Taf1 N-terminal domain 2 (TAND2) of TFIID promotes formation of stable and mobile unstable TBP-TATA complexes

Gene. 2023 Dec 30:889:147800. doi: 10.1016/j.gene.2023.147800. Epub 2023 Sep 15.

Abstract

In eukaryotes, TATA-binding protein (TBP) occupancy of the core promoter globally correlates with transcriptional activity of class II genes. Elucidating how TBP is delivered to the TATA box or TATA-like element is crucial to understand the mechanisms of transcriptional regulation. A previous study demonstrated that the inhibitory DNA binding (IDB) surface of human TBP plays an indispensable role during the two-step formation of the TBP-TATA complex, first assuming an unstable and unbent intermediate conformation, and subsequently converting slowly to a stable and bent conformation. The DNA binding property of TBP is altered by physical contact of this surface with TBP regulators. In the present study, we examined whether the interaction between Taf1 N-terminal domain 2 (TAND2) and the IDB surface affected DNA binding property of yeast TBP by exploiting TAND2-fused TBP derivatives. TAND2 promoted formation of two distinct types of TBP-TATA complexes, which we arbitrarily designated as complex I and II. While complex I was stable and similar to the well-characterized original TBP-TATA complex, complex II was unstable and moved along DNA. Removal of TAND2 from TBP after complex formation revealed that continuous contact of TAND2 with the IDB surface was required for formation of complex II but not complex I. Further, TFIIA could be incorporated into the complex of TAND2-fused TBP and the TATA box, which was dependent on the amino-terminal non-conserved region of TBP, implying that this region could facilitate the exchange between TAND2 and TFIIA on the IDB surface. Collectively, these findings provide novel insights into the mechanism by which TBP is relieved from the interaction with TAND to bind the TATA box or TATA-like element within promoter-bound TFIID.

Keywords: DNA binding; General transcription factor; Linear diffusion; Transcriptional regulation.

MeSH terms

  • DNA / metabolism
  • Gene Expression Regulation*
  • Humans
  • Saccharomyces cerevisiae / genetics
  • TATA Box / genetics
  • TATA-Box Binding Protein / chemistry
  • Transcription Factor TFIIA / genetics
  • Transcription Factor TFIIA / metabolism
  • Transcription Factor TFIID* / genetics

Substances

  • Transcription Factor TFIID
  • Transcription Factor TFIIA
  • TATA-Box Binding Protein
  • DNA