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Global analysis of aging-related protein structural changes uncovers enzyme polymerization-based control of longevity

Jurgita Paukštytė, Rosa María López Cabezas, Yuehan Feng, Kai Tong, Daniela Schnyder, Ellinoora Elomaa, View ORCID ProfilePavlina Gregorova, Matteo Doudin, Meeri Särkkä, Jesse Sarameri, Alice Lippi, Helena Vihinen, Juhana Juutila, Anni Nieminen, Petri Törönen, Liisa Holm, Eija Jokitalo, Anita Krisko, Juha Huiskonen, View ORCID ProfileL. Peter Sarin, Ville Hietakangas, Paola Picotti, Yves Barral, Juha Saarikangas
doi: https://doi.org/10.1101/2023.01.23.524173
Jurgita Paukštytė
1Helsinki Institute of Life Science, HiLIFE, University of Helsinki; Helsinki, Finland
2Faculty of Biological and Environmental Sciences University of Helsinki; Helsinki, Finland
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Rosa María López Cabezas
1Helsinki Institute of Life Science, HiLIFE, University of Helsinki; Helsinki, Finland
2Faculty of Biological and Environmental Sciences University of Helsinki; Helsinki, Finland
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Yuehan Feng
3Institute of Biochemistry, ETH Zurich; Zurich, Switzerland
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Kai Tong
1Helsinki Institute of Life Science, HiLIFE, University of Helsinki; Helsinki, Finland
2Faculty of Biological and Environmental Sciences University of Helsinki; Helsinki, Finland
4School of Biological Sciences, Georgia Institute of Technology; Atlanta, Georgia, United States
5Interdisciplinary Graduate Program in Quantitative Biosciences, Georgia Institute of Technology; Atlanta, Georgia, United States
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Daniela Schnyder
3Institute of Biochemistry, ETH Zurich; Zurich, Switzerland
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Ellinoora Elomaa
1Helsinki Institute of Life Science, HiLIFE, University of Helsinki; Helsinki, Finland
2Faculty of Biological and Environmental Sciences University of Helsinki; Helsinki, Finland
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Pavlina Gregorova
2Faculty of Biological and Environmental Sciences University of Helsinki; Helsinki, Finland
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  • ORCID record for Pavlina Gregorova
Matteo Doudin
1Helsinki Institute of Life Science, HiLIFE, University of Helsinki; Helsinki, Finland
2Faculty of Biological and Environmental Sciences University of Helsinki; Helsinki, Finland
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Meeri Särkkä
1Helsinki Institute of Life Science, HiLIFE, University of Helsinki; Helsinki, Finland
2Faculty of Biological and Environmental Sciences University of Helsinki; Helsinki, Finland
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Jesse Sarameri
1Helsinki Institute of Life Science, HiLIFE, University of Helsinki; Helsinki, Finland
2Faculty of Biological and Environmental Sciences University of Helsinki; Helsinki, Finland
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Alice Lippi
6Department of Experimental Neurodegeneration, University Medical Center Göttingen; Göttingen, Germany
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Helena Vihinen
7Institute of Biotechnology, HiLIFE, University of Helsinki; Helsinki, Finland
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Juhana Juutila
2Faculty of Biological and Environmental Sciences University of Helsinki; Helsinki, Finland
7Institute of Biotechnology, HiLIFE, University of Helsinki; Helsinki, Finland
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Anni Nieminen
2Faculty of Biological and Environmental Sciences University of Helsinki; Helsinki, Finland
7Institute of Biotechnology, HiLIFE, University of Helsinki; Helsinki, Finland
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Petri Törönen
2Faculty of Biological and Environmental Sciences University of Helsinki; Helsinki, Finland
7Institute of Biotechnology, HiLIFE, University of Helsinki; Helsinki, Finland
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Liisa Holm
2Faculty of Biological and Environmental Sciences University of Helsinki; Helsinki, Finland
7Institute of Biotechnology, HiLIFE, University of Helsinki; Helsinki, Finland
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Eija Jokitalo
7Institute of Biotechnology, HiLIFE, University of Helsinki; Helsinki, Finland
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Anita Krisko
6Department of Experimental Neurodegeneration, University Medical Center Göttingen; Göttingen, Germany
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Juha Huiskonen
7Institute of Biotechnology, HiLIFE, University of Helsinki; Helsinki, Finland
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L. Peter Sarin
2Faculty of Biological and Environmental Sciences University of Helsinki; Helsinki, Finland
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  • ORCID record for L. Peter Sarin
Ville Hietakangas
2Faculty of Biological and Environmental Sciences University of Helsinki; Helsinki, Finland
7Institute of Biotechnology, HiLIFE, University of Helsinki; Helsinki, Finland
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Paola Picotti
3Institute of Biochemistry, ETH Zurich; Zurich, Switzerland
8Institute of Molecular Systems Biology, ETH Zurich; Zurich, Switzerland
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Yves Barral
3Institute of Biochemistry, ETH Zurich; Zurich, Switzerland
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Juha Saarikangas
1Helsinki Institute of Life Science, HiLIFE, University of Helsinki; Helsinki, Finland
2Faculty of Biological and Environmental Sciences University of Helsinki; Helsinki, Finland
7Institute of Biotechnology, HiLIFE, University of Helsinki; Helsinki, Finland
9Neuroscience Center, HiLIFE, University of Helsinki; Helsinki, Finland
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  • For correspondence: juha.saarikangas@helsinki.fi
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Abstract

Aging is associated with progressive phenotypic changes over time. Virtually all cellular phenotypes are produced by proteins and structural alterations in proteins can lead to age-related diseases. Nonetheless, comprehensive knowledge of proteins undergoing structural-functional changes during cellular aging and their contribution to age-related phenotypes is lacking. Here, we conducted proteome-wide analysis of early age-related protein structural changes in budding yeast using limited proteolysis-mass spectrometry. The results, compiled in online ProtAge-catalog, unravelled age-related functional changes in regulators of translation, protein folding and amino acid metabolism. Mechanistically, we found that folded glutamate synthase Glt1 polymerizes into supramolecular self-assemblies during aging causing breakdown of cellular amino acid homeostasis. Inhibiting Glt1 polymerization by mutating the polymerization interface restored amino acid levels in aged cells, attenuated mitochondrial dysfunction and led to life span extension. Altogether, this comprehensive map of protein structural changes enables identifying novel mechanisms of age-related phenotypes and offers opportunities for their reversal.

Competing Interest Statement

P.P. is a scientific advisor for the company Biognosys AG (Zurich, Switzerland) and PP and YF are inventors of a patent licensed by Biognosys AG that covers the LiP-MS method used in this manuscript.

Copyright 
The copyright holder for this preprint is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. All rights reserved. No reuse allowed without permission.
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Posted January 23, 2023.
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Global analysis of aging-related protein structural changes uncovers enzyme polymerization-based control of longevity
Jurgita Paukštytė, Rosa María López Cabezas, Yuehan Feng, Kai Tong, Daniela Schnyder, Ellinoora Elomaa, Pavlina Gregorova, Matteo Doudin, Meeri Särkkä, Jesse Sarameri, Alice Lippi, Helena Vihinen, Juhana Juutila, Anni Nieminen, Petri Törönen, Liisa Holm, Eija Jokitalo, Anita Krisko, Juha Huiskonen, L. Peter Sarin, Ville Hietakangas, Paola Picotti, Yves Barral, Juha Saarikangas
bioRxiv 2023.01.23.524173; doi: https://doi.org/10.1101/2023.01.23.524173
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Global analysis of aging-related protein structural changes uncovers enzyme polymerization-based control of longevity
Jurgita Paukštytė, Rosa María López Cabezas, Yuehan Feng, Kai Tong, Daniela Schnyder, Ellinoora Elomaa, Pavlina Gregorova, Matteo Doudin, Meeri Särkkä, Jesse Sarameri, Alice Lippi, Helena Vihinen, Juhana Juutila, Anni Nieminen, Petri Törönen, Liisa Holm, Eija Jokitalo, Anita Krisko, Juha Huiskonen, L. Peter Sarin, Ville Hietakangas, Paola Picotti, Yves Barral, Juha Saarikangas
bioRxiv 2023.01.23.524173; doi: https://doi.org/10.1101/2023.01.23.524173

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