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Schuller, J. M.

Publications and source records attributed to Schuller, J. M..

3 recordsLinked to original sources

Structure-based electron-confurcation mechanism of the Ldh-EtfAB complex

Lactate oxidation with NAD+ as electron acceptor is a highly endergonic reaction and some anaerobic bacteria overcome the energetic hurdle by flavin-based electron bifurcation/confurcation (FBEB/FBEC) using a lactate dehydrogenase (Ldh) in concert with the electron transferring proteins EtfA and EtfB. The electron cryo-microscopically (cryo-EM) characterized (Ldh-EtfAB)2 complex of Acetobacterium woodii at 2.43 [A] resolution consists of a mobile EtfAB shuttle located between the rigid central Ldh and the peripheral EtfAB base units. The FADs of Ldh and the EtfAB shuttle contact each other thereby forming the D (dehydrogenase conducting) state. The intermediary Asp37 and Asp139 may harmonize the redox potentials between the FADs and the pyruvate/lactate pair crucial for FBEC. A plausible novel B (bifurcation conducting) state with the EtfAB base and shuttle FADs in a productive electron transfer distance was derived by integrating Alphafold2 calculations. Kinetic analysis of enzyme variants shed light on the connection between NAD binding/release and D-to-B state transition. The FBEC inactivity when truncating the ferredoxin domain of EtfA substantiates its role as redox relay. Lactate oxidation in Ldh is based on the catalytic base His423 and a metal center. On this basis, a comprehensive catalytic mechanism of the FBEC process was outlined.

biochemistry↗

How to build a water-splitting machine: structural insights into photosystem II assembly

Biogenesis of photosystem II (PSII), natures water splitting catalyst, is assisted by auxiliary proteins that form transient complexes with PSII components to facilitate stepwise assembly events. Using cryo-electron microscopy, we solved the structure of such a PSII assembly intermediate with 2.94 [A] resolution. It contains three assembly factors (Psb27, Psb28, Psb34) and provides detailed insights into their molecular function. Binding of Psb28 induces large conformational changes at the PSII acceptor side, which distort the binding pocket of the mobile quinone (QB) and replace bicarbonate with glutamate as a ligand of the non-heme iron, a structural motif found in reaction centers of non-oxygenic photosynthetic bacteria. These results reveal novel mechanisms that protect PSII from damage during biogenesis until water splitting is activated. Our structure further demonstrates how the PSII active site is prepared for the incorporation of the Mn4CaO5 cluster, which performs the unique water splitting reaction. One Sentence HighlightThe high-resolution Cryo-EM structure of the photosystem II assembly intermediate PSII-I reveals how natures water splitting catalyst is assembled, protected and prepared for photoactivation by help of the three assembly factors Psb27, Psb28 and Psb34.

plant biology↗

Structural basis for VIPP1 oligomerization and maintenance of thylakoid membrane integrity

Vesicle-inducing protein in plastids (VIPP1) is essential for the biogenesis and maintenance of thylakoid membranes, which transform light into life. However, it is unknown how VIPP1 performs its vital membrane-shaping function. Here, we use cryo-electron microscopy to determine structures of cyanobacterial VIPP1 rings, revealing how VIPP1 monomers flex and interweave to form basket-like assemblies of different symmetries. Three VIPP1 monomers together coordinate a non-canonical nucleotide binding pocket that is required for VIPP1 oligomerization. Inside the rings lumen, amphipathic helices from each monomer align to form large hydrophobic columns, enabling VIPP1 to bind and curve membranes. In vivo point mutations in these hydrophobic surfaces cause extreme thylakoid swelling under high light, indicating an essential role of VIPP1 lipid binding in resisting stress-induced damage. Our study provides a structural basis for understanding how the oligomerization of VIPP1 drives the biogenesis of thylakoid membranes and protects these life-giving membranes from environmental stress.

plant biology↗