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肝细胞癌:系统生物学视角。

Hepatocellular carcinoma: a systems biology perspective.

机构信息

Division Systems Biology of Signal Transduction, DKFZ-ZMBH Alliance, German Cancer Research Centre (DKFZ) Heidelberg, Germany.

出版信息

Front Physiol. 2013 Feb 25;4:28. doi: 10.3389/fphys.2013.00028. eCollection 2013.

Abstract

Hepatocellular carcinomas (HCCs) have different etiology and heterogenic genomic alterations lead to high complexity. The molecular features of HCC have largely been studied by gene expression and proteome profiling focusing on the correlations between the expression of specific markers and clinical data. Integration of the increasing amounts of data in databases has facilitated the link of genomic and proteomic profiles of HCC to disease state and clinical outcome. Despite the current knowledge, specific molecular markers remain to be identified and new strategies are required to establish novel-targeted therapies. In the last years, mathematical models reconstructing gene and protein networks based on experimental data of HCC have been developed providing powerful tools to predict candidate interactions and potential targets for therapy. Furthermore, the combination of dynamic and logical mathematical models with quantitative data allows detailed mechanistic insights into system properties. To address effects at the organ level, mathematical models reconstructing the three-dimensional organization of liver lobules were developed. In the future, integration of different modeling approaches capturing the effects at the cellular up to the organ level is required to address the complex properties of HCC and to enable the discovery of new targets for HCC prevention or treatment.

摘要

肝细胞癌 (HCC) 的病因不同,异质性的基因组改变导致其高度复杂。通过基因表达和蛋白质组谱分析,对 HCC 的分子特征进行了广泛研究,重点关注特定标志物表达与临床数据之间的相关性。整合数据库中不断增加的数据量,促进了 HCC 的基因组和蛋白质组谱与疾病状态和临床结果的关联。尽管目前已经有了相关知识,但仍需要确定特定的分子标记,并需要新的策略来建立新的靶向治疗方法。近年来,基于 HCC 实验数据构建基因和蛋白质网络的数学模型已经得到了发展,为预测候选相互作用和潜在治疗靶点提供了有力的工具。此外,将动态和逻辑数学模型与定量数据相结合,可以深入了解系统特性的机制。为了解决器官水平的影响,已经开发了重建肝小叶三维组织的数学模型。未来,需要整合不同的建模方法,从细胞水平到器官水平捕捉其影响,以解决 HCC 的复杂特性,并为 HCC 的预防或治疗发现新的靶点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0023/3580827/bfbaa9c40b17/fphys-04-00028-g0001.jpg

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