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通过多尺度生物学和系统医学实现精准心脏病学

Enabling Precision Cardiology Through Multiscale Biology and Systems Medicine.

作者信息

Johnson Kipp W, Shameer Khader, Glicksberg Benjamin S, Readhead Ben, Sengupta Partho P, Björkegren Johan L M, Kovacic Jason C, Dudley Joel T

机构信息

Institute for Next Generation Healthcare, Mount Sinai Health System, New York, New York.

Department of Genetics and Genomic Sciences, Icahn Institute for Genomics and Multiscale Biology, Icahn School of Medicine at Mount Sinai, New York, New York.

出版信息

JACC Basic Transl Sci. 2017 Jun 26;2(3):311-327. doi: 10.1016/j.jacbts.2016.11.010. eCollection 2017 Jun.

Abstract

The traditional paradigm of cardiovascular disease research derives insight from large-scale, broadly inclusive clinical studies of well-characterized pathologies. These insights are then put into practice according to standardized clinical guidelines. However, stagnation in the development of new cardiovascular therapies and variability in therapeutic response implies that this paradigm is insufficient for reducing the cardiovascular disease burden. In this state-of-the-art review, we examine 3 interconnected ideas we put forth as key concepts for enabling a transition to precision cardiology: 1) precision characterization of cardiovascular disease with machine learning methods; 2) the application of network models of disease to embrace disease complexity; and 3) using insights from the previous 2 ideas to enable pharmacology and polypharmacology systems for more precise drug-to-patient matching and patient-disease stratification. We conclude by exploring the challenges of applying a precision approach to cardiology, which arise from a deficit of the required resources and infrastructure, and emerging evidence for the clinical effectiveness of this nascent approach.

摘要

心血管疾病研究的传统模式是从对特征明确的病理状况进行大规模、广泛的临床研究中获取见解。然后,这些见解会根据标准化临床指南付诸实践。然而,新的心血管治疗方法发展停滞以及治疗反应的变异性表明,这种模式不足以减轻心血管疾病负担。在这篇前沿综述中,我们审视了作为实现向精准心脏病学转变的关键概念而提出的3个相互关联的观点:1)使用机器学习方法对心血管疾病进行精准表征;2)应用疾病网络模型来涵盖疾病复杂性;3)利用前两个观点的见解来建立药理学和多药理学系统,以实现更精准的药物与患者匹配以及患者疾病分层。我们通过探讨将精准方法应用于心脏病学所面临的挑战来结束本文,这些挑战源于所需资源和基础设施的短缺,以及这种新兴方法临床有效性的新证据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/93f0/6034501/059bcc5a4263/fx1.jpg

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