Ophthalmic Associates, Johnstown, PA.
Deceased.
G3 (Bethesda). 2021 Apr 23;11(3). doi: 10.1093/g3journal/jkaa065.
In eukaryotes, DNA mismatch recognition is accomplished by the highly conserved MutSα (Msh2/Msh6) and MutSβ (Msh2/Msh3) complexes. Previously, in the yeast Saccharomyces cerevisiae, we determined that deleting MSH6 caused wild-type Msh2 levels to drop by ∼50%. In this work, we determined that Msh6 steady-state levels are coupled to increasing or decreasing levels of Msh2. Although Msh6 and Msh2 are reciprocally regulated, Msh3 and Msh2 are not. Msh2 missense variants that are able to interact with Msh6 were destabilized when Msh6 was deleted; in contrast, variants that fail to dimerize were not further destabilized in cells lacking Msh6. In the absence of Msh6, Msh2 is turned over at a faster rate and degradation is mediated by the ubiquitin-proteasome pathway. Mutagenesis of certain conserved lysines near the dimer interface restored the levels of Msh2 in the absence of Msh6, further supporting a dimer stabilization mechanism. We identified two alternative forms of regulation both with the potential to act via lysine residues, including acetylation by Gcn5 and ubiquitination by the Not4 ligase. In the absence of Gcn5, Msh2 levels were significantly decreased; in contrast, deleting Not4 stabilized Msh2 and Msh2 missense variants with partial function. The stabilizing effect on Msh2 by either the presence of Msh6 or the absence of Not4 are dependent on Gcn5. Taken together, the results suggest that the wild-type MutSα mismatch repair protein stability is governed by subunit interaction, acetylation, and ubiquitination.
在真核生物中,高度保守的 MutSα(Msh2/Msh6)和 MutSβ(Msh2/Msh3)复合物完成 DNA 错配识别。此前,在酵母酿酒酵母中,我们确定删除 MSH6 会导致野生型 Msh2 水平下降约 50%。在这项工作中,我们确定 Msh6 的稳态水平与 Msh2 水平的增加或减少相关。尽管 Msh6 和 Msh2 是相互调节的,但 Msh3 和 Msh2 不是。能够与 Msh6 相互作用的 Msh2 错义变体在删除 Msh6 时失稳;相比之下,在缺乏 Msh6 的细胞中,不能二聚化的变体没有进一步失稳。在没有 Msh6 的情况下,Msh2 的周转率更快,降解由泛素-蛋白酶体途径介导。在二聚体界面附近的某些保守赖氨酸突变恢复了 Msh6 缺失时的 Msh2 水平,进一步支持了二聚体稳定机制。我们确定了两种具有通过赖氨酸残基发挥作用的潜在调节形式,包括 Gcn5 的乙酰化和 Not4 连接酶的泛素化。在没有 Gcn5 的情况下,Msh2 水平显著降低;相比之下,删除 Not4 稳定了 Msh2 和具有部分功能的 Msh2 错义变体。Msh6 的存在或 Not4 的缺失对 Msh2 的稳定作用都依赖于 Gcn5。总之,这些结果表明野生型 MutSα 错配修复蛋白的稳定性受亚基相互作用、乙酰化和泛素化的控制。