Human mitochondrial Hsp70 (mortalin): shedding light on ATPase activity, interaction with adenosine nucleotides,

Paulo R Dores-Silva1, Leandro R S Barbosa2, Carlos H I Ramos3

  • 1Institute of Chemistry of Sao Carlos, University of Sao Paulo, Sao Carlos, SP, P.O. Box 780, 13560-970, Brazil.

Plos One
|January 24, 2015
PubMed

Insights

Researchers produced folded, soluble mortalin (mitochondrial Hsp70) by co-expression, enabling structural studies. This advances understanding of mortalin

Area of Science:

  • Molecular Biology
  • Structural Biology
  • Biochemistry

Background:

  • Mortalin (human mitochondrial Hsp70) is crucial for mitochondrial biogenesis and cellular function.
  • Mortalin's role in protein import/folding and its link to age-related diseases and cancer (via p53 interaction) highlight its importance.
  • Previous studies were limited by difficulties in producing soluble, functional recombinant mortalin.

Purpose of the Study:

  • To develop a method for producing folded and soluble recombinant mortalin.
  • To characterize the structural and functional properties of monomeric mortalin.
  • To investigate mortalin's stability, nucleotide binding, and aggregation propensity.

Main Methods:

  • Co-expression of mortalin with human Hsp70-escort protein 1.
  • Small-angle X-ray scattering (SAXS) for low-resolution structural modeling.
  • ATPase activity assays.
  • Adenosine nucleotide binding studies.
  • Thermally induced unfolding experiments.

Main Results:

  • Successfully produced folded and soluble recombinant mortalin via co-expression.
  • Monomeric mortalin exhibits an elongated shape and higher basal ATPase activity than Hsp70-1A.
  • Mortalin binds adenosine nucleotides with high affinity and its unfolding is nucleotide and Mg2+ dependent.
  • Mortalin shows a propensity for aggregation/association, unlike Hsp70-1A, explaining its in vivo behavior.

Conclusions:

  • The co-expression strategy enables production of functional mortalin for structural and functional studies.
  • The characterized structural and biophysical properties provide insights into mortalin's biological roles.
  • This work facilitates further research into mortalin's involvement in disease and its potential as a target for antitumor compounds.

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