214
Views
11
CrossRef citations to date
0
Altmetric
Research Paper

In ovo exposure to monochromatic lights affect posthatch muscle growth and satellite cell proliferation of chicks: role of IGF-1

, , , , &
Pages 107-118 | Received 04 Apr 2016, Accepted 31 May 2016, Published online: 30 Jun 2016

References

  • Allen RE, Boxhorn LK. 1989. Regulation of skeletal muscle satellite cell proliferation and differentiation by transforming growth factor-beta, insulin-like growth factor I, and fibroblast growth factor. J Cell Physiol 138:311–315
  • Cao J, Liu W, Wang Z, Xie D, Jia L, Chen Y. 2008. Green and blue monochromatic lights promote growth and development of broilers via stimulating testosterone secretion and myofiber growth. J Appl Poult Res 17:211–218
  • Cao J, Wang Z, Dong Y, Zhang Z, Li J, Li F, Chen Y. 2012. Effect of combinations of monochromatic lights on growth and productive performance of broilers. Poult Sci 91:3013–3018
  • Denley A, Cosgrove LJ, Booker GW, Wallace JC, Forbes BE. 2005. Molecular interactions of the IGF system. Cytokine Growth Factor Rev 16:421–439
  • Er D, Wang Z, Cao J, Chen Y. 2007. Effect of monochromatic light on the egg quality of laying hens. J Appl Poult Res 16:605–612
  • Escalona R, Diaz V, Pedernera E, Mendez C. 2012. Transforming growth factor β mRNA and protein expression in the ovary of the chicken embryo. Growth Factors 30:297–303
  • Feldman JL, Stockdale FE. 1991. Skeletal muscle satellite cell diversity: Satellite cells form fibers of different types in cell culture. Dev Biol 143:320–334
  • Grohmann M, Foulstone E, Welsh G, Holly J, Shield J, Crowne E, Stewart C. 2005. Isolation and validation of human prepubertal skeletal muscle cells: Maturation and metabolic effects of IGF-I, IGFBP-3 and TNFalpha. J Physiol (Lond) 568:229–242
  • Halevy O, Biran I, Rozenboim I. 1998. Various light source treatments affect body and skeletal muscle growth by affecting skeletal muscle satellite cell proliferation in broilers. Comp. Biochem. Physiol Part A Mol Integr Physiol 120:317–323
  • Halevy O, Geyra A, Barak M, Uni Z, Sklan D. 2000. Early posthatch starvation decreases satellite cell proliferation and skeletal muscle growth in chicks. J Nutr 130:858–864
  • Halevy O, Nadel Y, Barak M, Rozenboim I, Sklan D. 2003. Early posthatch feeding stimulates satellite cell proliferation and skeletal muscle growth in turkey poults. J Nutr 133:1376–1382
  • Halevy O, Piestun Y, Rozenboim I, Yablonka-Reuveni Z. 2006. In ovo exposure to monochromatic green light promotes skeletal muscle cell proliferation and affects myofiber growth in posthatch chicks. Am J Physiol Regul Integr Comp Physiol 290:R1062–R1070
  • Kainulainen H, Papaioannou KG, Silvennoinen M, Autio R, Saarela J, Oliveira BM, Nyqvist M, et al. 2015. Myostatin/activin blocking combined with exercise reconditions skeletal muscle expression profile of mdx mice. Mol Cell Endocrinol 399:131–142
  • Kim M, Parvin R, Mushtaq M, Hwangbo J, Kim J, Na J, Kim D, et al. 2013. Growth performance and hematological traits of broiler chickens reared under assorted monochromatic light sources. Poult Sci 92:1461–1466
  • Kinsey ST, Locke BR, Dillaman RM. 2011. Molecules in motion: Influences of diffusion on metabolic structure and function in skeletal muscle. J Exp Biol 214:263–274
  • Kuang S, Rudnicki MA. 2008. The emerging biology of satellite cells and their therapeutic potential. Trends Mol Med 14:82–91
  • La Colla A, Pronsato L, Milanesi L, Vasconsuelo A. 2015. 17β-Estradiol and testosterone in sarcopenia: Role of satellite cells. Ageing Res Rev 24:166–177
  • Li D, Zhang L, Yang M, Yin H, Xu H, Trask JS, Smith DG, et al. 2014. The effect of monochromatic light-emitting diode light on reproductive traits of laying hens. J Appl Poult Res 23:367–375
  • Liu H, Wang J, Chen X, Zhang R, Yu H, Jin H, Li L, Han C. 2011. In ovo administration of rhIGF-1 to duck eggs affects the expression of myogenic transcription factors and muscle mass during late embryo development. J Appl Physiol 111:1789–1797
  • Liu W, Wang Z, Chen Y. 2010. Effects of monochromatic light on developmental changes in satellite cell population of pectoral muscle in broilers during early posthatch period. Anat Rec (Hoboken) 293:1315–1324
  • Mcfarland DC, Pesall JE, Coy CS, Velleman SG. 2013. Effects of 17β-estradiol on turkey myogenic satellite cell proliferation, differentiation, and expression of glypican-1, MyoD and myogenin. Comp Biochem Physiol Part A Mol Integr Physiol 164:565–571
  • Mcfarland DC, Velleman SG, Pesall JE, Liu C. 2006. Effect of myostatin on turkey myogenic satellite cells and embryonic myoblasts. Comp Biochem Physiol Part A Mol Integr Physiol 144:501–508
  • Moore CB, Siopes TD. 2000. Effects of lighting conditions and melatonin supplementation on the cellular and humoral immune responses in Japanese quail Coturnix coturnix japonica. Gen Comp Endocrinol 119:95–104
  • Moore D, Ferket P, Mozdziak P. 2005a. The effect of early nutrition on satellite cell dynamics in the young turkey. Poult Sci 84:748–756
  • Moore D, Ferket P, Mozdziak P. 2005b. Muscle development in the late embryonic and early post-hatch poult. Int J Poult Sci 4:138–142
  • Musarò A, Giacinti C, Borsellino G, Dobrowolny G, Pelosi L, Cairns L, Ottolenghi S, et al. 2004. Stem cell-mediated muscle regeneration is enhanced by local isoform of insulin-like growth factor 1. Proc Natl Acad Sci USA 101:1206–1210
  • Musarò A, Mccullagh KJ, Naya FJ, Olson EN, Rosenthal N. 1999. IGF-1 induces skeletal myocyte hypertrophy through calcineurin in association with GATA-2 and NF-ATc1. Nature 400:581–585
  • NRC 1994. Nutrient requirements of poultry. 9th rev. ed. Washington, DC: Natl. Acad. Press
  • Ozkan S, Yalcin S, Babacanoglu E, Kozanoglu H, Karadas F, Uysal S. 2012. Photoperiodic lighting (16 hours of light:8 hours of dark) programs during incubation: 1. Effects on growth and circadian physiological traits of embryos and early stress response of broiler chickens. Poult Sci 91:2912–2921
  • Phillips ID, Becks GP, Logan A, Wang JF, Smith C, Hill DJ. 1994. Altered expression of insulin-like growth factor-I (IGF-I) and IGF binding proteins during rat thyroid hyperplasia and involution. Growth Factors 10:207–222
  • Piestun Y, Harel M, Barak M, Yahav S, Halevy O. 2009. Thermal manipulations in late-term chick embryos have immediate and longer term effects on myoblast proliferation and skeletal muscle hypertrophy. J Appl Physiol 106:233–240
  • Relaix F, Rocancourt D, Mansouri A, Buckingham M. 2005. A Pax3/Pax7-dependent population of skeletal muscle progenitor cells. Nature 435:948–953
  • Rommel C, Bodine SC, Clarke BA, Rossman R, Nunez L, Stitt TN, Yancopoulos GD, Glass DJ. 2001. Mediation of IGF-1-induced skeletal myotube hypertrophy by PI(3)K/Akt/mTOR and PI(3)K/Akt/GSK3 pathways. Nat Cell Biol 3:1009–1013
  • Rozenboim I, El Halawani M, Kashash Y, Piestun Y, Halevy O. 2013. The effect of monochromatic photostimulation on growth and development of broiler birds. Gen Comp Endocrinol 190:214–219
  • Rozenboim I, Huisinga R, Halevy O, El Halawani ME. 2003. Effect of embryonic photostimulation on the posthatch growth of turkey poults. Poult Sci 82:1181–1187
  • Rozenboim I, Piestun Y, Mobarkey N, Barak M, Hoyzman A, Halevy O. 2004. Monochromatic light stimuli during embryogenesis enhance embryo development and posthatch growth. Poult Sci 83:1413–1419
  • Rozenboim I, Robinzon B, Rosenstrauch A. 1999. Effect of light source and regimen on growing broilers. Br Poult Sci 40:452–457
  • Shavlakadze T, Chai J, Maley K, Cozens G, Grounds G, Winn N, Rosenthal N, Grounds MD. 2010. A growth stimulus is needed for IGF-1 to induce skeletal muscle hypertrophy in vivo. J Cell Sci 123:960–971
  • Sindhurakar A, Bradley NS. 2010. Kinematic analysis of overground locomotion in chicks incubated under different light conditions. Dev Psychobiol 52:802–812
  • Stockdale FE, Miller JB. 1987. The cellular basis of myosin heavy chain isoform expression during development of avian skeletal muscles. Dev Biol 123:1–9
  • Tatsumi R, Anderson JE, Nevoret CJ, Halevy O, Allen RE. 1998. HGF/SF is present in normal adult skeletal muscle and is capable of activating satellite cells. Dev Biol 194:114–128
  • Velleman SG, Li X, Coy CS, Mcfarland DC. 2008. The effect of fibroblast growth factor 2 on the in vitro expression of syndecan-4 and glypican-1 in turkey satellite cells. Poult Sci 87:1834–1840
  • Walker N, Kahamba T, Woudberg N, Goetsch K, Niesler C. 2015. Dose-dependent modulation of myogenesis by HGF: Implications for c-Met expression and downstream signalling pathways. Growth Factors 33:229–241
  • Wang T, Wang Z, Cao J, Dong Y, Chen Y. 2014. Monochromatic light affects the development of chick embryo liver via an anti-oxidation pathway involving melatonin and the melatonin receptor Mel1c. Can J Anim Sci 93:391–400
  • Wang YX, Rudnicki MA. 2012. Satellite cells, the engines of muscle repair. Nat Rev Mol Cell Biol 13:127–133
  • Yahav S, Hurwitz S, Rozenboim I. 2000. The effect of light intensity on growth and development of turkey toms. Br Poult Sci 41:101–106
  • Yu Y, Wang Z, Cao J, Dong Y, Wang T, Chen Y. 2014. Effects of monochromatic light stimuli on the development and Muc2 expression of goblet cells in broiler small intestines during embryogenesis. Poult Sci 93:1801–1808
  • Zhang L, Zhang H, Qiao X, Yue H, Wu S, Yao J, Qi G. 2012. Effect of monochromatic light stimuli during embryogenesis on muscular growth, chemical composition, and meat quality of breast muscle in male broilers. Poult Sci 91:1026–1031
  • Zhang L, Zhang HJ, Wang J, Wu SG, Qiao X, Yue HY, Yao JH, Qi GH. 2014a. Stimulation with monochromatic green light during incubation alters satellite cell mitotic activity and gene expression in relation to embryonic and posthatch muscle growth of broiler chickens. Animal 8:86–93
  • Zhang Z, Cao J, Wang Z, Dong Y, Chen Y. 2014b. Effect of a combination of green and blue monochromatic light on broiler immune response. J Photochem Photobiol B Biol 138:118–123

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.