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06/24/2021 13:23

Membrane proteins of bacteria and humans show surprising similarities

Kathrin Voigt Kommunikation und Presse
Johannes Gutenberg-Universität Mainz

    Research cooperation uncovers structure and function of PspA and discovers evolutionary link of a bacterial protein to human ESCRT-III proteins

    JOINT PRESS RELEASE OF FORSCHUNGSZENTRUM JÜLICH AND JOHANNES GUTENBERG UNIVERSITY MAINZ

    The cells of simple organisms, such as bacteria, as well as human cells are surrounded by a membrane, which fulfills various tasks including protecting the cell from stress. In a joint project, teams from Johannes Gutenberg University Mainz (JGU) and Forschungszentrum Jülich, with participation of Heinrich Heine University Düsseldorf (HHU), have now discovered that a membrane protein found in bacteria has a similar structure and function as a group of proteins that are responsible for remodeling and rebuilding the cell membrane in humans. No connection between the two protein groups was known before. The team's research work has been published recently in the renowned journal "Cell".

    PspA plays a key role in bacterial stress response

    The phage shock protein (Psp) system was discovered in bacteria approximately 30 years ago. At the time, it was identified to be a response of Escherichia coli bacteria to infection with special viruses called bacteriophages. Later it became clear that its function in protecting the cell membrane exceeds the specific response to bacteriophage infection. Osmotic stress, heat, cell toxins, or defects in the membrane envelope can also trigger the stress reaction.

    "Today, we know that the Psp system is activated in response to numerous types of membrane stress. However, several molecular details still remain puzzling," explained Professor Dirk Schneider, head of the Membrane Proteins group at JGU. "That’s why we decided to take a closer look at core proteins of the Psp system." Together with his team, he has recently discovered how the Psp representative IM30 forms a protective carpet-like structure on a cell membrane in order to cope with membrane stress.

    In their new work, the scientists scrutinized the phage shock protein A (PspA), which has a key role in the Psp system. Specifically, by using cryo-electron microscopy, it became visible how PspA forms long, spiral-shaped tubes that can enclose a biomembrane in the inner cavity. The high-resolution images now show for the very first time how PspA dissolves individual membranes locally and then reshapes them into larger units or even mediates the formation of new membrane structures.

    "Thousands of PspA building blocks can be assembled to form large helical structures. Therefore, they are an ideal research object for our cryo-electron microscopic structural analysis," said Professor Carsten Sachse from Forschungszentrum Jülich and HHU Düsseldorf. The studies were performed at Jülich together with Dr. Benedikt Junglas, a former doctoral student of Professor Dirk Schneider at JGU. At the Ernst Ruska-Centre for Microscopy and Spectroscopy with Electrons (ER-C), Forschungszentrum Jülich operates some of the most powerful electron microscopes in Europe and, as of recently, cryo-microscopes for the study of flash-frozen biological samples.

    PspA remodels membranes

    Under the microscope, the researchers were able to recognize or – in jargon – "resolve" the structure of PspA. The structure of a protein is essential for its function and a defect in the structure can impair the protein function. "Under the microscope, we realized that PspA has a structure similar to ESCRT-III proteins, which our laboratory had already been working on. This came as a complete surprise and showed how important it is to elucidate protein structures in detail," said Sachse. "After billions of years, the two groups of proteins have genetically diverged so far that their similarities could only be detected based on their structure."

    ESCRT-III proteins are found in all living organisms with a true cell nucleus, including human cells. Here, the ESCRT-III protein complexes are involved in cell membrane remodeling and repair but also play a key role in a number of other cell processes. In bacteria, no proteins of the ESCRT-III family were previously known. "Therefore, PspA and ESCRT-III belong to the same group of proteins. These two perform similar tasks at membranes inside of cells," said Schneider.

    "Based on the similar structural and functional properties of PspA and the eukaryotic ESCRT-III proteins, we have identified PspA as a bacterial member of the evolutionarily conserved ESCRT-III superfamily of membrane remodeling proteins," the authors wrote in their article for "Cell".

    Images:
    https://download.uni-mainz.de/presse/09_chemie_PspA_cryo-electron_microscopic_st...
    Atomic cryo-electron microscopic structure of PspA: The elongated molecule is the basic building block of a helical nanorod (left). The grey-scale cryo-electron microscopic micrograph and a schematic model show a lipid-incorporating PspA tube.
    Ill./©: Benedikt Junglas, Dirk Schneider, Carsten Sachse

    https://download.uni-mainz.de/presse/09_chemie_PspA_spiral_ring_structure.jpg
    PspA spiral ring structure
    Ill./©: Benedikt Junglas, Dirk Schneider, Carsten Sachse

    https://download.uni-mainz.de/presse/09_chemie_membrane_proteins.jpg
    Structural similarities between different membrane proteins
    Ill./©: Benedikt Junglas, Dirk Schneider, Carsten Sachse

    Related links:
    https://www.blogs.uni-mainz.de/fb09-schneider/ – Membrane Proteins group at the JGU Department of Chemistry ;
    https://www.fz-juelich.de/portal/EN/ – Forschungszentrum Jülich ;
    http://www.fz-juelich.de/er-c/er-c-3 – Structural Biology (ER-C-3) group at the Ernst Ruska-Centre for Microscopy and Spectroscopy with Electrons at Forschungszentrum Jülich ;
    https://www.mpgc-mainz.de/ – Max Planck Graduate Center with Johannes Gutenberg University Mainz

    Read more:
    https://www.uni-mainz.de/presse/aktuell/12377_ENG_HTML.php – press release "Protective shield: A membrane-attached protein protects bacteria and chloroplasts from stress" (23 Oct. 2020) ;
    https://fz-juelich.de/SharedDocs/Pressemitteilungen/UK/EN/2020/notifications/202... – Forschungszentrum Jülich: "Cryo-Electron Microscopy Makes Structure of Important Membrane-deforming Proteins Visible" (19 Aug. 2020) ;
    https://www.uni-mainz.de/presse/18298_ENG_HTML.php – press release "Fusion protein controls design of photosynthesis platform" (13 May 2015)


    Contact for scientific information:

    Professor Dr. Dirk Schneider
    Membrane Proteins group
    Department of Chemistry
    Johannes Gutenberg University Mainz
    55099 Mainz
    phone: +49 6131 39-25833
    e-mail: dirk.schneider@uni-mainz.de
    https://www.blogs.uni-mainz.de/fb09-schneider/prof-dirk-schneider/

    Professor Dr. Carsten Sachse
    Structural Biology (ER-C-3)
    Ernst Ruska-Centre for Microscopy and Spectroscopy with Electrons
    Forschungszentrum Jülich
    phone: +49 2461 61-2030
    e-mail: c.sachse@fz-juelich.de
    http://sachse.fz-juelich.de


    Original publication:

    B. Junglas et al., PspA adopts an ESCRT-III-like fold and remodels bacterial membranes, Cell, 23 June 2021,
    DOI: 10.1016/j.cell.2021.05.042
    https://www.cell.com/cell/fulltext/S0092-8674(21)00697-8


    Images

    Criteria of this press release:
    Journalists, Scientists and scholars, all interested persons
    Biology, Chemistry, Medicine
    transregional, national
    Research results, Scientific Publications
    English


     

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