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衣藻早期胚胎细胞分裂的分子和细胞动力学。

Molecular and cellular dynamics of early embryonic cell divisions in Volvox carteri.

机构信息

Department of Cellular and Developmental Biology of Plants, University of Bielefeld, Universitätsstr. 25, 33615 Bielefeld, Germany.

出版信息

Plant Cell. 2022 Mar 29;34(4):1326-1353. doi: 10.1093/plcell/koac004.

Abstract

Cell division is fundamental to all organisms and the green alga used here exhibits both key animal and plant functions. Specifically, we analyzed the molecular and cellular dynamics of early embryonic divisions of the multicellular green alga Volvox carteri (Chlamydomonadales). Relevant proteins related to mitosis and cytokinesis were identified in silico, the corresponding genes were cloned, fused to yfp, and stably expressed in Volvox, and the tagged proteins were studied by live-cell imaging. We reveal rearrangements of the microtubule cytoskeleton during centrosome separation, spindle formation, establishment of the phycoplast, and generation of previously unknown structures. The centrosomes participate in initiation of spindle formation and determination of spindle orientation. Although the nuclear envelope does not break down during early mitosis, intermixing of cytoplasm and nucleoplasm results in loss of nuclear identity. Finally, we present a model for mitosis in Volvox. Our study reveals enormous dynamics, clarifies spatio-temporal relationships of subcellular structures, and provides insight into the evolution of cell division.

摘要

细胞分裂是所有生物的基础,这里使用的绿藻同时表现出关键的动物和植物功能。具体来说,我们分析了多细胞绿藻衣藻(Chlamydomonadales)早期胚胎分裂的分子和细胞动力学。通过计算机分析确定了与有丝分裂和胞质分裂相关的相关蛋白质,克隆了相应的基因,与 yfp 融合,并在衣藻中稳定表达,并通过活细胞成像研究了标记蛋白。我们揭示了中心体分离、纺锤体形成、叶绿体形成和以前未知结构产生过程中微管细胞骨架的重排。中心体参与纺锤体形成的启动和纺锤体方向的确定。尽管核膜在早期有丝分裂过程中没有破裂,但细胞质和核质的混合导致核身份的丧失。最后,我们提出了衣藻有丝分裂的模型。我们的研究揭示了巨大的动态性,阐明了亚细胞结构的时空关系,并深入了解了细胞分裂的进化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8d3f/9026201/b9dd99915a63/koac004f1.jpg

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