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Updated: Apr 18, 2026

Visualization of ATP Synthase Dimers in Mitochondria by Electron Cryo-tomography
Published on: September 14, 2014
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.
Abstract:
The human mitochondrial Hsp70, also called mortalin, is of considerable importance for mitochondria biogenesis and the correct functioning of the cell machinery. In the mitochondrial matrix, mortalin acts in the importing and folding process of nucleus-encoded proteins. The in vivo deregulation of mortalin expression and/or function has been correlated with age-related diseases and certain cancers due to its interaction with the p53 protein. In spite of its critical biological roles, structural and functional studies on mortalin are limited by its insoluble recombinant production. This study provides the first report of the production of folded and soluble recombinant mortalin when co-expressed with the human Hsp70-escort protein 1, but it is still likely prone to self-association. The monomeric fraction of mortalin presented a slightly elongated shape and basal ATPase activity that is higher than that of its cytoplasmic counterpart Hsp70-1A, suggesting that it was obtained in the functional state. Through small angle X-ray scattering, we assessed the low-resolution structural model of monomeric mortalin that is characterized by an elongated shape. This model adequately accommodated high resolution structures of Hsp70 domains indicating its quality. We also observed that mortalin interacts with adenosine nucleotides with high affinity. Thermally induced unfolding experiments indicated that mortalin is formed by at least two domains and that the transition is sensitive to the presence of adenosine nucleotides and that this process is dependent on the presence of Mg2+ ions. Interestingly, the thermal-induced unfolding assays of mortalin suggested the presence of an aggregation/association event, which was not observed for human Hsp70-1A, and this finding may explain its natural tendency for in vivo aggregation. Our study may contribute to the structural understanding of mortalin as well as to contribute for its recombinant production for antitumor compound screenings.
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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