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A complete picture of how signaling pathways lead to multicellularity is largely unknown. Previously, we generated mutations in a protein prenylation enzyme, GGB, and showed that it is essential for maintaining multicellularity in the moss Physcomitrium patens. Here, we show that ROP GTPases act as downstream factors that are prenylated by GGB and themselves play an important role in the multicellularity of P. patens. We also show that the loss of multicellularity caused by the suppression of GGB or ROP GTPases is due to uncoordinated cell expansion, defects in cell wall integrity and the disturbance of the directional control of cell plate orientation. Expressing prenylatable ROP in the ggb mutant not only rescues multicellularity in protonemata but also results in development of gametophores. Although the prenylation of ROP is important for multicellularity, a higher threshold of active ROP is required for gametophore development. Thus, our results suggest that ROP activation via prenylation by GGB is a key process at both cell and tissue levels, facilitating the developmental transition from one dimension to two dimensions and to three dimensions in P. patens.
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http://dx.doi.org/10.1242/dev.200279 | DOI Listing |
Commun Chem
June 2025
Department of Physics, University of Wisconsin-Milwaukee, Milwaukee, WI, USA.
Myxobacteria are non-photosynthetic, soil-dwelling bacteria distinguished by a multicellular stage in their life cycle known as fruiting bodies that are stimulated by light. Myxobacterial phytochromes are candidates for the perception of red-light. The mechanism how light is perceived and converted to a physiological response is unknown.
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Faculty of Science, Hokkaido University, Sapporo, Hokkaido 060-0810, Japan.
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Advanced Solutions Life Sciences, 500 N Commercial St., Manchester, NH, 03101, USA.
With interest growing in modeling more complex aspects of human disease in the laboratory, the need for effectively vascularizing human tissue models is becoming paramount. However, fully recreating human tissue microvasculatures is challenging given the multicellular complexity of the microvessel and microvessel-tissue interplay. Importantly, effective models should capture the dynamic activity of the perivascular cells of the perivascular niche, which are critical to tissue hemostasis and function.
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October 2024
State Key Laboratory for Protein and Plant Gene Research, School of Life Sciences, Peking University, Beijing, 100871, China.
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December 2024
Faculty of Natural Sciences, Department of Plant Physiology, Comenius University in Bratislava, Bratislava, Slovak Republic.
The CLAVATA pathway plays a key role in the regulation of multicellular shoot and root meristems in flowering plants. In Arabidopsis, CLAVATA 3-like signaling peptides (CLEs) act via receptor-like kinases CLAVATA 1 and CRINKLY 4 (CR4). In the moss , PpCLAVATA and PpCR4 were previously studied independently and shown to play conserved roles in the regulation of cell proliferation and differentiation.
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