Tube geometry controls protein cluster conformation and stability on the endoplasmic reticulum surface

Liam T Kischuck, Aidan I Brown
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Abstract

The endoplasmic reticulum (ER), a cellular organelle that forms a cell-spanning network of tubes and sheets, is an important location of protein synthesis and folding. When the ER experiences sustained unfolded protein stress, IRE1 proteins embedded in the ER membrane activate and assemble into clusters as part of the unfolded protein response (UPR). We use kinetic Monte Carlo simulations to explore IRE1 clustering dynamics on the surface of ER tubes. While initially growing clusters are approximately round, once a cluster is sufficiently large a shorter interface length can be achieved by `wrapping' around the ER tube. A wrapped cluster can grow without further interface length increases. Relative to wide tubes, narrower tubes enable cluster wrapping at smaller cluster sizes. Our simulations show that wrapped clusters on narrower tubes grow more rapidly, evaporate more slowly, and require a lower protein concentration to grow compared to equal-area round clusters on wider tubes. These results suggest that cluster wrapping, facilitated by narrower tubes, could be an important factor in the growth and stability of IRE1 clusters and thus impact the persistence of the UPR, connecting geometry to signaling behavior. This work is consistent with recent experimental observations of IRE1 clusters wrapped around narrow tubes in the ER network.
管的几何形状控制着内质网表面蛋白质簇的构象和稳定性
内质网(ER)是一种细胞器,它可以形成一个由管和片组成的细胞跨越网络,是蛋白质合成和折叠的重要位置。当内质网经历持续的未折叠蛋白应激时,嵌入内质网膜的IRE1蛋白被激活并聚集成簇,作为未折叠蛋白反应(UPR)的一部分。我们使用动力学MonteCarlo模拟来探索ertube表面上IRE1聚类动力学。虽然最初生长的簇大致是圆形的,但一旦簇足够大,可以通过“包裹”ER管来实现较短的界面长度。包装的集群可以在不进一步增加接口长度的情况下增长。相对于宽管,窄管使簇包裹在更小的簇尺寸。我们的模拟表明,与宽管上的等面积圆形簇相比,窄管上的包裹簇生长得更快,蒸发得更慢,并且需要更低的蛋白质浓度来生长。这些结果表明,由较窄的管促进的簇包裹可能是IRE1簇生长和稳定的一个重要因素,从而影响UPR的持久性,将几何形状与信号行为联系起来。这项工作与最近的实验观察结果一致,即ire1簇包裹在内质网的窄管周围。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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