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Intermolecular Interactions between a Membrane Protein and a Glycolipid Essential for Membrane Protein Integration. | LitMetric

AI Article Synopsis

  • Inducing proteins into their proper locations is crucial for all organisms, and this process involves protein factors like Sec translocons and YidC, as well as the glycolipid MPIase.
  • The study highlighted that a simplified version of MPIase, called mini-MPIase-3, retains key integration features, and using various physicochemical methods, researchers analyzed how MPIase interacts with the Pf3 coat protein.
  • Results showed that the structure of MPIase, particularly its sugar chain and specific functional groups, significantly influences its ability to bind to and integrate membrane proteins, revealing the detailed mechanisms behind this biological process.

Article Abstract

Inducing newly synthesized proteins to appropriate locations is an indispensable biological function in every organism. Integration of proteins into biomembranes in is mediated by proteinaceous factors, such as Sec translocons and an insertase YidC. Additionally, a glycolipid named MPIase (membrane protein integrase), composed of a long sugar chain and pyrophospholipid, was proven essential for membrane protein integration. We reported that a synthesized minimal unit of MPIase possessing only one trisaccharide, mini-MPIase-3, involves an essential structure for the integration activity. Here, to elucidate integration mechanisms using MPIase, we analyzed intermolecular interactions of MPIase or its synthetic analogs with a model substrate, the Pf3 coat protein, using physicochemical methods. Surface plasmon resonance (SPR) analyses revealed the importance of a pyrophosphate for affinity to the Pf3 coat protein. Compared with mini-MPIase-3, natural MPIase showed faster association and dissociation due to its long sugar chain despite the slight difference in affinity. To focus on more detailed MPIase substructures, we performed docking simulations and saturation transfer difference-nuclear magnetic resonance. These experiments yielded that the 6--acetyl group on glucosamine and the phosphate of MPIase play important roles leading to interactions with the Pf3 coat protein. The high affinity of MPIase to the hydrophobic region and the basic amino acid residues of the protein was suggested by docking simulations and proven experimentally by SPR using protein mutants devoid of target regions. These results demonstrated the direct interactions of MPIase with a substrate protein and revealed detailed mechanisms of membrane protein integration.

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Source
http://dx.doi.org/10.1021/acschembio.1c00882DOI Listing

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