数字农科院2.0

Differentiation of expression profiles of two calcineurin subunit genes in chicken skeletal muscles during early postnatal growth depending on anatomical location of muscles and breed

文献类型: 外文期刊

作者: Shan Yan-ju;Xu Wen-juan;Shu Jing-ting;Zhang Ming;Song Wei-tao;Tao Zhi-yun;Zhu Chun-hong;Li Hui-fang

作者机构:

关键词: calcineurin;chicken;skeletal muscle;expression

期刊名称: JOURNAL OF INTEGRATIVE AGRICULTURE

ISSN: 2095-3119

年卷期: 2016 年 15 卷 5 期

页码:

收录情况: SCI

摘要: Calcineurin (Cn or CaN) is implicated in the control of skeletal muscle fiber phenotype and hypertrophy. However, little information is available concerning the expression of Cn in chickens. In the present study, the expression of two Cn subunit genes (CnA alpha and CnB1) was quantified by qPCR in the lateral gastrocnemius (LG, mainly composing of red fast-twitch myofibers), the soleus (mainly composing of red slow-twitch myofibers) and the extensor digitorum longus (EDL, mainly composing of white fast-twitch myofibers) from Qingyuan partridge chickens (QY, slow-growing chicken breed) and Recessive White chickens (RW, fast-growing chicken breed) on different days (1, 8, 22, 36, 50 and 64 days post-hatching). Although CnA alpha and CnB1 gene expressions were variable with different trends in different skeletal muscles in the two chicken breeds during postnatal growth, it is highly muscle phenotype and breed specific. In general, the levels of CnA alpha and CnB1 gene expressions of the soleus were lower than those of EDL and LG in both chicken breeds at the same stages. Compared between the two chicken breeds, the levels of CnA alpha gene expression of the three skeletal muscles in QY chickens were higher than those in RW chickens on days 1 and 22. However, on day 64, the levels of both CnA alpha and CnB1 gene expressions of the three skeletal muscles were lower in QY chickens than those in RW chickens. Correlation analysis of the levels of CnA alpha and CnB1 gene expressions of the same skeletal muscle showed that there were positive correlations for all three skeletal muscle tissues in two chicken breeds. These results provide some valuable clues to understand the role of Cn in the development of chicken skeletal muscles, with a function that may be related to meat quality.

分类号:

  • 相关文献

[1]The Expression of Can and Camk is Associated with Lipogenesis in the Muscle of Chicken. Yang, Y.,Song, J.,Fu, R.,Sun, Y.,Wen, J.. 2015

[2]Expression patterns of peroxisome proliferator-activated receptor gamma 1 versus gamma 2, and their association with intramuscular fat in goat tissues. Li, Li,Jiang, Jing,Wang, LinJie,Zhong, Tao,Chen, Bo,Zhan, Siyuan,Zhang, Hongping,Li, Li,Du, Lixin.

[3]Effects of Heat Stress on Breast Muscle Metabolomics and Lipid Metabolism Related Genes in Growing Broilers. Xiumei Li,Xin Zhao,Miao Yu,Minhong Zhang,Jinghai Feng. 2024

[4]Molecular cloning and functional characterization of a novel isoform of chicken myeloid differentiation factor 88 (MyD88). Qiu, Yafeng,Shen, Yang,Li, Xiangdong,Ding, Chan,Ma, Zhiyong.

[5]Up-regulation of NLRC5 and NF-kappa B signaling pathway in carrier chickens challenged with Salmonella enterica Serovar Pullorum at different persistence periods. Liu, Xiangping,Sheng, Zhongwei,Dou, Xinhong,Wang, Kehua,Ma, Teng,Wang, Hongzhi,Li, Zhiteng,Pan, Zhiming,Chang, Guobin,Chen, Guohong. 2015

[6]猪繁殖与呼吸综合症GP5蛋白的纯化与免疫活性分析(英文). 陈妍,田宏,尹双辉,尚佑军,刘湘涛. 2009

[7]噬菌体展示技术分析鸡贫血病毒VP1蛋白抗原结构特征. 王晓艳,高玉龙,高宏雷,付朝阳,邓小芸,林欢,祁小乐,王笑梅. 2007

[8]GlobalgeneexpressionprofileofchickenspleentissueatalaterstageofIBVinfectionrevealspathogenesisandimmunemechanisms. FengCong,ZongxiHan,FengjieWang,YuhaoShao,XiangangKong,ShengwangLiu. 2014

[9]EIAV基因转移载体启动子的比较. 韩凌霞,李亚明,曲连东,司昌德,姜骞,刘家森. 2006

[10]Cloning and Functional Analysis of the Full Length cDNA Sequence of Eukaryotic Translation Initiation Factor 5 in Schistosoma japonicum. Cheng Guofeng,Lin Jiaojiao,Sun Jun,Li Hao,Zhu Chuangang,Zhou Yuancong,Cai Youmin. 2005

[11]Effects of immunological challenge induced by lipopolysaccharide on skeletal muscle fiber type conversion of piglets. Jia, A. F.,Feng, J. H.,Zhang, M. H.,Chang, Y.,Li, Z. Y.,Hu, C. H.,Zhen, L.,Zhang, S. S.,Peng, Q. Q..

[12]Activation of cAMP-response element-binding protein is positively regulated by PKA and calcium-sensitive calcineurin and negatively by PKC in insect. Yang, Huipeng,He, Xiaobai,Deng, Xiaoyan,Liao, Yuan,Zhu, Chenggang,Shi, Ying,Zhou, Naiming,Yang, Jingwen,Zhang, Zhifang.

[13]Expression of a calcineurin gene improves salt stress tolerance in transgenic rice. Ma, XJ,Qian, Q,Zhu, DH.

[14]Effect of mouse calcineurin on induction and growth of rice callus transformed by the calcineurin gene. Xujun Ma , Qian Qian , Chuanping Yang , Guifeng Liu , Dahai Zhu. 2006

[15]Cloning and Functional Analysis of Calcineurin Subunits A and B in Development and Fecundity of Nilaparvata lugens (Stal). Wang Weixia,Zhu Tingheng,Wan Pinjun,Wei Qi,He Jiachun,Lai Fengxiang,Fu Qiang. 2022

[16]The Ca2+-dependent phosphatase calcineurin dephosphorylates TBK1 to suppress antiviral innate immunity. Qu, Yang,Wang, Siyuan,Jiang, Hui,Wang, Qingyi,Liao, Ying,Qiu, Xusheng,Tan, Lei,Song, Cuiping,Ding, Chan,Sun, Yingjie,Yang, Zengqi. 2024

[17]Characterization of microRNAs from sheep (Ovis aries) using computational and experimental analyses. Sheng, Xihui,Wei, Caihong,Liu, Tao,Zhang, Li,Du, Lixin,Sheng, Xihui,Song, Xuemei,Yu, Yan,Niu, Lili,Li, Shangang,Li, Hongbin.

[18]Isolation and characterization of a cDNA encoding a papain-like cysteine protease from alfalfa. Yan, Longfeng,Han, Jianguo,Sun, Yan,Yan, Longfeng,Yang, Qingchuan,Kang, Junmei,Liu, Zhipeng,Wu, Mingsheng.

[19]Expression of Prolactin Receptor mRNA after Melatonin Manipulated in Cashmere Goats Skin during Cashmere Growth. Zhang, Wei,Zhu, Xiaoping,Jia, Zhihai,Yue, Chunwang,Kong, Xianghao,Du, Lixin.

[20]Effects of age and strain on the expression of leptin receptor, neuropeptide Y and pro-opiomelanocortin in the hypothalamus of young chickens. Huang, J. X.,Lu, L.,Luo, X. G.,Liu, B.,Huang, J. X.,Lu, L.,Luo, X. G.,Liu, B.,Huang, J. X.,Xi, L..

作者其他论文 更多>>