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Gaudez, J.

Publications and source records attributed to Gaudez, J..

2 recordsLinked to original sources

Disordered activation domains enhance DNA target search rate of a bZIP transcription factor

Transcription factors typically contain an effector domain and a DNA-binding domain, and are predominantly disordered. There is increasing evidence that effector/activation domains contribute to the DNA target search process. However, exactly how those domains influence this search is still unclear. Here, we have purified full-length CREB, a bZIP transcription factor with long disordered activation domains. We found, using in-vitro stopped-flow kinetic and equilibrium binding experiments, that the full-length protein has high dimerization affinity and dimerizes before binding DNA, as recently shown for the standalone CREB bZIP domain. CREB contains three recognised intrinsically disordered activation domains, which fall into classical acidic and glutamine-rich classifications. We show that all three contribute to decrease CREBs general affinity for DNA. This, in turn, makes the target-search process more efficient by limiting CREB sequestration on non-target DNA. Thus, one of the ways in which intrinsically disordered, non-DNA-binding domains can affect target-search is by modulating non-specific DNA-binding affinity.

biophysics↗

A basic leucine zipper uses a dimer pathway to locate its targets in DNA mixtures

The operation of Eukaryotic transcription factors remains enigmatic. Cyclic AMP-responsive element-binding protein (CREB) is a member of the basic zipper family, a superfamily of transcription factors which operate exclusively in eukaryotes and bind DNA targets as homodimers or heterodimers. Modulation of oligomerization provides an additional opportunity for transcriptional control by this (and similar) families over monomeric transcription factors. However, when dimerization occurs - before or after target binding - is not known. We performed a suite of in vitro stopped-flow kinetic measurements, including CREB basic zippers target search amongst excess non-target DNA. The extensive dataset enabled a kinetic and thermodynamic understanding of DNA binding that demonstrated most productive search is performed by dimeric, rather than monomeric, CREB. Equilibrium is approached very rapidly under physiologically relevant concentrations, where relative flux through the monomer pathway is only around 1 in every 10,000 complexes formed. This preference of mechanism is driven by CREB monomer having a substantially higher affinity for another CREB monomer than for its DNA target. Equilibrium experiments with eight other monomeric peptides further suggest this as a common feature amongst the bZIP proteins, with only one peptide (Jun) displaying similar affinities for both. The work has implications for understanding the nature of DNA target search, as well as designing efficient artificial transcription factors and transcriptional inhibitors.

biophysics↗