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Mutational cooperativity linked to combinatorial epigenetic gain of function in acute myeloid leukemia
Shih, Alan H; Jiang, Yanwen; Meydan, Cem; Shank, Kaitlyn; Pandey, Suveg; Barreyro, Laura; Antony-Debre, Ileana; Viale, Agnes; Socci, Nicholas; Sun, Yongming; Robertson, Alexander; Cavatore, Magali; de Stanchina, Elisa; Hricik, Todd; Rapaport, Franck; Woods, Brittany; Wei, Chen; Hatlen, Megan; Baljevic, Muhamed; Nimer, Stephen D; Tallman, Martin; Paietta, Elisabeth; Cimmino, Luisa; Aifantis, Iannis; Steidl, Ulrich; Mason, Chris; Melnick, Ari; Levine, Ross L
Specific combinations of acute myeloid leukemia (AML) disease alleles, including FLT3 and TET2 mutations, confer distinct biologic features and adverse outcome. We generated mice with mutations in Tet2 and Flt3, which resulted in fully penetrant, lethal AML. Multipotent Tet2(-/-);Flt3(ITD) progenitors (LSK CD48(+)CD150(-)) propagate disease in secondary recipients and were refractory to standard AML chemotherapy and FLT3-targeted therapy. Flt3(ITD) mutations and Tet2 loss cooperatively remodeled DNA methylation and gene expression to an extent not seen with either mutant allele alone, including at the Gata2 locus. Re-expression of Gata2 induced differentiation in AML stem cells and attenuated leukemogenesis. TET2 and FLT3 mutations cooperatively induce AML, with a defined leukemia stem cell population characterized by site-specific changes in DNA methylation and gene expression.
PMCID:4518555
PMID: 25873173
ISSN: 1878-3686
CID: 1532192
TET1 is a tumor suppressor of hematopoietic malignancy
Cimmino, Luisa; Dawlaty, Meelad M; Ndiaye-Lobry, Delphine; Yap, Yoon Sing; Bakogianni, Sofia; Yu, Yiting; Bhattacharyya, Sanchari; Shaknovich, Rita; Geng, Huimin; Lobry, Camille; Mullenders, Jasper; King, Bryan; Trimarchi, Thomas; Aranda-Orgilles, Beatriz; Liu, Cynthia; Shen, Steven; Verma, Amit K; Jaenisch, Rudolf; Aifantis, Iannis
The methylcytosine dioxygenase TET1 ('ten-eleven translocation 1') is an important regulator of 5-hydroxymethylcytosine (5hmC) in embryonic stem cells. The diminished expression of TET proteins and loss of 5hmC in many tumors suggests a critical role for the maintenance of this epigenetic modification. Here we found that deletion of Tet1 promoted the development of B cell lymphoma in mice. TET1 was required for maintenance of the normal abundance and distribution of 5hmC, which prevented hypermethylation of DNA, and for regulation of the B cell lineage and of genes encoding molecules involved in chromosome maintenance and DNA repair. Whole-exome sequencing of TET1-deficient tumors revealed mutations frequently found in non-Hodgkin B cell lymphoma (B-NHL), in which TET1 was hypermethylated and transcriptionally silenced. Our findings provide in vivo evidence of a function for TET1 as a tumor suppressor of hematopoietic malignancy.
PMCID:4545281
PMID: 25867473
ISSN: 1529-2916
CID: 1532762
The Pre-BCR to the Rescue: Therapeutic Targeting of Pre-B Cell ALL
Trimarchi, Thomas; Aifantis, Iannis
Pre B-ALL is an aggressive cancer of the blood for which treatment of patients with relapsed and refractory disease remains a challenge. In this issue of Cancer Cell, Geng and colleagues surveyed the activation status of the pre-B cell receptor and comprehensively investigated downstream signaling mechanisms currently targetable with small molecule inhibitors.
PMCID:4532279
PMID: 25759017
ISSN: 1535-6108
CID: 1494912
FBXW7 modulates cellular stress response and metastatic potential through HSF1 post-translational modification
Kourtis, Nikos; Moubarak, Rana S; Aranda-Orgilles, Beatriz; Lui, Kevin; Aydin, Iraz T; Trimarchi, Thomas; Darvishian, Farbod; Salvaggio, Christine; Zhong, Judy; Bhatt, Kamala; Chen, Emily I; Celebi, Julide T; Lazaris, Charalampos; Tsirigos, Aristotelis; Osman, Iman; Hernando, Eva; Aifantis, Iannis
Heat-shock factor 1 (HSF1) orchestrates the heat-shock response in eukaryotes. Although this pathway has evolved to help cells adapt in the presence of challenging conditions, it is co-opted in cancer to support malignancy. However, the mechanisms that regulate HSF1 and thus cellular stress response are poorly understood. Here we show that the ubiquitin ligase FBXW7alpha interacts with HSF1 through a conserved motif phosphorylated by GSK3beta and ERK1. FBXW7alpha ubiquitylates HSF1 and loss of FBXW7alpha results in impaired degradation of nuclear HSF1 and defective heat-shock response attenuation. FBXW7alpha is either mutated or transcriptionally downregulated in melanoma and HSF1 nuclear stabilization correlates with increased metastatic potential and disease progression. FBXW7alpha deficiency and subsequent HSF1 accumulation activates an invasion-supportive transcriptional program and enhances the metastatic potential of human melanoma cells. These findings identify a post-translational mechanism of regulation of the HSF1 transcriptional program both in the presence of exogenous stress and in cancer.
PMCID:4401662
PMID: 25720964
ISSN: 1465-7392
CID: 1474022
Limited miR-17-92 overexpression drives hematologic malignancies
Danielson, Laura S; Reavie, Linsey; Coussens, Marc; Davalos, Veronica; Castillo-Martin, Mireia; Guijarro, Maria V; Coffre, Maryaline; Cordon-Cardo, Carlos; Aifantis, Iannis; Ibrahim, Sherif; Liu, Cynthia; Koralov, Sergei B; Hernando, Eva
The overexpression of microRNA cluster miR-17-92 has been implicated in development of solid tumors and hematological malignancies. The role of miR-17-92 in lymphomagenesis has been extensively investigated; however, because of the developmental defects caused by miR-17-92 dysregulation, its ability to drive tumorigenesis has remained undetermined until recently. Here we demonstrate that overexpression of miR-17-92 in a limited number of hematopoietic cells is sufficient to cause B cell malignancies. In sum, our study provides a novel and physiologically relevant model that exposes the potent ability of miR-17-92 to act as a driver of tumorigenesis.
PMCID:4376677
PMID: 25597017
ISSN: 0145-2126
CID: 1439872
DNA Hydroxymethylation Profiling Reveals That WT1 Mutations Result in Loss of TET2 Function in Acute Myeloid Leukemia [Meeting Abstract]
Rampal, Raajit K; Alkalin, Altuna; Madzo, Jozef; Vasanthakumar, Aparna; Pronier, Elodie; Patel, Jay P; Li, Yushan; Ahn, Jihae; Abdel-Wahab, Omar; Shih, Alan H; Lu, Chao; Ward, Patrick; Tsai, Jennifer J; Hricik, Todd; Tallman, Jacob; Tosello, Valeria; Zhao, Xinyang; Daniels, Danette; Dai, Qing; Ciminio, Luisa; Aifantis, Iannis; He, Chuan; Fuks, Francois; Tallman, Martin S; Ferrando, Adolfo A; Nimer, Stephen; Paietta, Elisabeth; Thompson, Craig B; Licht, Jonathan D; Mason, Christopher E; Godley, Lucy A; Melnick, Ari M; Figueroa, Maria E; Levine, Ross L
ISI:000349233803003
ISSN: 1528-0020
CID: 1497542
Cyclin C is a haploinsufficient tumour suppressor
Li, Na; Fassl, Anne; Chick, Joel; Inuzuka, Hiroyuki; Li, Xiaoyu; Mansour, Marc R; Liu, Lijun; Wang, Haizhen; King, Bryan; Shaik, Shavali; Gutierrez, Alejandro; Ordureau, Alban; Otto, Tobias; Kreslavsky, Taras; Baitsch, Lukas; Bury, Leah; Meyer, Clifford A; Ke, Nan; Mulry, Kristin A; Kluk, Michael J; Roy, Moni; Kim, Sunkyu; Zhang, Xiaowu; Geng, Yan; Zagozdzon, Agnieszka; Jenkinson, Sarah; Gale, Rosemary E; Linch, David C; Zhao, Jean J; Mullighan, Charles G; Harper, J Wade; Aster, Jon C; Aifantis, Iannis; von Boehmer, Harald; Gygi, Steven P; Wei, Wenyi; Look, A Thomas; Sicinski, Piotr
Cyclin C was cloned as a growth-promoting G1 cyclin, and was also shown to regulate gene transcription. Here we report that in vivo cyclin C acts as a haploinsufficient tumour suppressor, by controlling Notch1 oncogene levels. Cyclin C activates an 'orphan' CDK19 kinase, as well as CDK8 and CDK3. These cyclin-C-CDK complexes phosphorylate the Notch1 intracellular domain (ICN1) and promote ICN1 degradation. Genetic ablation of cyclin C blocks ICN1 phosphorylation in vivo, thereby elevating ICN1 levels in cyclin-C-knockout mice. Cyclin C ablation or heterozygosity collaborates with other oncogenic lesions and accelerates development of T-cell acute lymphoblastic leukaemia (T-ALL). Furthermore, the cyclin C encoding gene CCNC is heterozygously deleted in a significant fraction of human T-ALLs, and these tumours express reduced cyclin C levels. We also describe point mutations in human T-ALL that render cyclin-C-CDK unable to phosphorylate ICN1. Hence, tumour cells may develop different strategies to evade inhibition by cyclin C.
PMCID:4235773
PMID: 25344755
ISSN: 1465-7392
CID: 1341862
STAT3 supports experimental K-RasG12D-induced murine myeloproliferative neoplasms dependent on serine phosphorylation
Gough, Daniel J; Marie, Isabelle J; Lobry, Camille; Aifantis, Iannis; Levy, David E
Juvenile myelomonocytic leukemia, acute myeloid leukemia (AML), and other myeloproliferative neoplasms (MPNs) are genetically heterogeneous but frequently display activating mutations in Ras GTPases and activation of signal transducer and activator of transcription 3 (STAT3). Altered STAT3 activity is observed in up to 50% of AML correlating with poor prognosis. Activated STAT proteins, classically associated with tyrosine phosphorylation, support tumor development as transcription factors, but alternative STAT functions independent of tyrosine phosphorylation have been documented, including roles for serine-phosphorylated STAT3 in mitochondria supporting transformation by oncogenic Ras. We examined requirements for STAT3 in experimental murine K-Ras-dependent hematopoietic neoplasia. We show that STAT3 is phosphorylated on S727 but not Y705 in diseased animals. Moreover, a mouse with a point mutation abrogating STAT3 S727 phosphorylation displayed delayed onset and decreased disease severity with significantly extended survival. Activated K-Ras required STAT3 for cytokine-independent growth of myeloid progenitors in vitro, and mitochondrially restricted STAT3 and STAT3-Y705F, both transcriptionally inert mutants, supported factor-independent growth. STAT3 was dispensable for growth of normal or K-Ras-mutant myeloid progenitors in response to cytokines. However, abrogation of STAT3-S727 phosphorylation impaired factor-independent malignant growth. These data document that serine-phosphorylated mitochondrial STAT3 supports neoplastic hematopoietic cell growth induced by K-Ras.
PMCID:4183984
PMID: 25150294
ISSN: 0006-4971
CID: 1298802
Control of Embryonic Stem Cell Identity by BRD4-Dependent Transcriptional Elongation of Super-Enhancer-Associated Pluripotency Genes
Di Micco, Raffaella; Fontanals-Cirera, Barbara; Low, Vivien; Ntziachristos, Panagiotis; Yuen, Stephanie K; Lovell, Claudia D; Dolgalev, Igor; Yonekubo, Yoshiya; Zhang, Guangtao; Rusinova, Elena; Gerona-Navarro, Guillermo; Canamero, Marta; Ohlmeyer, Michael; Aifantis, Iannis; Zhou, Ming-Ming; Tsirigos, Aristotelis; Hernando, Eva
Transcription factors and chromatin-remodeling complexes are key determinants of embryonic stem cell (ESC) identity. Here, we demonstrate that BRD4, a member of the bromodomain and extraterminal domain (BET) family of epigenetic readers, regulates the self-renewal ability and pluripotency of ESCs. BRD4 inhibition resulted in induction of epithelial-to-mesenchymal transition (EMT) markers and commitment to the neuroectodermal lineage while reducing the ESC multidifferentiation capacity in teratoma assays. BRD4 maintains transcription of core stem cell genes such as OCT4 and PRDM14 by occupying their super-enhancers (SEs), large clusters of regulatory elements, and recruiting to them Mediator and CDK9, the catalytic subunit of the positive transcription elongation factor b (P-TEFb), to allow Pol-II-dependent productive elongation. Our study describes a mechanism of regulation of ESC identity that could be applied to improve the efficiency of ESC differentiation.
PMCID:4317728
PMID: 25263550
ISSN: 2211-1247
CID: 1259942
Contrasting roles of histone 3 lysine 27 demethylases in acute lymphoblastic leukaemia
Ntziachristos, Panagiotis; Tsirigos, Aristotelis; Welstead, G Grant; Trimarchi, Thomas; Bakogianni, Sofia; Xu, Luyao; Loizou, Evangelia; Holmfeldt, Linda; Strikoudis, Alexandros; King, Bryan; Mullanders, Jasper; Becksfort, Jared; Nedjic, Jelena; Paietta, Elisabeth; Tallman, Martin S; Rowe, Jacob M; Tonon, Giovanni; Satoh, Takashi; Kruidenier, Laurens; Prinjha, Rab; Akira, Shizuo; Van Vlierberghe, Pieter; Ferrando, Adolfo A; Jaenisch, Rudolf; Mullighan, Charles G; Aifantis, Iannis
T-cell acute lymphoblastic leukaemia (T-ALL) is a haematological malignancy with a dismal overall prognosis, including a relapse rate of up to 25%, mainly because of the lack of non-cytotoxic targeted therapy options. Drugs that target the function of key epigenetic factors have been approved in the context of haematopoietic disorders, and mutations that affect chromatin modulators in a variety of leukaemias have recently been identified; however, 'epigenetic' drugs are not currently used for T-ALL treatment. Recently, we described that the polycomb repressive complex 2 (PRC2) has a tumour-suppressor role in T-ALL. Here we delineated the role of the histone 3 lysine 27 (H3K27) demethylases JMJD3 and UTX in T-ALL. We show that JMJD3 is essential for the initiation and maintenance of T-ALL, as it controls important oncogenic gene targets by modulating H3K27 methylation. By contrast, we found that UTX functions as a tumour suppressor and is frequently genetically inactivated in T-ALL. Moreover, we demonstrated that the small molecule inhibitor GSKJ4 (ref. 5) affects T-ALL growth, by targeting JMJD3 activity. These findings show that two proteins with a similar enzymatic function can have opposing roles in the context of the same disease, paving the way for treating haematopoietic malignancies with a new category of epigenetic inhibitors.
PMCID:4209203
PMID: 25132549
ISSN: 0028-0836
CID: 1142252