Cell state-specific cytoplasmic density controls spindle architecture and scaling

IF 17.3 1区 生物学 Q1 CELL BIOLOGY
Tobias Kletter, Omar Muñoz, Sebastian Reusch, Abin Biswas, Aliaksandr Halavatyi, Beate Neumann, Benno Kuropka, Vasily Zaburdaev, Simone Reber
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Abstract

Mitotic spindles are dynamically intertwined with the cytoplasm they assemble in. How the physicochemical properties of the cytoplasm affect spindle architecture and size remains largely unknown. Using quantitative biochemistry in combination with adaptive feedback microscopy, we investigated mitotic cell and spindle morphology during neural differentiation of embryonic stem cells. While tubulin biochemistry and microtubule dynamics remained unchanged, spindles changed their scaling behaviour; in differentiating cells, spindles were considerably smaller than those in equally sized undifferentiated stem cells. Integrating quantitative phase imaging, biophysical perturbations and theory, we found that as cells differentiated, their cytoplasm became more dilute. The concomitant decrease in free tubulin activated CPAP (centrosomal P4.1-associated protein) to enhance the centrosomal nucleation capacity. As a consequence, in differentiating cells, microtubule mass shifted towards spindle poles at the expense of the spindle bulk, explaining the differentiation-associated switch in spindle architecture. This study shows that cell state-specific cytoplasmic density tunes mitotic spindle architecture. Thus, we reveal physical properties of the cytoplasm as a major determinant in organelle size control.

Abstract Image

细胞状态特异性细胞质密度控制纺锤体结构和缩放
有丝分裂纺锤体与它们聚集的细胞质动态地交织在一起。细胞质的物理化学性质如何影响纺锤体的结构和大小仍然很大程度上是未知的。采用定量生化结合自适应反馈显微镜技术,研究了胚胎干细胞神经分化过程中有丝分裂细胞和纺锤体形态的变化。微管生物化学和微管动力学保持不变,纺锤体改变了它们的缩放行为;在分化细胞中,纺锤体比同等大小的未分化干细胞中的纺锤体小得多。结合定量相位成像、生物物理摄动和理论,我们发现随着细胞的分化,它们的细胞质变得更稀。游离小管蛋白的减少激活了CPAP(中心体p4.1相关蛋白),从而增强了中心体成核能力。因此,在分化细胞中,微管质量以牺牲纺锤体体积为代价向纺锤体极转移,这解释了纺锤体结构中与分化相关的开关。这项研究表明,细胞状态特异性的细胞质密度调节有丝分裂纺锤体结构。因此,我们揭示细胞质的物理特性是细胞器大小控制的主要决定因素。
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来源期刊
Nature Cell Biology
Nature Cell Biology 生物-细胞生物学
CiteScore
28.40
自引率
0.90%
发文量
219
审稿时长
3 months
期刊介绍: Nature Cell Biology, a prestigious journal, upholds a commitment to publishing papers of the highest quality across all areas of cell biology, with a particular focus on elucidating mechanisms underlying fundamental cell biological processes. The journal's broad scope encompasses various areas of interest, including but not limited to: -Autophagy -Cancer biology -Cell adhesion and migration -Cell cycle and growth -Cell death -Chromatin and epigenetics -Cytoskeletal dynamics -Developmental biology -DNA replication and repair -Mechanisms of human disease -Mechanobiology -Membrane traffic and dynamics -Metabolism -Nuclear organization and dynamics -Organelle biology -Proteolysis and quality control -RNA biology -Signal transduction -Stem cell biology
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