Mutation independently affects reproductive traits and dauer larvae development in mutation accumulation lines of Caenorhabditis elegans.

IF 0.8 3区 生物学 Q4 CELL BIOLOGY
Development Genes and Evolution Pub Date : 2017-11-01 Epub Date: 2017-11-23 DOI:10.1007/s00427-017-0596-1
Arthur J Hills, James W M Green, Simon C Harvey
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引用次数: 0

Abstract

Developmental decisions are important in organismal fitness. For the nematode Caenorhabditis elegans, which is naturally found in the ephemeral food patches formed by rotting plant material, correctly committing to dauer or non-dauer larval development is key to genotype survival. To investigate the link between reproductive traits, which will determine how populations grow, and dauer larvae formation, we have analysed these traits in mutation accumulation lines of C. elegans. We find that reproductive traits of individual worms-the total number of progeny and the timing of progeny production-are highly correlated with the population size observed in growing populations. In contrast, we find no relationship between reproduction traits and the number of dauer larvae observed in growing populations. We also do not observe a mutational bias in dauer larvae formation. These results indicate that the control of dauer larvae formation is distinct from the control of reproduction and that differences in dauer larvae formation can evolve rapidly.

突变独立影响秀丽隐杆线虫突变积累系的生殖性状和幼虫发育。
发展决策在机体适应性中很重要。秀丽隐杆线虫(Caenorhabditis elegans)自然存在于由腐烂的植物材料形成的短暂食物斑块中,正确地发育成有水或无水的幼虫是基因型存活的关键。为了研究决定种群生长方式的生殖性状与幼虫形成之间的联系,我们分析了秀丽隐杆线虫突变积累系的这些性状。我们发现,个体蠕虫的生殖特征——后代总数和后代生产的时间——与生长种群中观察到的种群规模高度相关。相反,我们没有发现繁殖性状与生长种群中dawer幼虫数量之间的关系。我们也没有观察到突变偏差在幼虫形成。这些结果表明,对幼虫形成的控制不同于对繁殖的控制,并且幼虫形成的差异可以迅速进化。
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来源期刊
Development Genes and Evolution
Development Genes and Evolution 生物-发育生物学
CiteScore
4.30
自引率
0.00%
发文量
13
审稿时长
>12 weeks
期刊介绍: Development Genes and Evolution publishes high-quality reports on all aspects of development biology and evolutionary biology. The journal reports on experimental and bioinformatics work at the systemic, cellular and molecular levels in the field of animal and plant systems, covering key aspects of the following topics: Embryological and genetic analysis of model and non-model organisms Genes and pattern formation in invertebrates, vertebrates and plants Axial patterning, embryonic induction and fate maps Cellular mechanisms of morphogenesis and organogenesis Stem cells and regeneration Functional genomics of developmental processes Developmental diversity and evolution Evolution of developmentally relevant genes Phylogeny of animals and plants Microevolution Paleontology.
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