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Myofiber development during embryonic to neonatal development in duck breeds differing in muscle growth rates 被引量:4

Myofiber development during embryonic to neonatal development in duck breeds differing in muscle growth rates
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摘要 Little is known about the muscle developmental patterns during embryonic to neonatal development in ducks.We investigated the developmental patterns in the lateral gastrocnemius muscles of Gaoyou and Jinding ducks differing in their muscle growth rates during the final stages of egg incubation and the first week after hatching.Expression of the MyoD gene was quantified by quantitative real-time PCR(qRT-PCR).The average cross-sectional area and diameter of the fibers increased from embryonic day 21(E21),peaking at E27,and then declining slightly 7 d after hatching.The density of the fibers decreased initially but increased after hatching in both breeds and sexes.The within-breed variation in muscle fiber-type composition was greater than the average variation between the breeds.Overall,the percentage of type Ⅰ fibers increased and that of type lIb fibers decreased consistently.However,the percentage of type lla fibers was almost constant as development proceeded in both duck breeds.The profiles of MyoD mRNA expression were similar in both breeds,and a significantly positive relationship was observed between the expression of MyoD and the percentage of type lIb fibers.This study firstly revealed the characteristics of duck muscle development and differences between the two breeds differing in growth rates.Moreover,type lIb fibers might convert to type Ⅰ fibers in the lateral gastrocnemius,while MyoD may potentially function in controlling the muscle fiber phenotype during the secondary myogenesis of muscle development. Little is known about the muscle developmental patterns during embryonic to neonatal development in ducks.We investigated the developmental patterns in the lateral gastrocnemius muscles of Gaoyou and Jinding ducks differing in their muscle growth rates during the final stages of egg incubation and the first week after hatching.Expression of the MyoD gene was quantified by quantitative real-time PCR(qRT-PCR).The average cross-sectional area and diameter of the fibers increased from embryonic day 21(E21),peaking at E27,and then declining slightly 7 d after hatching.The density of the fibers decreased initially but increased after hatching in both breeds and sexes.The within-breed variation in muscle fiber-type composition was greater than the average variation between the breeds.Overall,the percentage of type Ⅰ fibers increased and that of type lIb fibers decreased consistently.However,the percentage of type lla fibers was almost constant as development proceeded in both duck breeds.The profiles of MyoD mRNA expression were similar in both breeds,and a significantly positive relationship was observed between the expression of MyoD and the percentage of type lIb fibers.This study firstly revealed the characteristics of duck muscle development and differences between the two breeds differing in growth rates.Moreover,type lIb fibers might convert to type Ⅰ fibers in the lateral gastrocnemius,while MyoD may potentially function in controlling the muscle fiber phenotype during the secondary myogenesis of muscle development.
出处 《Journal of Integrative Agriculture》 SCIE CAS CSCD 2016年第2期403-413,共11页 农业科学学报(英文版)
基金 supported by the National Natural Science Foundation of China(31172194) the Key Technology Support Program of Jiangsu Province,China (BE2014362,BE2012460)
关键词 duck myofiber development MyoD gene gene expression duck myofiber development MyoD gene gene expression
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  • 1Aberle E D, Stewart T S. 1983. Growth of fiber types and apparent fiber number in skeletal muscle of broiler- and layer type chickens. Growth, 47, 135-144.
  • 2Bandman E, Rosser B W C. 2000. Evolutionary significance of myosin heavy chain. Microscopy Research and Technique, ,50,473-491.
  • 3Berard J, Kalbe C, LSsel D, Tuchscherer A, Rehfeldt C. 2011. Potential sources of early-postnatal increase in myofibre number in pig skeletal muscle. Histochemistry and Cell Biology, 136, 217-225.
  • 4. Brooke M H, Kaiser K K. 1970. Three "myosin ATPase" systems. The nature of their pH liability and sulphydryl dependence. Journal of Histochemistry & Cytochemistry, 18, 670-672.
  • 5Cao Y, Kumar R M, Penn B H, Berkes C A, Kooperberg C. 2006. Global and gene-specific analyses show distinct roles for Myod and Myog at a common set of promoters. EMBO Journal, 25, 502-511.
  • 6CNCAGR (China National Commission of Animal Genetic Resources). 2011. Animal Genetic Resources in China --Poultry. China Agriculture Press, China. pp. 383-396. (in Chinese).
  • 7Chen W, Tangara M, Xu J, Peng J. 2012. Developmental transition of pectoralis muscle from atrophy in late-termduck embryos to hypertrophy in neonates. Experimental Physiology, g7, 861-872.
  • 8Cho O H, Mallappa C, Hernandez-Hemandez J M, Rivera-Perez J A, Imbalzano A N. 2015. Contrasting roles for MyoD in organizing myogenic promoter structures during embryonic skeletal muscle development. Developmental Dynamics, 244, 43-55.
  • 9Condon K, Silberstein L, Blau H M, Thompson W J. 1990. Development of muscle fiber types in the prenatal rat hindlimb. Developmental Biology, 138, 256-274.
  • 10Du M, Tong J, Zhao J, Underwood K R, Zhu M. 2010. Fetal programming of skeletal muscle development in ruminant animals. Journal of Animal Science, 88, E51-E60.

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