Person: Chavez, Alejandro
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Publication Comparative Analysis of Cas9 Activators Across Multiple Species
(2016) Chavez, Alejandro; Tuttle, Marcelle; Pruitt, Benjamin W; Ewen-Campen, Ben; Chari, Raj; Ter-Ovanesyan, Dmitry; Haque, Sabina J; Cecchi, Ryan J; Kowal, Emma J K; Buchthal, Joanna; Housden, Benjamin E; Perrimon, Norbert; Collins, James; Church, GeorgeSeveral groups have generated programmable transcription factors based on the versatile Cas9 protein, yet their relative potency and effectiveness across various cell types and species remain unexplored. Here, we compare Cas9 activator systems and examine their ability to induce robust gene expression in several human, mouse, and fly cell lines. We also explore the potential for improved activation through the combination of the most potent activator systems and assess the role of cooperativity in maximizing gene expression.
Publication Highly-efficient Cas9-mediated transcriptional programming
(2015) Chavez, Alejandro; Scheiman, Jonathan; Vora, Suhani; Pruitt, Benjamin W.; Tuttle, M; Iyer, Eswar; Lin, Shuailiang; Kiani, Samira; Guzman, Christopher D.; Wiegand, Daniel; Ter-Ovanesyan, Dmitry; Braff, Jonathan L.; Davidsohn, Noah; Housden, Benjamin E; Perrimon, Norbert; Weiss, Ron; Aach, John; Collins, James; Church, GeorgePublication A CRISPR Cas9-based gene drive platform for genetic interaction analysis in Candida albicans
(2018) Shapiro, Rebecca S.; Chavez, Alejandro; Porter, Caroline B. M.; Hamblin, Meagan; Kaas, Christian S.; DiCarlo, James E.; Zeng, Guisheng; Xu, Xiaoli; Revtovich, Alexey V.; Kirienko, Natalia V.; Wang, Yue; Church, George; Collins, JamesCandida albicans is the leading cause of fungal infections; yet, complex genetic interaction analysis remains cumbersome in this diploid pathogen. Here, we developed a CRISPR-Cas9-based ‘gene drive array’ (GDA) platform to facilitate efficient genetic analysis in C. albicans. In our system, a modified DNA donor molecule acts as a selfish genetic element, replaces the targeted site, and propagates to replace additional wild-type loci. Using mating-competent C. albicans haploids, each carrying a different gene drive disabling a gene of interest, we are able to create diploid strains that are homozygous double-deletion mutants. We generate double-gene deletion libraries to demonstrate this technology, targeting antifungal efflux and biofilm adhesion factors. We screen these libraries to identify virulence regulators and determine how genetic networks shift under diverse conditions. This platform transforms our ability to perform genetic interaction analysis in C. albicans and is readily extended to other fungal pathogens.