Extreme longevity in humans has a strong genetic component, but whether this involves genetic variation in the same longevity pathways as found in model organisms is unclear. Using whole-exome sequences of a large cohort of Ashkenazi Jewish centenarians to examine enrichment for rare coding variants, we found most longevity-associated rare coding variants converge upon conserved insulin/insulin-like growth factor 1 signaling and AMP-activating protein kinase signaling pathways. Centenarians have a number of pathogenic rare coding variants similar to control individuals, suggesting that rare variants detected in the conserved longevity pathways are protective against age-related pathology. Indeed, we detected a pro-longevity effect of rare coding variants in the Wnt signaling pathway on individuals harboring the known common risk allele APOE4. The genetic component of extreme human longevity constitutes, at least in part, rare coding variants in pathways that protect against aging, including those that control longevity in model organisms. In this whole-exome sequencing study of the largest centenarian cohort to date, Lin et al. demonstrate that conserved pathways—for example, IIS and AMPK signaling—are as relevant to human longevity and healthy aging as they are in worms, flies and mice.
SUMMARY Aging is characterized by degeneration in cellular and organismal functions leading to increased disease susceptibility and death. Although our understanding of aging biology in model systems has increased dramatically, large-scale sequencing studies to understand human aging are now just beginning. We applied exome sequencing and association analyses (ExWAS) to identify age-related variants on 58,470 participants of the DiscovEHR cohort. Linear Mixed Model regression analyses of age at last encounter revealed variants in genes known to be linked with clonal hematopoiesis of indeterminate potential, which are associated with myelodysplastic syndromes, as top signals in our analysis, suggestive of age-related somatic mutation accumulation in hematopoietic cells despite patients lacking clinical diagnoses. In addition to APOE , we identified rare DISP2 rs183775254 (p = 7.40×10 −10 ) and ZYG11A rs74227999 (p = 2.50×10 −08 ) variants that were negatively associated with age in either both sexes combined and females, respectively, which were replicated with directional consistency in two independent cohorts. Epigenetic mapping showed these variants are located within cell-type-specific enhancers, suggestive of important transcriptional regulatory functions. To discover variants associated with extreme age, we performed exome-sequencing on persons of Ashkenazi Jewish descent ascertained for extensive lifespans. Case-Control analyses in 525 Ashkenazi Jews cases (Males ≥ 92 years, Females ≥ 95years) were compared to 482 controls. Our results showed variants in APOE (rs429358, rs6857), and TMTC2 (rs7976168) passed Bonferroni-adjusted p-value, as well as several nominally-associated population-specific variants. Collectively, our Age-ExWAS, the largest performed to date, confirmed and identified previously unreported candidate variants associated with human age.
Centenarians (exceptionally long‐lived individuals—ELLI) are a unique segment of the population, exhibiting long human lifespan and healthspan, despite generally practicing similar lifestyle habits as their peers. We tested disease‐associated mutation burden in ELLI genomes by determining the burden of pathogenic variants reported in the ClinVar and HGMD databases using data from whole exome sequencing (WES) conducted in a cohort of ELLI, their offspring, and control individuals without antecedents of familial longevity ( n = 1879), all descendent from the founder population of Ashkenazi Jews. The burden of pathogenic variants did not differ between the three groups. Additional analyses of variants subtypes and variant effect predictor (VEP) biotype frequencies did not reveal a decrease of pathogenic or loss‐of‐function (LoF) variants in ELLI and offspring compared to the control group. Case–control pathogenic variants enrichment analyses conducted in ELLI and controls also did not identify significant differences in any of the variants between the groups and polygenic risk scores failed to provide a predictive model. Interestingly, cancer and Alzheimer's disease‐associated variants were significantly depleted in ELLI compared to controls, suggesting slower accumulation of mutation. That said, polygenic risk score analysis failed to find any predictive variants among the functional variants tested. The high similarity in the burden of pathogenic variation between ELLI and individuals without familial longevity supports the notion that extension of lifespan and healthspan in ELLI is not a consequence of pathogenic variant depletion but rather a result of other genomic, epigenomic, or potentially nongenomic properties.
Embryonal tumors with multilayered rosettes (ETMRs) are highly lethal infant brain cancers with characteristic amplification of Chr19q13.41 miRNA cluster (C19MC) and enrichment of pluripotency factor LIN28A. Here we investigated C19MC oncogenic mechanisms and discovered a C19MC-LIN28A-MYCN circuit fueled by multiple complex regulatory loops including an MYCN core transcriptional network and super-enhancers resulting from long-range MYCN DNA interactions and C19MC gene fusions. Our data show that this powerful oncogenic circuit, which entraps an early neural lineage network, is potently abrogated by bromodomain inhibitor JQ1, leading to ETMR cell death.
Diffuse intrinsic brain stem gliomas (DIPGs) with characteristic K27M mutation of H3.3 are lethal and poorly understood childhood cancers. In this issue of Cancer Cell, Larson et al. exploit a unique murine DIPG model with inducible, endogenous K27M expression to reveal insights into mechanisms of K27M-mediated transformation in DIPG.
Malignant embryonal brain tumors (EBTs) of childhood span a wide clinical spectrum but can share remarkably similar morphologic features. This overlap presents significant diagnostic challenges, particularly for tumor entities that are rarely encountered in clinical practice and for which diagnostic criteria were poorly defined. This review will provide an update on the evolving characterization and treatment of rare EBTs.
Genomic sequencing has driven precision-based oncology therapy; however, the genetic drivers of many malignancies remain unknown or non-targetable, so alternative approaches to the identification of therapeutic leads are necessary. Ependymomas are chemotherapy-resistant brain tumours, which, despite genomic sequencing, lack effective molecular targets. Intracranial ependymomas are segregated on the basis of anatomical location (supratentorial region or posterior fossa) and further divided into distinct molecular subgroups that reflect differences in the age of onset, gender predominance and response to therapy. The most common and aggressive subgroup, posterior fossa ependymoma group A (PF-EPN-A), occurs in young children and appears to lack recurrent somatic mutations. Conversely, posterior fossa ependymoma group B (PF-EPN-B) tumours display frequent large-scale copy number gains and losses but have favourable clinical outcomes. More than 70% of supratentorial ependymomas are defined by highly recurrent gene fusions in the NF-κB subunit gene RELA (ST-EPN-RELA), and a smaller number involve fusion of the gene encoding the transcriptional activator YAP1 (ST-EPN-YAP1). Subependymomas, a distinct histologic variant, can also be found within the supratetorial and posterior fossa compartments, and account for the majority of tumours in the molecular subgroups ST-EPN-SE and PF-EPN-SE. Here we describe mapping of active chromatin landscapes in 42 primary ependymomas in two non-overlapping primary ependymoma cohorts, with the goal of identifying essential super-enhancer-associated genes on which tumour cells depend. Enhancer regions revealed putative oncogenes, molecular targets and pathways; inhibition of these targets with small molecule inhibitors or short hairpin RNA diminished the proliferation of patient-derived neurospheres and increased survival in mouse models of ependymomas. Through profiling of transcriptional enhancers, our study provides a framework for target and drug discovery in other cancers that lack known genetic drivers and are therefore difficult to treat.
Abstract Atypical Teratoid Rhabdoid Tumors (ATRTs) are the most common malignant embryonal brain tumors arising in younger children that are distinctly lethal cancers for which effective therapies are lacking. Although ATRTs exhibit substantial clinical heterogeneity, exome studies reveal a relatively bland coding genome with only recurrent alterations of SMARCB1. Despite apparent genomic/genetic homogeneity, we recently reported that ATRTs comprise at least two transcriptional subclasses that correlate with different clinical features and treatment outcomes. However, the biological mechanisms and basis for molecular and therapeutic heterogeneity in ATRTs remained unclear. In this study, we integrated whole genome, exome, RNAseq as well as genome wide methylation and nucleosomal profiling analyses to comprehensively define the genomic and epigenomic landscape of ATRT sub-groups and identify sub-group specific therapeutic targets. Integration of multiplatform genomic analyses revealed novel recurrent genetic alterations in upto 20% of ATRTs. We observed predominantly structural coding events that targeted genes with functions in neural development and epigenetic regulation including BCR, MKL1 and EP300, thus suggesting greater complexity to the ATRT genome than previously appreciated. Global methylation (162) and gene expression analyses (90) of primary tumors indicated further segregation of ATRTs into three epigenetic sub-groups (group 1, 2A and 2B) that correlated with distinct lineage enriched gene expression profiles, global and SMARCB1 specific genotypes and different anatomic tumor locations and age at diagnosis. Group 1 ATRT exhibited enrichment of neurogenic/NOTCH signaling loci (ASCL1, FABP7, MYCN, C1ORF61, HES5/6, DLL1) and were predominantly supra-tentorial tumors arising in children at a median age of 24 months. In contrast Group 2A tumors arose predominantly in infra-tentorial locations in the youngest patients, while group 2B tumors were characteristically spinal in location. BMP signaling and mesenchymal differentiation genes (BMP4, BAMBI, PDGFRB) were commonly enriched in group 2A and B tumors; Group 2B tumors were additionally characterized by enrichment of MYCC, HOXB & C gene clusters. Remarkably, ATAC-seq analyses revealed distinct chromatin landscape associated with each ATRT sub-group, that correlated strikingly with sub-group specific therapeutic response in ATRT cell lines to a panel of signaling (NOTCH, BMP, Dasatinib) and epigenetic (EZH2, G9a, BRD4) inhibitors. Significantly, we discovered that differential methylation of a novel, PDGFRβ associated enhancer element confers robust sensitivity to tyrosine kinase inhibitors Dasatinib and Nilotinib in group 2 ATRTs, and suggest these as novel agents for this highly lethal ATRT sub-type. Citation Format: Jonathon Torchia, Shengrui Feng, King Ching Ho, Louis Letourneau, Daniel Picard, Tiffany S. Chan, Alexandre Vasiljevic, Dong Anh Khuong Quang, Brian Golbourn, Dalia Barsyte-Lovejoy, Constanze Zeller, Patrick Sin-Chan, Natalia R. Agamez, Mei Lu, Lucie Lafay-Cousin, Joseph D. Norman, Maryam Fouladi, Lindsey M. Hoffman, Stefan Rutkowski, Torsten Pietsch, Alexander R. Judkins, Eric Bouffet, James T. Rutka, Cynthia E. Hawkins, Cheryl H. Arrowsmith, Daniel De Carvalho, Nada Jabado, Annie Huang. Integrated (epi)genomic analyses identify subgroup-specific therapeutic targets in CNS rhabdoid tumors. [abstract]. In: Proceedings of the 107th Annual Meeting of the American Association for Cancer Research; 2016 Apr 16-20; New Orleans, LA. Philadelphia (PA): AACR; Cancer Res 2016;76(14 Suppl):Abstract nr LB-179.
Embryonal tumor with multilayered rosettes (ETMR) is an aggressive primitive neuroectodermal brain tumor that affects infants and children under the age of four. Histologically, the tumor is characterized by a growth pattern that includes sheets of primitive cells punctuated by zones of neuropil and multilayered rosettes that are reminiscent of embryonic neuroepithelium. Genetically, ETMR is characterized by a focal amplification of chromosome 19q13.42, encoding the chromosome 19 microRNA cluster (C19MC). Previous studies have suggested that overexpression of the microRNAs within this cluster, including miR-517a, miR-517c and miR-520g, can increase malignancy of cell lines derived from non-ETMR primitive neuroectodermal tumours. Here, we ask whether overexpression of selected miRNAs in the cluster is sufficient to alter the cell fate of normal embryonic neural stem cells in the developing cortex. Using in utero electroporation to overexpress selected C19MC microRNAs in embryonic ventricular zone progenitors during the neurogenic period, we found that transient overexpression of miR-520g or a construct containing miR-517,-519, and -520 resulted in focal lesions containing both stem-like cells and a collection of heterochronic differentiating neurons ectopically arrested in the intermediate zone. The ectopic cells showed increasing maturation with time. Similar overexpression at postnatal ages did not yield analogous lesions. Our results suggest that the embryonic neuroepithelial cells are the substrate for transformation in ETMR, and that miRNAs in the C19MC cluster can regulate the temporal identity of immature/embyonic neural progenitors. Additional studies are required to determine the effects of stable overexpression of C19MC miRNAs, and to discern the effects on cell fate upon C19MC miRNA overexpression.
We recently reported that atypical teratoid rhabdoid tumors (ATRTs) comprise at least two transcriptional subtypes with different clinical outcomes; however, the mechanisms underlying therapeutic heterogeneity remained unclear. In this study, we analyzed 191 primary ATRTs and 10 ATRT cell lines to define the genomic and epigenomic landscape of ATRTs and identify subgroup-specific therapeutic targets. We found ATRTs segregated into three epigenetic subgroups with distinct genomic profiles, SMARCB1 genotypes, and chromatin landscape that correlated with differential cellular responses to a panel of signaling and epigenetic inhibitors. Significantly, we discovered that differential methylation of a PDGFRB-associated enhancer confers specific sensitivity of group 2 ATRT cells to dasatinib and nilotinib, and suggest that these are promising therapies for this highly lethal ATRT subtype.
BACKGROUND:Rhabdoid brain tumours, also called atypical teratoid rhabdoid tumours, are lethal childhood cancers with characteristic genetic alterations of SMARCB1/hSNF5. Lack of biological understanding of the substantial clinical heterogeneity of these tumours restricts therapeutic advances. We integrated genomic and clinicopathological analyses of a cohort of patients with atypical teratoid rhabdoid tumours to find out the molecular basis for clinical heterogeneity in these tumours. METHODS:We obtained 259 rhabdoid tumours from 37 international institutions and assessed transcriptional profiles in 43 primary tumours and copy number profiles in 38 primary tumours to discover molecular subgroups of atypical teratoid rhabdoid tumours. We used gene and pathway enrichment analyses to discover group-specific molecular markers and did immunohistochemical analyses on 125 primary tumours to evaluate clinicopathological significance of molecular subgroup and ASCL1-NOTCH signalling. FINDINGS:Transcriptional analyses identified two atypical teratoid rhabdoid tumour subgroups with differential enrichment of genetic pathways, and distinct clinicopathological and survival features. Expression of ASCL1, a regulator of NOTCH signalling, correlated with supratentorial location (p=0·004) and superior 5-year overall survival (35%, 95% CI 13-57, and 20%, 6-34, for ASCL1-positive and ASCL1-negative tumours, respectively; p=0·033) in 70 patients who received multimodal treatment. ASCL1 expression also correlated with superior 5-year overall survival (34%, 7-61, and 9%, 0-21, for ASCL1-positive and ASCL1-negative tumours, respectively; p=0·001) in 39 patients who received only chemotherapy without radiation. Cox hazard ratios for overall survival in patients with differential ASCL1 enrichment treated with chemotherapy with or without radiation were 2·02 (95% CI 1·04-3·85; p=0·038) and 3·98 (1·71-9·26; p=0·001). Integrated analyses of molecular subgroupings with clinical prognostic factors showed three distinct clinical risk groups of tumours with different therapeutic outcomes. INTERPRETATION:An integration of clinical risk factors and tumour molecular groups can be used to identify patients who are likely to have improved long-term radiation-free survival and might help therapeutic stratification of patients with atypical teratoid rhabdoid tumours. FUNDING:C17 Research Network, Genome Canada, b.r.a.i.n.child, Mitchell Duckman, Tal Doron and Suri Boon foundations.
Malignant brain tumors, which are the leading cause of cancer-related morbidity and mortality in children, span a wide spectrum of diseases with distinct clinical phenotypes but may share remarkably similar morphologic features. Until recently, few molecular markers of childhood brain tumors have been identified, which has limited therapeutic advances. Recent global genomic studies have enabled robust molecular classification of childhood brain tumors and the identification and consolidation of rare, seemingly disparate clinical entities. It is now increasingly evident that deregulation of epigenetic processes contributes substantially to heterogeneity in tumor phenotypes and comprise significant drivers of cancer initiation and progression. Specifically, DNA hypermethylation and silencing of critical tumor suppressor genes by DNA methyltransferases (DNMT) has emerged as an important and fundamental mechanism in brain tumor pathogenesis. These observations have been underscored by the recent discovery of TTYH1-C19MC gene fusions in an aggressive pediatric embryonal brain tumor, which results in deregulation and increased expression of a neural-specific DNMT3B isoform in C19MC-associated brain tumors. Our observations that pharmacological inhibitors of DNMTs and histone deacetylases significantly inhibit growth of cells derived from C19MC-associated tumors indicate targeting of epigenomic modifiers as a novel therapeutic approach for these highly treatment-resistant tumors.
BACKGROUND: Childhood CNS-PNETs comprise a heterogeneous spectrum of diseases with poorly defined biology. The embryonic stem cell enriched C19MC OncomiR cluster is frequently amplified in one sub-group of CNS-PNETs (group 1 CNS-PNETs) with distinctly aggressive clinic-pathologic features. However, the specific oncogenic role of C19MC in group 1 CNS-PNETs, and mechanisms by which C19MC effects cellular transformation remains unknown. In this study we used exome and RNA-sequencing of C19MC associated tumors, and functional studies of the C19MC OncomiRs in human neural stem cell to define oncogenic partners and downstream effectors of the C19MC locus. METHODS: Whole exome and RNA seq analyses were performed respectively on 25 and 10 group 1 CNS-PNETs with known amplification of the C19MC locus to identify C19MC cooperating loci. The Illumina 450K methylation arrays were used to analyse the epigenomic of 30 CNS-PNETs ad C19MC transformed human neural stem cells. A “maxi gene” comprised of 5 C19MC OncomiRs most highly expressed in primary group 1 CNS-PNETs was constructed and stably expressed in a panel of normal human neural stem cells, human tumor and murine fibroblast line, and used to identify C19MC target genes. C19MC target genes were identified by combining gene expression profiling with target prediction programs. Target genes were validated using reporter gene assays, immuno-histochemical and miRNA in-situ hybridization analyses. RESULTS: Exome sequencing revealed few recurrent genetic alterations other than the C19MC amplicon in group 1 CNS-PNETs. Unexpectedly, RNAseq analyses also uncovered recurrent fusion events of the C19MC locus to TTHY1–a neural developmental locus, thus indicating C19MC as a major oncogenic driver in these tumors. Studies in human neural stem cells identified p21, p27 and RBL2 as highly conserved direct gene targets of the C19MC oncoMiRs. Remarkably, experimental studies uncovered a C19MC-RBL2-DNMT3b regulatory axis that was associated with distinct methylation signatures in primary human CNS-PNETs and C19MC transformed human neural stem cells. CONCLUSIONS: Our results suggest that C19MC which are normally expressed only in a restricted developmental window, become potent drivers of cellular transformation and tumour development when de-regulated, and act by modulating the cell cycle and global epigenomic landscape to effect C19MC tumourigenesis. SECONDARY CATEGORY: Tumor Biology.
Amplification of the C19MC oncogenic miRNA cluster and high LIN28 expression has been linked to a distinctly aggressive group of cerebral CNS-PNETs (group 1 CNS-PNETs) arising in young children. In this study, we sought to evaluate the diagnostic specificity of C19MC and LIN28, and the clinical and biological spectra of C19MC amplified and/or LIN28+ CNS-PNETs. We interrogated 450 pediatric brain tumors using FISH and IHC analyses and demonstrate that C19MC alteration is restricted to a sub-group of CNS-PNETs with high LIN28 expression; however, LIN28 immunopositivity was not exclusive to CNS-PNETs but was also detected in a proportion of other malignant pediatric brain tumors including rhabdoid brain tumors and malignant gliomas. C19MC amplified/LIN28+ group 1 CNS-PNETs arose predominantly in children < 4 years old; a majority arose in the cerebrum but 24 % (13/54) of tumors had extra-cerebral origins. Notably, group 1 CNS-PNETs encompassed several histologic classes including embryonal tumor with abundant neuropil and true rosettes (ETANTR), medulloepithelioma, ependymoblastoma and CNS-PNETs with variable differentiation. Strikingly, gene expression and methylation profiling analyses revealed a common molecular signature enriched for primitive neural features, high LIN28/LIN28B and DNMT3B expression for all group 1 CNS-PNETs regardless of location or tumor histology. Our collective findings suggest that current known histologic categories of CNS-PNETs which include ETANTRs, medulloepitheliomas, ependymoblastomas in various CNS locations, comprise a common molecular and diagnostic entity and identify inhibitors of the LIN28/let7/PI3K/mTOR axis and DNMT3B as promising therapeutics for this distinct histogenetic entity.
Embryonal tumors with multilayered rosettes (ETMRs) are rare, deadly pediatric brain tumors characterized by high-level amplification of the microRNA cluster C19MC. We performed integrated genetic and epigenetic analyses of 12 ETMR samples and identified, in all cases, C19MC fusions to TTYH1 driving expression of the microRNAs. ETMR tumors, cell lines and xenografts showed a specific DNA methylation pattern distinct from those of other tumors and normal tissues. We detected extreme overexpression of a previously uncharacterized isoform of DNMT3B originating at an alternative promoter that is active only in the first weeks of neural tube development. Transcriptional and immunohistochemical analyses suggest that C19MC-dependent DNMT3B deregulation is mediated by RBL2, a known repressor of DNMT3B. Transfection with individual C19MC microRNAs resulted in DNMT3B upregulation and RBL2 downregulation in cultured cells. Our data suggest a potential oncogenic re-engagement of an early developmental program in ETMR via epigenetic alteration mediated by an embryonic, brain-specific DNMT3B isoform.
BACKGROUND:Embryonal tumor with multilayered rosettes (ETMR) is an aggressive central nervous system primitive neuroectodermal tumor (CNS-PNET) variant. ETMRs have distinctive histology, amplification of the chromosome 19 microRNA cluster (C19MC) at chr19q13.41-42, expression of the RNA binding protein Lin28, and dismal prognosis. Functional and therapeutic studies of ETMR have been limited by a lack of model systems. METHODS:We have established a first cell line, BT183, from a case of ETMR and characterized its molecular and cellular features. LIN28 knockdown was performed in BT183 to examine the potential role of Lin28 in regulating signaling pathway gene expression in ETMR. Cell line findings were corroborated with immunohistochemical studies in ETMR tissues. A drug screen of 73 compounds was performed to identify potential therapeutic targets. RESULTS:The BT183 line maintains C19MC amplification, expresses C19MC-encoded microRNAs, and is tumor initiating. ETMRs, including BT183, have high LIN28 expression and low let-7 miRNA expression, and show evidence of mTOR pathway activation. LIN28 knockdown increases let-7 expression and decreases expression of IGF/PI3K/mTOR pathway components. Pharmacologic inhibition of the mTOR pathway reduces BT183 cell viability. CONCLUSIONS:BT183 retains key genetic and histologic features of ETMR. In ETMR, Lin28 is not only a diagnostic marker but also a regulator of genes involved in growth and metabolism. Our findings indicate that inhibitors of the IGF/PI3K/mTOR pathway may be promising novel therapies for these fatal embryonal tumors. As the first patient-derived cell line of these rare tumors, BT183 is an important, unique reagent for investigating ETMR biology and therapeutics.
The Ca2+- dependent phosphatase, calcineurin (Cn) and its downstream transcriptional effectors, nuclear factor of activated T-cells (NFAT), are major intracellular modulators of cardiac hypertrophy. In young mice, transcription factor NFATc2 has been identified as the major NFAT isoform responsible for Cn-mediated cardiac hypertrophy. We observed that 7–9 month old NFATc2−/− mice have a higher susceptibility to cardiac dilatation and sudden death, prompting us to monitor changes in heart morphology and growth pathways in this model. Using histology, we show that hearts of adult NFATc2−/− mice display a more dilated left ventricle and thinner interventricular wall. In addition, NFATc2 null hearts have increased GATA-4 expression, higher nuclear transit of GATA-4 and NFATc1, and decreased GSK3-β expression, thus supporting the finding that adult NFATc2−/− mice are more prone to heart failure. Furthermore, angiotensin II-induced cardiac growth reveals that hearts of NFATc2−/− mice hypertrophy to the same extent as wild-type mice, display a thinner myocardial wall and have decreased active AKT and eIF2α expression, suggesting altered translational regulation of myocardial growth. Our collective results propose an uncharacterized role of NFATc2 for normal heart function and growth signaling in adult mice, providing evidence of Cn-signaling being crucial at later stages of life. Supported by CIHR, NSERC and CRC to RNM.
The Ca2+‐ dependent phosphatase, calcineurin, and its downstream transcriptional effectors, nuclear factor of activated T‐cells (NFAT), are major intracellular modulators of cardiac hypertrophy. Transcription factor NFATc2 has recently been identified as the major NFAT isoform responsible for calcineurin‐mediated cardiac hypertrophy. We thus investigated the role of each NFAT isoform (c1–c4), the NFATc2 binding partner GATA‐4, and NFAT/GATA‐4 kinases in regulating the cardiac phenotype by assessing their expression at the transcript and protein levels in NFATc2 −/− mice. Cardiac mRNA and protein expressions of other members of the NFAT family were similar in wild type and NFATc2−/− mice, suggesting that individual NFAT isoforms are independently regulated. Expression of cytoplasmic GATA‐4 was unchanged whereas nuclear GATA‐4 was higher in hearts from NFATc2 −/− mice, indicating increased nuclear transit of this transcription factor in the absence of NFATc2. In support of this, the expression of MAPK, responsible for GATA‐4 DNA binding ability, remained unchanged whereas GSK3‐β, which promotes GATA‐4 nuclear export, was lower in NFATc2 −/− hearts. Taken together, our data identify molecular partners that may compensate for the lack of NFATc2, thereby providing further insight towards understanding calcineurin‐mediated cardiomyopathy. Supported by CIHR, NSERC and CRC to RNM.