Department of Biological Sciences, Purdue University, West Lafayette, Indiana 47907-2064.
Department of Biological Sciences, Purdue University, West Lafayette, Indiana 47907-2064
Plant Physiol. 2019 Apr;179(4):1537-1555. doi: 10.1104/pp.19.00018. Epub 2019 Jan 31.
In plants, cellulose is synthesized at the cell surface by plasma membrane (PM)-localized cellulose synthase (CESA) complexes (CSCs). The molecular and cellular mechanisms that underpin delivery of CSCs to the PM, however, are poorly understood. Cortical microtubules have been shown to interact with CESA-containing compartments and mark the site for CSC delivery, but are not required for the delivery itself. Here, we demonstrate that myosin XI and the actin cytoskeleton mediate CSC delivery to the PM by coordinating the exocytosis of CESA-containing compartments. Measurement of cellulose content indicated that cellulose biosynthesis was significantly reduced in a triple-knockout mutant. By combining genetic and pharmacological disruption of myosin activity with quantitative live-cell imaging, we observed decreased abundance of PM-localized CSCs and reduced delivery rate of CSCs in myosin-deficient cells. These phenotypes correlated with a significant increase in failed vesicle secretion events at the PM as well as an abnormal accumulation of CESA-containing compartments at the cell cortex. Through high-resolution spatiotemporal assays of cortical vesicle behavior, we identified defects in CSC vesicle tethering and fusion at the PM. Furthermore, disruption of myosin activity reduced the delivery of several other secretory markers to the PM and reduced constitutive and receptor-mediated endocytosis. These findings reveal a previously undescribed role for myosin in vesicle secretion and cellulose production at the cytoskeleton-PM-cell wall nexus.
在植物中,纤维素是由质膜(PM)定位的纤维素合酶(CESA)复合物(CSC)在细胞表面合成的。然而,将 CSC 递送至 PM 的分子和细胞机制仍知之甚少。皮质微管已被证明与包含 CESA 的隔室相互作用并标记 CSC 递送至 PM 的部位,但本身并不需要 CSC 的递送。在这里,我们证明肌球蛋白 XI 和肌动球蛋白细胞骨架通过协调包含 CESA 的隔室的胞吐作用来介导 CSC 向 PM 的递送。纤维素含量的测量表明,三重敲除突变体中的纤维素生物合成显著减少。通过将肌球蛋白活性的遗传和药理学破坏与定量活细胞成像相结合,我们观察到 PM 定位的 CSC 丰度降低以及 CSC 递送至肌球蛋白缺陷细胞的速率降低。这些表型与 PM 处囊泡分泌事件失败的显着增加以及包含 CESA 的隔室在细胞皮质处的异常积累相关。通过皮质囊泡行为的高分辨率时空测定,我们确定了 CSC 囊泡在 PM 处的锚定和融合缺陷。此外,肌球蛋白活性的破坏减少了几种其他分泌标记物向 PM 的递送,并减少了组成型和受体介导的内吞作用。这些发现揭示了肌球蛋白在细胞骨架-PM-细胞壁连接点处囊泡分泌和纤维素产生中的先前未描述的作用。