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Pascoa, T.

Publications and source records attributed to Pascoa, T..

2 recordsLinked to original sources

The anaerobic cryo-EM structure of the methanogenic Mtr complex reveals a nitrogenase-like cluster bound to its active site

Methanogenic archaea conserve energy by coupling methyl-group transfer to the generation of a chemiosmotic sodiumion (Na+) gradient. This central energy-conserving step is catalyzed by the membrane-bound N5-methyl-H4MPT:coenzyme M methyltransferase (Mtr). Here, we present high-resolution cryo-electron microscopy structures of the Mtr complex from Methanosarcina mazei determined under strictly anaerobic conditions. The structures reveal an unexpected, electron-dense metallocluster embedded within the central cavity of the MtrCDE trimer in the membrane plane. Based on the unique topology and density we modeled it as an [Fe8S9C] L-type cluster. It is positioned adjacent to both the coenzyme M substrate and the corrinoid cofactor of MtrA in the MtrA-MtrCDE engaged state, thereby being located right at the catalytic core of the enzyme. We could further show that binding of MtrA to MtrCDE triggers rearrangements within the interface of MtrDE that widen a putative ion-conduction pathway. The proximity of the conserved sodium-binding site to the catalytic center suggests a putative link between methyl-transfer chemistry and Na+ translocation. In a broader context, these findings improve our understanding of how methyl transfer, analogous to redox chemistry, can drive chemiosmotic energy conversion.

biochemistry↗

Structure of the energy converting methyltransferase (Mtr) of Methanosarcina mazei in complex with an oxygen-stress responsive small protein

Methanogenic archaea contribute 1-2 Gt of methane annually, impacting both global carbon cycling and climate. Central to their energy metabolism is a membrane-bound, sodium-translocating methyltransferase complex: the N-tetrahydromethanopterin:CoM-S-methyltransferase (Mtr complex), which catalyzes the methyl transfer between two methanogen specific cofactors. This exergonic methyl transfer step is coupled with a vectorial sodium ion transport from the cytoplasm to the cell exterior and is the only energy conserving step in hydrogenotrophic methanogenesis. Here, we present a 2.1 [A] single-particle cryo-EM structure of the full Mtr complex from Methanosarcina mazei. Our structural model encompasses the entire complex, reveals the arrangement of archaeal phospholipids, the architecture of the sodium ion binding site, and the structure and interactions of all catalytic subunits. Most strikingly, we discover and characterize MtrI, a previously unannotated small open reading frame (small ORF), encoded protein (<100 aa) conserved across the order of Methanosarcinales. MtrI binds to the cytoplasmic domain of MtrA in response to oxygen exposure, suggesting a role in oxygen stress response and protection. By binding on top of the sodium channel and anchoring to the cobamide cofactor in MtrAs cytoplasmic domain, MtrI might prevent sodium leakage and inhibit MtrA-CoM turnover. These findings offer new insights into methanogen energy conservation and uncover a potential adaptive response to oxygen exposure, expanding our understanding of methanogen survival strategies under oxidative stress.

biochemistry↗