Publication: NEMix: Single-cell Nested Effects Models for Probabilistic Pathway Stimulation
NEMix: Single-cell Nested Effects Models for Probabilistic Pathway Stimulation
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Siebourg-Polster, J., Mudrak, D., Emmenlauer, M., Rämö, P., Dehio, C., Greber, U., Fröhlich, H., & Beerenwinkel, N. (2015). NEMix: Single-cell Nested Effects Models for Probabilistic Pathway Stimulation. PLoS Computational Biology, 11(4), e1004078. https://doi.org/10.1371/journal.pcbi.1004078
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Nested effects models have been used successfully for learning subcellular networks from high-dimensional perturbation effects that result from RNA interference (RNAi) experiments. Here, we further develop the basic nested effects model using high-content single-cell imaging data from RNAi screens of cultured cells infected with human rhinovirus. RNAi screens with single-cell readouts are becoming increasingly common, and they often reveal high cell-to-cell variation. As a consequence of this cellular heterogeneity, knock-downs result
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Siebourg-Polster, J., Mudrak, D., Emmenlauer, M., Rämö, P., Dehio, C., Greber, U., Fröhlich, H., & Beerenwinkel, N. (2015). NEMix: Single-cell Nested Effects Models for Probabilistic Pathway Stimulation. PLoS Computational Biology, 11(4), e1004078. https://doi.org/10.1371/journal.pcbi.1004078