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拥抱复杂性,逐步贴近现实。

Embracing complexity, inching closer to reality.

作者信息

Schadt Eric E, Sachs Alan, Friend Stephen

机构信息

Rosetta Inpharmatics, 401 Terry Avenue North, Seattle, WA 98109, USA.

出版信息

Sci STKE. 2005 Aug 2;2005(295):pe40. doi: 10.1126/stke.2952005pe40.

Abstract

Drugs designed against targets in presumably simple linear signaling pathways found to be associated with disease are often less effective than predicted. One reason for this is the overly simplistic view of the molecular mechanisms underlying common human diseases. This viewpoint is a consequence of biological reductionism, brought about by the need to form a basic understanding of the fundamental attributes of biological systems and by limitations in the set of tools available for analysis of biological systems. However, complex biological systems are best modeled as highly modular, fluid systems exhibiting a plasticity that allows them to adapt to a vast array of conditions. Historically, this viewpoint has long represented the ideal, but the tools needed to examine and describe this complexity were often lacking. Here we argue that the tools of biological science now allow for a more network-oriented view of biological systems and for explaining the underlying causes of disease, as well as the best ways to target disease. Ultimately, this will help to ensure that the right drug is administered to the right patient at the right time. Focusing on well-studied signaling pathways, refining the definition of disease, and identifying disease subtypes, we demonstrate a more holistic approach to elucidating common human diseases, with the potential to revolutionize treatment of these diseases.

摘要

针对据信与疾病相关的简单线性信号通路中的靶点设计的药物,其效果往往不如预期。造成这种情况的一个原因是对常见人类疾病背后分子机制的过度简化看法。这种观点是生物还原论的结果,它是由于需要对生物系统的基本属性形成基本理解以及用于分析生物系统的工具集存在局限性而产生的。然而,复杂的生物系统最好被建模为高度模块化、具有可塑性的流体系统,这种可塑性使它们能够适应各种各样的条件。从历史上看,这种观点长期以来一直代表着理想状态,但往往缺乏用于研究和描述这种复杂性所需的工具。在此我们认为,生物科学工具现在能够让我们以更面向网络的视角看待生物系统,解释疾病的根本原因以及治疗疾病的最佳方法。最终,这将有助于确保在正确的时间将正确的药物给予正确的患者。通过专注于深入研究的信号通路、完善疾病定义以及识别疾病亚型,我们展示了一种更全面的方法来阐明常见人类疾病,有可能彻底改变这些疾病的治疗方式。

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