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Deciphering molecular circuits from genetic variation underlying transcriptional responsiveness to stimuli

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2013

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Gat-Viks, Irit, Nicolas Chevrier, Roni Wilentzik, Thomas Eisenhaure, Raktima Raychowdhury, Yael Steuerman, Alex Shalek, Nir Hacohen, Ido Amit, and Aviv Regev. 2013. “Deciphering molecular circuits from genetic variation underlying transcriptional responsiveness to stimuli.” Nature biotechnology 31 (4): 342-349. doi:10.1038/nbt.2519. http://dx.doi.org/10.1038/nbt.2519.

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Individual genetic variation affects gene expression in response to stimuli, often by influencing complex molecular circuits. Here we combine genomic and intermediate-scale transcriptional profiling with computational methods to identify variants that affect the responsiveness of genes to stimuli (responsiveness QTLs; reQTLs) and to position these variants in molecular circuit diagrams. We apply this approach to study variation in transcriptional responsiveness to pathogen components in dendritic cells from recombinant inbred mouse strains. We identify reQTLs that correlate with particular stimuli and position them in known pathways. For example, in response to a virus-like stimulus, a trans-acting variant acts as an activator of the antiviral response; using RNAi, we identify Rgs16 as the likely causal gene. Our approach charts an experimental and analytic path to decipher the mechanisms underlying genetic variation in circuits that control responses to stimuli.

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