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生物分子过程的综合时空建模:在核孔复合体组装中的应用。

Integrative spatiotemporal modeling of biomolecular processes: Application to the assembly of the nuclear pore complex.

作者信息

Latham Andrew P, Zhang Wanlu, Tempkin Jeremy O B, Otsuka Shotaro, Ellenberg Jan, Sali Andrej

机构信息

Department of Bioengineering and Therapeutic Sciences, Quantitative Biosciences Institute, University of California, San Francisco, CA 94143.

Department of Pharmaceutical Chemistry, Quantitative Biosciences Institute, University of California, San Francisco, CA 94143.

出版信息

Proc Natl Acad Sci U S A. 2025 Mar 18;122(11):e2415674122. doi: 10.1073/pnas.2415674122. Epub 2025 Mar 14.

Abstract

Dynamic processes involving biomolecules are essential for the function of the cell. Here, we introduce an integrative method for computing models of these processes based on multiple heterogeneous sources of information, including time-resolved experimental data and physical models of dynamic processes. First, for each time point, a set of coarse models of compositional and structural heterogeneity is computed (heterogeneity models). Second, for each heterogeneity model, a set of static integrative structure models is computed (a snapshot model). Finally, these snapshot models are selected and connected into a series of trajectories that optimize the likelihood of both the snapshot models and transitions between them (a trajectory model). The method is demonstrated by application to the assembly process of the human nuclear pore complex in the context of the reforming nuclear envelope during mitotic cell division, based on live-cell correlated electron tomography, bulk fluorescence correlation spectroscopy-calibrated quantitative live imaging, and a structural model of the fully assembled nuclear pore complex. Modeling of the assembly process improves the model precision over static integrative structure modeling alone. The method is applicable to a wide range of time-dependent systems in cell biology and is available to the broader scientific community through an implementation in the open source software.

摘要

涉及生物分子的动态过程对于细胞功能至关重要。在此,我们介绍一种基于多种异构信息源来计算这些过程模型的综合方法,这些信息源包括时间分辨实验数据和动态过程的物理模型。首先,对于每个时间点,计算一组组成和结构异质性的粗粒度模型(异质性模型)。其次,对于每个异质性模型,计算一组静态综合结构模型(快照模型)。最后,选择这些快照模型并将它们连接成一系列轨迹,以优化快照模型及其之间转换的可能性(轨迹模型)。基于活细胞相关电子断层扫描、体荧光相关光谱校准的定量活细胞成像以及完全组装的核孔复合体的结构模型,该方法通过应用于有丝分裂细胞分裂期间正在重塑的核膜背景下的人核孔复合体组装过程得到了验证。组装过程的建模比单独的静态综合结构建模提高了模型精度。该方法适用于细胞生物学中广泛的时间依赖系统,并且通过开源软件中的实现可供更广泛的科学界使用。

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