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Mase, H.

Publications and source records attributed to Mase, H..

2 recordsLinked to original sources

High resolution mapping of the actin fusion focus reveals myosin V-dependent transport of formin for actin aster compaction

Many cellular processes such as polarized growth and secretion require the formation of specific actin networks. In fungi, the morphogenetic process of cell-cell fusion requires cell wall digestion mediated by the local secretion of lytic enzymes at the site of cell-cell contact. In Schizosaccharomyces pombe, lytic enzyme-containing secretory vesicles are transported by the myosin V Myo52 on the actin fusion focus, an aster-like actin network assembled by the condensate-forming formin Fus1. The fusion focus also concentrates proteins regulating cell polarity, cell-cell communication, actin cytoskeleton, exocytosis and membrane merging, but their precise position from the time of focus formation to cell fusion is unknown. Here, using centroid tracking and averaging, we present a first spatiotemporal map of the fusion site with a precision of 8 nm. We show that the bulk of secretory vesicles remains at constant distance from the plasma membrane as the actin structure condenses. Notably, though necessary to transport vesicles, Myo52 detaches from the vesicle pool and colocalizes with Fus1 in a more membrane-proximal position. We show that Myo52 physically interacts with Fus1 and transports it along actin filaments, and that Myo52 and Fus1 actin assembly activity contribute to focus compaction. Thus, myosin V-driven transport of the formin Fus1 along actin filaments nucleated by other Fus1 molecules underlies a positive feedback mechanism for actin aster formation.

cell biology↗

Overexpression of NIMA-related kinase suppresses cell proliferation and tip growth in a liverwort Marchantia polymorpha

NIMA-related kinases (NEKs) regulate a series of mitotic events in fungi and animals, whereas plant NEKs regulate growth direction of cells and organs. The liverwort Marchantia polymorpha has a single functional MpNEK1 gene, whose knockout leads to twisted growth of rhizoids. MpNEK1 is also expressed in the meristem of vegetative flat organ, thallus, while its function remains unknown. Here, we generated transgenic lines for the inducible expression of MpNEK1 using an estrogen receptor mediated system. Estradiol treatment efficiently induced the accumulation of MpNEK1 mRNA and MpNEK1-Citrine fusion protein throughout plant body. Overexpression of MpNEK1 severely suppressed growth of rhizoids and thalli, eventually causing the lethality of juvenile plants. The effect of estradiol was reversible until 3 days, whereas 7-days treatment resulted in irreversible suppression of growth. This severe effect was observed even at the nanomolar level of estradiol. EdU staining and microtubule imaging clearly indicated the suppression of cell proliferation by estradiol-induced MpNEK1. Unexpectedly, the overexpression of kinase-deficient MpNEK1 also suppressed thallus growth and rhizoid formation, despite their slightly mild effect than the full length MpNEK1, indicating phosphorylation-independent mechanism of growth suppression. In conclusion, overexpression of MpNEK1 suppresses cell division and elongation, leading to growth cessation and lethality. Our results imply that the expression of MpNEK1 is tightly regulated and plant NEKs might control cell division as in fungi and animals.

plant biology↗