poult. Sci. 70:1763.
Schmidt, E. B., H. A. Skou, H. J. Christensen, and J. Dyerberg. 2000. n-3 Fattty acids from fish and coronary artery disease: implications for public health. Public Health Nutr. 31:91-98.
Schuler, G. A. and E. O. Essary. 1971. Fatty acid composition of lipids from broilers fed saturated and unsaturated fats. J. Food Sci. 36:431-434.
Sell, J. L., S. H. Choo, and P. A. Kondra. 1968. Fatty acid composition of egg yolk and adipose tissue as influenced by dietary fat and strain of hen. Poult. Sci. 47:1296-1302.
Sheehy, P. J. A., P. A. Morrissey, and A. Flynn. 1993. Influence of heated vegetable oils and α-tocopheryl acetate supplementation onα-tocopherol, fatty acids and lipid peroxidation in chicken muscle. Br. Poult. Sci. 34:367-381.
Shimomura, Y., T. Tamurem, and M. Suzuki. 1990. Less body fat accumulation in rats fed a safflower oil diet than in rats fed a beef tallow diet. J. Nutr. 120:1291-1296.
Shutze, J. V., P. A. Thornton, and R. E. Moreng. 1958. Protein-energy relationships as affected by sex and management. Poult. Sci. 37:1063-1070.
Sibbald, I. R., J. D. Summers, and S. J. Slinger. 1960. Factors affecting the metabolisable energy content of poultry feeds. Poult. Sci. 39:544-556.
Siegel, P. B. and R. H. Coles. 1958. Effects of floor space on broiler performance. Poult. Sci. 37:1243.
Siegel, H. S. and L. N. Drury. 1970. Broiler growth in diurnally cycling temperature environments. Poult. Sci. 49:238-244.
Siegel, H. S., L. N. Drury, and W. C. Patterson. 1973. Bone Characteristics and growth of broilers housed in plastic coops or on moderate and high temperatures. In: 4th European Poultry Conference pp. 159-164. London, England.
Sim, J. S., D. B. Bragg, and G. C. Hodgson. 1973. Effect of dietary animal tallow and vegetable oil on fatty acid composition of egg yolk, adipose tissue and liver of laying hens. Poult. Sci. 52:51-57.
Simmons, J. D. and J. W. Deaton. 1989. Research note: evaporative cooling for increased production of large broiler chickens. Poult. Sci. 68:839-841.
Simons, P. C. M. 1986. Major minerals in the nutrition of poultry. In: C. Fisher and K. N. Boorman (ed.) Nutrient Requirements of Poultry and Nutritional Research. Poultry Science Symposium 19. pp. 141-154. Butterworth and Co. (Publishers) Ltd., London, UK.
Simopoulos, A. P. 1983. ω-3 fatty acids in growth and development and in health and disease. Part I. The role of ω-3 fatty acids in growth and development. Nutr. Today 23:10-19.
Simopoulos, A. P. 1991. Omega-3 fatty acids in health and disease and in growth and development. Am. J. Clin. Nutr. 54:438-463.
Singh, S. P. and E. O. Essary. 1974. Factors influencing dressing percentage and tissue composition of broilers. Poult. Sci. 53:2143-2147.
Sinurat, A. P. and D. Balnave. 1985. Effect of dietary amino acids and metabolisable energy on the performance of broilers kept at high temperatures. Br. Poult. Sci. 26:117-128.
Sizemore, F. G. and H. S. Siegel. 1993. Growth, feed conversion and carcass composition in females of four broiler crosses fed starter diets with different energy levels and energy to protein ratios. Poult. Sci. 72:2216-2228.
Sklan, D. and A. Ayal. 1989. Effect of saturated fat on growth, body fat composition and carcass quality in chicks. Br. Poult. Sci. 30:407-411.
Sklan, D., Z. Tenne, and P. Budowski. 1983. The effect of dietary fat and tocopherol on lipolysis and oxidation in turkey meat stored at different temperatures. Poult. Sci. 62:2017-2021.
Sonaiya, E. B. 1988. Fatty acid composition of broiler abdominal fat is influenced by temperature, diet, age and sex. Br. Poult. Sci. 29:589-595.
Sonaiya, E. B. and K. Benyi. 1983. Abdominal fat in 12-to 16-week-old broiler birds as influenced by age, sex, and strain. Poult. Sci. 62:1793-1799.
Sonaiya, E. B., M. Ristic, and F. W. Klein. 1990. Effect of environmenral temperature, dietary energy, age and sex on broiler carcass portions and palatability. Br. Poult. Sci. 31:121-128.
Sparks, N. H. and A. D. Burgess. 1993. Effect of apray sanitizing on hatching egg cuticle efficacy and hatchability. Br. Poult. Sci. 34:655-662.
Spring, J. L. and W. S. Wilkinson. 1957. The influence of dietary protein and energy level on body composition of broilers. Poult. Sci. 36:1159.
Squibb, R. L., M. .A. Guzman, and N. S. Scrimshaw. 1959. Growth and blood constituents of immature new Hampshire fowl exposed to a constant temperature of 99℉. For seven days. Poult. Sci. 38:220-221.
Sugano, M., A. Tsujita, M. Yamasaki, M. Noguchi, and K. Yamada. 1998. Conjugated linoleic acid modulates tissue levels of chemical mediators and immunoglobulins in rats. Lipids 33:521-527.
Summers, J. 2006. Incorporation of omega-3 fatty acids into poultry products. Online Avaiable: http://www.poultryindustrycouncil.ca/Factsheets/fact58.htm. Accessed Mar. 10, 2006.
Summers, J. D. and S. Leeson. 1979. Composition of poultry meat as affected by nutritional factors. Poult. Sci. 58:536-542.
Summers, J. D. S. J. Slinger, and G. C. Ashton. 1965. The effect of dietary energy and protein on carcass composition with a note on a method for estimating carcass composition. Poult. Sci. 44:501-509.
Summers, J. D., S. J. Slinger, I. R. Sibbald, and W. F. Pepper. 1964. The influence of protein and energy on growth and protein utilization in the growing chicken. J. Nutr. 82:463-468.
Swain, S. and D. J. Farrell. 1975. Effects of different temperature regimens on body composition and carryover effects of energy metabolism of growing chickens. Poult. Sci. 54:513-520.
Teeter, R. G., C. J. Wiernusz, and T. Belay. 1996. Animal nutrition in the 21st century a poultry perspective. Anim. Feed Sci. Tech. 58:37-47.
Thomas, C. H., W. L. Blow, C. C. Cockerham, and E. L. Glazener. 1958. The heritability of body weight gain, feed consumption and feed conversion in broilers. Poult. Sci. 37:862-869.
Thomson, J. E., N. A. Cox, W. K. Whitehead, and A. J. Mercuri. 1974. Effect of hot spray washing on broiler carcass quality. Poult. Sci. 53:946-952.
Turpeinen, O. 1938. Further studies on the unsaturated fat acids essential in nutrition. J. Nutr. 15:351.
Twining, P. V., O. P. Thomas, and E. H. Bossard. 1978. Effect of diet and type of birds on the carcass composition of broilers at 28, 49, and 59 days of age. Poult. Sci. 57:492-497.
Tzeng, R. Y. and W. A. Becker. 1981. Growth patterns of body and abdominal fat weights in male broiler chickens. Poult. Sci. 60:1101-1106.
Vermeersch, G. and F. Vanschoubroek. 1968. The quantification of the effect of increasing levels of various fats on body weight gain, efficiency of food conversion and food intake of growing chicks. Br. Poult. Sci. 9:13-30.
Visonneau, S., A. Cesano, S. A. Tepper, J. A. Scimeca, D. Santoli, and D. Kritchevsky. 1997. Conjugated linoleic acid suppresses the growth of human breast adenocarinoma cells in SCID mice. Anticancer Res. 17:969-973.
Voss, A., M. Reinhart, S. Sankarappa, and H. Sprecher. 1991. The metabolism of 7,10,13,16,19-docosapentaenoic acid to 4,7,10,13,16,19-docosahexaenoic acid in rat liver is independent of a 4-desaturase. J. Biol. Chem. 266:19995-20000.
Waldroup, P. W., P. van Walleghem, J. L. Fry, C. Chicco, and R. H. Harms. 1965. Fish meal studies. 1. effects of levels and sources on broiler growth rate and feed efficiency. Poult. Sci. 44:1012-1016.
Wang, L. Z., I. McMillan, and J. R. Chambers. 1991. Genetic corrlations among growth, feed, and carcass traits of broiler sire and dam populations. Poult. Sci. 70:719-725.
Watkins, B. A. 1911. Importance of essential fatty acids and their derivatives in poultry. J. Nutr. 121:1475-1485.
Weinberg, Z. G., S. Angel, and C. Navrot. 1986. The effect of sex, age, and feed on tensile strength of broiler skin. Poult. Sci. 65:903-906.
Whitehead, C. C. and H. D. Griffin. 1984. Development of divergent lines of lean and fat broilers using plasma very low density lipoprotein concentration as selection criterion: the first three generations. Br. Poult. Sci. 25:573-582.
Whitehead, C. C. and H. D. Griffin. 1986. Development of divergent lines of lean and fat broilers using plasma very low density lipoprotein concentration as selection criterion; results over the fourth generation and lack of effect of dietary fat on performance and carcase fat content. Br. Poult. Sci. 27:317-324.
Wilson, B. J. 1977. Growth curves: their analysis and ues. In: K. N.Boorman and B. J. Wilson (ed.) Growth and Poultry Meat Production. Brit. Poultry Sci. Ltd., Edinburgh. pp. 89-115.
Wilson, M. D., W. L. Blake, L. M. Salati, and S. D. Clarke. 1990. Potency of polyunsaturated and saturated fats as short-term inhibitors of hepatic lopogenesis in rats. J. Nutr. 120:544-552.
Winchester, F. C., and M. Kleiber. 1938. The effect of environmental temperature on mortality, rate of growth and utilization of food energy in white leghorn chicks. J. Agr. Res. 57:529-544.
Winn, P. N. and E. F. Godfrey. 1967. The effect of temperature and moisture on broiler performance. Univ. of Maryland Agri. Exp. Sta. Bull. A-153.
Wise, D. R. 1977. The growth of the skeleton. In: K. N. Boorman and B. J. Wilson (ed.) Growth and Poultry Meat Production. Br. Poult. Sci. Ltd., Edinburgh. pp. 65-78.
Wiseman, J. and F. Salvador. 1991. The influence of free fatty acid content and degree of satuearion on the apparent metabolizable energy value of fats fed broilers. Poult. Sci. 70:573-582.
Wisman, E. L. and P. B. Siegel. 1953. Further studies on protein and energy requirements of chicks deledted for high and low body weight. Poult. Sci. 42:541-548.
Wolfenson, D., D. Sklan, Y. Graber, O. Kedar, I. Bengal, and S. Hurwitz. 1987. Absorption of protein, fatty acids and minerals in young turkeys under heat and cold stress. Br. Poult. Sci. 28:739-742.
Wong, S. H., P. J. Nestel, R. P. Trimble, G. B. Storer, R. J. Illman, and D. L. Topping. 1984. The adoptive effects of dietary fish and safflower oil on lipid and lipoprotein metabolism in perfused rat liver. Biochim. Biophys. Acta 792:103-109.
Yau, J. C., J. H. Denton, C. A. Bailey, and A. R. Sams. 1991. Customizing the fatty acid content of broiler tissues. Poult. Sci. 70:167-172.
Yoshitaka, O., I. Hisao, and T. Hitoshi. 1982. Studies on the growth skeletal muscle of capon Ⅱ. Effects of castration on muscle weights in different body parts and individual muscle weight. Sci. Bull. Fac. Agr., Kyushu Univ. 37:23-30.
Young, G. and J. Conquer. 2005. Omega-3 fatty acids and neuropsychiatric disorders. Reprod. Nutr. Dev. 45:1-28.
Yu, M. W., F. E. Robinson, M. T. Clandinin, and L. Bodnar. 1990. Growth and body composition of broiler chickens in response to different regimens of feed restriction. Poult. Sci. 69:2074-2081.
Zollitsch, W., W. Knaus, F. Aichinger, and F. Lettner. 1997. Effects of different dietary fat sources on performance and carcass characteristics of broiler. Anim. Feed Sci. Tech. 66:63-73.
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