Exploring pharmacological active ingredients of traditional Chinese medicine by pharmacotranscriptomic map in ITCM

Author:

Tian Saisai1ORCID,Zhang Jinbo12ORCID,Yuan Shunling1,Wang Qun3,Lv Chao3,Wang Jinxing1,Fang Jiansong4,Fu Lu1,Yang Jian1,Zu Xianpeng1,Zhao Jing3,Zhang Weidong13

Affiliation:

1. Second Military Medical University School of Pharmacy, , Shanghai, 200433, China

2. Tianjin Rehabilitation Center of Joint Logistics Support Force Department of Pharmacy, , Tianjin, 300110, China

3. Shanghai University of Traditional Chinese Medicine The Research Center for Traditional Chinese Medicine, Shanghai Institute of Infectious Diseases and Biosafety, Institute of Interdisciplinary Integrative Medicine Research, , Shanghai, China

4. Guangzhou University of Chinese Medicine Science and Technology Innovation Center, , Guangzhou, China

Abstract

AbstractWith the emergence of high-throughput technologies, computational screening based on gene expression profiles has become one of the most effective methods for drug discovery. More importantly, profile-based approaches remarkably enhance novel drug–disease pair discovery without relying on drug- or disease-specific prior knowledge, which has been widely used in modern medicine. However, profile-based systematic screening of active ingredients of traditional Chinese medicine (TCM) has been scarcely performed due to inadequate pharmacotranscriptomic data. Here, we develop the largest-to-date online TCM active ingredients-based pharmacotranscriptomic platform integrated traditional Chinese medicine (ITCM) for the effective screening of active ingredients. First, we performed unified high-throughput experiments and constructed the largest data repository of 496 representative active ingredients, which was five times larger than the previous one built by our team. The transcriptome-based multi-scale analysis was also performed to elucidate their mechanism. Then, we developed six state-of-art signature search methods to screen active ingredients and determine the optimal signature size for all methods. Moreover, we integrated them into a screening strategy, TCM-Query, to identify the potential active ingredients for the special disease. In addition, we also comprehensively collected the TCM-related resource by literature mining. Finally, we applied ITCM to an active ingredient bavachinin, and two diseases, including prostate cancer and COVID-19, to demonstrate the power of drug discovery. ITCM was aimed to comprehensively explore the active ingredients of TCM and boost studies of pharmacological action and drug discovery. ITCM is available at http://itcm.biotcm.net.

Funder

Sailing Program of Naval Medical University

Three-year Action Plan for Shanghai TCM Development and Inheritance Program

Shanghai Frontiers Science Center of TCM Chemical Biology, Shanghai Municipal Health Commission Project

Shanghai Sailing Program

Innovation Team and Talents Cultivation Program of National Administration of Traditional Chinese Medicine

National Natural Science Foundation of China

National Key Research and Development Program of China

Publisher

Oxford University Press (OUP)

Subject

Molecular Biology,Information Systems

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