Accès libre

A Comparison of Morphometric Indices, Mineralization Level of Long Bones and Selected Blood Parameters in Hens of Three Breeds

À propos de cet article

Citez

Almeida Paz I.C.L., Bruno L.D.G.(2006). Bone mineral density: review. Rev. Bras. Cienc. Avic., 8: 2. Search in Google Scholar

Applegate T.J., Lilburn M.S.(2002). Growth of the femur and tibia of a commercial broiler line. Poultry Sci., 81: 1289–1294. Search in Google Scholar

Boskey A.L., Wright T.M., Blank R.D.(1999). Collagen and bone strength. J. Bone Miner. Res., 14: 330–335. Search in Google Scholar

Calik J., Krawczyk J., Świątkiewicz S., Gąsior R., Wojtycza K., Połtowicz K., Obrzut J., Puchała M. (2017). Comparison of the physicochemical and sensory characteristics of Rhode Island Red (R-11) capons and cockerels. Ann. Anim. Sci., 17, 3: 903–917. Search in Google Scholar

Candelotto L., Stratmann A., Gebhardt-Henrich S.G., Rufener Ch., vande Braak T., Toscano M.J. (2017). Susceptibility to keel bone fractures in laying hens and the role of genetic variation. Poultry Sci., 96: 3517–3528. Search in Google Scholar

Casey-Trott T.M., Guerin M.T., Sandilands V., Torrey S., Widowski T.M.(2017 a). Rearing system affects prevalence of keel-bone damage in laying hens: a longitudinal study of four consecutive flocks. Poultry Sci., 96: 2029–2039.10.3382/ps/pex02628371938 Search in Google Scholar

Casey-Trott T.M., Korver D.R., Guerin M.T., Sandilands V., Torrey S., Widow-ski T.M. (2017 b). Opportunities for exercise during pullet rearing, Part II: Long-term effects on bone characteristics of adult laying hens at the end-of-lay. Poultry Sci., 96: 2518–2527.10.3382/ps/pex060585079428431174 Search in Google Scholar

Coutand M., Cyr M., Deydier E., Guilet R., Clastres P.(2008). Characteristics of industrial and laboratory meat and bone meal ashes and their potential applications. J. Hazard. Mater., 150, 522–532.10.1016/j.jhazmat.2007.04.13317574335 Search in Google Scholar

Damaziak K., Michalczuk M., Szara T., Marzec A., Niemiec J., Turek B.(2014). Effect of genotype on selected quality attributes of turkey bone. Eur. Poultry Sci., 78, DOI: 10.1399/eps.2014.1210.1399/eps.2014.12 Search in Google Scholar

Dobrzanski Z., Opalinski S., Hoffmann K., Bubel F., Pogoda-Sewerniak K. (2011). Effect of different feed phosphates on blood plasma mineral profile in laying hens. Electr.J.Pol.Agric.Univ., 14, www.ejpau.media.pl/volume14/issue4/art-15.html Search in Google Scholar

Habig C., Distl O.(2013). Evaluation of bone strength, keel bone status, plumage condition and quality of two layer lines kept in small group housing systems. Br. Poultry Sci., 54: 413–424. Search in Google Scholar

Heerkens J.L.T., Delezie E., Rodenburg T.B., Kempen I., Zoons J., Ampe B., Tuyt-tens F.A.M. (2016). Risk factors associated with keel bone and foot pad disorders in laying hens housed in aviary systems. Poultry Sci., 95: 482–488. Search in Google Scholar

Jendral M.J., Korver D.R., Church J.S., Feddes J.J.R.(2008). Bone mineral density and breaking strength of White Leghorns housed in conventional, modified, and commercially available colony battery cages. Poultry Sci., 87: 828–837. Search in Google Scholar

Jiang S., Cui L., Shi C., Ke X., Luo J., Hou J.(2013). Effects of dietary energy and calcium levels on performance, egg shell quality and bone metabolism in hens. Vet. J., 198: 252–258. Search in Google Scholar

Jiang S., Wu X.L., Jin M.L., Wang X.Z., Tang Q., Sun Y.X., Cheng H.W.(2019). Pathophysiological characteristics and gene transcriptional profiling of bone microstructure in low calcium diet fed laying hens. Poultry Sci., 98: 4359–4368. Search in Google Scholar

Jing M., Zhao S., Rogiewicz A., Słomiński B.A., House J.D.(2018). Assessment of the minimal available phosphorus needs of laying hens: Implications for phosphorus management strategies. Poultry Sci., 97: 2400–2410. Search in Google Scholar

Käppeli S., Gebhardt-Henrich S.G., Fröhllich E., Pfulg A., Stoffel M.H. (2011). Prevalence of keel bone deformities in Swiss laying hens. Brit. Poultry Sci., 52: 531–536. Search in Google Scholar

Kolakshyapati M., Flavel R.J., Sibanda T.Z., Schneider D., Welch M.C., Ruhnke I.(2019). Various bone parameters are positively correlated with hen body weight while range access has no beneficial effect on tibia health of free-range layers. Poultry Sci., 98: 6241–6250. Search in Google Scholar

Korver D.R., Saunders-Blades J.L., Nodean K.L.(2004). Assessing bone mineral density in vivo: quantitative computed tomography. Poultry Sci., 83: 222–229. Search in Google Scholar

Krawczyk J., Obrzut J., Świątkiewicz S., Calik J.(2019). The effect of slaughter age and the diet in the final growth phase of poulards on productivity and meat quality. Ann. Anim. Sci., 19: 499–516. Search in Google Scholar

Kuźniacka J., Banaszak M., Adamski M.(2017). The analysis of meat and bone traits of Plymouth Rock cockerels and capons (P55) at different age. Poultry Sci., 96: 3169–3175. Search in Google Scholar

Lay D.C., Fulton R.M., Hester P.Y., Karcher D.M., Kjaer J.B., Mench J.A., Mul-lens B.A., Newberry R.C., Nicol C.J., O’Sullivan N.P., Porter R.E. (2011). Hen welfare in different housing systems. Poultry Sci., 90: 278–294. Search in Google Scholar

Li T., Xing G., Shao Y., Zhang L., Li S., Lu L., Liu Z., Liao X., Luo X.(2020). Dietary calcium or phosphorus deficiency impairs the bone development by regulating related calcium or phosphorus metabolic utilization parameters of broilers. Poultry Sci., 99: 3207–3214. Search in Google Scholar

Liu D., Veit H.P., Wilson J.H., Denbow D.M.(2003). Maternal dietary lipids alter bone chemical composition, mechanical properties, and histological characteristics of progeny of Japanese quail. Poultry Sci., 82: 463–473. Search in Google Scholar

Mabelebele M., Norris D., Siwendu N.A., NG’Ambi J.W., Alabi O.J., Mbajior-gu C.A. (2017). Bone morphometric parameters of the tibia and femur of indigenous and broiler chickens reared intensively. Appl. Ecol. Env. Res., 15: 1387–1398. Search in Google Scholar

Nasr M.A.F., Nicol C.J., Wilkins L.J., Murrell J.(2014). The effect of two non-steroidal antiinflammatory drugs on the mobility of laying hens with keel bone fractures. Vet. Anaesth. Analg., 42: 197–204. Search in Google Scholar

Neijat M., Casey-Trott T.M., Robinson S., Widowski T.M., Kiarie E.(2019). Effects of rearing and adult laying housing systems on medullary, pneumatic and radius bone attributes in 73-wk old Lohmann LSL lite hens. Poultry Sci., 98: 2840–2845. Search in Google Scholar

Obrzut J., Krawczyk J., Calik J., Świątkiewicz S.(2018). Meat quality of poulards obtained from three conserved breeds of hens. Ann. Anim. Sci., 18: 261–280. Search in Google Scholar

Ogunwole O.A., Adedeji B.S., Olumide M.D., Mosuro A.O., Adewemimo I.E.(2018). Effects of dietary supplemental ascorbic acid and cholecalciferol on bone characteristics of hens at the late laying stage. Int. J. Food Sci. Nutr. Eng., 8: 142–150. Search in Google Scholar

Onbaşılar E.E., Erdem E., Ünal N., TunçA.S, Kocakaya A., Yaranoğlu B. (2016). Comparison of liver and bone health of two laying hen strains kept in different cage systems. Eur. Poultry Sci., 80, DOI: 10.1399/eps.2016.123.10.1399/eps.2016.123 Search in Google Scholar

Pickel T., Schrader L., Scholz B.(2011). Pressure load on keel bone and foot pads in perching laying hens in relation to perch design. Poultry Sci., 90: 715–724. Search in Google Scholar

Proszkowiec-Weglarz M., Angel R.(2013). Calcium and phosphorus metabolism in broilers: effect of homeostatic mechanism on calcium and phosphorus digestibility. J. Appl. Poultry Res., 22: 609–627. Search in Google Scholar

Rath N.C., Huff G.R., Huff W.E., Balog J.M.(2000). Factors regulating bone maturity and strength in poultry. Poultry Sci., 79: 1024–1032. Search in Google Scholar

Rayan G.N., Galal A., Fathi M.M., El-Attar A.H.(2013). Effect of layer breeder strain and age on tibia bone characteristics of chicks. J. Agric. Vet. Sci., 6: 111–124. Search in Google Scholar

Regmi P., Nelson N., Steibel J.P., Anderson K.E., Karcher D.M.(2016). Comparisons of bone properties and keel deformities between strains and housing systems in end-of-lay hens. Poultry Sci., 95: 225–2234. Search in Google Scholar

Regmi P., Nelson N., Haut R.C., Orth M.W., Karcher D.M.(2017). Influence of age and housing systems on properties of tibia and humerus of Lohmann White hens: Bone properties of laying hens in commercial housing systems. Poultry Sci., 96: 3755–3762. Search in Google Scholar

Ren Z., Sun W., Liu Y., Li Z., Han D., Cheng X., Yan J., Yang X.(2019). Dynamics of serum phosphorus, calcium, and hormones during egg laying cycle in Hy-Line Brown laying hens. Poultry Sci., 98: 2193–2200. Search in Google Scholar

Riczu C.M., Saunders-Blades J.L., Yngvesson A.K.Y., Robinson F.E., Korver D.R. (2004). End-of-cycle bone quality in white- and brown-egg laying hens. Poultry Sci., 83: 375–383. Search in Google Scholar

Rodenburg T.B., Tuyttens F.A.M., de Reu K., Herman L., Zoons J., Sonck B.(2008). Welfare assessment of laying hens in furnished cages and non-cage systems: an on-farm comparison. Anim. Welfare, 17: 363–373. Search in Google Scholar

Rodríguez-Navarro A.B., Mc Cormack H.M., Fleming R.H., Álvarez-Lloret P., Romero-Pastor J., Domínguez Gasca N., Prozorov T., Dunn I.C. (2018). Influence of physical activity on tibial bone material properties in laying hens, J. Struct. Biol., 201: 36–45. Search in Google Scholar

Sosnówka-Czajka E., Skomorucha I., Muchacka R.(2017). Effect of organic productions system on the performance and meat and meat quality of two purebred slow-growing chicken breeds. Ann. Anim. Sci., 17: 119–1213. Search in Google Scholar

Souza C., Santos T.C., Murakami A.E., Iwaki L.C.V., Mello J.F.(2017). Influence of graded levels of calcium and vitamin K in the diets of laying hens during the growing phase and their effects on the laying phase. J. Anim. Physiol. An. N., 101: 974–983. Search in Google Scholar

Stratmann A., Fröhllich E.K.F., Gebhardt-Henrich S.G., Harlander-Mataus-check A., Würbel H., Toscano M.J. (2015). Modification of aviary design reduces incidence of falls, collisions and keel bone damage in laying hens. Appl. Anim. Behav. Sci., 165: 112–123. Search in Google Scholar

Świątkiewicz S., Arczewska-Włosek A., Józefiak D.(2015). Bone quality, selected blood variables and mineral retention in laying hens fed with different dietary concentrations and sources of calcium. Livest. Sci., 181: 194–199. Search in Google Scholar

Świątkiewicz S., Arczewska-Włosek A., Szczurek W., Calik J., Krawczyk J., Józefiak D. (2018). The influence of selected feed additives on mineral utilisation and bone characteristics in laying hens. Ann. Anim. Sci., 18: 781–793. Search in Google Scholar

Thorp B.H., Waddington D.(1997). Relationships between the bone pathologies, ash and mineral content of long bones in 35-day-old broiler chickens. Res. Vet. Sci., 62: 67–73. Search in Google Scholar

Tomaszewska E., KwiecieńM., Muszyński S., Dobrowolski P., Kasperek K., Blicharski G., Jeżewska-Witkowska G., Grela E.R. (2017). Long-bone properties and development are affected by caponisation and breed in Polish fowls. Brit. Poultry Sci., 58: 312–318. Search in Google Scholar

Van Wyhe R.C., Applegate T.J., Lilburn M.S., Karcher D.M.(2012). A comparison of long bone development in historical and contemporary ducks. Poultry Sci., 91: 2858–2865. Search in Google Scholar

Whitehead C.C.(2004). Overview of bone biology in the egg-laying hen. Poultry Sci., 83: 193–199. Search in Google Scholar

Whitehead C.C., Fleming H.(2000). Osteoporosis in cage layers. Poultry Sci., 79: 1033–1041. Search in Google Scholar

Wilkins L.J., Mc Kinstry J.L., Avery N.C., Knowles T.G., Brown S.N., Tarlton J., Nicol C.J. (2011). Influence of housing system and design on bone strength and keel bone fractures in laying hens. Vet. Rec., 169: 414. Search in Google Scholar

eISSN:
2300-8733
Langue:
Anglais
Périodicité:
4 fois par an
Sujets de la revue:
Life Sciences, Biotechnology, Zoology, Medicine, Veterinary Medicine