Wang Shuoshuo, Reuveny Adriana, Volk Talila
Department of Molecular Genetics, Weizmann Institute of Science, Rehovot 7610001, Israel.
Department of Molecular Genetics, Weizmann Institute of Science, Rehovot 7610001, Israel
J Cell Biol. 2015 May 25;209(4):529-38. doi: 10.1083/jcb.201408098.
Muscle nuclei are exposed to variable cytoplasmic strain produced by muscle contraction and relaxation, but their morphology remains stable. Still, the mechanism responsible for maintaining myonuclear architecture, and its importance, is currently elusive. Herein, we uncovered a unique myonuclear scaffold in Drosophila melanogaster larval muscles, exhibiting both elastic features contributed by the stretching capacity of MSP300 (nesprin) and rigidity provided by a perinuclear network of microtubules stabilized by Shot (spectraplakin) and EB1. Together, they form a flexible perinuclear shield that protects myonuclei from intrinsic or extrinsic forces. The loss of this scaffold resulted in significantly aberrant nuclear morphology and subsequently reduced levels of essential nuclear factors such as lamin A/C, lamin B, and HP1. Overall, we propose a novel mechanism for maintaining myonuclear morphology and reveal its critical link to correct levels of nuclear factors in differentiated muscle fibers. These findings may shed light on the underlying mechanism of various muscular dystrophies.
肌肉细胞核暴露于肌肉收缩和舒张产生的可变细胞质张力中,但其形态仍保持稳定。然而,目前尚不清楚负责维持肌核结构的机制及其重要性。在此,我们在果蝇幼虫肌肉中发现了一种独特的肌核支架,它既表现出由MSP300(核膜联蛋白)的拉伸能力所贡献的弹性特征,又表现出由Shot(光谱plakin)和EB1稳定的微管核周网络所提供的刚性。它们共同形成一个灵活的核周护盾,保护肌核免受内在或外在力量的影响。这种支架的缺失导致核形态明显异常,并随后降低了诸如核纤层蛋白A/C、核纤层蛋白B和异染色质蛋白1等必需核因子的水平。总体而言,我们提出了一种维持肌核形态的新机制,并揭示了其与分化肌纤维中核因子正确水平的关键联系。这些发现可能有助于阐明各种肌肉营养不良症的潜在机制。