Physical Sciences Oncology Center at Penn, University of Pennsylvania, Philadelphia, PA.
Molecular and Cell Biophysics Lab, University of Pennsylvania, Philadelphia, PA.
J Cell Biol. 2018 Nov 5;217(11):3796-3808. doi: 10.1083/jcb.201711161. Epub 2018 Aug 31.
The nucleus is physically linked to the cytoskeleton, adhesions, and extracellular matrix-all of which sustain forces, but their relationships to DNA damage are obscure. We show that nuclear rupture with cytoplasmic mislocalization of multiple DNA repair factors correlates with high nuclear curvature imposed by an external probe or by cell attachment to either aligned collagen fibers or stiff matrix. Mislocalization is greatly enhanced by lamin A depletion, requires hours for nuclear reentry, and correlates with an increase in pan-nucleoplasmic foci of the DNA damage marker γH2AX. Excess DNA damage is rescued in ruptured nuclei by cooverexpression of multiple DNA repair factors as well as by soft matrix or inhibition of actomyosin tension. Increased contractility has the opposite effect, and stiff tumors with low lamin A indeed exhibit increased nuclear curvature, more frequent nuclear rupture, and excess DNA damage. Additional stresses likely play a role, but the data suggest high curvature promotes nuclear rupture, which compromises retention of DNA repair factors and favors sustained damage.
核与细胞骨架、黏附物和细胞外基质在物理上相连——所有这些都能维持力,但它们与 DNA 损伤的关系尚不清楚。我们表明,多个 DNA 修复因子的核破裂伴细胞质定位错误与外部探针施加的高核曲率或细胞附着在对齐的胶原纤维或刚性基质上有关。核重新进入需要数小时,核定位错误大大增强,并且与核周质中 DNA 损伤标志物 γH2AX 的全核焦点增加相关。在破裂的核中,通过共表达多个 DNA 修复因子以及软基质或抑制肌动球蛋白张力,可以挽救过多的 DNA 损伤。增加收缩性会产生相反的效果,并且确实具有低核层粘连蛋白 A 的刚性肿瘤表现出更高的核曲率、更频繁的核破裂和过多的 DNA 损伤。可能还有其他压力在起作用,但数据表明高曲率会促进核破裂,从而破坏 DNA 修复因子的保留并有利于持续损伤。