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1.
为探求云纹龙胆石斑鱼(Epinephelus lanceolatus♂×E.moara♀)幼鱼饲料的最适蛋白质和能量含量,以鱼粉和大豆浓缩蛋白为蛋白源、添加鱼油构建能量梯度,配制粗蛋白含量为46%、50%和54%,能量含量为20.00、20.50和21.00 k J/g,蛋能比为22.04~26.87 mg/k J的9组饲料,编号为D1~D9组,投喂初始体重为(46.23±0.51)g的云纹龙胆石斑鱼幼鱼56 d。结果显示,蛋白质和能量的交互作用对云纹龙胆石斑鱼幼鱼增重率影响显著(P0.05),蛋白质和能量升高显著提高增重率和特定生长率(P0.05)。蛋白质和能量的交互作用对蛋白质沉积率和肝体比影响显著(P0.05),蛋白质升高显著提高能量保留率和肥满度(P0.05),蛋白质效率先升后降(P0.05);能量升高显著提高蛋白质效率和能量保留率(P0.05);D6组蛋白质沉积率和蛋白质效率显著高于其他组(P0.05)。蛋白质和能量的交互作用对全鱼及肌肉水分、粗蛋白、粗灰分均无显著影响(P0.05),全鱼及肌肉粗蛋白随饲料粗蛋白升高而升高(P0.05),水分随能量升高而降低(P0.05),全鱼粗脂肪随蛋能比降低而升高(P0.05)。蛋白质和能量的交互作用对胰蛋白酶、脂肪酶和淀粉酶活力影响显著(P0.05),胃蛋白酶活力随蛋白质含量升高而升高(P0.05),能量对其无显著影响(P0.05);D6组胰蛋白酶活力最高,其随饲料蛋能比降低呈先升后降的趋势(P0.05),能量为21.00 k J/g时,脂肪酶活力显著高于其他组(P0.05)。综上,在设定的蛋白质和能量范围内云纹龙胆石斑鱼幼鱼饲料以50%粗蛋白,21.00 k J/g能量为宜。  相似文献   

2.
饲料蛋白质和能量水平对草鱼生长和鱼体组成的影响   总被引:4,自引:0,他引:4  
采用3×3因子试验确定不同蛋白质和脂肪水平饲料对草鱼生长和鱼体组成的影响。初始平均体质量为0.75g的试验鱼放养在27个规格为85cm×35cm×95cm的网箱中,每箱放养50尾。日粮中的蛋白源、脂肪源和可消化碳水化合物源,分别采用鱼粉、豆油和糊精配制,日粮设3个粗蛋白水平,每个蛋白水平有3个能量水平饲养草鱼84d。结果表明MPLL组(粗蛋白为30%,粗脂肪为4%)的特殊生长率和蛋白质效率最高,饲料系数最低,但与LPML组(粗蛋白为25%,粗脂肪为6%)差异不显著;总的来看,脂肪含量在4%和6%时特定生长率和饲料系数以中蛋白质组(MP,30%)最高,脂肪含量在8%时特定生长率和饲料系数以低蛋白质组(LP,25%)最高,表明饲料脂肪水平对鱼的生长和饲料系数有显著影响。随着饲料可消化能的增加,鱼体的脂肪含量增加,而蛋白和灰分含量没有多大变化。综合饲料成本等因素,本试验初步确定草鱼幼鱼生长所需的最适蛋白水平为25%,DP/DE约为23.47mg·kJ-1。  相似文献   

3.
饵料蛋白能量比对黑鲷幼鱼生长和体成分的影响   总被引:6,自引:0,他引:6       下载免费PDF全文
取黑鲷(Sparusmacrocephalus)幼鱼960尾,体重(3.39±0.18)g,以鱼粉和豆粕作为蛋白源,鱼油和豆油等比例混合油作为脂肪源,共配制4个蛋白水平(34%、38%、42%、46%),每一蛋白水平设3个脂肪水平(10%、13%、16%),共12种饵料,糖水平保持在16%左右,饵料的蛋白能量比(P/E)在96.76~136.21mg/kcal。黑鲷幼鱼随机分成12组,每组设2重复,实验为期42d。结果表明,对特定生长率(SGR)与饵料系数(FCR)的影响,以较高蛋白组(38%、42%、46%)显著优于低蛋白组(34%)(P<0.05),中、高脂肪组(13%、16%)显著优于低脂肪组(10%)(P<0.05);各组饵料对成活率的影响无显著差异(P>0.05)。当蛋白水平为42%,脂肪水平为16%时,黑鲷幼鱼获得最大特定生长率(3.20)、最高蛋白质效率(2.10)和最小饵料系数(1.14)。全鱼脂肪含量随着饵料中脂肪水平的提高而逐渐升高。在同一饵料蛋白水平内,全鱼蛋白与灰分含量随着饵料脂肪水平的提高呈逐渐升高趋势。经统计分析,饵料中不同蛋白能量比显著影响黑鲷幼鱼生长(P<0.05),饵料中脂肪有明显节约蛋白质的作用(P<0.05)。由生长及体成分的实验结果得出,黑鲷幼鱼的最适饵料蛋白水平为42%,最适蛋白能量比(P/E)为110.37mg/kcal。  相似文献   

4.
在水温24~29℃下,将675尾规格整齐、健康、体质量为(35.59士0.44)g的草鱼(Ctenopharyngodon idel-lus)随机分为9个处理,每处理3个重复,放养于水泥池中的网箱(100cm×50cm×100cm)内,投喂以鱼粉和豆粕为蛋白源,豆油作为脂肪源配制的3个蛋白水平(24%、28%、32%),每一蛋白水平设3个脂肪水平(4%、6%、8%),共计9种饲料。饲料蛋能比(P/E)在15.81-22.46 mg·kJ-1之间。92d的饲养表明:D4组(蛋白质含量为28.02%,脂肪为4.30%)草鱼的特定生长率最高,显著高于其他各组(P〈0.05)。随着饲料中蛋白含量的增加,草鱼全肠中蛋白酶的活力逐渐升高,之后又降低,以D4组饲料的蛋白酶活性最高,显著高于D1、D8和D9(P〈0.05)。本实验表明,该生长阶段的草鱼所需最适蛋白水平为28.02%,能量为14307kJ.kg-1,P/E约为19.58mg·kJ-1。  相似文献   

5.
以鱼粉、豆粕为蛋白源,豆油、鱼油为脂肪源,配制9种不同蛋白能量水平的饲料,蛋白质3个水平(38%、43%、49%),每个蛋白水平设3个脂肪梯度(6%、10%、14%),其蛋白能量比为19.3~27.4mg/kJ。卵形鲳鲹初始质量为(25.02±0.16)g,每个处理设3个重复,每个网箱(1.5 m×1.0 m×2.0m)放养卵形鲳鲹苗20尾,养殖试验持续8周。结果显示,卵形鲳鲹特定生长率随饲料蛋白水平的升高而显著升高(P<0.05)。投喂含43%或49%蛋白质、6%脂肪饲料的卵形鲳鲹表现出较好的特定生长率。饲料中不同的脂肪水平未表现出蛋白质节约效应,较高的脂肪水平反而抑制了卵形鲳鲹的特定生长率、饲料效率和蛋白质效率。卵形鲳鲹鱼体蛋白和脂肪含量分别随饲料蛋白质和脂肪水平的上升而显著升高(P<0.05)。在该试验条件下,卵形鲳鲹幼鱼饲料中最适蛋白质、脂肪水平和蛋白能量比分别为43%、6%和24.4 mg/kJ。  相似文献   

6.
以鱼粉为蛋白源,配制5个不同蛋白质水平(34.85%,40.48%,46.54%,51.54%,56.69%)的等能饲料.以初始体质量为(54.52±0.23)g的星斑川鲽(Platichthys stellatus)为实验对象,在室内循环水养殖系统中进行54 d的摄食生长实验,研究饲料蛋白水平对星斑川鲽幼鱼生长、体组成及血浆生化指标的影响.结果显示:(1)增重率(WGR)和特定生长率(SGR)随着饲料蛋白水平的增加而上升,51.54%和56.69%饲料组之间差异不显著(P>0.05),其余各组差异显著(P<0.05);51.54%饲料组的蛋白质效率(PER)显著高于其他各组(P<0.05);51.54%饲料组的蛋白质沉积率(PRE)也显著高于34.85%、46.54%和56.69%组(P<0.05),但与40.48%饲料组差异不显著(P>0.05).以增重率为参考指标,折线回归分析结果表明,星斑川鲽幼鱼获得最佳增重时对饲料中蛋白质的需要量为53.56%.(2)饲料不同蛋白水平对星斑川鲽幼鱼鱼体灰分含量没有显著影响,但显著影响了鱼体粗蛋白、粗脂肪和水分的含量(P<0.05).51.54%饲料组鱼体粗蛋白含量最高,显著高于34.85%组(P<0.05),而与40.48%、46.54%和56.69%组之间无显著差异(P>0.05);鱼体粗脂肪含量随着饲料蛋白水平的升高而下降,水分含量表现出与粗脂肪含量相反的趋势.(3)饲料蛋白含量对星斑川鲽幼鱼部分血浆生化指标也产生了显著性的影响.血浆总蛋白(TP)以51.54%组最高,与56.69%组差异不显著(P>0.05),,但显著高于34.85%、40.48%和46.54%组(P<0.05);40.48%、51.54%和56.69%组间血浆尿素氮(BUN)含量差异不显著(P>0.05),但显著低于34.85%和46.54%组(P<0.05).综合以上结果,星斑川鲽饲料中蛋白质适宜添加量为51.54%~53.56%.  相似文献   

7.
不同蛋白能量比饲料对草鱼幼鱼消化酶活性的影响   总被引:2,自引:1,他引:1  
以鱼粉和豆粕为蛋白源,鱼油和豆油等比例混合油为脂肪源,共配制4个蛋白水平(20%、25%、30%、35%),每一蛋白水平设4个脂肪水平(4.5%、8%、11.5%、15%),共16组饲料。每组设3个重复,在水温23~29℃下,连续投喂初始体重为(16.84±0.28)g的草鱼(Ctenopharyngodon idellus)10周,研究不同蛋白能量比饲料对草鱼幼鱼消化酶活性的影响。结果显示:肠道蛋白酶的活性随着饲料蛋白含量的升高而显著升高(P<0.05),饲料蛋白水平在20%~30%时,饲料中的脂肪水平对蛋白酶活性影响不显著(P>0.05),蛋白水平在35%时,高脂肪抑制了蛋白酶活性,肝胰脏的蛋白酶变化规律类似于肠道;肠道和肝胰脏淀粉酶活性在饲料蛋白含量相同的情况下,随着脂肪含量的升高呈现显著的下降趋势(P<0.05),但饲料中蛋白(30%,35%)和脂肪(8%,11.5%,15%)含量较高时,淀粉酶活性较稳定;肠道和肝胰脏的脂肪酶活性在饲料蛋白含量相同的情况下,随着脂肪含量的升高,呈显著上升的趋势(P<0.05),但在蛋白含量(30%,35%)和脂肪含量(8%、11.5%,15%)的6个试验组之间差异不显著(P>0.05);在脂肪含量分别为4.5%、8%和11.5%时,饲料的蛋白含量对肠道的脂肪酶活性无显著性影响(P>0.05),当脂肪含量为15%时,随着蛋白含量的升高,肠道的脂肪酶活性显著降低(P<0.05)。结果表明,草鱼饲料中蛋白含量为30%和脂肪为8%(即蛋白能量比21.7 mg/kJ)的试验组草鱼获得较高的消化酶活性。  相似文献   

8.
选取蛹肽蛋白分别替代大菱鲆幼鱼配合饲料中0、15%、30%、45%、60%、75%的鱼粉,配制成6种等氮等能的饲料饲喂大菱鲆幼鱼(19.84±0.04 g)56 d,以研究蛹肽蛋白替代鱼粉的效果。结果显示,大菱鲆幼鱼的特定生长率、饲料效率随替代水平的升高而降低,30%及以上替代组显著低于对照组(P0.05);鱼体粗蛋白、粗脂肪水平随替代水平的升高而降低,分别在75%和30%及以上替代组显著降低,鱼体水分和灰分含量随替代的升高而升高,分别在75%和30%及以上替代组显著升高(P0.05)。摄食率随替代水平升高呈先上升后下降的趋势,在30%替代组呈现出最高的摄食率,且显著高于对照组(P0.05)。饲料干物质的表观消化率在42.53%-54.36%之间,且当替代水平达到75%时显著低于对照组(P0.05);而蛋白质表观消化率在71.67%-86.89%之间,仅45%和75%替代组显著低于对照组(P0.05)。各替代组肝脏超氧化物歧化酶活性均高于对照组,在45%和60%替代组出现显著性差异(P0.05)。综上所述,蛹肽蛋白可以替代大菱鲆幼鱼饲料中15%的鱼粉而不影响其生长摄食、饲料利用以及与消化、代谢、免疫相关的酶的活性。  相似文献   

9.
为探讨高糖饲料对吉富罗非鱼(GIFT Oreochromis niloticus)生长性能、饲料利用和糖脂代谢的影响,设置糖水平为34%的对照饲料(C组,能量水平13.68 k J·g-1)、糖水平为48%的高糖高能饲料(HCE组,能量水平16.03 k J·g-1)和高糖等能饲料(HE组,能量水平13.81 k J·g-1),在室内循环水系统中饲养初始体质量(20.34±0.42)g的吉富罗非鱼幼鱼60 d。结果表明,HCE组和HE组的增重率、特定生长率、肝脏粗蛋白均显著低于C组(P0.05),饲料系数、肝脏粗脂肪、肝糖原、总糖表观消化率、血清低密度脂蛋白胆固醇和高密度脂蛋白胆固醇均显著高于C组(P0.05);HE组增重率、全鱼粗脂肪、血清甘油三酯和总胆固醇均显著低于HCE组(P0.05);高糖组肝脏葡萄糖激酶显著高于C组,HE组葡萄糖-6-磷酸脱氢酶、苹果酸酶、脂肪酸合成酶活性最高,C组最低(P0.05);由肝脏组织切片看出,高糖饲料引起吉富罗非鱼肝脏细胞肿大变形,出现空泡,HCE组对肝脏损伤更加显著。研究结果表明,吉富罗非鱼能够耐受48%糖水平的饲料,但长期摄食导致鱼体糖脂代谢紊乱,尤其影响脂肪代谢,造成鱼体脂肪蓄积,肝功能损伤,不利于生长与健康。  相似文献   

10.
草鱼幼鱼对饲料中泛酸需要量的研究   总被引:2,自引:0,他引:2  
刘安龙  文华  蒋明  赵智勇  吴凡  刘伟 《水产科学》2007,26(5):263-266
研究了饲料中泛酸钙添加量对平均体重(4.80±0.32)g的草鱼幼鱼生长和部分生理指标的影响。在相同基础配方中分别添加泛酸钙0、8、15、30、60、120、240 mg/kg饲料,进行为期8周的养殖试验,每个处理3个重复。结果表明:饲料中添加泛酸钙能提高草鱼幼鱼的增重率和特定生长率,降低饲料系数,对成活率无显著影响(P>0.05)。对照组的总胆固醇、高密度脂蛋白胆固醇和低密度脂蛋白胆固醇含量显著低于添加组(P<0.05),各添加组无显著差异(P>0.05)。鱼体灰分含量不受饲料中泛酸钙含量的影响,但能提高鱼体水分、蛋白和脂肪含量(P<0.05)。基于特定生长率折线法分析,草鱼幼鱼获得最佳生长时的饲料泛酸钙最低需求量为25 mg/kg。  相似文献   

11.
An 8-wk feeding trial was conducted to estimate the optimum dietary protein level and protein-to-energy (P/E) ratio in juvenile Korean rockfish Sebastes schlegeli. Twenty experimental diets were formulated with four energy levels and five protein levels at each energy level. Four gross energy levels of 14.2, 16.5, 18.6, and 20.9 kJ/g diet were included at various crude protein (CP) levels. Diets containing CP at 30, 40, 45, 50, and 55% had either 14.2 or 16.5 kJ/g energy; those with CP levels of 35, 40, 45, 50, and 60% had either 18.6 or 20.9 kJ/ g energy. After 2 wk of conditioning, fish initially averaging 7.3 ± 0.04 g (means ± SD) were randomly distributed into net cages as groups of 20 fish. Each diet was fed to fish in three randomly selected net cages for 8 wk. After 8 wk of the feeding trial, weight gain (WG) of fish fed 50% and 55% CP with 14.2 kJ/g diet was significantly higher than those of fish fed 30% and 40% CP diets (P 0.05). WG of fish fed 45, 50, and 55% CP with 16.5 kJ/g diet was significantly higher than those of fish fed 30% and 40% CP diets (P < 0.05). WG of fish fed 60% CP with 18.6 kJ/g diet was significantly higher than those of fish fed 35, 40, and 45% CP diets. WG of fish fed 45% CP with 20.9 kJ/g diet was significantly higher than those of fish fed 35, 40, and 60% CP diets. Generally, feed efficiency (FE) and specific growth rate (SGR) showed a similar trend as WG. However, protein efficiency ratio (PER) was negatively related to dietary protein levels. WG of fish did not always increase with increasing dietary protein and energy levels. Comprehensive comparison among diets containing 40, 45, and 50% CP with different energy levels indicated that the increase in protein from 40 to 45% significantly increased WG (P < 0.05), but such effect was not significant when protein increased from 45 to 50% at all energy levels. Increasing dietary energy significantly increased WG of fish fed 40% and 45% CP at each energy level; however, there was no difference in WG of fish fed 50% CP with energy levels of 18.6 and 2.9 kJ/g diet. There was no significant difference in WG of fish fed 50% CP with 18.6 kJ/g or 45 and 50% CP with 20.9 kJ/g diet. Broken-line analysis of weight gain indicated that the optimum dietary protein level was 50.9 ± 1.1% and PIE ratio was 35.4 ± 0.8 mg/kJ with 14.2 kJ/g diet; the optimum dietary protein level was 49.3 ± 5.0% and P/E ratio was 30.2 ± 1.0 mg/kJ with 16.5 kJ/g diet; the optimum dietary protein level was 46.2 ± 9.2% and P/E ratio was 24.7 ± 4.9 mg/kJ with 18.6 kJ/g diet; and the optimum dietary protein level was 45.1 ± 1.8% and P/E ratio was 21.5 ±0.7 with 20.9 kJ/g diet. Therefore, these data indicated that the concept of P/E ratio must be restricted to diets containing adequate protein and energy levels. Based on WG, the optimum P/E ratio was between 21.5 and 35.4 mg protein/kJ gross energy in juvenile Korean rockfish when gross energy ranged from 14.2 to 20.9 kJ/g diet.  相似文献   

12.
An 8‐wk feeding trial was conducted to estimate the optimum dietary protein level and protein‐to‐energy (P/E) ratio in juvenile parrot fish, Oplegnathus fasciatus. Eight experimental diets were formulated with two energy levels and four protein levels for each energy level. Diets containing crude protein (CP) at 35, 40, 45, and 50% had either 12.5 or 14.6 kJ/g of energy. Fish averaging 7.1 ± 0.06 g (mean ± SD) were fed one of the experimental diets for 8 wk. At the end of the feeding trial, weight gain (WG) of fish fed 45 and 50% CP in the 12.5 kJ/g diet was significantly higher than fish fed the 35% CP diet (P < 0.05). WG of the fish fed 45 and 50% CP in the 14.6 kJ/g diet was significantly higher than fish fed the 35 and 40% CP diets (P < 0.05). Fish fed the 14.6 kJ/g diet had a higher WG compared with fish fed the 12.5 kJ/g diet at all CP levels. Feed efficiency (FE) and specific growth rate (SGR) showed a similar trend to the WG. WG, FE, and SGR improved with increasing dietary protein levels up to 45% and remained constant at 50% CP for both energy levels. However, protein efficiency ratio was negatively related to dietary protein levels. The results suggested that the optimum level of protein and the optimum P/E ratio for juvenile parrot fish should be 45% and 31.1 mg protein/kJ, respectively, in a diet containing 14.6 kJ/g energy.  相似文献   

13.
An 8‐week feeding trial was conducted to estimate the optimum dietary protein to energy (P/E) ratio in juvenile olive flounder Paralichthys olivaceus. Eight experimental diets were formulated with two energy levels and four protein levels at each energy level. Two energy levels of 12.5 and 16.7 kJ g?1 diets were included at crude protein (CP) levels of 25%, 30%, 35% and 45% with 12.5 kJ g?1, and CP levels of 35%, 45%, 50% and 60% with 16.7 kJ g?1. After 1 week of the conditioning period, fish initially averaging 8.1±0.08 g (mean±SD) were randomly distributed into the aquarium as groups of 15 fish. Each diet was fed on a dry‐matter basis to fish in three randomly selected aquariums at a rate of 3–5% of total wet body weight per day for 8 weeks. After 8 weeks of the feeding trial, weight gain (WG), feed efficiency ratio and specific growth rate of fish fed 45% CP with 16.7 kJ g?1 energy diet were significantly higher than those from the other dietary treatments (P<0.05). WG of fish fed 12.5 kJ g?1 energy diets increased with the increase of dietary protein levels. However, WG of fish fed 16.7 kJ g?1 energy diets increased with the increase of dietary protein levels up to 45% CP and then decreased when fish fed 50% and 60% CP diets. Both dietary protein and energy affected protein retention efficiency and energy retention efficiency. Haemoglobin (Hb) of fish fed 35% and 45% CP diets with 12.5 kJ g?1 energy were significantly high and not different from Hb of fish fed 45% and 50% CP diets with 16.7 kJ g?1 energy. Haematocrit of fish fed 45% CP diet with 16.7 kJ g?1 energy was significantly higher than those from fish fed 25% and 30% CP diets with 12.5 kJ g?1 energy (P< 0.05). Based on the results of this experiment, we concluded that the optimum dietary P/E ratio was 27.5 mg protein kJ?1 with diet containing 45% CP and 16.7 kJ g?1 energy in juvenile olive flounder.  相似文献   

14.
为了探讨高脂肪条件下不同的蛋白和能量水平对斑点叉尾鮰生长及体组成的影响,试验设2个蛋白水平(22%,28%),2个脂肪水平(10.0%,14.0%),2个消化能水平(12.56 kJ/g,14.23 kJ/g),共8组,分别为P28L10E14.23,P28L14E14.23,P22L10E14.23,P22L14E14.23,P28L10E12.56,P28L14E12.56,P22L10E12.56和P22L14E12.56。试验饲料配方使用鱼粉和豆粕调节蛋白含量,混合油脂(鱼油∶玉米油=1∶1)调节脂肪含量,α-淀粉、次粉和麸皮调节消化能含量,并以微晶纤维素为填充物,每组3个重复,每个重复20尾鱼(141.5?1.0) g。饲养60 d后,进行生产性能测定,并采集组织样本,测定相关指标。结果表明,鱼体末重(FW)、增重率(WG)、特定生长率(SGR)和饵料系数(FCR)不受饲料蛋白、脂肪和消化能单一营养水平影响(P>0.05);但与饲料蛋白、脂肪和消化能三者的交互作用(P<0.01)有关。胴体蛋白、脂肪含量与饲料脂肪和消化能水平相关(P<0.05)。由此可见,饲料过高脂肪和消化能对斑点叉尾鮰没有额外的促生长作用;饲料蛋白水平达到22%时,即可满足140~300 g斑点叉尾鮰的营养需要;饲料中22%的蛋白、10%的脂肪、12.56 kJ/g的消化能即可满足斑点叉尾鮰仔鱼的生长需要,同时又能保证其正常生理机能,建议可在实际生产配方中作参考值。  相似文献   

15.
To investigate potential use of increasing nutritional density of diets for rapid growth of warm‐water fishes, a feeding trial was conducted in which growth performance, body indexes, and whole‐body composition of juvenile hybrid striped bass fed diets comprising protein (49, 54, and 59%), lipid (16, 20, 23, and 28%), and energy (22.0–25.1 kJ/g) concentrations beyond established minimum levels were compared to those of fish fed a more typical commercial reference diet (37.5% crude protein, 10.5% crude lipid, and 19.6 kJ/g energy on a dry matter basis). A subset of the experimental diets and the commercial reference diet also were fed to juvenile red drum. After 6 wk of feeding, hybrid striped bass fed the high‐protein and high‐lipid diets showed much greater growth performance compared to fish fed the commercial diet. Increasing dietary protein level, but not lipid level, tended (P ≤ 0.1) to enhance weight gain and feed efficiency of hybrid striped bass. Hepatosomatic index (HSI), intraperitoneal fat (IPF) ratio, and whole‐body protein were significantly (P < 0.01) influenced by dietary protein level. The dietary lipid and associated energy level had significant negative linear effects on daily feed intake. Linear regression analysis showed that dietary energy : protein ratio, largely influenced by dietary protein level, moderately but significantly influenced weight gain, HSI, IPF ratio, and whole‐body protein of hybrid striped bass and red drum. Red drum grew very similar to hybrid striped bass in response to the experimental diets. However, significant differences in HSI, IPF ratio, whole‐body protein, lipid, moisture, and ash between hybrid striped bass and red drum were observed, indicating species differences in protein and energy partitioning. In particular, the excessive lipid in the diet increased HSI and whole‐body lipid of red drum but not of hybrid striped bass.  相似文献   

16.
比较了5种不同脂肪(能量)蛋白比的配合饲料对初始平均体重(7.75±1.17)g梭鲈幼鱼生长性能的影响。结果表明,投喂不同脂肪蛋白水平的饲料,以能量蛋白比为45.94kJ/g试验组的生长速度最快[SGR为(2.86±0.17)%/d]、饲料系数最低(FCR为1.57±0.12)、蛋白质沉积率和能量保留率最大,分别为98.44%±2.38%和30.88%±3.83%;以饲料中蛋白质含量、脂肪含量为变量因子,以梭鲈幼鱼的特定生长率、蛋白质沉积率和能量保留率为指标,通过二元二次回归方程得出梭鲈最大生长速度时饲料中蛋白质含量为39.80%,脂肪含量为8.79%,总能为18.53MJ/kg,脂肪蛋白比为0.22,能量蛋白比为46.56kJ/g;梭鲈获得最大的蛋白质沉积率时,饲料蛋白质含量为38.76%,脂肪含量为9.18%,总能为18.65MJ/kg,脂肪蛋白比为0.24,能量蛋白比为48.12kJ/g;梭鲈获得最大的能量保留率时饲料蛋白质含量为38.55%,脂肪含量为9.45%,总能为18.72MJ/kg,脂肪蛋白比为0.25,能量蛋白比为48.56kJ/g;饲料中脂肪水平的增加可以降低鱼类耗能时对蛋白质的需求量,表...  相似文献   

17.
在纯化饲料中分别添加生物素0、0.05、0.10、0.20、0.40、0.80、1.60 mg/kg投喂初始质量为(5.92±0.25)g的草鱼(Ctenopharyngodon idellus)幼鱼8周,研究了不同生物素添加量对草鱼幼鱼生长性能、饲料系数、机体营养成分、血清生化指标的影响。试验结果显示:与对照组相比,添加生物素提高了草鱼幼鱼的增重率、特定生长率,降低了饲料系数。添加量为0.40 mg/kg时草鱼幼鱼的特定生长率和增重率最大,饲料系数最低,并与对照组存在显著差异(P<0.05);添加不同水平生物素对草鱼幼鱼全鱼水分、粗蛋白、粗脂肪含量无显著影响,但添加量为0.40 mg/kg时粗蛋白含量最大。0.10 mg/kg组和0.20 mg/kg组的全鱼灰分含量显著高于对照组(P<0.05);添加生物素对血清总蛋白(TP)、血糖(GLU)和总胆固醇(TC)无显著影响,但显著提高了血清甘油三酯(TG)含量,各添加组TG含量均显著高于对照组(P<0.05),1.60 mg/kg添加组的高密度脂蛋白胆固醇(HDL-C)和低密度脂蛋白胆固醇(LDL-C)含量显著高于对照组(P<0.05)。综合本试验结果,草鱼幼鱼饲料中生物素适宜添加量为0.40 mg/kg。  相似文献   

18.
Two consecutive feeding trials were used to examine optimum dietary protein to metabolizable energy (P:ME) and ME needs of juvenile rainbow trout fed semipurified diets supplemented with 2.0 mg 17α-methyltestosterone (MT)/kg of dry ingredients. In trial 1, five diets containing 80,100, 120, 140, and 160 mg protein/kcal ME of dry diet at a constant 390 kcal ME/100 g of dry diet were used. In trial 2, four diets were prepared with 300, 340, 370, and 390 kcal dietary ME at a P:ME ratio of 100. Diets were prepared with and without MT and fed for 8 weeks to 5.4 g initial weight fish in trial 1 and 3.7 g initial weight fish in trial 2. Proximate composition of the whole body (WB) and empty carcass (EC = an eviscerated whole body) of fish was measured at the end of both trials. In trial 1, maximum efficient protein gain (MEPG) values of MT treated fish were correspondingly higher than the values obtained for controls at all dietary P:ME ratios fed except for those fish fed at a P:ME ratio of 80. The optimum P:ME ratio for MT treated fish was 100 and for control fish was 120. In trial 2, all MT treated fish fed diets containing 340 kcal ME/100 g and above had a higher MEPG value than all control fish. The diet containing an ME level of 340 kcal was considered optimum for growth of MT treated fish fed a dietary P:ME ratio of 100. MT treatment increased EC, but did not change WB fat content of fish in both trials.  相似文献   

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