氨基酸的酶识别推动了原始遗传密码的进化
Jordan Douglas1,2, Remco Bouckaert2,3, Charles W Carter4
1Department of Physics, The University of Auckland, New Zealand.
Nucleic acids research
|December 4, 2023
概括
氨基酸-tRNA合成酶 (AARS) 的进化涉及到细小的结构模块,这些模块精炼了遗传密码. 招募了较旧,不那么特定的AARS来结合新的氨基酸,这一过程被称为逆向功能化.
科学领域:
- 生物化学 生物化学
- 分子生物学分子生物学
- 进化生物学 进化生物学
背景情况:
- 对细胞化学过程的遗传信息控制的起源尚不清楚.
- 氨基酸-tRNA合成酶 (AARS) 对于所有生命形式中执行遗传密码至关重要.
- 从低特异性的祖先AARS演变为高度特异性的酶仍然是一个.
研究的目的:
- 研究氨基酸-tRNA合成酶 (AARS) 的进化途径.
- 了解遗传密码的特异性是如何演变的.
- 确定结构模块在AARS多样化中的作用.
主要方法:
- 现存的AARS基因的遗传学重建.
- 在AARS演变中对模块化收购的分析.
- 模拟氨基酸纳入遗传密码的进化路线.
主要成果:
- 鉴定了六个不同的AARS分类 (细菌,考古,真核,有机细胞),导致36个催化域家族.
- 证明小结构模块是区分氨基酸侧链和扩展遗传密码的关键.
- 观察到一个趋势,简单的AARS激活了后来合成的氨基酸.
- 作为主要的进化机制,拟议的反复功能化,在这个过程中,较旧,较不特定的AARS被招募到新的氨基酸中.
结论:
- 小结构模块在AARS特异性和遗传密码的演变中起到了关键作用.
- 复原功能化为了解氨基酸如何被纳入遗传密码提供了一个新的模型.
- AARS的演变涉及通过模块化添加和祖先酶的招聘来逐渐改进特异性.
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