Mechanistic insights into direct DNA and RNA strand transfer and dynamic protein exchange of SSB and RPA.

IF 13.1 2区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Tapas Paul, I-Ren Lee, Sushil Pangeni, Fahad Rashid, Olivia Yang, Edwin Antony, James M Berger, Sua Myong, Taekjip Ha
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引用次数: 0

Abstract

Single-stranded DNA-binding proteins (SSBs) are essential for genome stability, facilitating replication, repair, and recombination by binding single-stranded DNA (ssDNA), recruiting other proteins, and dynamically relocating in response to cellular demands. Using single-molecule fluorescence resonance energy transfer assays, we elucidated the mechanisms underlying direct strand transfer from one locale to another, protein exchange, and RNA interactions at high resolution. Both bacterial SSB and eukaryotic replication protein A (RPA) exhibited direct strand transfer to competing ssDNA, with rates strongly influenced by ssDNA length. Strand transfer proceeded through multiple failed attempts before a successful transfer, forming a ternary intermediate complex with transient interactions, supporting a direct transfer mechanism. Both proteins efficiently exchanged DNA-bound counterparts with freely diffusing molecules, while hetero-protein exchange revealed that SSB and RPA could replace each other on ssDNA, indicating that protein exchange does not require specific protein-protein interactions. Additionally, both proteins bound RNA and underwent strand transfer to competing RNA, with RPA demonstrating faster RNA transfer kinetics. Competitive binding assays confirmed a strong preference for DNA over RNA. These findings provide critical insights into the dynamic behavior of SSB and RPA in nucleic acid interactions, advancing our understanding of their essential roles in genome stability, regulating RNA metabolism, and orchestrating nucleic acid processes.

SSB和RPA直接DNA和RNA链转移和动态蛋白质交换的机制研究。
单链DNA结合蛋白(SSBs)对基因组的稳定性至关重要,通过结合单链DNA (ssDNA),招募其他蛋白质,并根据细胞需求动态重新定位,促进复制、修复和重组。利用单分子荧光共振能量转移分析,我们在高分辨率下阐明了链从一个区域直接转移到另一个区域、蛋白质交换和RNA相互作用的机制。细菌的SSB和真核复制蛋白A (RPA)都表现出直接链转移到竞争的ssDNA上,其速率受ssDNA长度的强烈影响。链转移在成功转移之前经历了多次失败的尝试,形成了具有瞬时相互作用的三元中间配合物,支持直接转移机制。这两种蛋白都可以通过自由扩散的分子有效地交换dna结合的对偶物,而异源蛋白交换表明SSB和RPA可以在ssDNA上相互替换,表明蛋白质交换不需要特异性的蛋白-蛋白相互作用。此外,两种蛋白质结合RNA并进行链转移到竞争RNA, RPA表现出更快的RNA转移动力学。竞争性结合实验证实了DNA对RNA的强烈偏好。这些发现为SSB和RPA在核酸相互作用中的动态行为提供了重要的见解,促进了我们对它们在基因组稳定性、调节RNA代谢和协调核酸过程中的重要作用的理解。
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来源期刊
Nucleic Acids Research
Nucleic Acids Research 生物-生化与分子生物学
CiteScore
27.10
自引率
4.70%
发文量
1057
审稿时长
2 months
期刊介绍: Nucleic Acids Research (NAR) is a scientific journal that publishes research on various aspects of nucleic acids and proteins involved in nucleic acid metabolism and interactions. It covers areas such as chemistry and synthetic biology, computational biology, gene regulation, chromatin and epigenetics, genome integrity, repair and replication, genomics, molecular biology, nucleic acid enzymes, RNA, and structural biology. The journal also includes a Survey and Summary section for brief reviews. Additionally, each year, the first issue is dedicated to biological databases, and an issue in July focuses on web-based software resources for the biological community. Nucleic Acids Research is indexed by several services including Abstracts on Hygiene and Communicable Diseases, Animal Breeding Abstracts, Agricultural Engineering Abstracts, Agbiotech News and Information, BIOSIS Previews, CAB Abstracts, and EMBASE.
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