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骨骼肌差异的 BEH 和 BEL 株系的遗传和基因组分析。

Genetic and genomic analyses of musculoskeletal differences between BEH and BEL strains.

机构信息

School of Medical Sciences, University of Aberdeen, Aberdeen, United Kingdom;

出版信息

Physiol Genomics. 2013 Oct 16;45(20):940-7. doi: 10.1152/physiolgenomics.00109.2013. Epub 2013 Aug 20.

Abstract

Berlin high (BEH) and Berlin low (BEL) strains selected for divergent growth differ threefold in body weight. We aimed at examining muscle mass, which is a major contributor to body weight, by exploring morphological characteristics of the soleus muscle (fiber number and cross sectional area; CSA), by analyzing the transcriptome of the gastrocnemius and by initiating quantitative trait locus (QTL) mapping. BEH muscles were four to eight times larger than those of BEL. In substrain BEH+/+, mutant myostatin was replaced with a wild-type allele; however, BEH+/+muscles still were two to four times larger compared with BEL. BEH soleus muscle fibers were two times more numerous (P < 0.0001) and CSA was two times larger (P < 0.0001) compared with BEL. In addition, soleus femoral attachment anomaly (SFAA) was observed in all BEL mice. One significant (Chr 1) and four suggestive (Chr 3, 4, 6, and 9) muscle weight QTLs were mapped in a 21-day-old F2 intercross (n = 296) between BEH and BEL strains. The frequency of SFAA incidence in the F2 and in the backcross to BEL strain (BCL) suggested the presence of more than one causative gene. Two suggestive SFAA QTLs were mapped in BCL; however, their peak markers were not associated with the phenotype in F2. RNA-Seq analysis revealed 2,148 differentially expressed (P < 0.1) genes and 45,673 single nucleotide polymorphisms and >2,000 indels between BEH+/+ and BEL males. In conclusion, contrasting muscle traits and genomic and gene expression differences between BEH and BEL strains provide a promising model for the search for genes involved in muscle growth and musculoskeletal morphogenesis.

摘要

柏林高(BEH)和柏林低(BEL)两个品系在生长方面表现出明显的差异,体重也相差三倍。我们旨在通过研究比目鱼肌(纤维数量和横截面积;CSA)的形态特征,分析腓肠肌的转录组,并开始进行数量性状基因座(QTL)定位,来检测肌肉质量,因为肌肉质量是体重的主要贡献因素。BEH 肌肉比 BEL 肌肉大 4 到 8 倍。在 BEH+/+亚系中,突变的肌肉生长抑制素被野生型等位基因取代;然而,与 BEL 相比,BEH+/+肌肉仍然大 2 到 4 倍。BEH 比目鱼肌纤维数量多两倍(P<0.0001),CSA 大两倍(P<0.0001)。此外,所有 BEL 小鼠都出现了比目鱼肌股骨附着异常(SFAA)。在 BEH 和 BEL 两个品系之间的 21 日龄 F2 杂交(n=296)中,共定位到 1 个显著(Chr 1)和 4 个提示性(Chr 3、4、6 和 9)肌肉重量 QTL。在 F2 中以及回交至 BEL 品系(BCL)中 SFAA 的发病率表明存在不止一个致病基因。在 BCL 中定位到 2 个提示性 SFAA QTL;然而,它们的峰标记物与 F2 中的表型无关。RNA-Seq 分析显示,BEH+/+和 BEL 雄性之间有 2148 个差异表达(P<0.1)的基因和 45673 个单核苷酸多态性以及 >2000 个插入缺失。总之,BEH 和 BEL 两个品系之间的肌肉特征和基因组及基因表达差异为寻找参与肌肉生长和骨骼肌肉形态发生的基因提供了一个很有前景的模型。

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