论文标题
核皱纹的动态,缩放行为和控制
Dynamics, scaling behavior, and control of nuclear wrinkling
论文作者
论文摘要
细胞核被一个复杂的膜笼罩,其皱纹与疾病和细胞衰老有关。由于缺乏直接的定量测量,多细胞发育过程中核皱纹的生物物理动力学和光谱演化仍然很少。在这里,我们结合了现场成像实验,理论和模拟,以表征果蝇果蝇果蝇中卵发育过程中核皱纹的发作和动态,当护士细胞核的大小增加并显示出刻板的皱纹行为时。来自数百个核的三维高分辨率数据的光谱分析揭示了与非线性弹性壳模型的重新规范化和缩放预测相一致的角度波动的强大渐近级缩放。我们进一步证明,核皱纹可以通过渗透冲击逆转并被微管破坏抑制,从而提供可调的物理和生物控制参数,以探测核包膜的机械性能。我们的发现提高了对早期多细胞发育过程中核膜波动的生物物理理解。
The cell nucleus is enveloped by a complex membrane, whose wrinkling has been implicated in disease and cellular aging. The biophysical dynamics and spectral evolution of nuclear wrinkling during multicellular development remain poorly understood due to a lack of direct quantitative measurements. Here, we combine live-imaging experiments, theory, and simulations to characterize the onset and dynamics of nuclear wrinkling during egg development in the fruit fly, Drosophila melanogaster, when nurse cell nuclei increase in size and display stereotypical wrinkling behavior. A spectral analysis of three-dimensional high-resolution data from several hundred nuclei reveals a robust asymptotic power-law scaling of angular fluctuations consistent with renormalization and scaling predictions from a nonlinear elastic shell model. We further demonstrate that nuclear wrinkling can be reversed through osmotic shock and suppressed by microtubule disruption, providing tunable physical and biological control parameters for probing mechanical properties of the nuclear envelope. Our findings advance the biophysical understanding of nuclear membrane fluctuations during early multicellular development.