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Dive into the research topics where Sonia Franco is active.

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Featured researches published by Sonia Franco.


Cell | 2006

Genomic instability and aging-like phenotype in the absence of mammalian SIRT6

Raul Mostoslavsky; Katrin F. Chua; David B. Lombard; Wendy W. Pang; Miriam R. Fischer; Lionel Gellon; Pingfang Liu; Gustavo Mostoslavsky; Sonia Franco; Michael M. Murphy; Kevin D. Mills; Parin Patel; Joyce T. Hsu; Andrew L. Hong; Ethan Ford; Hwei Ling Cheng; Caitlin Kennedy; Nomeli P. Nunez; Roderick T. Bronson; David Frendewey; Wojtek Auerbach; David M. Valenzuela; Margaret Karow; Michael O. Hottiger; Stephen D. Hursting; J. Carl Barrett; Leonard Guarente; Richard C. Mulligan; Bruce Demple; George D. Yancopoulos

The Sir2 histone deacetylase functions as a chromatin silencer to regulate recombination, genomic stability, and aging in budding yeast. Seven mammalian Sir2 homologs have been identified (SIRT1-SIRT7), and it has been speculated that some may have similar functions to Sir2. Here, we demonstrate that SIRT6 is a nuclear, chromatin-associated protein that promotes resistance to DNA damage and suppresses genomic instability in mouse cells, in association with a role in base excision repair (BER). SIRT6-deficient mice are small and at 2-3 weeks of age develop abnormalities that include profound lymphopenia, loss of subcutaneous fat, lordokyphosis, and severe metabolic defects, eventually dying at about 4 weeks. We conclude that one function of SIRT6 is to promote normal DNA repair, and that SIRT6 loss leads to abnormalities in mice that overlap with aging-associated degenerative processes.


Cell | 2005

DNA Repair, Genome Stability, and Aging

David B. Lombard; Katrin F. Chua; Raul Mostoslavsky; Sonia Franco; Monica Gostissa; Frederick W. Alt

Aging can be defined as progressive functional decline and increasing mortality over time. Here, we review evidence linking aging to nuclear DNA lesions: DNA damage accumulates with age, and DNA repair defects can cause phenotypes resembling premature aging. We discuss how cellular DNA damage responses may contribute to manifestations of aging. We review Sir2, a factor linking genomic stability, metabolism, and aging. We conclude with a general discussion of the role of mutant mice in aging research and avenues for future investigation.


Nature | 2007

IgH class switching and translocations use a robust non-classical end-joining pathway.

Catherine T. Yan; Cristian Boboila; Ellen Kris Souza; Sonia Franco; Thomas Hickernell; Michael P. Murphy; Sunil Gumaste; Mark B. Geyer; Ali A. Zarrin; John P. Manis; Klaus Rajewsky; Frederick W. Alt

Immunoglobulin variable region exons are assembled in developing B cells by V(D)J recombination. Once mature, these cells undergo class-switch recombination (CSR) when activated by antigen. CSR changes the heavy chain constant region exons (Ch) expressed with a given variable region exon from Cμ to a downstream Ch (for example, Cγ, Cε or Cα), thereby switching expression from IgM to IgG, IgE or IgA. Both V(D)J recombination and CSR involve the introduction of DNA double-strand breaks and their repair by means of end joining. For CSR, double-strand breaks are introduced into switch regions that flank Cμ and a downstream Ch, followed by fusion of the broken switch regions. In mammalian cells, the ‘classical’ non-homologous end joining (C-NHEJ) pathway repairs both general DNA double-strand breaks and programmed double-strand breaks generated by V(D)J recombination. C-NHEJ, as observed during V(D)J recombination, joins ends that lack homology to form ‘direct’ joins, and also joins ends with several base-pair homologies to form microhomology joins. CSR joins also display direct and microhomology joins, and CSR has been suggested to use C-NHEJ. Xrcc4 and DNA ligase IV (Lig4), which cooperatively catalyse the ligation step of C-NHEJ, are the most specific C-NHEJ factors; they are absolutely required for V(D)J recombination and have no known functions other than C-NHEJ. Here we assess whether C-NHEJ is also critical for CSR by assaying CSR in Xrcc4- or Lig4-deficient mouse B cells. C-NHEJ indeed catalyses CSR joins, because C-NHEJ-deficient B cells had decreased CSR and substantial levels of IgH locus (immunoglobulin heavy chain, encoded by Igh) chromosomal breaks. However, an alternative end-joining pathway, which is markedly biased towards microhomology joins, supports CSR at unexpectedly robust levels in C-NHEJ-deficient B cells. In the absence of C-NHEJ, this alternative end-joining pathway also frequently joins Igh locus breaks to other chromosomes to generate translocations.


Molecular Cell | 2008

Lymphocyte-specific compensation for XLF/cernunnos end-joining functions in V(D)J recombination.

Gang Li; Frederick W. Alt; Hwei Ling Cheng; James W. Brush; Peter H. Goff; Michael M. Murphy; Sonia Franco; Yu Zhang; Shan Zha

Mutations in XLF/Cernunnos (XLF) cause lymphocytopenia in humans, and various studies suggest an XLF role in classical nonhomologous end joining (C-NHEJ). We now find that XLF-deficient mouse embryonic fibroblasts are ionizing radiation (IR) sensitive and severely impaired for ability to support V(D)J recombination. Yet mature lymphocyte numbers in XLF-deficient mice are only modestly decreased. Moreover, XLF-deficient pro-B lines, while IR-sensitive, perform V(D)J recombination at nearly wild-type levels. Correspondingly, XLF/p53-double-deficient mice are not markedly prone to the pro-B lymphomas that occur in previously characterized C-NHEJ/p53-deficient mice; however, like other C-NHEJ/p53-deficient mice, they still develop medulloblastomas. Despite nearly normal V(D)J recombination in developing B cells, XLF-deficient mature B cells are moderately defective for immunoglobulin heavy-chain class switch recombination. Together, our results implicate XLF as a C-NHEJ factor but also indicate that developing mouse lymphocytes harbor cell-type-specific factors/pathways that compensate for the absence of XLF function during V(D)J recombination.


Journal of Experimental Medicine | 2008

AID expression levels determine the extent of cMyc oncogenic translocations and the incidence of B cell tumor development

Makiko Takizawa; Helena Tolarová; Zhiyu Li; Wendy Dubois; Susan Lim; Elsa Callen; Sonia Franco; Maria Mosaico; Lionel Feigenbaum; Frederick W. Alt; André Nussenzweig; Michael Potter; Rafael Casellas

Immunoglobulin (Ig) isotype switching is a recombination event that changes the constant domain of antibody genes and is catalyzed by activation-induced cytidine deaminase (AID). Upon recruitment to Ig genes, AID deaminates cytidines at switch (S) recombination sites, leading to the formation of DNA breaks. In addition to their role in isotype switching, AID-induced lesions promote Igh-cMyc chromosomal translocations and tumor development. However, cMyc translocations are also present in lymphocytes from healthy humans and mice, and thus, it remains unclear whether AID directly contributes to the dynamics of B cell transformation. Using a plasmacytoma mouse model, we show that AID+/− mice have reduced AID expression levels and display haploinsufficiency both in the context of isotype switching and plasmacytomagenesis. At the Ig loci, AID+/− lymphocytes show impaired intra- and inter-switch recombination, and a substantial decrease in the frequency of S mutations and chromosomal breaks. In AID+/− mice, these defects correlate with a marked decrease in the accumulation of B cell clones carrying Igh-cMyc translocations during tumor latency. These results thus provide a causality link between the extent of AID enzymatic activity, the number of emerging Igh-cMyc–translocated cells, and the incidence of B cell transformation.


Journal of Experimental Medicine | 2008

DNA-PKcs and Artemis function in the end-joining phase of immunoglobulin heavy chain class switch recombination

Sonia Franco; Michael M. Murphy; Gang Li; Tiffany Borjeson; Cristian Boboila; Frederick W. Alt

The DNA-dependent protein kinase catalytic subunit (DNA-PKcs) and Artemis are classical nonhomologous DNA end-joining (C-NHEJ) factors required for joining a subset of DNA double-strand breaks (DSB), particularly those requiring end processing. In mature B cells, activation-induced cytidine deaminase (AID) initiates class switch recombination (CSR) by introducing lesions into S regions upstream of two recombining CH exons, which are processed into DSBs and rejoined by C-NHEJ to complete CSR. The function of DNA-PKcs in CSR has been controversial with some reports but not others showing that DNA-PKcs–deficient mice are significantly impaired for CSR. Artemis-deficient B cells reportedly undergo CSR at normal levels. Overall, it is still not known whether there are any CSR-associated DSBs that require DNA-PKcs and/or Artemis to be joined. Here, we have used an immunoglobulin (Ig)H locus-specific fluorescent in situ hybridization assay to unequivocally demonstrate that both DNA-PKcs and, unexpectedly, Artemis are necessary for joining a subset of AID-dependent DSBs. In the absence of either factor, B cells activated for CSR frequently generate AID-dependent IgH locus chromosomal breaks and translocations. We also find that under specific activation conditions, DNA-PKcs−/− B cells with chromosomal breaks are eliminated or at least prevented from progressing to metaphase via a p53-dependent response.


Journal of Experimental Medicine | 2009

Polζ ablation in B cells impairs the germinal center reaction, class switch recombination, DNA break repair, and genome stability

Dominik Schenten; Sven Kracker; Gloria Esposito; Sonia Franco; Ulf Klein; Michael C. Murphy; Frederick W. Alt; Klaus Rajewsky

Polζ is an error-prone DNA polymerase that is critical for embryonic development and maintenance of genome stability. To analyze its suggested role in somatic hypermutation (SHM) and possible contribution to DNA double-strand break (DSB) repair in class switch recombination (CSR), we ablated Rev3, the catalytic subunit of Polζ, selectively in mature B cells in vivo. The frequency of somatic mutation was reduced in the mutant cells but the pattern of SHM was unaffected. Rev3-deficient B cells also exhibited pronounced chromosomal instability and impaired proliferation capacity. Although the data thus argue against a direct role of Polζ in SHM, Polζ deficiency directly interfered with CSR in that activated Rev3-deficient B cells exhibited a reduced efficiency of CSR and an increased frequency of DNA breaks in the immunoglobulin H locus. Based on our results, we suggest a nonredundant role of Polζ in DNA DSB repair through nonhomologous end joining.


Molecular Cell | 2006

MDC1 Maintains Genomic Stability by Participating in the Amplification of ATM-Dependent DNA Damage Signals

Zhenkun Lou; Katherine Minter-Dykhouse; Sonia Franco; Monica Gostissa; Melissa A. Rivera; Arkady Celeste; John P. Manis; Jan M. van Deursen; André Nussenzweig; Tanya T. Paull; Frederick W. Alt; Junjie Chen


Molecular Cell | 2006

H2AX Prevents DNA Breaks from Progressing to Chromosome Breaks and Translocations

Sonia Franco; Monica Gostissa; Shan Zha; David B. Lombard; Michael M. Murphy; Ali A. Zarrin; Catherine T. Yan; Suprawee Tepsuporn; Julio C. Morales; Melissa M. Adams; Zhenkun Lou; Craig H. Bassing; John P. Manis; Junjie Chen; Phillip B. Carpenter; Frederick W. Alt


Cell Metabolism | 2005

Mammalian SIRT1 limits replicative life span in response to chronic genotoxic stress.

Katrin F. Chua; Raul Mostoslavsky; David B. Lombard; Wendy W. Pang; Shin'ichi Saito; Sonia Franco; Dhruv Kaushal; Hwei-Ling Cheng; Miriam R. Fischer; Nicole Stokes; Michael M. Murphy; Ettore Appella; Frederick W. Alt

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Frederick W. Alt

Howard Hughes Medical Institute

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John P. Manis

Boston Children's Hospital

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Catherine T. Yan

Beth Israel Deaconess Medical Center

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Monica Gostissa

Howard Hughes Medical Institute

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André Nussenzweig

National Institutes of Health

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