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玉米黑粉菌Trf2通过拮抗Blm介导的端粒重组确保基因组稳定性:通过相反调控微调端粒处的DNA修复因子活性。

Ustilago maydis Trf2 ensures genome stability by antagonizing Blm-mediated telomere recombination: Fine-tuning DNA repair factor activity at telomeres through opposing regulations.

作者信息

Syed Shahrez, Aloe Sarah, Sutherland Jeanette H, Holloman William K, Lue Neal F

机构信息

Department of Microbiology & Immunology, W. R. Hearst Microbiology Research Center, Weill Cornell Medicine, New York, New York, United States of America.

Sandra and Edward Meyer Cancer Center, Weill Cornell Medicine, New York, New York, United States of America.

出版信息

PLoS Genet. 2024 Dec 9;20(12):e1011515. doi: 10.1371/journal.pgen.1011515. eCollection 2024 Dec.

Abstract

TRF2 is an essential and conserved double-strand telomere binding protein that stabilizes chromosome ends by suppressing DNA damage response and aberrant DNA repair. Herein we investigated the mechanisms and functions of the Trf2 ortholog in the basidiomycete fungus Ustilago maydis, which manifests strong resemblances to metazoans with regards to the telomere and DNA repair machinery. We showed that UmTrf2 binds to Blm in vitro and inhibits Blm-mediated unwinding of telomeric DNA substrates. Consistent with a similar inhibitory activity in vivo, over-expression of Trf2 induces telomere shortening, just like deletion of blm, which is required for efficient telomere replication. While the loss of Trf2 engenders growth arrest and multiple telomere aberrations, these defects are fully suppressed by the concurrent deletion of blm or mre11 (but not other DNA repair factors). Over-expression of Blm alone triggers aberrant telomere recombination and the accumulation of aberrant telomere structures, which are blocked by concurrent Trf2 over-expression. Together, these findings highlight the suppression of Blm as a key protective mechanism of Trf2. Notably, U. maydis harbors another double-strand telomere-binding protein (Tay1), which promotes Blm activity to ensure efficient replication. We found that deletion of tay1 partially suppresses the telomere aberration of Trf2-depleted cells. Our results thus point to opposing regulation of Blm helicase by telomere proteins as a strategy for optimizing both telomere maintenance and protection. We also show that aberrant transcription of both telomere G- and C-strand is a recurrent phenotype of telomere mutants, underscoring another potential similarity between double strand breaks and de-protected telomeres.

摘要

TRF2是一种必需的保守双链端粒结合蛋白,它通过抑制DNA损伤反应和异常DNA修复来稳定染色体末端。在此,我们研究了担子菌真菌玉米黑粉菌中Trf2直系同源物的机制和功能,该真菌在端粒和DNA修复机制方面与后生动物有很强的相似性。我们发现UmTrf2在体外与Blm结合,并抑制Blm介导的端粒DNA底物解旋。与体内类似的抑制活性一致,Trf2的过表达会导致端粒缩短,就像高效端粒复制所需的blm缺失一样。虽然Trf2的缺失会导致生长停滞和多个端粒畸变,但这些缺陷会被同时缺失blm或mre11(但不是其他DNA修复因子)完全抑制。单独过表达Blm会引发异常的端粒重组和异常端粒结构的积累,而同时过表达Trf2会阻止这些现象。总之,这些发现突出了对Blm的抑制是Trf2的关键保护机制。值得注意的是,玉米黑粉菌含有另一种双链端粒结合蛋白(Tay1),它促进Blm活性以确保高效复制。我们发现缺失tay1会部分抑制Trf2缺失细胞的端粒畸变。因此,我们的结果表明端粒蛋白对Blm解旋酶的相反调节是优化端粒维持和保护的一种策略。我们还表明,端粒G链和C链的异常转录是端粒突变体的一种常见表型,这突出了双链断裂和去保护端粒之间的另一个潜在相似性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ae02/11670948/b0067d652ac3/pgen.1011515.g001.jpg

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