微纤维
纤维素
胞质分裂
细胞壁
突变体
ATP合酶
生物化学
次生细胞壁
生物
玫瑰花结(裂殖体外观)
生物物理学
化学
细胞生物学
细胞分裂
细胞
酶
基因
免疫学
作者
Eric M. Roberts,Kai Yuan,Arielle M. Chaves,Ethan T. Pierce,Rosalie Cresswell,R. Dupree,Xiaolan Yu,Richard L. Blanton,Shu‐Zon Wu,Magdalena Bezanilla,Paul Dupree,Candace H. Haigler,Alison W. Roberts
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2024-12-13
卷期号:10 (50): eadr5188-eadr5188
被引量:3
标识
DOI:10.1126/sciadv.adr5188
摘要
Similar to cellulose synthases (CESAs), cellulose synthase-like D (CSLD) proteins synthesize β-1,4-glucan in plants. CSLDs are important for tip growth and cytokinesis, but it was unknown whether they form membrane complexes in vivo or produce microfibrillar cellulose. We produced viable CESA-deficient mutants of the moss Physcomitrium patens to investigate CSLD function without interfering CESA activity. Microscopy and spectroscopy showed that CESA-deficient mutants synthesize cellulose microfibrils that are indistinguishable from those in vascular plants. Correspondingly, freeze-fracture electron microscopy revealed rosette-shaped particle assemblies in the plasma membrane that are indistinguishable from CESA-containing rosette cellulose synthesis complexes (CSCs). Our data show that proteins other than CESAs, most likely CSLDs, produce cellulose microfibrils in P. patens protonemal filaments. The data suggest that the specialized roles of CSLDs in cytokinesis and tip growth are based on differential expression and different interactions with microtubules and possibly Ca2+, rather than structural differences in the microfibrils they produce.
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