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1.
Genes Dev ; 36(21-24): 1100-1118, 2022.
Article in English | MEDLINE | ID: mdl-36617877

ABSTRACT

Neural circuit plasticity and sensory response dynamics depend on forming new synaptic connections. Despite recent advances toward understanding the consequences of circuit plasticity, the mechanisms driving circuit plasticity are unknown. Adult-born neurons within the olfactory bulb have proven to be a powerful model for studying circuit plasticity, providing a broad and accessible avenue into neuron development, migration, and circuit integration. We and others have shown that efficient adult-born neuron circuit integration hinges on presynaptic activity in the form of diverse signaling peptides. Here, we demonstrate a novel oxytocin-dependent mechanism of adult-born neuron synaptic maturation and circuit integration. We reveal spatial and temporal enrichment of oxytocin receptor expression within adult-born neurons in the murine olfactory bulb, with oxytocin receptor expression peaking during activity-dependent integration. Using viral labeling, confocal microscopy, and cell type-specific RNA-seq, we demonstrate that oxytocin receptor signaling promotes synaptic maturation of newly integrating adult-born neurons by regulating their morphological development and expression of mature synaptic AMPARs and other structural proteins.


Subject(s)
Oxytocin , Receptors, Oxytocin , Mice , Animals , Oxytocin/metabolism , Receptors, Oxytocin/genetics , Receptors, Oxytocin/metabolism , Neurons/physiology , Olfactory Bulb/metabolism , Neurogenesis
2.
Nature ; 618(7965): 616-624, 2023 Jun.
Article in English | MEDLINE | ID: mdl-37258680

ABSTRACT

Mapping gene networks requires large amounts of transcriptomic data to learn the connections between genes, which impedes discoveries in settings with limited data, including rare diseases and diseases affecting clinically inaccessible tissues. Recently, transfer learning has revolutionized fields such as natural language understanding1,2 and computer vision3 by leveraging deep learning models pretrained on large-scale general datasets that can then be fine-tuned towards a vast array of downstream tasks with limited task-specific data. Here, we developed a context-aware, attention-based deep learning model, Geneformer, pretrained on a large-scale corpus of about 30 million single-cell transcriptomes to enable context-specific predictions in settings with limited data in network biology. During pretraining, Geneformer gained a fundamental understanding of network dynamics, encoding network hierarchy in the attention weights of the model in a completely self-supervised manner. Fine-tuning towards a diverse panel of downstream tasks relevant to chromatin and network dynamics using limited task-specific data demonstrated that Geneformer consistently boosted predictive accuracy. Applied to disease modelling with limited patient data, Geneformer identified candidate therapeutic targets for cardiomyopathy. Overall, Geneformer represents a pretrained deep learning model from which fine-tuning towards a broad range of downstream applications can be pursued to accelerate discovery of key network regulators and candidate therapeutic targets.


Subject(s)
Biology , Machine Learning , Neural Networks, Computer , Humans , Biology/methods , Single-Cell Gene Expression Analysis , Datasets as Topic , Chromatin/genetics , Chromatin/metabolism , Cardiomyopathies/drug therapy , Cardiomyopathies/genetics , Cardiomyopathies/metabolism
3.
Nature ; 608(7921): 181-191, 2022 08.
Article in English | MEDLINE | ID: mdl-35732239

ABSTRACT

The heart, the first organ to develop in the embryo, undergoes complex morphogenesis that when defective results in congenital heart disease (CHD). With current therapies, more than 90% of patients with CHD survive into adulthood, but many suffer premature death from heart failure and non-cardiac causes1. Here, to gain insight into this disease progression, we performed single-nucleus RNA sequencing on 157,273 nuclei from control hearts and hearts from patients with CHD, including those with hypoplastic left heart syndrome (HLHS) and tetralogy of Fallot, two common forms of cyanotic CHD lesions, as well as dilated and hypertrophic cardiomyopathies. We observed CHD-specific cell states in cardiomyocytes, which showed evidence of insulin resistance and increased expression of genes associated with FOXO signalling and CRIM1. Cardiac fibroblasts in HLHS were enriched in a low-Hippo and high-YAP cell state characteristic of activated cardiac fibroblasts. Imaging mass cytometry uncovered a spatially resolved perivascular microenvironment consistent with an immunodeficient state in CHD. Peripheral immune cell profiling suggested deficient monocytic immunity in CHD, in agreement with the predilection in CHD to infection and cancer2. Our comprehensive phenotyping of CHD provides a roadmap towards future personalized treatments for CHD.


Subject(s)
Heart Defects, Congenital , Phenotype , Bone Morphogenetic Protein Receptors/metabolism , Cardiomyopathy, Dilated/genetics , Cardiomyopathy, Dilated/immunology , Cardiomyopathy, Dilated/metabolism , Cardiomyopathy, Dilated/pathology , Cardiomyopathy, Hypertrophic/genetics , Cardiomyopathy, Hypertrophic/immunology , Cardiomyopathy, Hypertrophic/metabolism , Cardiomyopathy, Hypertrophic/pathology , Disease Progression , Fibroblasts/metabolism , Fibroblasts/pathology , Forkhead Transcription Factors/metabolism , Heart Defects, Congenital/genetics , Heart Defects, Congenital/immunology , Heart Defects, Congenital/metabolism , Heart Defects, Congenital/pathology , Humans , Hypoplastic Left Heart Syndrome/genetics , Hypoplastic Left Heart Syndrome/immunology , Hypoplastic Left Heart Syndrome/metabolism , Hypoplastic Left Heart Syndrome/pathology , Image Cytometry , Insulin Resistance , Monocytes/immunology , Myocytes, Cardiac/metabolism , Myocytes, Cardiac/pathology , RNA-Seq , Signal Transduction/genetics , Single-Cell Analysis , Tetralogy of Fallot/genetics , Tetralogy of Fallot/immunology , Tetralogy of Fallot/metabolism , Tetralogy of Fallot/pathology , YAP-Signaling Proteins/metabolism
4.
Nature ; 608(7921): 174-180, 2022 08.
Article in English | MEDLINE | ID: mdl-35732739

ABSTRACT

Heart failure encompasses a heterogeneous set of clinical features that converge on impaired cardiac contractile function1,2 and presents a growing public health concern. Previous work has highlighted changes in both transcription and protein expression in failing hearts3,4, but may overlook molecular changes in less prevalent cell types. Here we identify extensive molecular alterations in failing hearts at single-cell resolution by performing single-nucleus RNA sequencing of nearly 600,000 nuclei in left ventricle samples from 11 hearts with dilated cardiomyopathy and 15 hearts with hypertrophic cardiomyopathy as well as 16 non-failing hearts. The transcriptional profiles of dilated or hypertrophic cardiomyopathy hearts broadly converged at the tissue and cell-type level. Further, a subset of hearts from patients with cardiomyopathy harbour a unique population of activated fibroblasts that is almost entirely absent from non-failing samples. We performed a CRISPR-knockout screen in primary human cardiac fibroblasts to evaluate this fibrotic cell state transition; knockout of genes associated with fibroblast transition resulted in a reduction of myofibroblast cell-state transition upon TGFß1 stimulation for a subset of genes. Our results provide insights into the transcriptional diversity of the human heart in health and disease as well as new potential therapeutic targets and biomarkers for heart failure.


Subject(s)
Cardiomyopathy, Dilated , Cardiomyopathy, Hypertrophic , Cell Nucleus , Gene Expression Profiling , Heart Failure , Single-Cell Analysis , CRISPR-Cas Systems , Cardiomyopathy, Dilated/genetics , Cardiomyopathy, Dilated/pathology , Cardiomyopathy, Hypertrophic/genetics , Cardiomyopathy, Hypertrophic/pathology , Case-Control Studies , Cell Nucleus/genetics , Cells, Cultured , Gene Knockout Techniques , Heart Failure/genetics , Heart Failure/pathology , Heart Ventricles/metabolism , Heart Ventricles/pathology , Humans , Myocardium/metabolism , Myocardium/pathology , Myofibroblasts/metabolism , Myofibroblasts/pathology , RNA-Seq , Transcription, Genetic , Transforming Growth Factor beta1
5.
Genes Dev ; 33(21-22): 1491-1505, 2019 11 01.
Article in English | MEDLINE | ID: mdl-31558567

ABSTRACT

Cardiac fibroblasts (CFs) respond to injury by transitioning through multiple cell states, including resting CFs, activated CFs, and myofibroblasts. We report here that Hippo signaling cell-autonomously regulates CF fate transitions and proliferation, and non-cell-autonomously regulates both myeloid and CF activation in the heart. Conditional deletion of Hippo pathway kinases, Lats1 and Lats2, in uninjured CFs initiated a self-perpetuating fibrotic response in the adult heart that was exacerbated by myocardial infarction (MI). Single cell transcriptomics showed that uninjured Lats1/2 mutant CFs spontaneously transitioned to a myofibroblast cell state. Through gene regulatory network reconstruction, we found that Hippo-deficient myofibroblasts deployed a network of transcriptional regulators of endoplasmic reticulum (ER) stress, and the unfolded protein response (UPR) consistent with elevated secretory activity. We observed an expansion of myeloid cell heterogeneity in uninjured Lats1/2 CKO hearts with similarity to cells recovered from control hearts post-MI. Integrated genome-wide analysis of Yap chromatin occupancy revealed that Yap directly activates myofibroblast cell identity genes, the proto-oncogene Myc, and an array of genes encoding pro-inflammatory factors through enhancer-promoter looping. Our data indicate that Lats1/2 maintain the resting CF cell state through restricting the Yap-induced injury response.


Subject(s)
Fibroblasts/cytology , Fibrosis/genetics , Protein Serine-Threonine Kinases/genetics , Protein Serine-Threonine Kinases/metabolism , Signal Transduction/genetics , Tumor Suppressor Proteins/genetics , Tumor Suppressor Proteins/metabolism , Adaptor Proteins, Signal Transducing/metabolism , Animals , Cell Cycle Proteins/metabolism , Fibroblasts/pathology , Fibrosis/physiopathology , Gene Deletion , Mice, Inbred C57BL , Myocardial Infarction/physiopathology , YAP-Signaling Proteins
6.
Nucleic Acids Res ; 52(5): e25, 2024 Mar 21.
Article in English | MEDLINE | ID: mdl-38281134

ABSTRACT

Protein-specific Chromatin Conformation Capture (3C)-based technologies have become essential for identifying distal genomic interactions with critical roles in gene regulation. The standard techniques include Chromatin Interaction Analysis by Paired-End Tag (ChIA-PET), in situ Hi-C followed by chromatin immunoprecipitation (HiChIP) also known as PLAC-seq. To identify chromatin interactions from these data, a variety of computational methods have emerged. Although these state-of-art methods address many issues with loop calling, only few methods can fit different data types simultaneously, and the accuracy as well as the efficiency these approaches remains limited. Here we have generated a pipeline, MMCT-Loop, which ensures the accurate identification of strong loops as well as dynamic or weak loops through a mixed model. MMCT-Loop outperforms existing methods in accuracy, and the detected loops show higher activation functionality. To highlight the utility of MMCT-Loop, we applied it to conformational data derived from neural stem cell (NSCs) and uncovered several previously unidentified regulatory regions for key master regulators of stem cell identity. MMCT-Loop is an accurate and efficient loop caller for targeted conformation capture data, which supports raw data or pre-processed valid pairs as input, the output interactions are formatted and easily uploaded to a genome browser for visualization.


Subject(s)
Chromatin , Genetic Techniques , Genomics , Chromatin/chemistry , Chromatin/genetics , Chromatin Immunoprecipitation/methods , Chromosomes , Genome , Genomics/methods
7.
Circ Res ; 133(4): 313-329, 2023 08 04.
Article in English | MEDLINE | ID: mdl-37449401

ABSTRACT

BACKGROUND: ZFHX3 (zinc finger homeobox 3), a gene that encodes a large transcription factor, is at the second-most significantly associated locus with atrial fibrillation (AF), but its function in the heart is unknown. This study aims to identify causative genetic variation related to AF at the ZFHX3 locus and examine the impact of Zfhx3 loss on cardiac function in mice. METHODS: CRISPR-Cas9 genome editing, chromatin immunoprecipitation, and luciferase assays in pluripotent stem cell-derived cardiomyocytes were used to identify causative genetic variation related to AF at the ZFHX3 locus. Cardiac function was assessed by echocardiography, magnetic resonance imaging, electrophysiology studies, calcium imaging, and RNA sequencing in mice with heterozygous and homozygous cardiomyocyte-restricted Zfhx3 loss (Zfhx3 Het and knockout, respectively). Human cardiac single-nucleus ATAC (assay for transposase-accessible chromatin)-sequencing data was analyzed to determine which genes in atrial cardiomyocytes are directly regulated by ZFHX3. RESULTS: We found single-nucleotide polymorphism (SNP) rs12931021 modulates an enhancer regulating ZFHX3 expression, and the AF risk allele is associated with decreased ZFHX3 transcription. We observed a gene-dose response in AF susceptibility with Zfhx3 knockout mice having higher incidence, frequency, and burden of AF than Zfhx3 Het and wild-type mice, with alterations in conduction velocity, atrial action potential duration, calcium handling and the development of atrial enlargement and thrombus, and dilated cardiomyopathy. Zfhx3 loss results in atrial-specific differential effects on genes and signaling pathways involved in cardiac pathophysiology and AF. CONCLUSIONS: Our findings implicate ZFHX3 as the causative gene at the 16q22 locus for AF, and cardiac abnormalities caused by loss of cardiac Zfhx3 are due to atrial-specific dysregulation of pathways involved in AF susceptibility. Together, these data reveal a novel and important role for Zfhx3 in the control of cardiac genes and signaling pathways essential for normal atrial function.


Subject(s)
Atrial Fibrillation , Homeodomain Proteins , Animals , Humans , Mice , Atrial Fibrillation/genetics , Calcium/metabolism , Dilatation , Homeodomain Proteins/genetics , Homeodomain Proteins/metabolism , Myocytes, Cardiac/metabolism , Transcription Factors/genetics
8.
Genome Res ; 30(12): 1835-1845, 2020 12.
Article in English | MEDLINE | ID: mdl-33184104

ABSTRACT

Transcriptional enhancers commonly work over long genomic distances to precisely regulate spatiotemporal gene expression patterns. Dissecting the promoters physically contacted by these distal regulatory elements is essential for understanding developmental processes as well as the role of disease-associated risk variants. Modern proximity-ligation assays, like HiChIP and ChIA-PET, facilitate the accurate identification of long-range contacts between enhancers and promoters. However, these assays are technically challenging, expensive, and time-consuming, making it difficult to investigate enhancer topologies, especially in uncharacterized cell types. To overcome these shortcomings, we therefore designed LoopPredictor, an ensemble machine learning model, to predict genome topology for cell types which lack long-range contact maps. To enrich for functional enhancer-promoter loops over common structural genomic contacts, we trained LoopPredictor with both H3K27ac and YY1 HiChIP data. Moreover, the integration of several related multi-omics features facilitated identifying and annotating the predicted loops. LoopPredictor is able to efficiently identify cell type-specific enhancer-mediated loops, and promoter-promoter interactions, with a modest feature input requirement. Comparable to experimentally generated H3K27ac HiChIP data, we found that LoopPredictor was able to identify functional enhancer loops. Furthermore, to explore the cross-species prediction capability of LoopPredictor, we fed mouse multi-omics features into a model trained on human data and found that the predicted enhancer loops outputs were highly conserved. LoopPredictor enables the dissection of cell type-specific long-range gene regulation and can accelerate the identification of distal disease-associated risk variants.


Subject(s)
Computational Biology/methods , Enhancer Elements, Genetic , Interferon Regulatory Factors/genetics , Melanoma/genetics , Animals , Cell Line, Tumor , Dogs , Horses , Humans , Machine Learning , Mice , Models, Genetic , Neoplasm Transplantation , Promoter Regions, Genetic , Swine , Zebrafish
9.
Nature ; 550(7675): 260-264, 2017 10 12.
Article in English | MEDLINE | ID: mdl-28976966

ABSTRACT

Mammalian organs vary widely in regenerative capacity. Poorly regenerative organs, such as the heart are particularly vulnerable to organ failure. Once established, heart failure commonly results in mortality. The Hippo pathway, a kinase cascade that prevents adult cardiomyocyte proliferation and regeneration, is upregulated in human heart failure. Here we show that deletion of the Hippo pathway component Salvador (Salv) in mouse hearts with established ischaemic heart failure after myocardial infarction induces a reparative genetic program with increased scar border vascularity, reduced fibrosis, and recovery of pumping function compared with controls. Using translating ribosomal affinity purification, we isolate cardiomyocyte-specific translating messenger RNA. Hippo-deficient cardiomyocytes have increased expression of proliferative genes and stress response genes, such as the mitochondrial quality control gene, Park2. Genetic studies indicate that Park2 is essential for heart repair, suggesting a requirement for mitochondrial quality control in regenerating myocardium. Gene therapy with a virus encoding Salv short hairpin RNA improves heart function when delivered at the time of infarct or after ischaemic heart failure following myocardial infarction was established. Our findings indicate that the failing heart has a previously unrecognized reparative capacity involving more than cardiomyocyte renewal.


Subject(s)
Cell Cycle Proteins/deficiency , Heart Failure, Systolic/metabolism , Heart Failure, Systolic/therapy , Myocardial Infarction/complications , Protein Serine-Threonine Kinases/deficiency , Animals , Cell Cycle Proteins/genetics , Cell Cycle Proteins/metabolism , Cell Proliferation , Genetic Therapy , Heart Failure, Systolic/etiology , Heart Failure, Systolic/pathology , Hippo Signaling Pathway , Humans , Mice , Mice, Knockout , Myocardial Infarction/genetics , Myocardial Infarction/pathology , Myocytes, Cardiac/cytology , Myocytes, Cardiac/metabolism , Myocytes, Cardiac/pathology , Protein Serine-Threonine Kinases/genetics , Protein Serine-Threonine Kinases/metabolism , Quality Control , RNA, Messenger/genetics , RNA, Messenger/metabolism , Signal Transduction/genetics , Ubiquitin-Protein Ligases/genetics
10.
Dev Biol ; 478: 163-172, 2021 10.
Article in English | MEDLINE | ID: mdl-34245725

ABSTRACT

The cardiac conduction system is a network of heterogeneous cell population that initiates and propagates electric excitations in the myocardium. Purkinje fibers, a network of specialized myocardial cells, comprise the distal end of the conduction system in the ventricles. The developmental origins of Purkinje fibers and their roles during cardiac physiology and arrhythmia have been reported. However, it is not clear if they play a role during ischemic injury and heart regeneration. Here we introduce a novel tamoxifen-inducible Cre allele that specifically labels a broad range of components in the cardiac conduction system while excludes other cardiac cell types and vital organs. Using this new allele, we investigated the cellular and molecular response of Purkinje fibers to myocardial injury. In a neonatal mouse myocardial infarction model, we observed significant increase in Purkinje cell number in regenerating myocardium. RNA-Seq analysis using laser-captured Purkinje fibers showed a unique transcriptomic response to myocardial infarction. Our finds suggest a novel role of cardiac Purkinje fibers in heart injury.


Subject(s)
Heart Conduction System/physiology , Integrases/genetics , Myocardial Infarction/physiopathology , Purkinje Fibers/physiology , Alleles , Animals , Animals, Newborn , Cell Lineage , Heart Conduction System/physiopathology , Heart Ventricles/pathology , Mice , Mice, Transgenic , Myocardial Infarction/pathology , Myocardium/pathology , Myocytes, Cardiac/physiology , Purkinje Fibers/physiopathology , RNA-Seq , Regeneration , Tamoxifen/pharmacology , Transcriptome , Ventricular Function
11.
Development ; 146(12)2019 06 14.
Article in English | MEDLINE | ID: mdl-31201182

ABSTRACT

The Pitx2 gene encodes a homeobox transcription factor that is required for mammalian development. Disruption of PITX2 expression in humans causes congenital heart diseases and is associated with atrial fibrillation; however, the cellular and molecular processes dictated by Pitx2 during cardiac ontogeny remain unclear. To characterize the role of Pitx2 during murine heart development we sequenced over 75,000 single cardiac cell transcriptomes between two key developmental timepoints in control and Pitx2 null embryos. We found that cardiac cell composition was dramatically altered in mutants at both E10.5 and E13.5. Interestingly, the differentiation dynamics of both anterior and posterior second heart field-derived progenitor cells were disrupted in Pitx2 mutants. We also uncovered evidence for defects in left-right asymmetry within atrial cardiomyocyte populations. Furthermore, we were able to detail defects in cardiac outflow tract and valve development associated with Pitx2 Our findings offer insight into Pitx2 function and provide a compilation of gene expression signatures for further detailing the complexities of heart development that will serve as the foundation for future studies of cardiac morphogenesis, congenital heart disease and arrhythmogenesis.


Subject(s)
Gene Expression Regulation, Developmental , Heart Valves/embryology , Heart/embryology , Homeodomain Proteins/physiology , Myocytes, Cardiac/metabolism , Transcription Factors/physiology , Alleles , Animals , Heart Atria , Heart Defects, Congenital/genetics , Homeodomain Proteins/genetics , Mice , Mutation , Myocardium/metabolism , Nuclear Proteins/metabolism , Organogenesis , Sequence Analysis, RNA , Transcription Factors/genetics , Transcriptome , Homeobox Protein PITX2
12.
Proc Natl Acad Sci U S A ; 116(45): 22692-22698, 2019 11 05.
Article in English | MEDLINE | ID: mdl-31636200

ABSTRACT

Genome-wide association studies found that increased risk for atrial fibrillation (AF), the most common human heart arrhythmia, is associated with noncoding sequence variants located in proximity to PITX2 Cardiomyocyte-specific epigenomic and comparative genomics uncovered 2 AF-associated enhancers neighboring PITX2 with varying conservation in mice. Chromosome conformation capture experiments in mice revealed that the Pitx2c promoter directly contacted the AF-associated enhancer regions. CRISPR/Cas9-mediated deletion of a 20-kb topologically engaged enhancer led to reduced Pitx2c transcription and AF predisposition. Allele-specific chromatin immunoprecipitation sequencing on hybrid heterozygous enhancer knockout mice revealed that long-range interaction of an AF-associated region with the Pitx2c promoter was required for maintenance of the Pitx2c promoter chromatin state. Long-range looping was mediated by CCCTC-binding factor (CTCF), since genetic disruption of the intronic CTCF-binding site caused reduced Pitx2c expression, AF predisposition, and diminished active chromatin marks on Pitx2 AF risk variants located at 4q25 reside in genomic regions possessing long-range transcriptional regulatory functions directed at PITX2.


Subject(s)
Atrial Fibrillation/genetics , Enhancer Elements, Genetic , Genetic Predisposition to Disease , Homeodomain Proteins/genetics , Promoter Regions, Genetic , Transcription Factors/genetics , Animals , CRISPR-Cas Systems , Chromosome Mapping , Epigenesis, Genetic , Genome-Wide Association Study , Mice , Mice, Knockout , Homeobox Protein PITX2
13.
Development ; 145(18)2018 09 26.
Article in English | MEDLINE | ID: mdl-30143541

ABSTRACT

Loss of the paired-like homeodomain transcription factor 2 (Pitx2) in cardiomyocytes predisposes mice to atrial fibrillation and compromises neonatal regenerative capacity. In addition, Pitx2 gain-of-function protects mature cardiomyocytes from ischemic injury and promotes heart repair. Here, we characterized the long-term myocardial phenotype following myocardial infarction (MI) in Pitx2 conditional-knockout (Pitx2 CKO) mice. We found adipose-like tissue in Pitx2 CKO hearts 60 days after MI induced surgically at postnatal day 2 but not at day 8. Molecular and cellular analyses showed the onset of adipogenic signaling in mutant hearts after MI. Lineage tracing experiments showed a non-cardiomyocyte origin of the de novo adipose-like tissue. Interestingly, we found that Pitx2 promotes mitochondrial function through its gene regulatory network, and that the knockdown of a key mitochondrial Pitx2 target gene, Cox7c, also leads to the accumulation of myocardial fat tissue. Single-nuclei RNA-seq revealed that Pitx2-deficient hearts were oxidatively stressed. Our findings reveal a role for Pitx2 in maintaining proper cardiac cellular composition during heart regeneration via the maintenance of proper mitochondrial structure and function.


Subject(s)
Adipogenesis/physiology , Homeodomain Proteins/metabolism , Mitochondria/metabolism , Myocardial Infarction/pathology , Myocytes, Cardiac/metabolism , Regeneration/physiology , Transcription Factors/metabolism , Adipose Tissue/pathology , Animals , Cell Line , Electron Transport Complex IV/genetics , Gene Knockdown Techniques , Homeodomain Proteins/genetics , Mice , Mice, Knockout , Mitochondria/genetics , Myocardial Infarction/genetics , Oxidative Stress/genetics , Regeneration/genetics , Transcription Factors/genetics , Homeobox Protein PITX2
14.
Blood ; 134(7): 614-625, 2019 08 15.
Article in English | MEDLINE | ID: mdl-31270104

ABSTRACT

Oncogenic mutations confer on cells the ability to propagate indefinitely, but whether oncogenes alter the cell fate of these cells is unknown. Here, we show that the transcriptional regulator PRDM16s causes oncogenic fate conversion by transforming cells fated to form platelets and erythrocytes into myeloid leukemia stem cells (LSCs). Prdm16s expression in megakaryocyte-erythroid progenitors (MEPs), which normally lack the potential to generate granulomonocytic cells, caused AML by converting MEPs into LSCs. Prdm16s blocked megakaryocytic/erythroid potential by interacting with super enhancers and activating myeloid master regulators, including PU.1. A CRISPR dropout screen confirmed that PU.1 is required for Prdm16s-induced leukemia. Ablating PU.1 attenuated leukemogenesis and reinstated the megakaryocytic/erythroid potential of leukemic MEPs in mouse models and human AML with PRDM16 rearrangement. Thus, oncogenic PRDM16 s expression gives MEPs an LSC fate by activating myeloid gene regulatory networks.


Subject(s)
Cell Transformation, Neoplastic/pathology , DNA-Binding Proteins/genetics , Leukemia, Myeloid, Acute/pathology , Megakaryocyte-Erythroid Progenitor Cells/pathology , Transcription Factors/genetics , Animals , Cell Transformation, Neoplastic/genetics , Gene Expression Regulation, Leukemic , Gene Regulatory Networks , Humans , Leukemia, Myeloid, Acute/genetics , Megakaryocyte-Erythroid Progenitor Cells/metabolism , Mice, Inbred C57BL , Proto-Oncogene Proteins/genetics , Trans-Activators/genetics , Translocation, Genetic
15.
Circulation ; 140(10): 864-879, 2019 09 09.
Article in English | MEDLINE | ID: mdl-31259610

ABSTRACT

BACKGROUND: Surviving cells in the postinfarction border zone are subjected to intense fluctuations of their microenvironment. Recently, border zone cardiomyocytes have been specifically implicated in cardiac regeneration. Here, we defined their unique transcriptional and regulatory properties, and comprehensively validated new molecular markers, including Nppb, encoding B-type natriuretic peptide, after infarction. METHODS: Transgenic reporter mice were used to identify the Nppb-positive border zone after myocardial infarction. Transcriptome analysis of remote, border, and infarct zones and of purified cardiomyocyte nuclei was performed using RNA-sequencing. Top candidate genes displaying border zone spatial specificity were histologically validated in ischemic human hearts. Mice in which Nppb was deleted by genome editing were subjected to myocardial infarction. Chromatin accessibility landscapes of border zone and control cardiomyocyte nuclei were assessed by using assay for transposase-accessible chromatin using sequencing. RESULTS: We identified the border zone as a spatially confined region transcriptionally distinct from the remote myocardium. The transcriptional response of the border zone was much stronger than that of the remote ventricular wall, involving acute downregulation of mitochondrial oxidative phosphorylation, fatty acid metabolism, calcium handling, and sarcomere function, and the activation of a stress-response program. Analysis of infarcted human hearts revealed that the transcriptionally discrete border zone is conserved in humans, and led to the identification of novel conserved border zone markers including NPPB, ANKRD1, DES, UCHL1, JUN, and FOXP1. Homozygous Nppb mutant mice developed acute and lethal heart failure after myocardial infarction, indicating that B-type natriuretic peptide is required to preserve postinfarct heart function. Assay for transposase-accessible chromatin using sequencing revealed thousands of cardiomyocyte lineage-specific MEF2-occupied regulatory elements that lost accessibility in the border zone. Putative injury-responsive enhancers that gained accessibility were highly associated with AP-1 (activator protein 1) binding sites. Nuclear c-Jun, a component of AP-1, was observed specifically in border zone cardiomyocytes. CONCLUSIONS: Cardiomyocytes in a discrete zone bordering the infarct switch from a MEF2-driven homeostatic lineage-specific to an AP-1-driven injury-induced gene expression program. This program is conserved between mouse and human, and includes Nppb expression, which is required to prevent acute heart failure after infarction.


Subject(s)
MEF2 Transcription Factors/genetics , Myocardial Infarction/genetics , Myocytes, Cardiac/physiology , Receptors, Atrial Natriuretic Factor/genetics , Transcription Factor AP-1/genetics , Animals , Cell Differentiation , Cell Lineage , Cellular Microenvironment , Gene Expression Profiling , Gene Expression Regulation , Humans , Mice , Mice, Knockout , Myocardial Infarction/pathology , Receptors, Atrial Natriuretic Factor/metabolism , Regeneration/genetics
16.
Nat Med ; 30(6): 1749-1760, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38806679

ABSTRACT

Fibrotic diseases affect multiple organs and are associated with morbidity and mortality. To examine organ-specific and shared biologic mechanisms that underlie fibrosis in different organs, we developed machine learning models to quantify T1 time, a marker of interstitial fibrosis, in the liver, pancreas, heart and kidney among 43,881 UK Biobank participants who underwent magnetic resonance imaging. In phenome-wide association analyses, we demonstrate the association of increased organ-specific T1 time, reflecting increased interstitial fibrosis, with prevalent diseases across multiple organ systems. In genome-wide association analyses, we identified 27, 18, 11 and 10 independent genetic loci associated with liver, pancreas, myocardial and renal cortex T1 time, respectively. There was a modest genetic correlation between the examined organs. Several loci overlapped across the examined organs implicating genes involved in a myriad of biologic pathways including metal ion transport (SLC39A8, HFE and TMPRSS6), glucose metabolism (PCK2), blood group antigens (ABO and FUT2), immune function (BANK1 and PPP3CA), inflammation (NFKB1) and mitosis (CENPE). Finally, we found that an increasing number of organs with T1 time falling in the top quintile was associated with increased mortality in the population. Individuals with a high burden of fibrosis in ≥3 organs had a 3-fold increase in mortality compared to those with a low burden of fibrosis across all examined organs in multivariable-adjusted analysis (hazard ratio = 3.31, 95% confidence interval 1.77-6.19; P = 1.78 × 10-4). By leveraging machine learning to quantify T1 time across multiple organs at scale, we uncovered new organ-specific and shared biologic pathways underlying fibrosis that may provide therapeutic targets.


Subject(s)
Fibrosis , Genome-Wide Association Study , Magnetic Resonance Imaging , Humans , Male , Female , Middle Aged , Machine Learning , Aged , Pancreas/pathology , Pancreas/diagnostic imaging , Organ Specificity/genetics , Kidney/pathology , Liver/pathology , Liver/metabolism , Myocardium/pathology , Myocardium/metabolism , Adult
17.
Cell Rep ; 42(2): 112086, 2023 02 28.
Article in English | MEDLINE | ID: mdl-36790929

ABSTRACT

Ischemic cardiomyopathy (ICM) is the leading cause of heart failure worldwide, yet the cellular and molecular signature of this disease is largely unclear. Using single-nucleus RNA sequencing (snRNA-seq) and integrated computational analyses, we profile the transcriptomes of over 99,000 human cardiac nuclei from the non-infarct region of the left ventricle of 7 ICM transplant recipients and 8 non-failing (NF) controls. We find the cellular composition of the ischemic heart is significantly altered, with decreased cardiomyocytes and increased proportions of lymphatic, angiogenic, and arterial endothelial cells in patients with ICM. We show that there is increased LAMININ signaling from endothelial cells to other cell types in ICM compared with NF. Finally, we find that the transcriptional changes that occur in ICM are similar to those in hypertrophic and dilated cardiomyopathies and that the mining of these combined datasets can identify druggable genes that could be used to target end-stage heart failure.


Subject(s)
Cardiomyopathies , Cardiomyopathy, Dilated , Heart Failure , Myocardial Ischemia , Humans , Endothelial Cells/metabolism , Myocardial Ischemia/genetics , Myocardial Ischemia/metabolism , Heart Failure/genetics , Heart Failure/metabolism , Sequence Analysis, RNA , Cardiomyopathies/genetics
18.
Nat Genet ; 55(5): 777-786, 2023 05.
Article in English | MEDLINE | ID: mdl-37081215

ABSTRACT

Myocardial interstitial fibrosis is associated with cardiovascular disease and adverse prognosis. Here, to investigate the biological pathways that underlie fibrosis in the human heart, we developed a machine learning model to measure native myocardial T1 time, a marker of myocardial fibrosis, in 41,505 UK Biobank participants who underwent cardiac magnetic resonance imaging. Greater T1 time was associated with diabetes mellitus, renal disease, aortic stenosis, cardiomyopathy, heart failure, atrial fibrillation, conduction disease and rheumatoid arthritis. Genome-wide association analysis identified 11 independent loci associated with T1 time. The identified loci implicated genes involved in glucose transport (SLC2A12), iron homeostasis (HFE, TMPRSS6), tissue repair (ADAMTSL1, VEGFC), oxidative stress (SOD2), cardiac hypertrophy (MYH7B) and calcium signaling (CAMK2D). Using a transforming growth factor ß1-mediated cardiac fibroblast activation assay, we found that 9 of the 11 loci consisted of genes that exhibited temporal changes in expression or open chromatin conformation supporting their biological relevance to myofibroblast cell state acquisition. By harnessing machine learning to perform large-scale quantification of myocardial interstitial fibrosis using cardiac imaging, we validate associations between cardiac fibrosis and disease, and identify new biologically relevant pathways underlying fibrosis.


Subject(s)
Cardiomyopathies , Genome-Wide Association Study , Humans , Myocardium/pathology , Heart , Cardiomyopathies/genetics , Cardiomyopathies/pathology , Fibrosis
19.
Genome Biol ; 23(1): 30, 2022 01 21.
Article in English | MEDLINE | ID: mdl-35063001

ABSTRACT

Chromatin conformation capture (3C)-based technologies have enabled the accurate detection of topological genomic interactions, and the adoption of ChIP techniques to 3C-based protocols makes it possible to identify long-range interactions. To analyze these large and complex datasets, computational methods are undergoing rapid and expansive evolution. Thus, a thorough evaluation of these analytical pipelines is necessary to identify which commonly used algorithms and processing pipelines need to be improved. Here we present a comprehensive benchmark framework, Bacon, to evaluate the performance of several computational methods. Finally, we provide practical recommendations for users working with HiChIP and/or ChIA-PET analyses.


Subject(s)
Chromatin , Pork Meat , Benchmarking , Chromatin/genetics , Chromatin Immunoprecipitation Sequencing , Chromosomes
20.
Nat Commun ; 13(1): 134, 2022 01 10.
Article in English | MEDLINE | ID: mdl-35013307

ABSTRACT

Combined methylmalonic acidemia and homocystinuria (cblC) is the most common inborn error of intracellular cobalamin metabolism and due to mutations in Methylmalonic Aciduria type C and Homocystinuria (MMACHC). Recently, mutations in the transcriptional regulators HCFC1 and RONIN (THAP11) were shown to result in cellular phenocopies of cblC. Since HCFC1/RONIN jointly regulate MMACHC, patients with mutations in these factors suffer from reduced MMACHC expression and exhibit a cblC-like disease. However, additional de-regulated genes and the resulting pathophysiology is unknown. Therefore, we have generated mouse models of this disease. In addition to exhibiting loss of Mmachc, metabolic perturbations, and developmental defects previously observed in cblC, we uncovered reduced expression of target genes that encode ribosome protein subunits. We also identified specific phenotypes that we ascribe to deregulation of ribosome biogenesis impacting normal translation during development. These findings identify HCFC1/RONIN as transcriptional regulators of ribosome biogenesis during development and their mutation results in complex syndromes exhibiting aspects of both cblC and ribosomopathies.


Subject(s)
Amino Acid Metabolism, Inborn Errors/genetics , Homocystinuria/genetics , Host Cell Factor C1/genetics , Oxidoreductases/genetics , Repressor Proteins/genetics , Ribosomes/genetics , Vitamin B 12 Deficiency/genetics , Amino Acid Metabolism, Inborn Errors/metabolism , Amino Acid Metabolism, Inborn Errors/pathology , Animals , Disease Models, Animal , Embryo, Mammalian , Female , Gene Expression Regulation, Developmental , Homocystinuria/metabolism , Homocystinuria/pathology , Host Cell Factor C1/deficiency , Humans , Male , Mice , Mice, Knockout , Mutation , Organelle Biogenesis , Oxidoreductases/deficiency , Protein Biosynthesis , Protein Subunits/genetics , Protein Subunits/metabolism , Repressor Proteins/deficiency , Ribosomal Proteins/genetics , Ribosomal Proteins/metabolism , Ribosomes/metabolism , Ribosomes/pathology , Vitamin B 12/metabolism , Vitamin B 12 Deficiency/metabolism , Vitamin B 12 Deficiency/pathology
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