bioRxiv · 10.1101/2021.04.06.438750
Chained structure of dimeric F1-like ATPase in Mycoplasma mobile gliding machinery
Abstract
Mycoplasma mobile, a fish pathogen, exhibits gliding motility using ATP hydrolysis on solid surfaces, including animal cells. The gliding machinery can be divided into surface and internal structures. The internal structure of the motor is composed of 28 so-called chains that are each comprised of 17 repeating protein units called particles. These proteins include homologs of the catalytic - and {beta}-subunits of F1-ATPase. In this study, we isolated the particles and determined their structures using negative-staining electron microscopy and high-speed atomic force microscopy. The isolated particles were composed of five proteins, MMOBs 1660 (-subunit homolog), 1670 ({beta}-subunit homolog), 1630, 1620, and 4530, and showed ATP hydrolyzing activity. The 2D structure, with dimensions of 35 and 26 nm, showed a hexameric ring dimer about 12 nm in diameter, resembling F1-ATPase catalytic ({beta})3. We isolated the F1-like ATPase unit, which is composed of MMOBs 1660, 1670, and 1630. Furthermore, we isolated the chain and analyzed the 3D structure, showing that dimers of mushroom-like structures resembling F1-ATPase were connected and aligned along the dimer axis at 31 nm intervals. An atomic model of F1-ATPase catalytic ({beta})3 from Bacillus PS3 was successfully fitted to each hexameric ring of the mushroom-like structure. These results suggest that the motor for M. mobile gliding shares an evolutionary origin with F1-ATPase. Based on the obtained structure, we propose possible force transmission processes in the gliding mechanism. IMPORTANCEF1Fo- ATPase, a rotary ATPase, is widespread in the membranes of mitochondria, chloroplasts, and bacteria, and converts ATP energy with a proton motive force across the membrane by its physical rotation. Homologous protein complexes play roles in ion and protein transport. Mycoplasma mobile, a pathogenic bacterium, was recently suggested to have a special motility system evolutionarily derived from F1-ATPase. The present study isolated the protein complex from Mycoplasma cells and supported this conclusion by clarifying the detailed structures containing common and novel features as F1-ATPase relatives.
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Toyonaga, T., Kato, T., Kawamoto, A., Kodera, N., Hamaguchi, T., Tahara, Y. O., Ando, T., Namba, K., Miyata, M.. 2021-04-08. Chained structure of dimeric F1-like ATPase in Mycoplasma mobile gliding machinery. https://doi.org/10.1101/2021.04.06.438750
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