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真菌中的核运动。

Nuclear movement in fungi.

机构信息

Department of Biochemistry and Molecular Biology, Uniformed Services University of the Health Sciences - F. Edward Hébert School of Medicine, Bethesda, MD, USA.

出版信息

Semin Cell Dev Biol. 2018 Oct;82:3-16. doi: 10.1016/j.semcdb.2017.10.024. Epub 2017 Dec 11.

Abstract

Nuclear movement within a cell occurs in a variety of eukaryotic organisms including yeasts and filamentous fungi. Fungal molecular genetic studies identified the minus-end-directed microtubule motor cytoplasmic dynein as a critical protein for nuclear movement or orientation of the mitotic spindle contained in the nucleus. Studies in the budding yeast first indicated that dynein anchored at the cortex via its anchoring protein Num1 exerts pulling force on an astral microtubule to orient the anaphase spindle across the mother-daughter axis before nuclear division. Prior to anaphase, myosin V interacts with the plus end of an astral microtubule via Kar9-Bim1/EB1 and pulls the plus end along the actin cables to move the nucleus/spindle close to the bud neck. In addition, pushing or pulling forces generated from cortex-linked polymerization or depolymerization of microtubules drive nuclear movements in yeasts and possibly also in filamentous fungi. In filamentous fungi, multiple nuclei within a hyphal segment undergo dynein-dependent back-and-forth movements and their positioning is also influenced by cytoplasmic streaming toward the hyphal tip. In addition, nuclear movement occurs at various stages of fungal development and fungal infection of plant tissues. This review discusses our current understanding on the mechanisms of nuclear movement in fungal organisms, the importance of nuclear positioning and the regulatory strategies that ensure the proper positioning of nucleus/spindle.

摘要

细胞核在细胞内的运动发生在各种真核生物中,包括酵母和丝状真菌。真菌的分子遗传学研究表明,负向微管马达细胞质动力蛋白是细胞核内核运动或有丝分裂纺锤体定向的关键蛋白。在出芽酵母中的研究首先表明,通过其锚定蛋白 Num1 锚定在质膜上的动力蛋白对星体微管施加拉力,以便在核分裂前将后期纺锤体沿母-子轴定向。在后期之前,肌球蛋白 V 通过 Kar9-Bim1/EB1 与星体微管的正极相互作用,并拉动正极沿着肌动蛋白丝移动核/纺锤体靠近芽颈。此外,由质膜连接的微管聚合或解聚产生的推或拉力驱动酵母中的核运动,可能也驱动丝状真菌中的核运动。在丝状真菌中,一个菌丝段内的多个核经历动力蛋白依赖性的来回运动,它们的定位也受到细胞质流向菌丝尖端的影响。此外,核运动发生在真菌发育的各个阶段和真菌对植物组织的感染过程中。这篇综述讨论了我们目前对真菌生物中核运动机制的理解,包括核定位的重要性和确保核/纺锤体正确定位的调节策略。

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