Conformational buffering underlies functional selection in intrinsically disordered protein regions

被引:0
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作者
Nicolás S. González-Foutel
Juliana Glavina
Wade M. Borcherds
Matías Safranchik
Susana Barrera-Vilarmau
Amin Sagar
Alejandro Estaña
Amelie Barozet
Nicolás A. Garrone
Gregorio Fernandez-Ballester
Clara Blanes-Mira
Ignacio E. Sánchez
Gonzalo de Prat-Gay
Juan Cortés
Pau Bernadó
Rohit V. Pappu
Alex S. Holehouse
Gary W. Daughdrill
Lucía B. Chemes
机构
[1] Universidad Nacional de San Martín,Instituto de Investigaciones Biotecnológicas (IIBiO
[2] Fundación Instituto Leloir e Instituto de Investigaciones Bioquímicas (IIB-CONICET),CONICET)
[3] Universidad de Buenos Aires,Instituto de Química Biológica de la Facultad de Ciencias Exactas y Naturales (IQUIBICEN
[4] University of South Florida,CONICET)
[5] Center for Science & Engineering of Living Systems,Department of Cell Biology, Microbiology, and Molecular Biology and
[6] Washington University in St. Louis,Department of Biomedical Engineering
[7] Instituto de Química Avanzada de Cataluña (IQAC-CSIC),Centre de Biologie Structurale (CBS)
[8] Université de Montpellier,LAAS
[9] INSERM,CNRS
[10] CNRS,Instituto de Investigación, Desarrollo e Innovación en Biotecnología Sanitaria de Elche (IDiBE)
[11] Université de Toulouse,Department of Biochemistry and Molecular Biophysics
[12] CNRS,undefined
[13] Universidad Miguel Hernández,undefined
[14] Washington University School of Medicine,undefined
来源
Nature Structural & Molecular Biology | 2022年 / 29卷
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摘要
Many disordered proteins conserve essential functions in the face of extensive sequence variation, making it challenging to identify the mechanisms responsible for functional selection. Here we identify the molecular mechanism of functional selection for the disordered adenovirus early gene 1A (E1A) protein. E1A competes with host factors to bind the retinoblastoma (Rb) protein, subverting cell cycle regulation. We show that two binding motifs tethered by a hypervariable disordered linker drive picomolar affinity Rb binding and host factor displacement. Compensatory changes in amino acid sequence composition and sequence length lead to conservation of optimal tethering across a large family of E1A linkers. We refer to this compensatory mechanism as conformational buffering. We also detect coevolution of the motifs and linker, which can preserve or eliminate the tethering mechanism. Conformational buffering and motif–linker coevolution explain robust functional encoding within hypervariable disordered linkers and could underlie functional selection of many disordered protein regions.
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页码:781 / 790
页数:9
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