Effect of In-ovo Injection of L-Arginine on Hatchability, Chick Quality, Performances and Muscle Histology of Native Chicken
Abstract
This study aimed to determine the effect of in-ovo injection of L-arginine on hatchability, chick quality, performances, and muscle histology of native chicken. In-ovo injection was carried out on the 10th day. A total of 375 fertile eggs with an average weight ranged  39-43 g were grouped into 5 treatments. The first treatment was without injection (negative control), the second treatment was injection of NaCl solution 0.9% (positive control), the third treatment was injection of L-arginine solution 0.5 g per 100 ml of NaCl 0.9% (0.5%, m/v) The fourth treatment was injection of 1.0 g L-arginine solution per 100 ml of NaCl 0.9% (1.0%, m/v), and the fifth treatment was injection of 1.5 g L-arginine solution per 100 ml of NaCl 0.9% (1.5%, m/v). The injection was carried out at the pointed area of the egg in a vertical position (pointed below, blunt above). The Injection was carried out with a depth of 10 mm from the eggshell using an automatic injector. The results showed that all treatments produced the same hatchability. In-ovo injection of L-arginine has a beneficial effect on chick quality and post-hatch performance, the concentration of L-arginine solution used did not cause embryo death. In-ovo injection of 0.5% L-arginine increased hatching weight, weekly body weight, muscle mass, and myofiber size.
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Abousaad S, Lassiter K, Piekarski A, Chary P, Striplin K, Christensen K, Bielke LR, Hargis BM, Dridi S, Bottje WG. 2017a. Effect of in ovo feeding of dextrin-iodinated casein in broilers: II. Hatch window and growth performance. Poult Sci. 96:1478–1484. DOI: 10.3382/ps/pew439.
Abousaad S, Lassiter K, Piekarski A, Chary P, Striplin K, Christensen K, Bielke LR, Hargis BM, Dridi S, Bottje WG. 2017b. Effects of in Ovo feeding of dextrin-iodinated casein in broilers: I. Hatch weights and early growth performance. Poult Sci. 96:1473–1477. DOI: 10.3382/ps/pew438.
Al-Daraji HJ, Al-Mashadani AA, Al-Hayani WK, Al-Hassani AS, Mirza HA. 2012. Effect of in ovo injection with L-arginine on productive and physiological traits of Japanese quail. South African J Anim Sci. 42:139–145. DOI:10.4314/sajas.v42i2.6.
Alshamy Z, Richardson KC, Hünigen H, Hafez HM, Plendl J, Al Masri S. 2018. Comparison of the gastrointestinal tract of a dual-purpose to a broiler chicken line: A qualitative and quantitative macroscopic and microscopic study. PLoS One. 13:1–22. DOI:10.1371 /journal.pone.0204921.
Araújo ICS, Café MB, Mesquita MA, Caiado BN, Faria AM, Mello HHC, Stringhini JH, Leandro NSM. 2020. Effect of a commercial product containing canthaxanthin for in ovo feeding to broiler embryos on hatchability, chick quality, oxidation status, and performance. Poult Sci. 99:5598–5606. DOI:10.1016/j.psj.2020.08.044.
Araújo ICS, Café MB, Noleto RA, Martins JMS, Ulhoa CJ, Guareshi GC, Reis MM, Leandro NSM. 2019. Effect of vitamin E in ovo feeding to broiler embryos on hatchability, chick quality, oxidative state, and performance. Poult Sci. 98:3652–3661. DOI: 10.3382/ps/pey439.
Azhar M, Rahardja DP, Pakiding W. 2016. Embryo development and post-hatch performances of kampung chicken by in ovo feeding of L-arginine. Media Peternak. 39:168–172. DOI:10.5398/medpet.2016.39. 3.168.
Castro FLS, Teng PY, Yadav S, Gould RL, Craig S, Pazdro R, Kim WK. 2020. The effects of L-Arginine supplementation on growth performance and intestinal health of broiler chickens challenged with Eimeria spp. Poult Sci. 99:5844–5857. DOI:10.1016/j.psj.2020. 08.017.
Chen R. 2013. Dietary arginine supplementation altered expression of IGFs and IGF receptors in weaning piglets. J Cell Anim Biol. 7:44–50. DOI:10.5897 /jcab12.053.
Chen W, Lv YT, Zhang HX, Ruan D, Wang S, Lin YC. 2013. Developmental specificity in skeletal muscle of late-term avian embryos and its potential manipulation. Poult Sci. 92:2754–2764. DOI:10.3382/ps.2013-03099.
Chen W, Tangara M, Xu J, Peng J. 2012. Developmental transition of pectoral muscle from atrophy in late-term duck embryos to hypertrophy in neonates. Exp Physiol. 7:861–872. DOI: 10.1113/expphysiol.2011.061234.
Dong XY, Jiang YJ, Wang MQ, Wang YM, Zou XT. 2013. Effects of in ovo feeding of carbohydrates on hatchability, body weight, and energy status in domestic pigeons (Columba livia). Poult Sci. 92:2118–2123. DOI:10.3382/ps.2013-03091.
Dymond J, Vinyard B, Nicholson AD, French NA, Bakst MR. 2013. Short periods of incubation during egg storage increase hatchability and chick quality in long-stored broiler eggs. Poult Sci. 92:2977–2987. DOI:10.3382 /ps.2012-02816.
El-Hanoun AM, Rizk RE, Shahein EHA, Hassan NS, Brake J. 2012. Effect of incubation humidity and flock age on hatchability traits and posthatch growth in Pekin ducks. Poult Sci. 91:2390–2397. DOI:10.3382/ps.2011-02075.
Endo T. 2015. Molecular mechanisms of skeletal muscle development, regeneration, and osteogenic conversion. Bone. 80:2–13. DOI:10.1016/j.bone.2015.02.028.
Fatemi SA, Alqhtani A, Elliott KEC, Bello A, Zhang H, Peebles ED. 2021. Effects of the in ovo injection of vitamin D3 and 25-hydroxyvitamin D3 in Ross 708 broilers subsequently fed commercial or calcium and phosphorus-restricted diets. I. Performance, carcass characteristics, and incidence of woody breast myopathy1,2,3. Poult Sci. 100:101220. DOI:10.1016/ j.psj.2021.101220.
Fouad AM, El-Senousey HK, Yang XJ, Yao JH. 2012. Role of dietary L-arginine in poultry production. Int J Poult Sci. 11:718–729. DOI:10.3923/ijps.2012.718.729.
Gao T, Zhao MM, Li YJ, Zhang L, Li JL, Yu LL, Gao F, Zhou GH. 2018. Effects of in ovo feeding of L-arginine on the development of digestive organs, intestinal function and post-hatch performance of broiler embryos and hatchlings. J Anim Physiol Anim Nutr (Berl). 102:e166–e175. DOI:10.1111/jpn.12724.
Hu Q, Agarwal U, Bequette BJ. 2013. Energy sensing in developing chicken embryos and posthatch chicks from different size eggs. Poult Sci. 92:1650–1654. DOI: 10.3382/ps.2013-03047.
Hu X, Liu L, Song Z, Sheikhahmadi A, Wang Y, Buyse J. 2016. Effects of feed deprivation on the AMPK signaling pathway in skeletal muscle of broiler chickens. Comp Biochem Physiol Part - B Biochem Mol Biol. 191:146–154. DOI:10.1016/j.cbpb.2015. 10.007.
Kop-Bozbay C, Ocak N. 2019. In ovo injection of branched-chain amino acids: Embryonic development, hatchability and hatching quality of turkey poults. J Anim Physiol Anim Nutr (Berl). 103:1135–1142. DOI: 10.1111/jpn.13111..
Loyau T, Collin A, Yenisey Ç, Crochet S, Siegel PB, Akşit M, Yalçin S. 2014. Exposure of embryos to cyclically cold incubation temperatures durably affects energy metabolism and antioxidant pathways in broiler chickens. Poult Sci. 93:2078–2086. DOI:10.3382 /ps.2014-03881.
Musumeci G, Castrogiovanni P, Coleman R, Szychlinska MA, Salvatorelli L, Parenti R, Magro G, Imbesi R. 2015. Somitogenesis: From somite to skeletal muscle. Acta Histochem. 117:313–328. DOI:10.1016/j.acthis. 2015.02.011.
Najih Jabir Al-Shamery, Mohammed Baqur S. Al-Shuhaib. 2015. Effect of in ovo injection of various nutrients on the hatchability, mortality ratio and weight of the broiler chickens. IOSR J Agric Vet Sci. 8:30–33. DOI: 10.9790/2380-08123033.
Nangsuay A, Molenaar R, Meijerhof R, Van Den Anker I, Heetkamp MJW, Kemp B, Van Den Brand H. 2015. Differences in egg nutrient availability, development, and nutrient metabolism of broiler and layer embryos. Poult Sci. 94:415–423. DOI:10.3382/ps/pev007.
Oke OE, Oyelola OB, Iyasere OS, Njoku CP, Oso AO, Oso OM, Fatoki ST, Bankole KO, Jimoh IO, Sybill NI, et al. 2021. In ovo injection of black cumin (Nigella sativa) extract on hatching and post hatch performance of thermally challenged broiler chickens during incubation. Poult Sci. 100:100831. DOI:10.1016/j.psj. 2020.10.072.
Oladokun S, Adewole DI. 2020. In ovo delivery of bioactive substances: an alternative to the use of antibiotic growth promoters in poultry production—a review. J Appl Poult Res. 29:744–763. DOI:10.1016/j.japr.2020. 06.002.
Omede A, Bhuiyan MM, Lslam AF, Iji PA. 2017. Physico-chemical properties of late-incubation egg amniotic fluid and a potential in ovo feed supplement. Asian-Australasian J Anim Sci. 30:1124–1134. DOI: 10.5713/ajas.16.0677.
Omidi S, Ebrahimi M, Janmohammadi H, Moghaddam G, Rajabi Z, Hosseintabar-Ghasemabad B. 2020. The impact of in ovo injection of l-arginine on hatchability, immune system and caecum microflora of broiler chickens. J Anim Physiol Anim Nutr (Berl). 104:178–185. DOI:10.1111/jpn.13222.
Onbaşilar EE, Erdem E, Hacan Ö, Yalçin S. 2014. Effects of breeder age on mineral contents and weight of yolk sac, embryo development, and hatchability in Pekin ducks. Poult Sci. 93:473–478. DOI:10.3382/ps.2013-03355.
Proszkowiec-Weglarz M, Schreier LL, Kahl S, Miska KB, Russell B, Elsasser TH. 2020. Effect of delayed feeding post-hatch on expression of tight junction– and gut barrier–related genes in the small intestine of broiler chickens during neonatal development. Poult Sci. 99:4714–4729. DOI:10.1016/j.psj.2020.06.023.
Subramaniyan SA, Kang DR, Park JR, Siddiqui SH, Ravichandiran P, Yoo DJ, Na CS, Shim KS. 2019. Effect of in ovo injection of L-Arginine in different chicken embryonic development stages on post hatchability, immune response, and Myo-D and myogenin proteins. Animals. 9:1–8. DOI:10.3390/ani9 060357.
Shafey TM, Alodan MA, Al-Ruqaie IM, Abouheif MA. 2012. In ovo feeding of carbohydrates and incubated at a high incubation temperature on hatchability and glycogen status of chicks. South African J Anim Sci. 42:210–220. DOI:10.4314/sajas.v42i3.2.
Silva LMGS, Murakami AE, Fernandes JIM, Dalla RD, Urgnani JF. 2012. Effects of dietary arginine supplementation on broiler breeder egg production and hatchability. Rev Bras Cienc Avic. 14:267–273. DOI: 10.1590/S1516-635X2012000400006.
Slawinska A, Zampiga M, Sirri F, Meluzzi A, Bertocchi M, Tavaniello S, Maiorano G. 2020. Impact of galactooligosaccharides delivered in ovo on mitigating negative effects of heat stress on performance and welfare of broilers. Poult Sci. 99:407–415. DOI 10.3382/ps/pez512.
Tong Q, Romanini CE, Exadaktylos V, Bahr C, Berckmans D, Bergoug H, Eterradossi N, Roulston N, Verhelst R, McGonnell IM, Demmers T. 2013. Embryonic development and the physiological factors that coordinate hatching in domestic chickens. Poult Sci. 92:620–628. DOI:10.3382/ps.2012-02509.
Vassallo BG, Litwa HP, Haussmann MF, Paitz RT. 2019. In ovo metabolism and yolk glucocorticoid concentration interact to influence embryonic glucocorticoid exposure patterns. Gen Comp Endocrinol. 272:57–62. DOI:10. 1016/j.ygcen.2018.11.013.
Wang Jiguang, Lin J, Wang Jing, Wu S, Qi G, Zhang H, Song Z. 2020. Effects of in ovo feeding of N-acetyl-L-glutamate on early intestinal development and growth performance in broiler chickens. Poult Sci. 99:3583–3593. DOI:10.1016/j.psj.2020.04.003.
Willems E, Decuypere E, Buyse J, Everaert N. 2014. Importance of albumen during embryonic development in avian species, with emphasis on domestic chicken. Worlds Poult Sci J. 70:503–518. DOI: 10.1017/S0043933914000567.
Xiao Y, Wu C, Li K, Gui G, Zhang G, Yang H. 2017. Association of growth rate with hormone levels and myogenic gene expression profile in broilers. J Anim Sci Biotechnol. 8:1–7. DOI:10.1186/s40104-017-0170-8.
Yang T, Zhao M, Li J, Zhang L, Jiang Y, Zhou G, Gao F. 2019. In ovo feeding of creatine pyruvate alters energy metabolism in muscle of embryos and post-hatch broilers. Asian-Australasian J Anim Sci. 32:834–841. DOI:10.5713/ajas.18.0588.
Yu J, Yang H, Wang Z, Dai H, Xu L, Ling C. 2018. Effects of arginine on the growth performance, hormones,
digestive organ development and intestinal morphology in the early growth stage of layer chickens. Ital J Anim Sci. 17:1077–1082. DOI:10.1080/1828051X.2018. 1434692.
Yu LL, Gao T, Zhao MM, Lv PA, Zhang L, Li JL, Jiang Y, Gao F, Zhou GH. 2018a. In ovo feeding of L-arginine alters energy metabolism in post-hatch broilers. Poult Sci. 97:140–148. DOI:10.1017/S1751731118000241.
Yu LL, Gao T, Zhao MM, Lv PA, Zhang L, Li JL, Jiang Y, Gao F, Zhou GH. 2018b. Effects of in ovo feeding of l-arginine on breast muscle growth and protein deposition in post-hatch broilers. Animal. 12:2256–2263.
Zhang H, Elliott KEC, Durojaye OA, Fatemi SA, Peebles ED. 2018. Effects of in ovo administration of L-ascorbic acid on broiler hatchability and its influence on the effects of pre-placement holding time on broiler quality characteristics. Poult Sci. 97:1941–1947. DOI:10.3382 /ps/pey040
Zhang XY, Li LL, Miao LP, Zhang NN, Zou XT. 2018. Effects of in ovo feeding of cationic amino acids on hatchability, hatch weights, and organ developments in domestic pigeon squabs (Columba livia). Poult Sci. 97:110–117. DOI:10.3382/ps/pex260.
Zhao MM, Gao T, Zhang L, Li JL, Lv PA, Yu LL, Gao F, Zhou GH. 2017a. Effects of in ovo feeding of creatine pyruvate on the hatchability, growth performance and energy status in embryos and broiler chickens. Animal. 11:1689–1697. DOI:10.1017/S1751731117000374.
Zhao MM, Gao T, Zhang L, Li JL, Lv PA, Yu LL, Gao F, Zhou GH. 2017b. In ovo feeding of creatine pyruvate alters energy reserves, satellite cell mitotic activity and myogenic gene expression of breast muscle in embryos and neonatal broilers. Poult Sci. 96:3314–3323. DOI: 10.3382/ps/pex150.
Zhu MK, Zhang XY, Dong XY, Zou XT. 2019. Effects of in ovo feeding of L-lysine on hatchability, hatching time, and early post-hatch development in domestic pigeons (Columba livia). Poult Sci. 98:5533–5540. DOI: 10.3382/ps/pez300.
Zhu YF, Bodinga MB, Zhou JH, Zhu LQ, Cao YL, Ren ZZ, Yang XJ. 2020. Effects of in ovo injection of vitamin C on heat shock protein and metabolic genes expression. Animal. 14:360–367. DOI: 10.1017/S175173111900 2088.
Zhu YF, Li SZ, Sun QZ, Yang XJ. 2019. Effect of in ovo feeding of Vitamin C on antioxidation and immune function of broiler chickens. Animal. 13:1927–1933. DOI: 10.1017/S1751731118003531.
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