来自西澳大利亚中部的地下和地表同类甲类甲动物的内葡萄糖酶基因的进化
Mohammad Javidkar1,2, Steven J B Cooper1,3, Nahid Shokri Bousjein4
1Department of Ecology and Evolutionary Biology, School of Biological Sciences, and The Environment Institute University of Adelaide Adelaide South Australia Australia.
Ecology and evolution
|October 2, 2023
概括
地下同类动物拥有功能性内源细胞酶基因,使得碳化合物可用于能源. 这些基因表现出适应性进化,表明在缺乏营养的洞穴环境中长期生存.
科学领域:
- * 分子生物学 * 分子生物学
- * 进化生物学 进化生物学
- * 基因组学 是一个学科.
背景情况:
- *内生细胞酶基因使关节动物,包括同类动物,能够代谢碳化合物.
- * 有限的知识存在于细胞质基因存在和功能在洞穴居住的物种稀缺的碳水化合物资源.
研究的目的:
- * 研究地下同类动物物种内源细胞酶基因的存在和进化维护.
- * 确定这些基因是否在响应地下环境时经历了适应性进化.
主要方法:
- *对两种地下和一种表面生活的状关节性同类动物物种进行了转录组测序.
- * 正义学推断用于识别内葡萄糖酶基因.
- *使用进化分支模型进行选择分析 (净化和积极选择).
主要成果:
- *在所有研究的同类动物物种中,发现了七个与内葡萄糖酶基因相关的开放阅读框架.
- * 基因是内源的,主要是在净化选择下,表明功能性.
- * 在地下血统中,在特定地点的适应性转移和积极选择的证据表明了新的适应.
结论:
- * 地下同足动物具有功能性内源细胞酶基因,支持碳化合物利用.
- * 这些基因是在地下环境中独特的选择性压力下演变的.
- *碳化合物是地下同类动物在含水层中的长期能源.
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