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1.
Nat Immunol ; 24(1): 69-83, 2023 01.
Article in English | MEDLINE | ID: mdl-36522544

ABSTRACT

The molecular regulation of human hematopoietic stem cell (HSC) maintenance is therapeutically important, but limitations in experimental systems and interspecies variation have constrained our knowledge of this process. Here, we have studied a rare genetic disorder due to MECOM haploinsufficiency, characterized by an early-onset absence of HSCs in vivo. By generating a faithful model of this disorder in primary human HSCs and coupling functional studies with integrative single-cell genomic analyses, we uncover a key transcriptional network involving hundreds of genes that is required for HSC maintenance. Through our analyses, we nominate cooperating transcriptional regulators and identify how MECOM prevents the CTCF-dependent genome reorganization that occurs as HSCs differentiate. We show that this transcriptional network is co-opted in high-risk leukemias, thereby enabling these cancers to acquire stem cell properties. Collectively, we illuminate a regulatory network necessary for HSC self-renewal through the study of a rare experiment of nature.


Subject(s)
Leukemia , Neoplasms , Humans , Hematopoietic Stem Cells , Leukemia/genetics , Transcription Factors/genetics , Cell Differentiation/genetics
3.
Nature ; 586(7831): 769-775, 2020 10.
Article in English | MEDLINE | ID: mdl-33057200

ABSTRACT

Myeloproliferative neoplasms (MPNs) are blood cancers that are characterized by the excessive production of mature myeloid cells and arise from the acquisition of somatic driver mutations in haematopoietic stem cells (HSCs). Epidemiological studies indicate a substantial heritable component of MPNs that is among the highest known for cancers1. However, only a limited number of genetic risk loci have been identified, and the underlying biological mechanisms that lead to the acquisition of MPNs remain unclear. Here, by conducting a large-scale genome-wide association study (3,797 cases and 1,152,977 controls), we identify 17 MPN risk loci (P < 5.0 × 10-8), 7 of which have not been previously reported. We find that there is a shared genetic architecture between MPN risk and several haematopoietic traits from distinct lineages; that there is an enrichment for MPN risk variants within accessible chromatin of HSCs; and that increased MPN risk is associated with longer telomere length in leukocytes and other clonal haematopoietic states-collectively suggesting that MPN risk is associated with the function and self-renewal of HSCs. We use gene mapping to identify modulators of HSC biology linked to MPN risk, and show through targeted variant-to-function assays that CHEK2 and GFI1B have roles in altering the function of HSCs to confer disease risk. Overall, our results reveal a previously unappreciated mechanism for inherited MPN risk through the modulation of HSC function.


Subject(s)
Genetic Predisposition to Disease/genetics , Hematopoietic Stem Cells/pathology , Myeloproliferative Disorders/genetics , Myeloproliferative Disorders/pathology , Neoplasms/genetics , Neoplasms/pathology , Cell Lineage/genetics , Cell Self Renewal , Checkpoint Kinase 2/genetics , Female , Humans , Leukocytes/pathology , Male , Proto-Oncogene Proteins/genetics , Repressor Proteins/genetics , Risk , Telomere Homeostasis
4.
Nature ; 586(7831): 763-768, 2020 10.
Article in English | MEDLINE | ID: mdl-33057201

ABSTRACT

Age is the dominant risk factor for most chronic human diseases, but the mechanisms through which ageing confers this risk are largely unknown1. The age-related acquisition of somatic mutations that lead to clonal expansion in regenerating haematopoietic stem cell populations has recently been associated with both haematological cancer2-4 and coronary heart disease5-this phenomenon is termed clonal haematopoiesis of indeterminate potential (CHIP)6. Simultaneous analyses of germline and somatic whole-genome sequences provide the opportunity to identify root causes of CHIP. Here we analyse high-coverage whole-genome sequences from 97,691 participants of diverse ancestries in the National Heart, Lung, and Blood Institute Trans-omics for Precision Medicine (TOPMed) programme, and identify 4,229 individuals with CHIP. We identify associations with blood cell, lipid and inflammatory traits that are specific to different CHIP driver genes. Association of a genome-wide set of germline genetic variants enabled the identification of three genetic loci associated with CHIP status, including one locus at TET2 that was specific to individuals of African ancestry. In silico-informed in vitro evaluation of the TET2 germline locus enabled the identification of a causal variant that disrupts a TET2 distal enhancer, resulting in increased self-renewal of haematopoietic stem cells. Overall, we observe that germline genetic variation shapes haematopoietic stem cell function, leading to CHIP through mechanisms that are specific to clonal haematopoiesis as well as shared mechanisms that lead to somatic mutations across tissues.


Subject(s)
Clonal Hematopoiesis/genetics , Genetic Predisposition to Disease , Genome, Human/genetics , Whole Genome Sequencing , Adult , Africa/ethnology , Aged , Aged, 80 and over , Black People/genetics , Cell Self Renewal/genetics , DNA-Binding Proteins/genetics , Dioxygenases , Female , Germ-Line Mutation/genetics , Hematopoietic Stem Cells/cytology , Hematopoietic Stem Cells/metabolism , Humans , Intracellular Signaling Peptides and Proteins/genetics , Male , Middle Aged , National Heart, Lung, and Blood Institute (U.S.) , Phenotype , Precision Medicine , Proto-Oncogene Proteins/genetics , Tripartite Motif Proteins/genetics , United States , alpha Karyopherins/genetics
5.
Trends Genet ; 36(8): 563-576, 2020 08.
Article in English | MEDLINE | ID: mdl-32534791

ABSTRACT

Genome-wide association studies (GWAS) have identified thousands of genetic variants associated with a range of human diseases and traits. However, understanding the mechanisms by which these genetic variants have an impact on associated diseases and traits, often referred to as the variant-to-function (V2F) problem, remains a significant hurdle. Solving the V2F challenge requires us to identify causative genetic variants, relevant cell types/states, target genes, and mechanisms by which variants can cause diseases or alter phenotypic traits. We discuss emerging functional approaches that are being applied to tackle the V2F problem for blood cell traits, illuminating how human genetic variation can impact on key mechanisms in hematopoiesis, as well as highlighting future prospects for this nascent field.


Subject(s)
Genetic Predisposition to Disease , Genetic Variation , Hematologic Diseases/genetics , Hematopoiesis , Phenotype , Quantitative Trait Loci , Animals , Genetic Association Studies , Genome-Wide Association Study , Hematologic Diseases/blood , Hematologic Diseases/diagnosis , Hematologic Diseases/therapy , Humans
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