bioRxiv · 10.1101/2022.07.08.499049
MultiCPA: Multimodal Compositional Perturbation Autoencoder
Abstract
Single-cell multimodal profiling provides a high-resolution view of cellular information. Recently, multimodal profiling approaches have been coupled with CRISPR technologies to perform pooled screens of single or combinatorial perturbations. This opens the possibility of exploring the massive space of combinatorial perturbations and their regulatory effects computationally from the extrapolation of a few experimentally feasible combinations. Here, we propose MultiCPA, an end-to-end generative architecture to predict multimodal perturbation response at single cell level. Two mixing strategies to integrate multiple modalities are introduced and compared with existing methods. MultiCPA was also shown to accurately predict unseen combinatorial perturbation responses for multiple modalities. The code to reproduce the results is available on GitHub, theislab/multicpa.
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Inecik, K., Uhlmann, A., Lotfollahi, M., Theis, F. J.. 2022-07-10. MultiCPA: Multimodal Compositional Perturbation Autoencoder. https://doi.org/10.1101/2022.07.08.499049
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