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1.
Nat Commun ; 15(1): 3016, 2024 Apr 08.
Article in English | MEDLINE | ID: mdl-38589367

ABSTRACT

Myelodysplastic syndromes (MDS) with mutated SF3B1 gene present features including a favourable outcome distinct from MDS with mutations in other splicing factor genes SRSF2 or U2AF1. Molecular bases of these divergences are poorly understood. Here we find that SF3B1-mutated MDS show reduced R-loop formation predominating in gene bodies associated with intron retention reduction, not found in U2AF1- or SRSF2-mutated MDS. Compared to erythroblasts from SRSF2- or U2AF1-mutated patients, SF3B1-mutated erythroblasts exhibit augmented DNA synthesis, accelerated replication forks, and single-stranded DNA exposure upon differentiation. Importantly, histone deacetylase inhibition using vorinostat restores R-loop formation, slows down DNA replication forks and improves SF3B1-mutated erythroblast differentiation. In conclusion, loss of R-loops with associated DNA replication stress represents a hallmark of SF3B1-mutated MDS ineffective erythropoiesis, which could be used as a therapeutic target.


Subject(s)
Myelodysplastic Syndromes , R-Loop Structures , Humans , Splicing Factor U2AF/genetics , Serine-Arginine Splicing Factors/genetics , RNA Splicing Factors/genetics , Myelodysplastic Syndromes/drug therapy , Myelodysplastic Syndromes/genetics , Mutation , Transcription Factors/genetics , Phosphoproteins/genetics
2.
Dev Cell ; 59(3): 339-350.e4, 2024 Feb 05.
Article in English | MEDLINE | ID: mdl-38198889

ABSTRACT

Congenital heart malformations include mitral valve defects, which remain largely unexplained. During embryogenesis, a restricted population of endocardial cells within the atrioventricular canal undergoes an endothelial-to-mesenchymal transition to give rise to mitral valvular cells. However, the identity and fate decisions of these progenitors as well as the behavior and distribution of their derivatives in valve leaflets remain unknown. We used single-cell RNA sequencing (scRNA-seq) of genetically labeled endocardial cells and microdissected mouse embryonic and postnatal mitral valves to characterize the developmental road. We defined the metabolic processes underlying the specification of the progenitors and their contributions to subtypes of valvular cells. Using retrospective multicolor clonal analysis, we describe specific modes of growth and behavior of endocardial cell-derived clones, which build up, in a proper manner, functional valve leaflets. Our data identify how both genetic and metabolic mechanisms specifically drive the fate of a subset of endocardial cells toward their distinct clonal contribution to the formation of the valve.


Subject(s)
Embryonic Development , Mitral Valve , Animals , Mice , Mitral Valve/abnormalities , Mitral Valve/metabolism , Retrospective Studies , Cell Differentiation
3.
Nat Commun ; 10(1): 1929, 2019 04 26.
Article in English | MEDLINE | ID: mdl-31028265

ABSTRACT

Genetically modified mice have advanced our understanding of valve development and disease. Yet, human pathophysiological valvulogenesis remains poorly understood. Here we report that, by combining single cell sequencing and in vivo approaches, a population of human pre-valvular endocardial cells (HPVCs) can be derived from pluripotent stem cells. HPVCs express gene patterns conforming to the E9.0 mouse atrio-ventricular canal (AVC) endocardium signature. HPVCs treated with BMP2, cultured on mouse AVC cushions, or transplanted into the AVC of embryonic mouse hearts, undergo endothelial-to-mesenchymal transition and express markers of valve interstitial cells of different valvular layers, demonstrating cell specificity. Extending this model to patient-specific induced pluripotent stem cells recapitulates features of mitral valve prolapse and identified dysregulation of the SHH pathway. Concurrently increased ECM secretion can be rescued by SHH inhibition, thus providing a putative therapeutic target. In summary, we report a human cell model of valvulogenesis that faithfully recapitulates valve disease in a dish.


Subject(s)
Endothelial Cells/pathology , Hedgehog Proteins/genetics , Mitral Valve Prolapse/pathology , Mitral Valve/pathology , Pluripotent Stem Cells/pathology , Animals , Antigens, CD/genetics , Antigens, CD/metabolism , Biomarkers/metabolism , Bone Morphogenetic Protein 2/pharmacology , Cadherin Related Proteins , Cadherins/genetics , Cadherins/metabolism , Cell Differentiation/drug effects , Embryo, Mammalian , Endocardium/metabolism , Endocardium/pathology , Endothelial Cells/drug effects , Endothelial Cells/metabolism , Endothelial Cells/transplantation , Epithelial-Mesenchymal Transition/drug effects , GATA5 Transcription Factor/genetics , GATA5 Transcription Factor/metabolism , Gene Expression Profiling , Gene Expression Regulation , Heart Atria/metabolism , Heart Atria/pathology , Hedgehog Proteins/metabolism , Humans , Mice , Mitral Valve/metabolism , Mitral Valve Prolapse/genetics , Mitral Valve Prolapse/metabolism , Mitral Valve Prolapse/therapy , Models, Biological , Pluripotent Stem Cells/drug effects , Pluripotent Stem Cells/metabolism , Primary Cell Culture , T-Box Domain Proteins/genetics , T-Box Domain Proteins/metabolism , Wnt3A Protein/pharmacology
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