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从观察到模拟:用于开发肝脏再生多尺度计算模型的成像技术和空间分辨数据综述

From Seeing to Simulating: A Survey of Imaging Techniques and Spatially-Resolved Data for Developing Multiscale Computational Models of Liver Regeneration.

作者信息

Verma Aalap, Manchel Alexandra, Melunis Justin, Hengstler Jan G, Vadigepalli Rajanikanth

机构信息

Daniel Baugh Institute for Functional Genomics and Computational Biology, Department of Pathology, Anatomy, and Cell Biology, Thomas Jefferson University, Philadelphia, PA, United States.

IfADo-Leibniz Research Centre for Working Environment and Human Factors, Technical University Dortmund, Dortmund, Germany.

出版信息

Front Syst Biol. 2022;2. doi: 10.3389/fsysb.2022.917191. Epub 2022 Jun 6.

Abstract

Liver regeneration, which leads to the re-establishment of organ mass, follows a specifically organized set of biological processes acting on various time and length scales. Computational models of liver regeneration largely focused on incorporating molecular and signaling detail have been developed by multiple research groups in the recent years. These modeling efforts have supported a synthesis of disparate experimental results at the molecular scale. Incorporation of tissue and organ scale data using noninvasive imaging methods can extend these computational models towards a comprehensive accounting of multiscale dynamics of liver regeneration. For instance, microscopy-based imaging methods provide detailed histological information at the tissue and cellular scales. Noninvasive imaging methods such as ultrasound, computed tomography and magnetic resonance imaging provide morphological and physiological features including volumetric measures over time. In this review, we discuss multiple imaging modalities capable of informing computational models of liver regeneration at the organ-, tissue- and cellular level. Additionally, we discuss available software and algorithms, which aid in the analysis and integration of imaging data into computational models. Such models can be generated or tuned for an individual patient with liver disease. Progress towards integrated multiscale models of liver regeneration can aid in prognostic tool development for treating liver disease.

摘要

肝脏再生会导致器官质量的重新建立,它遵循一组在不同时间和长度尺度上起作用的特定组织的生物过程。近年来,多个研究小组开发了主要专注于纳入分子和信号细节的肝脏再生计算模型。这些建模工作支持了在分子尺度上对不同实验结果的综合。使用非侵入性成像方法纳入组织和器官尺度数据,可以将这些计算模型扩展到对肝脏再生多尺度动力学的全面考量。例如,基于显微镜的成像方法可在组织和细胞尺度上提供详细的组织学信息。超声、计算机断层扫描和磁共振成像等非侵入性成像方法可提供形态和生理特征,包括随时间的体积测量。在本综述中,我们讨论了多种能够为肝脏再生计算模型提供器官、组织和细胞水平信息的成像方式。此外,我们还讨论了有助于将成像数据进行分析并整合到计算模型中的现有软件和算法。此类模型可为患有肝病的个体患者生成或调整。肝脏再生综合多尺度模型的进展有助于开发治疗肝病的预后工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7d30/10421626/0f448330325c/nihms-1920383-f0001.jpg

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