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Transcriptomic congruence analysis for evaluating model organisms

delete2023-02-02
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OA
AI
W
Wei Zong
T
Tanbin Rahman
L
Li Zhu
X
Xiangrui Zeng
Y
Yingjin Zhang
J
Jian Zou
刘松 (Song Liu)
Z
Zhao Ren
J
Jingyi Jessica Li
E
Etienne Sibille
A
Adrian V. Lee
S
Steffi Oesterreich
T
Tianzhou Ma *
G
George C. Tseng *
DOI:10.1073/pnas.2202584120delete
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Abstract

Abstract

En 中文
Model organisms are instrumental substitutes for human studies to expedite basic, translational, and clinical research. Despite their indispensable role in mechanistic inves-tigation and drug development, molecular congruence of animal models to humans has long been questioned and debated. Little effort has been made for an objective quantification and mechanistic exploration of a model organism's resemblance to humans in terms of molecular response under disease or drug treatment. We hereby propose a framework, namely Congruence Analysis for Model Organisms (CAMO), for transcriptomic response analysis by developing threshold-free differential expression analysis, quantitative concordance/discordance scores incorporating data variabilities, pathway-centric downstream investigation, knowledge retrieval by text mining, and topological gene module detection for hypothesis generation. Instead of a genome-wide vague and dichotomous answer of poorly or greatly mimicking humans, CAMO assists researchers to numerically quantify congruence, to dissect true cross-species differences from unwanted biological or cohort variabilities, and to visually identify molecular mechanisms and pathway subnetworks that are best or least mimicked by model organisms, which altogether provides foundations for hypothesis generation and subsequent translational decisions.
Keywords:
model organism
molecular congruence analysis
transcriptome
translational research
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P
Proceedings of the National Academy of Sciences of the United States of America
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9.1
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