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Hettmer, Simone

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Hettmer

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Simone

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Hettmer, Simone

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Now showing 1 - 5 of 5
  • Publication

    Lineage of origin in rhabdomyosarcoma informs pharmacological response

    (Cold Spring Harbor Laboratory Press, 2014) Abraham, Jacob; Nunez-Alvarez, Y.; Hettmer, Simone; Carrio, E.; Chen, Hung-I Harry; Nishijo, K.; Huang, Elaine; Prajapati, Suresh I.; Walker, Robert L.; Davis, Sean; Rebeles, Jennifer; Wiebush, Hunter; McCleish, Amanda T.; Hampton, Sheila T.; Bjornson, Christopher R.R.; Brack, Andrew S; Wagers, Amy; Rando, Thomas A.; Capecchi, Mario R.; Marini, Frank C.; Ehler, Benjamin R.; Zarzabal, Lee Ann; Goros, Martin W.; Michalek, Joel E.; Meltzer, Paul S.; Langenau, David; LeGallo, Robin D.; Mansoor, Asif Imran; Chen, Yidong; Suelves, Monica; Rubin, Brian P.; Keller, Charles

    Lineage or cell of origin of cancers is often unknown and thus is not a consideration in therapeutic approaches. Alveolar rhabdomyosarcoma (aRMS) is an aggressive childhood cancer for which the cell of origin remains debated. We used conditional genetic mouse models of aRMS to activate the pathognomonic Pax3:Foxo1 fusion oncogene and inactivate p53 in several stages of prenatal and postnatal muscle development. We reveal that lineage of origin significantly influences tumor histomorphology and sensitivity to targeted therapeutics. Furthermore, we uncovered differential transcriptional regulation of the Pax3:Foxo1 locus by tumor lineage of origin, which led us to identify the histone deacetylase inhibitor entinostat as a pharmacological agent for the potential conversion of Pax3:Foxo1-positive aRMS to a state akin to fusion-negative RMS through direct transcriptional suppression of Pax3:Foxo1.

  • Publication

    Rictor/mTORC2 Loss in the Myf5 Lineage Reprograms Brown Fat Metabolism and Protects Mice against Obesity and Metabolic Disease

    (Elsevier BV, 2014) Hung, Chien-Min; Calejman, Camila Martinez; Sanchez-Gurmaches, Joan; Li, Huawei; Clish, Clary B.; Hettmer, Simone; Wagers, Amy; Guertin, David A.

    TThe in vivo functions of mTORC2, and the signaling mechanisms that control brown adipose tissue (BAT) fuel utilization and activity, are not well understood. Here, by conditionally deleting Rictor in the Myf5-lineage, we provide in vivo evidence that mTORC2 is dispensable for skeletal muscle development and regeneration but essential for BAT growth. Furthermore, deleting Rictor in Myf5 precursors shifts BAT metabolism to a more oxidative and less lipogenic state and protects mice from obesity and metabolic disease at thermoneutrality. We additionally find that Rictor is required for brown adipocyte differentiation in vitro, that the mechanism specifically requires AKT1 hydrophobic motif phosphorylation but is independent of pan-AKT signaling, and is rescued with BMP7. Our findings provide new insights into the signaling circuitry that regulates brown adipocytes and could have important implications for developing therapies aimed at increasing energy expenditure as a means to combat human obesity.

  • Publication

    Isolation of Progenitors that Exhibit Myogenic/Osteogenic Bipotency In Vitro by Fluorescence-Activated Cell Sorting from Human Fetal Muscle

    (Elsevier BV, 2014) Castiglioni, Alessandra; Hettmer, Simone; Lynes, Matthew; Rao, Tata Nageswara; Tchessalova, Daria; Sinha, Indranil; Lee, Bernard; Tseng, Yu-Hua; Wagers, Amy

    Fluorescence-activated cell sorting (FACS) strategies to purify distinct cell types from the pool of fetal human myofiber-associated (hMFA) cells were developed. We demonstrate that cells expressing the satellite cell marker PAX7 are highly enriched within the subset of CD45−CD11b−GlyA−CD31−CD34−CD56intITGA7hi hMFA cells. These CD45−CD11b−GlyA−CD31−CD34−CD56intITGA7hi cells lack adipogenic capacity but exhibit robust, bipotent myogenic and osteogenic activity in vitro and engraft myofibers when transplanted into mouse muscle. In contrast, CD45−CD11b−GlyA−CD31−CD34+ fetal hMFA cells represent stromal constituents of muscle that do not express PAX7, lack myogenic function, and exhibit adipogenic and osteogenic capacity in vitro. Adult muscle likewise contains PAX7+ CD45−CD11b−GlyA−CD31−CD34−CD56intITGA7hi hMFA cells with in vitro myogenic and osteogenic activity, although these cells are present at lower frequency in comparison to their fetal counterparts. The ability to directly isolate functionally distinct progenitor cells from human muscle will enable novel insights into muscle lineage specification and homeostasis.

  • Publication

    The Hippo Transducer YAP1 Transforms Activated Satellite Cells and Is a Potent Effector of Embryonal Rhabdomyosarcoma Formation

    (Elsevier BV, 2014) Tremblay, Annie M.; Missiaglia, Edoardo; Galli, Giorgio G.; Hettmer, Simone; Urcia, Roby; Carrara, Matteo; Judson, Rebekah M; Thway, Khin; Nadal, Gema; Selfe, Joanna L.; Murray, Graeme; Calogero, Raffaele A.; De Bari, Cosimo; Zammit, Peter S.; Delorenzi, Mauro; Wagers, Amy; Shipley, Janet; Wackerhage, Henning; Camargo, Fernando

    The role of the Hippo pathway effector YAP1 in soft tissue sarcomas is poorly defined. Here we report that YAP1 activity is elevated in human embryonal rhabdomyosarcoma (ERMS). In mice, sustained YAP1 hyperactivity in activated, but not quiescent, satellite cells induces ERMS with high penetrance and short latency. Via its transcriptional program with TEAD1, YAP1 directly regulates several major hallmarks of ERMS. YAP1-TEAD1 upregulate pro-proliferative and oncogenic genes and maintain the ERMS differentiation block by interfering withMYOD1and MEF2 pro-differentiation activities. Normalization of YAP1 expression reduces tumor burden in human ERMS xenografts and allows YAP1-driven ERMS to differentiate in situ. Collectively, our results identify YAP1 as a potent ERMS oncogenic driver and a promising target for differentiation therapy.

  • Publication

    Induction of Histiocytic Sarcoma in Mouse Skeletal Muscle

    (Public Library of Science, 2012) Liu, Jianing; Hettmer, Simone; Milsom, Michael D.; Hofmann, Inga; Hua, Frederic; Miller, Christine; Bronson, Roderick; Wagers, Amy

    Myeloid sarcomas are extramedullary accumulations of immature myeloid cells that may present with or without evidence of pathologic involvement of the bone marrow or peripheral blood, and often coincide with or precede a diagnosis of acute myeloid leukemia (AML). A dearth of experimental models has hampered the study of myeloid sarcomas and led us to establish a new system in which tumor induction can be evaluated in an easily accessible non-hematopoietic tissue compartment. Using ex-vivo transduction of oncogenic Kras(G12V) into p16/p19−/− bone marrow cells, we generated transplantable leukemia-initiating cells that rapidly induced tumor formation in the skeletal muscle of immunocompromised NOD.SCID mice. In this model, murine histiocytic sarcomas, equivalent to human myeloid sarcomas, emerged at the injection site 30–50 days after cell implantation and consisted of tightly packed monotypic cells that were CD48+, CD47+ and Mac1+, with low or absent expression of other hematopoietic lineage markers. Tumor cells also infiltrated the bone marrow, spleen and other non-hematopoietic organs of tumor-bearing animals, leading to systemic illness (leukemia) within two weeks of tumor detection. P16/p19−/−; Kras(G12V) myeloid sarcomas were multi-clonal, with dominant clones selected during secondary transplantation. The systemic leukemic phenotypes exhibited by histiocytic sarcoma-bearing mice were nearly identical to those of animals in which leukemia was introduced by intravenous transplantation of the same donor cells. Moreover, murine histiocytic sarcoma could be similarly induced by intramuscular injection of MLL-AF9 leukemia cells. This study establishes a novel, transplantable model of murine histiocytic/myeloid sarcoma that recapitulates the natural progression of these malignancies to systemic disease and indicates a cell autonomous leukemogenic mechanism.