Borenstein Elhanan, Ruppin Eytan
School of Computer Science and School of Medicine, Tel Aviv University, Tel Aviv 69978, Israel.
Proc Natl Acad Sci U S A. 2006 Apr 25;103(17):6593-8. doi: 10.1073/pnas.0510600103. Epub 2006 Apr 11.
Genetic robustness, the invariance of the phenotype in the face of genetic perturbations, can endow the organism with reduced susceptibility to mutations. A large body of work in recent years has focused on the origins, mechanisms, and consequences of robustness in a wide range of biological systems. Despite the apparent prevalence of mutational robustness in nature, however, its evolutionary origins are still unclear. Does robustness evolve directly by natural selection or is it merely a correlated byproduct of other phenotypic traits? By examining microRNA (miRNA) genes of several eukaryotic species, we show that the structure of miRNA precursor stem-loops exhibits a significantly high level of mutational robustness in comparison with random RNA sequences with similar stem-loop structures. Hence, this excess robustness of miRNA goes beyond the intrinsic robustness of the stem-loop hairpin structure. Furthermore, we show that it is not the byproduct of a base composition bias or of thermodynamic stability. These findings suggest that the excess robustness of miRNA stem-loops is the result of direct evolutionary pressure toward increased robustness. We further demonstrate that this adaptive robustness evolves to compensate for structures with low intrinsic robustness.
遗传稳健性,即生物体在面对基因扰动时表型的不变性,可使生物体对突变的易感性降低。近年来,大量研究工作聚焦于广泛生物系统中稳健性的起源、机制及后果。然而,尽管突变稳健性在自然界中明显普遍存在,但其进化起源仍不清楚。稳健性是通过自然选择直接进化而来,还是仅仅是其他表型特征的相关副产品?通过研究几种真核生物的微小RNA(miRNA)基因,我们发现与具有相似茎环结构的随机RNA序列相比,miRNA前体茎环的结构表现出显著高水平的突变稳健性。因此,miRNA的这种额外稳健性超出了茎环发夹结构的固有稳健性。此外,我们表明它不是碱基组成偏差或热力学稳定性的副产品。这些发现表明,miRNA茎环的额外稳健性是朝着增强稳健性的直接进化压力的结果。我们进一步证明,这种适应性稳健性的进化是为了补偿具有低固有稳健性的结构。