个性化和预测医学的多组学策略:过去,现在和未来的转化机会。

IF 3.4 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Zeeshan Ahmed
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引用次数: 5

摘要

精准医学是由授权临床医生预测复杂疾病患者最合适的行动方案并改进常规医疗和公共卫生实践的范式转变驱动的。它促进将集体和个性化的临床数据与患者特异性的多组学数据相结合,以制定治疗策略,并为不同人群的预测性和个性化医学建立知识库。这项研究基于这样一种假设,即结合临床数据了解患者的代谢组学和基因构成将大大有助于确定易感性、诊断、预后和预测性生物标志物,以及为各种有针对性的慢性病、急性病和传染病提供个性化护理的最佳途径。这项研究简要介绍了最近报道的旨在促进精准医学实施的多组学和转化方法。此外,它还讨论了当前的巨大挑战,以及可查找、可访问、智能和可复制(FAIR)方法的未来需求,以加速诊断和预防性护理提供策略,超越传统的症状驱动、疾病因果医疗实践。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multi-omics strategies for personalized and predictive medicine: past, current, and future translational opportunities.
Precision medicine is driven by the paradigm shift of empowering clinicians to predict the most appropriate course of action for patients with complex diseases and improve routine medical and public health practice. It promotes integrating collective and individualized clinical data with patient specific multi-omics data to develop therapeutic strategies, and knowledgebase for predictive and personalized medicine in diverse populations. This study is based on the hypothesis that understanding patient's metabolomics and genetic make-up in conjunction with clinical data will significantly lead to determining predisposition, diagnostic, prognostic and predictive biomarkers and optimal paths providing personalized care for diverse and targeted chronic, acute, and infectious diseases. This study briefs emerging significant, and recently reported multi-omics and translational approaches aimed to facilitate implementation of precision medicine. Furthermore, it discusses current grand challenges, and the future need of Findable, Accessible, Intelligent, and Reproducible (FAIR) approach to accelerate diagnostic and preventive care delivery strategies beyond traditional symptom-driven, disease-causal medical practice.
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来源期刊
CiteScore
7.70
自引率
0.00%
发文量
94
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