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Biography

Victor Ambros grew up in Vermont and graduated from MIT in 1975. He did his graduate research (1976-1979) with David Baltimore at MIT, studying poliovirus genome structure and replication. He began to study the genetic pathways controlling developmental timing in the nematode C. elegans as a postdoc in H. Robert Horvitz's lab at MIT, and continued those studies while on the faculty of Harvard (1984-1992), Dartmouth (1992-2007), and the University of Massachusetts Medical School (2008-present). In 1993, members of the Ambros lab identified the first microRNA, the product of lin-4, a heterochronic gene of C. elegans. Since then, the role of microRNAs in development has been a major focus of his research.

Silverman Professor of Natural Sciences, Professor, Program in Molecular Medicine

Ambros Lab Web Page

 

 

Molecular and genetic control of animal development; microRNA regulatory mechanisms

We are interested in the genetic regulatory mechanisms that control animal development, and in particular the molecules that function during animal development to ensure the proper timing of developmental events. We have primarily employed the nematode Caenorhabditis elegans as a model system for studying the function of regulators of developmental timing, which in C. elegans are known as the “heterochronic genes”, in reference to the remarkable changes in relative timing of developmental event that are elicited by mutations in these genes. The heterochronic genes comprise a set of interrelated regulatory pathways that include proteins that regulate the transcription of other genes, and also a class of small RNA, known as microRNAs, that regulate the production of protein by the messenger RNAs of specific target genes. Much of our research in recent years has been aimed at understanding how microRNAs are integrated into broader regulatory networks related to animal development and human disease, and at uncovering the molecular mechanisms for how microRNAs exert their effects on gene expression.

Victor's Worms

One or more keywords matched the following items that are connected to Ambros, Victor
Item TypeName
Academic Article Heterochronic genes control cell cycle progress and developmental competence of C. elegans vulva precursor cells.
Academic Article The C. elegans heterochronic gene lin-46 affects developmental timing at two larval stages and encodes a relative of the scaffolding protein gephyrin.
Academic Article Efficient gene transfer in C.elegans: extrachromosomal maintenance and integration of transforming sequences.
Academic Article The let-7 MicroRNA family members mir-48, mir-84, and mir-241 function together to regulate developmental timing in Caenorhabditis elegans.
Academic Article The Caenorhabditis elegans heterochronic regulator LIN-14 is a novel transcription factor that controls the developmental timing of transcription from the insulin/insulin-like growth factor gene ins-33 by direct DNA binding.
Academic Article Interacting endogenous and exogenous RNAi pathways in Caenorhabditis elegans.
Academic Article The lin-41 RBCC gene acts in the C. elegans heterochronic pathway between the let-7 regulatory RNA and the LIN-29 transcription factor.
Academic Article Most Caenorhabditis elegans microRNAs are individually not essential for development or viability.
Academic Article MicroRNAs: genetically sensitized worms reveal new secrets.
Academic Article Molecular genetics of the Caenorhabditis elegans heterochronic gene lin-14.
Academic Article The Caenorhabditis elegans heterochronic gene pathway controls stage-specific transcription of collagen genes.
Academic Article Heterochronic genes and the temporal control of C. elegans development.
Academic Article Silencing of retrotransposons in Dictyostelium by DNA methylation and RNAi.
Academic Article A feedback circuit involving let-7-family miRNAs and DAF-12 integrates environmental signals and developmental timing in Caenorhabditis elegans.
Academic Article Heterochronic genes control the stage-specific initiation and expression of the dauer larva developmental program in Caenorhabditis elegans.
Academic Article The decapping scavenger enzyme DCS-1 controls microRNA levels in Caenorhabditis elegans.
Academic Article The lin-14 locus of Caenorhabditis elegans controls the time of expression of specific postembryonic developmental events.
Academic Article Heterochronic mutants of the nematode Caenorhabditis elegans.
Concept Mutation
Academic Article Mutations in conserved residues of the C. elegans microRNA Argonaute ALG-1 identify separable functions in ALG-1 miRISC loading and target repression.
Academic Article Caenorhabditis elegans microRNAs of the let-7 family act in innate immune response circuits and confer robust developmental timing against pathogen stress.
Academic Article Robust Distal Tip Cell Pathfinding in the Face of Temperature Stress Is Ensured by Two Conserved microRNAS in Caenorhabditis elegans.
Academic Article Caenorhabditis elegans ALG-1 antimorphic mutations uncover functions for Argonaute in microRNA guide strand selection and passenger strand disposal.
Academic Article Staufen Negatively Modulates MicroRNA Activity in Caenorhabditis elegans.
Academic Article A microRNA family exerts maternal control on sex determination in C. elegans.
Academic Article Recent Molecular Genetic Explorations of Caenorhabditis elegans MicroRNAs.
Academic Article The C. elegans heterochronic gene lin-28 coordinates the timing of hypodermal and somatic gonadal programs for hermaphrodite reproductive system morphogenesis.
Academic Article Trans-splicing of the C. elegans let-7 primary transcript developmentally regulates let-7 microRNA biogenesis and let-7 family microRNA activity.
Academic Article C.?elegans LIN-28 controls temporal cell fate progression by regulating LIN-46 expression via the 5' UTR of lin-46 mRNA.
Academic Article Modeling neurodevelopmental disorder-associated hAGO1 mutations in C. elegans Argonaute ALG-1.
Academic Article Modeling neurodevelopmental disorder-associated human AGO1 mutations in Caenorhabditis elegans Argonaute alg-1.
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