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Biology subjects

Lee, I.-R.

Publications and source records attributed to Lee, I.-R..

2 recordsLinked to original sources

Core elements play distinct roles in promoter birth and transcriptional regulation

Gene expression shapes phenotypes and evolution. However, studies of gene regulation focus on transcription factors, overlooking core promoters. To investigate how promoters emerge and regulate transcription, we determined the sequence-function landscapes of core elements, -35 and -10, in constitutive and transcription factor-regulated promoters in Escherichia coli. Characterization of in vivo transcriptional landscapes and in vitro RNA polymerase-promoter interactions showed the -10 element as essential for promoter evolution from random sequences. In contrast, the -35 element, though broadly conserved, is dispensable for promoter birth. Instead, it exerts greater impact on gene regulation via coordinated interactions with transcription activators and RNA polymerase. We further showed that evolution fine-tunes the -35 and -10 sequences of transcription factor-regulated promoters to achieve near-maximal fold changes by lowering basal while elevating induced expression. A notable exception is PluxI, whose leaky expression provides a crucial baseline for initiating quorum sensing. These findings elucidate promoter design principles and underscore the interdependence and coevolution of core elements, RNA polymerase, and transcription factors.

systems biology↗

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

Single-stranded DNA-binding proteins (SSBs) are essential for genome stability, facilitating replication, repair, and recombination by binding ssDNA, recruiting other proteins, and dynamically relocating in response to cellular demands. Using single-molecule fluorescence resonance energy transfer (smFRET) 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 in a length-dependent manner, 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.

molecular biology↗