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Regev, Aviv

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Regev

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Aviv

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Regev, Aviv

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Now showing 1 - 9 of 9
  • Publication

    MetaMerge: scaling up genome-scale metabolic reconstructions with application to Mycobacterium tuberculosis

    (BioMed Central, 2012) Chindelevitch, Leonid; Stanley, Sarah; Hung, Deborah; Regev, Aviv; Berger, Bonnie

    Reconstructed models of metabolic networks are widely used for studying metabolism in various organisms. Many different reconstructions of the same organism often exist concurrently, forcing researchers to choose one of them at the exclusion of the others. We describe MetaMerge, an algorithm for semi-automatically reconciling a pair of existing metabolic network reconstructions into a single metabolic network model. We use MetaMerge to combine two published metabolic networks for Mycobacterium tuberculosis into a single network, which allows many reactions that could not be active in the individual models to become active, and predicts essential genes with a higher positive predictive value.

  • Publication

    SOX2 is an amplified lineage-survival oncogene in lung and esophageal squamous cell carcinomas

    (Springer Nature, 2009) Bass, Adam; Watanabe, Hideo; Mermel, Craig; Yu, Soyoung; Perner, Sven; Verhaak, Roel; Kim, So Jeong; Wardwell, Leslie; Tamayo, Pablo; Gat-Viks, Irit; Ramos, Alex H; Woo, Michele S; Weir, Barbara Ann; Getz, Gad; Beroukhim, Rameen; O, Michael; Dutt, Amit; Rozenblatt-Rosen, Orit; Dziunycz, Piotr; Komisarof, Justin; Chirieac, Lucian; LaFargue, Christopher J; Scheble, Veit; Wilbertz, Theresia; Ma, Changqing; Rao, Shilpa; Nakagawa, Hiroshi; Stairs, Douglas B; Lin, Lin; Giordano, Thomas J; Wagner, Patrick; Minna, John D; Gazdar, Adi F; Zhu, Chang Qi; Brose, Marcia S; Cecconello, Ivan; Jr, Ulysses Ribeiro; Marie, Suely K; Dahl, Olav; Shivdasani, Ramesh; Tsao, Ming-Sound; Rubin, Mark A; Wong, Kwok-Kin; Regev, Aviv; Hahn, William; Beer, David G; Rustgi, Anil K; Meyerson, Matthew

    Lineage survival oncogenes are activated by somatic DNA alterations in cancers arising from the cell lineages in which these genes play a role in normal development.1,2 Here we show that a peak of genomic amplification on chromosome 3q26.33, found in squamous cell carcinomas (SCCs) of the lung and esophagus, contains the transcription factor gene SOX2—which is mutated in hereditary human esophageal malformations3 and necessary for normal esophageal squamous development4, promotes differentiation and proliferation of basal tracheal cells5 and co-operates in induction of pluripotent stem cells.6,7,8 SOX2 expression is required for proliferation and anchorage-independent growth of lung and esophageal cell lines, as shown by RNA interference experiments. Furthermore, ectopic expression of SOX2 cooperated with FOXE1 or FGFR2 to transform immortalized tracheobronchial epithelial cells. SOX2-driven tumors show expression of markers of both squamous differentiation and pluripotency. These observations identify SOX2 as a novel lineage survival oncogene in lung and esophageal SCC.

  • Publication

    Decoupling genetics, lineages, and microenvironment in IDH-mutant gliomas by single-cell RNA-seq

    (American Association for the Advancement of Science (AAAS), 2017) Venteicher, Andrew S; Tirosh, Itay; Hebert, Christine; Yizhak, Keren; Neftel, Cyril Ralf Alexander; Filbin, Mariella; Hovestadt, Volker; Escalante, Leah; Shaw, McKenzie; Rodman, Christopher Jiahn-Leh; Gillespie, Shawn; Dionne, Danielle; Luo, Christina; Ravichandran, Hiranmayi; Mylvaganam, Ravindra; Mount, Christopher; Onozato, Maristela Lika; Nahed, Brian; Wakimoto, Hiroaki; Curry, William; Iafrate, Anthony; Rivera, Miguel; Frosch, Matthew; Golub, Todd; Brastianos, Priscilla; Getz, Gad; Patel, Anoop Premswaroop; Monje, Michelle; Cahill, Daniel; Rozenblatt-Rosen, Orit; Louis, David; Bernstein, Bradley; Regev, Aviv; Suva, Mario
  • Publication

    Densely Interconnected Transcriptional Circuits Control Cell States in Human Hematopoiesis

    (Elsevier BV, 2011) Novershtern, Noa; Subramanian, Aravind; Lawton, Lee N.; Mak, Raymond; Haining, William; McConkey, Marie E.; Habib, Naomi; Yosef, Nir; Chang, Cindy; Shay, Tal; Frampton, Garrett M.; Drake, Adam C.B.; Leskov, Ilya; Nilsson, Bjorn; Preffer, Frederic; Dombkowski, David; Evans, John W.; Liefeld, Ted; Smutko, John S.; Chen, Jianzhu; Friedman, Nir; Young, Richard A.; Golub, Todd; Regev, Aviv; Ebert, Benjamin

    While many individual transcription factors are known to regulate hematopoietic differentiation, major aspects of the global architecture of hematopoiesis remain unknown. Here, we profiled gene expression in 38 distinct purified populations of human hematopoietic cells and used probabilistic models of gene expression and analysis of cis-elements in gene promoters to decipher the general organization of their regulatory circuitry. We identified modules of highly co-expressed genes, some of which are restricted to a single lineage, but most are expressed at variable levels across multiple lineages. We found densely interconnected cis-regulatory circuits and a large number of transcription factors that are differentially expressed across hematopoietic states. These findings suggest a more complex regulatory system for hematopoiesis than previously assumed.

  • Publication

    A unique regulatory phase of DNA methylation in the early mammalian embryo

    (2012) Smith, Zachary D.; Chan, Michelle M.; Mikkelsen, Tarjei S.; Gu, Hongcang; Gnirke, Andreas; Regev, Aviv; Meissner, Alexander

    Summary DNA methylation is highly dynamic during mammalian embryogenesis. It is broadly accepted that the paternal genome is actively depleted of 5-methyl cytosine at fertilization, followed by passive loss that reaches a minimum at the blastocyst stage. However, this model is based on limited data, and to date no base-resolution maps exist to support and refine it. Here, we generated genome-scale DNA methylation maps in mouse gametes and through post-implantation embryogenesis. We find that the oocyte already exhibits global hypomethylation, most prominently at specific families of long interspersed element-1 and long terminal repeat retro-elements, which are disparate between gametes and resolve to lower methylation values in zygote. Surprisingly, the oocyte contributes a unique set of Differentially Methylated Regions (DMRs), including many CpG Island promoter regions, that are maintained in the early embryo but are lost upon specification and absent from somatic cells. In contrast, sperm-contributed DMRs are largely intergenic and resolve to hypermethylation after the blastocyst stage. Our data provide a complete genome-scale, base-resolution timeline of DNA methylation in the pre-specified embryo, when this epigenetic modification is most dynamic, before returning to the canonical somatic pattern.

  • Publication

    Nanowire-Mediated Delivery Enables Functional Interrogation of Primary Immune Cells: Application to the Analysis of Chronic Lymphocytic Leukemia

    (American ChemicalSociety, 2012) Shalek, Alexander; Gaublomme, Jellert; Wang, Lili; Yosef, Nir; Chevrier, Nicolas; Andersen, Mette S.; Robinson, Jacob T.; Pochet, Nathalie; Neuberg, Donna; Gertner, Rona; Amit, Ido; Brown, Jennifer; Hacohen, Nir; Regev, Aviv; Wu, Catherine; Park, Hongkun

    A circuit level understanding of immune cells and hematological cancers has been severely impeded by a lack of techniques that enable intracellular perturbation without significantly altering cell viability and function. Here, we demonstrate that vertical silicon nanowires (NWs) enable gene-specific manipulation of diverse murine and human immune cells with negligible toxicity. To illustrate the power of the technique, we then apply NW-mediated gene silencing to investigate the role of the Wnt signaling pathway in chronic lymphocytic leukemia (CLL). Remarkably, CLL-B cells from different patients exhibit tremendous heterogeneity in their response to the knockdown of a single gene, LEF1. This functional heterogeneity defines three distinct patient groups not discernible by conventional CLL cytogenetic markers and provides a prognostic indicator for patients’ time to first therapy. Analyses of gene expression signatures associated with these functional patient subgroups reveal unique insights into the underlying molecular basis for disease heterogeneity. Overall, our findings suggest a functional classification that can potentially guide the selection of patient-specific therapies in CLL and highlight the opportunities for nanotechnology to drive biological inquiry.

  • Publication

    Mouse Ooplasm Confers Context-Specific Reprogramming Capacity

    (Nature Publishing Group, 2012) Chan, Michelle; Smith, Zachary; Egli, Dieter; Regev, Aviv; Meissner, Alexander

    Enucleated oocytes have the remarkable ability to reprogram somatic nuclei back to totipotency. Here we investigate genome-scale DNA methylation patterns after nuclear transfer and compare them to the dynamics at fertilization. We identify specific targets for DNA demethylation after nuclear transfer such as germ-line associated promoters, as well as unique limitations that include certain repetitive element classes.

  • Publication

    Individual Brain Organoids Reproducibly Form Cell Diversity of the Human Cerebral Cortex

    (Springer Science and Business Media LLC, 2019-06) Velasco, Silvia; Kedaigle, Amanda; Simmons, Sean K.; Nash, Allison; Rocha, Marina; Quadrato, Giorgia; da Silveira Paulsen, Bruna; Nguyen, Lan; Adiconis, Xian; Regev, Aviv; Levin, Joshua Z.; Arlotta, Paola

    Experimental models of the human brain are needed for basic understanding of its development and disease1. Human brain organoids hold unprecedented promise for this purpose; however, they are plagued by high organoid-to-organoid variability2,3. This has raised doubts as to whether developmental processes of the human brain can occur outside the context of embryogenesis with a degree of reproducibility comparable to the endogenous tissue. Here, we show that an organoid model of the dorsal forebrain can achieve reproducible generation of a rich diversity of cell types appropriate for the human cerebral cortex. Using single-cell RNA sequencing of 166,242 cells isolated from 21 individual organoids, we find that 95% of the organoids generate a virtually indistinguishable compendium of cell types, through the same developmental trajectories, and with organoid-to-organoid variability comparable to that of individual endogenous brains. Furthermore, organoids derived from different stem cell lines show consistent reproducibility in the cell types produced. The data demonstrate that reproducible development of complex central nervous system cellular diversity does not require the context of the embryo, and that establishment of terminal cell identity is a highly constrained process that can emerge from diverse stem cell origins and growth environments.

  • Publication

    Molecular Logic of Cellular Diversification in the Mouse Cerebral Cortex

    (Springer Science and Business Media LLC, 2021-06-23) Di Bella, Daniela; Habibi, Ehsan; Stickels, Robert; Scalia, Gabriele; Brown, Juliana; Yadollahpour, Payman; Yang, Sung Min; Abbate, Catherine; Biancalani, Tommaso; Macosko, Evan; Chen, Fei; Regev, Aviv; Arlotta, Paola

    The mammalian cerebral cortex has an unparalleled diversity of cell types, which are generated during development through a series of temporally orchestrated events that are under tight evolutionary constraint and are critical for proper cortical assembly and function. However, the molecular logic that governs the establishment and organization of cortical cell types remains elusive, largely due to the large number of cell classes undergoing dynamic cell-state transitions over extended developmental timelines. Here, we have generated a comprehensive single-cell RNA-seq and single-cell ATAC-seq atlas of the developing mouse neocortex, sampled every day throughout embryonic corticogenesis and at early postnatal ages, complemented with a spatial transcriptomics time-course. We computationally reconstruct developmental trajectories across the diversity of cortical cell classes, and infer their spatial organization and the gene regulatory programs that accompany their lineage bifurcation decisions and differentiation trajectories. Finally, we demonstrate how this developmental map pinpoints the origin of lineage-specific developmental abnormalities linked to aberrant corticogenesis in mutant animals. The data provides a global picture of the regulatory mechanisms governing cellular diversification in the neocortex.