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Wendler, P.

Publications and source records attributed to Wendler, P..

2 recordsLinked to original sources

Cryo-EM insight into hydrogen positions and water networks in photosystem II

Photosystem II starts the photosynthetic electron transport chain that converts solar energy into chemical energy and thereby sustains life on Earth. It catalyzes two chemical reactions, plastoquinone reduction and water oxidation to molecular oxygen, which both are performed at sequestered sites. While it is known that proton-coupled electron transfer is crucial for these processes, the molecular details have remained speculative due to incomplete structural data. Thus, we collected high-resolution cryo-EM data of photosystem II from Thermosynechococcus vestitus. The advanced structure (1.71 [A]) reveals several previously unditected occupied water binding sites and more than half of the hydrogen and proton positions of the protein. This unprecedented insight into the structure of photosystem II significantly enhances our understanding of its intricate protein-water-cofactor interactions enabling solar-driven catalysis. One sentence summaryCryo-EM structure of PSII at 1.71 [A] resolution reveals over 50% of hydrogen and proton sites and additional water binding sites, aiding catalytic insight.

biochemistry↗

Remorin proteins serve as membrane topology scaffolds in plants

Organization of membrane topologies in plants has so far been mainly attributed to the cell wall and the cytoskeleton. Taking rhizobial infections of legume root cells, where plasma membranes undergo dynamic and large-scale topology changes, as an initial model, we challenged this paradigm and tested whether additional scaffolds such as plant-specific remorins that accumulate on highly curved and often wall-less plasma membrane domains, control local membrane dynamics. Indeed, loss-of-function mutants of the remorin protein SYMREM1 failed to develop stabilized membrane tubes as found in colonized cells in wild-type plants, but released empty membrane spheres instead. Expression of this and other remorins in wall-less protoplasts allowed engineering different membrane topologies ranging from membrane blebs to long membrane tubes. Reciprocally, mechanically induced membrane indentations were equally stabilized by SYMREM1. This function is likely supported by remorin oligomerization into antiparallel dimers and the formation of higher order membrane scaffolding structures. Taken together we describe an evolutionary confined mechanism that allows the stabilization of large-scale membrane conformations and curvatures in plants. One-sentence summaryThe remorin SYMREM1 evolved as structural membrane scaffold that stabilizes membrane tubulation and curvature during symbiotic intracellular infections.

plant biology↗