Unprecedented Insights from World's First Real-Time DNA Visualization

Abstract

R-loops are three-stranded nucleic acid structures that can cause replication stress by blocking replication fork progression. However, the detailed mechanism underlying the collision of DNA replication forks and R-loops remains elusive. To investigate how R-loops induce replication stress, we use single-molecule fluorescence imaging to directly visualize the collision of replicating Phi29 DNA polymerase (Phi29 DNAp), the simplest replication system, and R-loops. We demonstrate that a single R-loop can block replication, and the blockage is more pronounced when an RNA-DNA hybrid is on the non-template strand. We show that this asymmetry results from secondary structure formation on the non-template strand, which impedes the progression of Phi29 DNAp. We also show that G-quadruplex formation on the displaced single-stranded DNA in an R-loop enhances the replication stalling. Moreover, we observe the collision between Phi29 DNAp and RNA transcripts synthesized by T7 RNA polymerase (T7 RNAp). RNA transcripts cause more stalling because of the presence of T7 RNAp. Our work provides insights into how R-loops impede DNA replication at single-molecule resolution.

A research team, led by Professor Ja Yil Lee in the Department of Biological Sciences at UNIST has made a remarkable breakthrough in the field of molecular biology. Their pioneering research, published in the esteemed journal Nucleic Acids Research, has successfully imaged the real-time process of DNA replication using the innovative "DNA Curtain" technology. This groundbreaking achievement represents the first-ever direct observation of DNA replication and its conflicts with R-loops and transcription proteins, shedding new light on long-standing questions in the field.

DNA replication plays a vital role in transferring genetic information to the next generation. However, it frequently encounters obstacles such as interference caused by the transcription process or collisions with R-loops, which arise from incomplete transcription. These phenomena, collectively known as "DNA replication stress," have been associated with various diseases, including cancer, neurological disorders, and aging. Consequently, gaining a comprehensive understanding of the conflicts between replication, transcription, and R-loops is of paramount importance for the development of potential disease prevention and treatment strategies.

To directly visualize the process of DNA replication, the research team employed DNA curtain technology, a single-molecule imaging approach. This technique facilitated the direct observation of collisions between DNA replication and transcription or R-loops. Through their experiments, the team demonstrated that even a single R-loop can impede DNA replication and induce replication stress, with a higher degree of blockage observed when an RNA-DNA hybrid is present on the non-template strand. The team identified that this asymmetry arises from secondary structure formation on the non-template strand, hindering the progression of Phi29 DNA polymerase. Furthermore, the formation of G-quadruplex structures on the displaced single-stranded DNA within an R-loop amplifies replication stalling. In addition, the researchers observed collisions between Phi29 DNA polymerase and RNA transcripts synthesized by T7 RNA polymerase, revealing that RNA transcripts cause more frequent stalling due to the presence of T7 RNA polymerase.

"DNA replication lies at the core of life phenomena, and this study represents the world's first real-time fluorescence imaging of DNA replication and its conflicts with transcription and R-loops," noted Professor Lee. "It provides a direct answer to the long-standing problem in molecular biology known as 'replication-transcription collision.' He further added, "Moving forward, we aim to apply this groundbreaking technology to further research on human DNA replication and transcription."

Subin Kim, the first author of this study and a PhD researcher, emphasized the significance of the findings, particularly in relation to R-loops, which are actively studied worldwide as potential causes of various diseases, including cancer and neurological disorders such as leukemia. The study is expected to make a substantial contribution to the development of treatments for diseases associated with R-loops.

This research was made possible with the support of the Samsung Science and Technology Foundation's project and the National Research Foundation of Korea (NRF), and the Ministry of Science and ICT (MSIT). The findings of this study were published in the online version of Nucleic Acids Research on November 22, 2023.

Journal Reference

Subin Kim, Woo Hee Shin, Yujin Kang, et al., "Direct visualization of replication and R-loop collision using single-molecule imaging," (2023).

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