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Deep mutational scanning reveals the structural basis for ?-synuclein activity.


ABSTRACT: Defining the biologically active structures of proteins in their cellular environments remains challenging for proteins with multiple conformations and functions, where only a minor conformer might be associated with a given function. Here, we use deep mutational scanning to probe the structure and dynamics of ?-synuclein, a protein known to adopt disordered, helical and amyloid conformations. We examined the effects of 2,600 single-residue substitutions on the ability of intracellularly expressed ?-synuclein to slow the growth of yeast. Computational analysis of the data showed that the conformation responsible for this phenotype is a long, uninterrupted, amphiphilic helix with increasing dynamics toward the C terminus. Deep mutational scanning can therefore determine biologically active conformations in cellular environments, even for a highly dynamic multi-conformational protein.

SUBMITTER: Newberry RW 

PROVIDER: S-EPMC7339969 | biostudies-literature | 2020 Jun

REPOSITORIES: biostudies-literature

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Deep mutational scanning reveals the structural basis for α-synuclein activity.

Newberry Robert W RW   Leong Jaime T JT   Chow Eric D ED   Kampmann Martin M   DeGrado William F WF  

Nature chemical biology 20200309 6


Defining the biologically active structures of proteins in their cellular environments remains challenging for proteins with multiple conformations and functions, where only a minor conformer might be associated with a given function. Here, we use deep mutational scanning to probe the structure and dynamics of α-synuclein, a protein known to adopt disordered, helical and amyloid conformations. We examined the effects of 2,600 single-residue substitutions on the ability of intracellularly express  ...[more]

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