An essential nonredundant role for mycobacterial DnaK in native protein folding Journal Article


Authors: Fay, A.; Glickman, M. S.
Article Title: An essential nonredundant role for mycobacterial DnaK in native protein folding
Abstract: Protein chaperones are essential in all domains of life to prevent and resolve protein misfolding during translation and proteotoxic stress. HSP70 family chaperones, including E. coli DnaK, function in stress induced protein refolding and degradation, but are dispensable for cellular viability due to redundant chaperone systems that prevent global nascent peptide insolubility. However, the function of HSP70 chaperones in mycobacteria, a genus that includes multiple human pathogens, has not been examined. We find that mycobacterial DnaK is essential for cell growth and required for native protein folding in Mycobacterium smegmatis. Loss of DnaK is accompanied by proteotoxic collapse characterized by the accumulation of insoluble newly synthesized proteins. DnaK is required for solubility of large multimodular lipid synthases, including the essential lipid synthase FASI, and DnaK loss is accompanied by disruption of membrane structure and increased cell permeability. Trigger Factor is nonessential and has a minor role in native protein folding that is only evident in the absence of DnaK. In unstressed cells, DnaK localizes to multiple, dynamic foci, but relocalizes to focal protein aggregates during stationary phase or upon expression of aggregating peptides. Mycobacterial cells restart cell growth after proteotoxic stress by isolating persistent DnaK containing protein aggregates away from daughter cells. These results reveal unanticipated essential nonredunant roles for mycobacterial DnaK in mycobacteria and indicate that DnaK defines a unique susceptibility point in the mycobacterial proteostasis network. © 2014 Fay, Glickman.
Keywords: controlled study; protein expression; unclassified drug; nonhuman; protein function; protein localization; protein analysis; protein assembly; protein depletion; cell protein; daughter cell; protein synthesis; protein folding; cell stress; protein isolation; cell membrane permeability; mycobacterium smegmatis; bacterial growth; solubility; protein aggregation; synthetase; protein homeostasis; bacterial cell; article; lipid synthase; protein dnak; protein fasi; trigger factor; membrane damage
Journal Title: PLoS Genetics
Volume: 10
Issue: 7
ISSN: 1553-7390
Publisher: Public Library of Science  
Date Published: 2014-07-24
Start Page: e1004516
Language: English
DOI: 10.1371/journal.pgen.1004516
PROVIDER: scopus
PMCID: PMC4109909
PUBMED: 25058675
DOI/URL:
Notes: Export Date: 2 September 2014 -- Source: Scopus
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  1. Allison J Fay
    15 Fay
  2. Michael Glickman
    109 Glickman