AI Article Synopsis

  • The study explores how transcription factors (TFs) recognize specific DNA sequences, shapes, and flexibilities, which are essential for organism development.
  • The research focuses on 28 key TFs and reveals that they have unique preferences for the composition and structural properties of DNA near their binding sites.
  • The findings suggest that while some cofactors have similar binding preferences and are found close together, others with different preferences tend to bind farther apart, enhancing our understanding of TF interactions and transcriptional regulation.

Article Abstract

The precise spatial and temporal orchestration of gene expression is crucial for the ontogeny of an organism and is mainly governed by transcription factors (TFs). The mechanism of recognition of cognate sites amid millions of base pairs in the genome by TFs is still incompletely understood. In this study, we focus on DNA sequence composition, shape, and flexibility preferences of 28 quintessential TFs from that are critical to development and body patterning mechanisms. Our study finds that TFs exhibit distinct predilections for DNA shape, flexibility, and sequence compositions in the proximity of transcription factor binding sites (TFBSs). Notably, certain zinc finger proteins prefer GC-rich areas with less negative propeller twist, while homeodomains mainly seek AT-rich regions with a more negative propeller twist at their sites. Intriguingly, while numerous cofactors share similar binding site preferences and bind closer to each other in the genome, some cofactors that have different preferences bind farther apart. These findings shed light on TF DNA recognition and provide novel insights into possible cofactor binding and transcriptional regulation mechanisms.

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Source
http://dx.doi.org/10.1021/acschembio.4c00202DOI Listing

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