Engineering gene and protein sequences with defined functional properties is a major goal of synthetic biology. Deep neural network models, together with gradient ascent-style optimization, show promise for sequence design. The generated sequences can however get stuck in local minima and often have low diversity. Here, we develop deep exploration networks (DENs), a class of activation-maximizing generative models, which minimize the cost of a neural network fitness predictor by gradient descent. By penalizing any two generated patterns on the basis of a similarity metric, DENs explicitly maximize sequence diversity. To avoid drifting into low-confidence regions of the predictor, we incorporate variational autoencoders to maintain the likelihood ratio of generated sequences. Using DENs, we engineered polyadenylation signals with more than 10-fold higher selection odds than the best gradient ascent-generated patterns, identified splice regulatory sequences predicted to result in highly differential splicing between cell lines, and improved on state-of-the-art results for protein design tasks.
Full author list & citation
Johannes Linder, Nicholas Bogard, Alexander B. Rosenberg, Georg Seelig. A Generative Neural Network for Maximizing Fitness and Diversity of Synthetic DNA and Protein Sequences. 2020-06-25. https://doi.org/10.1016/j.cels.2020.05.007
Previously unpublished CHO repeat measurement of the Citrine-based alternative 5′ splice-donor reporter library. Approximately 265,000 synthetic members with two 25-nt randomized regions were assayed by targeted RNA sequencing of splice junctions and linked 3′ UTR barcodes.
Original HEK293 measurement of a Citrine-based alternative 5′ splice-donor reporter library, reused as the reference cell-line dataset in this study. The library contains approximately 265,000 synthetic members with two 25-nt randomized regions and was read out by targeted RNA sequencing of splice junctions and linked 3′ UTR barcodes.
Previously unpublished HeLa repeat measurement of the Citrine-based alternative 5′ splice-donor reporter library. Approximately 265,000 synthetic members with two 25-nt randomized regions were assayed by targeted RNA sequencing of splice junctions and linked 3′ UTR barcodes.
Previously unpublished MCF7 repeat measurement of the Citrine-based alternative 5′ splice-donor reporter library. Approximately 265,000 synthetic members with two 25-nt randomized regions were assayed by targeted RNA sequencing of splice junctions and linked 3′ UTR barcodes.
Original supplemental and deposited inputs retained for this study. Download files individually or together as a ZIP; nested folders are preserved. Source reuse terms apply, and sequencing reads may be omitted.