Aug 2026· Nature Methods· Vol 23, pp. 1775 - 1785· 3 citations· 74 references
Medicine
Abstract
There is ongoing debate regarding the degree to which transcription factors (TFs) independently specify genomic binding: TF binding motifs are typically short and degenerate, yielding many more binding site predictions than observed in cells. Here we present genomic high-throughput SELEX (GHT-SELEX)—a scalable method that surveys intrinsic binding of purified TFs to the fragmented, naked and unmodified genome. GHT-SELEX peaks for 179 diverse human TFs display surprisingly high overlap with chromatin immunoprecipitation sequencing peaks for the same TF. Comparable overlap can be obtained from motifs using appropriate analytical approaches. For C2H2 zinc finger (zf) proteins—the largest class of human TFs—GHT-SELEX shows that modular, alternative engagement of C2H2-zf domains is the norm, enabling several types of distinct target sites, and frequently involving internal duplication and divergence within the C2H2-zf array. Altogether, it is common for TFs to delineate a large fraction of in vivo genomic binding sites independently of other cellular factors. GHT-SELEX—high-throughput SELEX with fragmented genomic DNA—shows that transcription factors can be rather particular about which genomic loci they bind, and that C2H2 zinc finger proteins often engage different fingers at different sites.
Gene expression is regulated by transcription factors (TFs), which recognize specific DNA sequence motifs. Several hundred putative human TFs, identified mainly by an apparent DNA-binding domain, lack known binding motifs1. Furthermore, even for well-characterized TFs, it remains controversial the degree to which motif...
A. Jolma, Kaitlin U. Laverty, Ali Fathi et al.· Nature· 3 citations
Transcription factors (TFs) are key players in eukaryotic gene regulation, but the DNA binding specificity of many TFs remains unknown. Here, we assay 284 mostly uncharacterized putative human TFs using selective microfluidics-based ligand enrichment followed by sequencing (SMiLE-seq), revealing 74 new DNA binding moti...
Antoni J. Gralak, Kateřina Faltejsková, Ally W. H. Yang et al.· Nature Communications· 2 citations
Eukaryotic sequence-specific transcription factors (TFs) must find their cognate DNA targets hidden in genomic chromatin amid an excess of nonspecific sequences and degenerate motifs. Although static TF interactions with nucleosomal targets have been elucidated, how TFs efficiently search for cognate sites within nativ...
Ze-Lin Wei, Oluwakemi E. Abiodun, Y. Ling et al.· Nature Structural & Molecula...· 0 citations
It is found that induction of TPRX1, a known regulator of zygotic preimplantation, leads to chromatin opening at many of its binding sites in the dark matter genome, suggesting that the genome encodes many putative transcription factors.
Rozita Razavi, Ali Fathi, Isaac Yellan et al.· Nature Communications· 3 citations
Transcription factors (TFs) regulate gene expression by controlling the recruitment of transcriptional machinery to regulatory regions of the genome. Nearly 10% of the human genome encodes TFs, making them one of the largest protein families. Despite their central roles in gene regulation, TFs are historically consider...
Swarnava Garai, Shri Kant, R. Bahadur· Journal of Structural Biolog...· 0 citations
Transcription factor (TF) binding underlies gene regulation, yet the determinants of TF-DNA interactions across plant genomes remain incompletely understood. Here, we present a comprehensive atlas of TF binding in Arabidopsis thaliana, generated by reanalyzing 1,157 publicly available ChIP-seq and DAP/ampDAP-seq datase...
A. Jegou, J. Lucas, Marianne Dreuillet et al.· bioRxiv· 0 citations
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