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Barrera, Luis A.

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Barrera

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Luis A.

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Barrera, Luis A.

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Now showing 1 - 2 of 2
  • Publication

    Context influences on TALE–DNA binding revealed by quantitative profiling

    (Nature Pub. Group, 2015) Rogers, Julia; Barrera, Luis A.; Reyon, Deepak; Sander, Jeffry D.; Kellis, Manolis; Joung, J Keith; Bulyk, Martha

    Transcription activator-like effector (TALE) proteins recognize DNA using a seemingly simple DNA-binding code, which makes them attractive for use in genome engineering technologies that require precise targeting. Although this code is used successfully to design TALEs to target specific sequences, off-target binding has been observed and is difficult to predict. Here we explore TALE–DNA interactions comprehensively by quantitatively assaying the DNA-binding specificities of 21 representative TALEs to ∼5,000–20,000 unique DNA sequences per protein using custom-designed protein-binding microarrays (PBMs). We find that protein context features exert significant influences on binding. Thus, the canonical recognition code does not fully capture the complexity of TALE–DNA binding. We used the PBM data to develop a computational model, Specificity Inference For TAL-Effector Design (SIFTED), to predict the DNA-binding specificity of any TALE. We provide SIFTED as a publicly available web tool that predicts potential genomic off-target sites for improved TALE design.

  • Publication

    Highly parallel assays of tissue-specific enhancers in whole Drosophila embryos

    (2013) Gisselbrecht, Stephen S.; Barrera, Luis A.; Porsch, Martin; Aboukhalil, Anton; Estep, Preston W.; Vedenko, Anastasia; Palagi, Alexandre; Kim, Yongsok; Zhu, Xianmin; Busser, Brian W.; Gamble, Caitlin E.; Hafner, Antonina; Singhania, Aditi; Michelson, Alan M.; Bulyk, Martha

    Transcriptional enhancers are a primary mechanism by which tissue-specific gene expression is achieved. Despite the importance of these regulatory elements in development, responses to environmental stresses, and disease, testing enhancer activity in animals remains tedious, with a minority of enhancers having been characterized. Here, we have developed ‘enhancer-FACS-Seq’ (eFS) technology for highly parallel identification of active, tissue-specific enhancers in Drosophila embryos. Analysis of enhancers identified by eFS to be active in mesodermal tissues revealed enriched DNA binding site motifs of known and putative, novel mesodermal transcription factors (TFs). Naïve Bayes classifiers using TF binding site motifs accurately predicted mesodermal enhancer activity. Application of eFS to other cell types and organisms should accelerate the cataloging of enhancers and understanding how transcriptional regulation is encoded within them.