Domain tethering impacts dimerization and DNA-mediated allostery in the human transcription factor FoxP1

Author:

Cruz Perla1,Paredes Nicolás1,Asela Isabel1,Kolimi Narendar2ORCID,Molina José Alejandro34ORCID,Ramírez-Sarmiento César A.34ORCID,Goutam Rajen2ORCID,Huang Gangton2ORCID,Medina Exequiel1ORCID,Sanabria Hugo2ORCID

Affiliation:

1. Departamento de Biología, Facultad de Ciencias, Universidad de Chile 1 , Las Palmeras 3425, Casilla 653, Santiago 7800003, Chile

2. Department of Physics and Astronomy, Clemson University 2 , Clemson, South Carolina 29634, USA

3. Institute for Biological and Medical Engineering, Schools of Engineering, Medicine and Biological Sciences, Pontificia Universidad Católica de Chile 3 , Av. Vicuña Mackenna 4860, Santiago 7820436, Chile

4. ANID – Millennium Science Initiative Program – Millennium Institute for Integrative Biology (iBio) 4 , Santiago 7820436, Chile

Abstract

Transcription factors are multidomain proteins with specific DNA binding and regulatory domains. In the human FoxP subfamily (FoxP1, FoxP2, FoxP3, and FoxP4) of transcription factors, a 90 residue-long disordered region links a Leucine Zipper (ZIP)—known to form coiled-coil dimers—and a Forkhead (FKH) domain—known to form domain swapping dimers. We used replica exchange discrete molecular dynamics simulations, single-molecule fluorescence experiments, and other biophysical tools to understand how domain tethering in FoxP1 impacts dimerization at ZIP and FKH domains and how DNA binding allosterically regulates their dimerization. We found that domain tethering promotes FoxP1 dimerization but inhibits a FKH domain-swapped structure. Furthermore, our findings indicate that the linker mediates the mutual organization and dynamics of ZIP and FKH domains, forming closed and open states with and without interdomain contacts, thus highlighting the role of the linkers in multidomain proteins. Finally, we found that DNA allosterically promotes structural changes that decrease the dimerization propensity of FoxP1. We postulate that, upon DNA binding, the interdomain linker plays a crucial role in the gene regulatory function of FoxP1.

Funder

Fondo Nacional de Desarrollo Científico y Tecnológico

National Institute of Mental Health

National Institute of General Medical Sciences

Division of Molecular and Cellular Biosciences

Fondo de Equipamiento Científico y Tecnológico

Publisher

AIP Publishing

Subject

Physical and Theoretical Chemistry,General Physics and Astronomy

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