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1.
Nature ; 598(7880): 327-331, 2021 10.
Article in English | MEDLINE | ID: mdl-34588693

ABSTRACT

Haematopoiesis in the bone marrow (BM) maintains blood and immune cell production throughout postnatal life. Haematopoiesis first emerges in human BM at 11-12 weeks after conception1,2, yet almost nothing is known about how fetal BM (FBM) evolves to meet the highly specialized needs of the fetus and newborn. Here we detail the development of FBM, including stroma, using multi-omic assessment of mRNA and multiplexed protein epitope expression. We find that the full blood and immune cell repertoire is established in FBM in a short time window of 6-7 weeks early in the second trimester. FBM promotes rapid and extensive diversification of myeloid cells, with granulocytes, eosinophils and dendritic cell subsets emerging for the first time. The substantial expansion of B lymphocytes in FBM contrasts with fetal liver at the same gestational age. Haematopoietic progenitors from fetal liver, FBM and cord blood exhibit transcriptional and functional differences that contribute to tissue-specific identity and cellular diversification. Endothelial cell types form distinct vascular structures that we show are regionally compartmentalized within FBM. Finally, we reveal selective disruption of B lymphocyte, erythroid and myeloid development owing to a cell-intrinsic differentiation bias as well as extrinsic regulation through an altered microenvironment in Down syndrome (trisomy 21).


Subject(s)
Bone Marrow Cells/cytology , Bone Marrow , Down Syndrome/blood , Down Syndrome/immunology , Fetus/cytology , Hematopoiesis , Immune System/cytology , B-Lymphocytes/cytology , Dendritic Cells/cytology , Down Syndrome/metabolism , Down Syndrome/pathology , Endothelial Cells/pathology , Eosinophils/cytology , Erythroid Cells/cytology , Granulocytes/cytology , Humans , Immunity , Myeloid Cells/cytology , Stromal Cells/cytology
2.
PLoS Biol ; 20(7): e3001710, 2022 07.
Article in English | MEDLINE | ID: mdl-35862315

ABSTRACT

Gustatory Receptor 64 (Gr64) genes are a cluster of 6 neuronally expressed receptors involved in sweet taste sensation in Drosophila melanogaster. Gr64s modulate calcium signalling and excitatory responses to several different sugars. Here, we discover an unexpected nonneuronal function of Gr64 receptors and show that they promote proteostasis in epithelial cells affected by proteotoxic stress. Using heterozygous mutations in ribosome proteins (Rp), which have recently been shown to induce proteotoxic stress and protein aggregates in cells, we show that Rp/+ cells in Drosophila imaginal discs up-regulate expression of the entire Gr64 cluster and depend on these receptors for survival. We further show that loss of Gr64 in Rp/+ cells exacerbates stress pathway activation and proteotoxic stress by negatively affecting autophagy and proteasome function. This work identifies a noncanonical role in proteostasis maintenance for a family of gustatory receptors known for their function in neuronal sensation.


Subject(s)
Drosophila Proteins , Drosophila , Animals , Drosophila/metabolism , Drosophila Proteins/genetics , Drosophila Proteins/metabolism , Drosophila melanogaster/metabolism , Epithelial Cells/metabolism , Proteostasis/genetics , Receptors, Cell Surface/genetics , Receptors, Cell Surface/metabolism , Taste/physiology
3.
EMBO J ; 39(24): e104983, 2020 12 15.
Article in English | MEDLINE | ID: mdl-33103827

ABSTRACT

Recent advances in molecular profiling provide descriptive datasets of complex differentiation landscapes including the haematopoietic system, but the molecular mechanisms defining progenitor states and lineage choice remain ill-defined. Here, we employed a cellular model of murine multipotent haematopoietic progenitors (Hoxb8-FL) to knock out 39 transcription factors (TFs) followed by RNA-Seq analysis, to functionally define a regulatory network of 16,992 regulator/target gene links. Focussed analysis of the subnetworks regulated by the B-lymphoid TF Ebf1 and T-lymphoid TF Gata3 revealed a surprising role in common activation of an early myeloid programme. Moreover, Gata3-mediated repression of Pax5 emerges as a mechanism to prevent precocious B-lymphoid differentiation, while Hox-mediated activation of Meis1 suppresses myeloid differentiation. To aid interpretation of large transcriptomics datasets, we also report a new method that visualises likely transitions that a progenitor will undergo following regulatory network perturbations. Taken together, this study reveals how molecular network wiring helps to establish a multipotent progenitor state, with experimental approaches and analysis tools applicable to dissecting a broad range of both normal and perturbed cellular differentiation landscapes.


Subject(s)
Cell Lineage/physiology , Hematopoietic System/metabolism , Transcription Factors/metabolism , Animals , Cell Differentiation , Cell Lineage/genetics , Epigenomics , GATA3 Transcription Factor/genetics , GATA3 Transcription Factor/metabolism , Hematopoiesis , Hematopoietic Stem Cell Transplantation , Mice , Myeloid Ecotropic Viral Integration Site 1 Protein/metabolism , PAX5 Transcription Factor/genetics , PAX5 Transcription Factor/metabolism , Precursor Cells, B-Lymphoid , Transcription Factors/genetics
4.
EMBO Rep ; 23(10): e55502, 2022 10 06.
Article in English | MEDLINE | ID: mdl-35971894

ABSTRACT

Hematopoietic stem cells (HSCs) cultured outside the body are the fundamental component of a wide range of cellular and gene therapies. Recent efforts have achieved > 200-fold expansion of functional HSCs, but their molecular characterization has not been possible since the majority of cells are non-HSCs and single cell-initiated cultures have substantial clone-to-clone variability. Using the Fgd5 reporter mouse in combination with the EPCR surface marker, we report exclusive identification of HSCs from non-HSCs in expansion cultures. By directly linking single-clone functional transplantation data with single-clone gene expression profiling, we show that the molecular profile of expanded HSCs is similar to proliferating fetal HSCs and reveals a gene expression signature, including Esam, Prdm16, Fstl1, and Palld, that can identify functional HSCs from multiple cellular states. This "repopulation signature" (RepopSig) also enriches for HSCs in human datasets. Together, these findings demonstrate the power of integrating functional and molecular datasets to better derive meaningful gene signatures and opens the opportunity for a wide range of functional screening and molecular experiments previously not possible due to limited HSC numbers.


Subject(s)
Follistatin-Related Proteins , Animals , Cells, Cultured , Endothelial Protein C Receptor/metabolism , Follistatin-Related Proteins/metabolism , Hematopoietic Stem Cells/metabolism , Humans , Mice , Transcription Factors/metabolism
5.
Proc Natl Acad Sci U S A ; 117(38): 23626-23635, 2020 09 22.
Article in English | MEDLINE | ID: mdl-32883883

ABSTRACT

Hematopoietic stem and progenitor cell (HSPC) formation and lineage differentiation involve gene expression programs orchestrated by transcription factors and epigenetic regulators. Genetic disruption of the chromatin remodeler chromodomain-helicase-DNA-binding protein 7 (CHD7) expanded phenotypic HSPCs, erythroid, and myeloid lineages in zebrafish and mouse embryos. CHD7 acts to suppress hematopoietic differentiation. Binding motifs for RUNX and other hematopoietic transcription factors are enriched at sites occupied by CHD7, and decreased RUNX1 occupancy correlated with loss of CHD7 localization. CHD7 physically interacts with RUNX1 and suppresses RUNX1-induced expansion of HSPCs during development through modulation of RUNX1 activity. Consequently, the RUNX1:CHD7 axis provides proper timing and function of HSPCs as they emerge during hematopoietic development or mature in adults, representing a distinct and evolutionarily conserved control mechanism to ensure accurate hematopoietic lineage differentiation.


Subject(s)
Core Binding Factor Alpha 2 Subunit , DNA-Binding Proteins , Hematopoiesis , Animals , Cell Differentiation , Cell Line , Core Binding Factor Alpha 2 Subunit/chemistry , Core Binding Factor Alpha 2 Subunit/genetics , Core Binding Factor Alpha 2 Subunit/metabolism , DNA-Binding Proteins/chemistry , DNA-Binding Proteins/genetics , DNA-Binding Proteins/metabolism , Female , Hematopoietic Stem Cells , Humans , Male , Mice , Spleen/cytology , Zebrafish
6.
Blood ; 133(13): 1415-1426, 2019 03 28.
Article in English | MEDLINE | ID: mdl-30728144

ABSTRACT

Single-cell transcriptomics has recently emerged as a powerful tool to analyze cellular heterogeneity, discover new cell types, and infer putative differentiation routes. The technique has been rapidly embraced by the hematopoiesis research community, and like other technologies before, single-cell molecular profiling is widely expected to make important contributions to our understanding of the hematopoietic hierarchy. Much of this new interpretation relies on inference of the transcriptomic landscape as a representation of existing cellular states and associated transitions among them. Here we review how this model allows, under certain assumptions, charting of time-resolved differentiation trajectories with unparalleled resolution and how the landscape of multipotent cells may be rather devoid of discrete structures, challenging our preconceptions about stem and progenitor cell types and their organization. Finally, we highlight how promising technological advances may convert static differentiation landscapes into a dynamic cell flux model and thus provide a more holistic understanding of normal hematopoiesis and blood disorders.


Subject(s)
Hematopoiesis , Hematopoietic Stem Cells/cytology , Sequence Analysis, RNA/methods , Single-Cell Analysis/methods , Animals , Hematopoietic Stem Cells/metabolism , Humans
7.
Allergy ; 76(6): 1731-1742, 2021 06.
Article in English | MEDLINE | ID: mdl-33078414

ABSTRACT

BACKGROUND: Basophils and mast cells contribute to the development of allergic reactions. Whereas these mature effector cells are extensively studied, the differentiation trajectories from hematopoietic progenitors to basophils and mast cells are largely uncharted at the single-cell level. METHODS: We performed multicolor flow cytometry, high-coverage single-cell RNA sequencing analyses, and cell fate assays to chart basophil and mast cell differentiation at single-cell resolution in mouse. RESULTS: Analysis of flow cytometry data reconstructed a detailed map of basophil and mast cell differentiation, including a bifurcation of progenitors into two specific trajectories. Molecular profiling and pseudotime ordering of the single cells revealed gene expression changes during differentiation. Cell fate assays showed that multicolor flow cytometry and transcriptional profiling successfully predict the bipotent phenotype of a previously uncharacterized population of peritoneal basophil-mast cell progenitors. CONCLUSIONS: A combination of molecular and functional profiling of bone marrow and peritoneal cells provided a detailed road map of basophil and mast cell development. An interactive web resource was created to enable the wider research community to explore the expression dynamics for any gene of interest.


Subject(s)
Basophils , Mast Cells , Animals , Bone Marrow Cells , Cell Differentiation , Mice , Stem Cells
8.
Genes Dev ; 26(17): 1911-25, 2012 Sep 01.
Article in English | MEDLINE | ID: mdl-22899009

ABSTRACT

C16orf57 encodes a human protein of unknown function, and mutations in the gene occur in poikiloderma with neutropenia (PN), which is a rare, autosomal recessive disease. Interestingly, mutations in C16orf57 were also observed among patients diagnosed with Rothmund-Thomson syndrome (RTS) and dyskeratosis congenita (DC), which are caused by mutations in genes involved in DNA repair and telomere maintenance. A genetic screen in Saccharomyces cerevisiae revealed that the yeast ortholog of C16orf57, USB1 (YLR132C), is essential for U6 small nuclear RNA (snRNA) biogenesis and cell viability. Usb1 depletion destabilized U6 snRNA, leading to splicing defects and cell growth defects, which was suppressed by the presence of multiple copies of the U6 snRNA gene SNR6. Moreover, Usb1 is essential for the generation of a unique feature of U6 snRNA; namely, the 3'-terminal phosphate. RNAi experiments in human cells followed by biochemical and functional analyses confirmed that, similar to yeast, C16orf57 encodes a protein involved in the 2',3'-cyclic phosphate formation at the 3' end of U6 snRNA. Advanced bioinformatics predicted that C16orf57 encodes a phosphodiesterase whose putative catalytic activity is essential for its function in vivo. Our results predict an unexpected molecular basis for PN, DC, and RTS and provide insight into U6 snRNA 3' end formation.


Subject(s)
Mutation , Neutropenia/genetics , Phosphoric Diester Hydrolases/genetics , Phosphoric Diester Hydrolases/metabolism , RNA 3' End Processing/genetics , RNA, Small Nuclear/metabolism , Rothmund-Thomson Syndrome/genetics , HEK293 Cells , HeLa Cells , Humans , Mitochondrial Proteins/genetics , Mitochondrial Proteins/metabolism , Models, Molecular , Neutropenia/enzymology , Phosphoric Diester Hydrolases/chemistry , Protein Structure, Tertiary , RNA Interference , RNA Stability/genetics , Rothmund-Thomson Syndrome/enzymology , Saccharomyces cerevisiae/enzymology , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae Proteins/genetics , Saccharomyces cerevisiae Proteins/metabolism
9.
Nucleic Acids Res ; 42(2): 1270-90, 2014 Jan.
Article in English | MEDLINE | ID: mdl-24150935

ABSTRACT

hDIS3 is a mainly nuclear, catalytic subunit of the human exosome complex, containing exonucleolytic (RNB) and endonucleolytic (PIN) active domains. Mutations in hDIS3 have been found in ∼10% of patients with multiple myeloma (MM). Here, we show that these mutations interfere with hDIS3 exonucleolytic activity. Yeast harboring corresponding mutations in DIS3 show growth inhibition and changes in nuclear RNA metabolism typical for exosome dysfunction. Construction of a conditional DIS3 knockout in the chicken DT40 cell line revealed that DIS3 is essential for cell survival, indicating that its function cannot be replaced by other exosome-associated nucleases: hDIS3L and hRRP6. Moreover, HEK293-derived cells, in which depletion of endogenous wild-type hDIS3 was complemented with exogenously expressed MM hDIS3 mutants, proliferate at a slower rate and exhibit aberrant RNA metabolism. Importantly, MM mutations are synthetically lethal with the hDIS3 PIN domain catalytic mutation both in yeast and human cells. Since mutations in PIN domain alone have little effect on cell physiology, our results predict the hDIS3 PIN domain as a potential drug target for MM patients with hDIS3 mutations. It is an interesting example of intramolecular synthetic lethality with putative therapeutic potential in humans.


Subject(s)
Exosome Multienzyme Ribonuclease Complex/genetics , Multiple Myeloma/genetics , Mutation , RNA/metabolism , Animals , Catalytic Domain , Cell Line , Cell Proliferation , Cell Survival , Exosome Multienzyme Ribonuclease Complex/chemistry , HEK293 Cells , Humans , Phenotype , RNA Stability , Saccharomyces cerevisiae Proteins/genetics
10.
Open Biol ; 14(7): 240139, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38955223

ABSTRACT

The vertebrate organizer plays a crucial role in building the main (antero-posterior) axis of the embryo: it neuralizes the surrounding ectoderm, and is the site of emigration for cells making axial and paraxial mesendoderm during elongation. The chick organizer becomes a stem zone at the onset of elongation; it stops recruiting cells from the neighbouring ectoderm and generates all its derivatives from the small number of resident cells it contains at the end of gastrulation stages. Nothing is known about the molecular identity of this stem zone. Here, we specifically labelled long-term resident cells of the organizer and compared their RNA-seq profile to that of the neighbouring cell populations. Screening by reverse transcription-polymerase chain reaction and in situ hybridization identified four genes (WIF1, PTGDS, ThPO and UCKL1) that are upregulated only in the organizer region when it becomes a stem zone and remain expressed there during axial elongation. In experiments specifically labelling the resident cells of the mature organizer, we show that only these cells express these genes. These findings molecularly define the organizer as a stem zone and offer a key to understanding how this zone is set up, the molecular control of its cells' behaviour and the evolution of axial growth zones.


Subject(s)
Gene Expression Regulation, Developmental , Organizers, Embryonic , Animals , Chick Embryo , Organizers, Embryonic/metabolism , Body Patterning/genetics , Gastrulation/genetics , Transcriptome , Gene Expression Profiling
11.
Cell Stem Cell ; 31(2): 244-259.e10, 2024 02 01.
Article in English | MEDLINE | ID: mdl-38183977

ABSTRACT

The paradigmatic hematopoietic tree model is increasingly recognized to be limited, as it is based on heterogeneous populations largely defined by non-homeostatic assays testing cell fate potentials. Here, we combine persistent labeling with time-series single-cell RNA sequencing to build a real-time, quantitative model of in vivo tissue dynamics for murine bone marrow hematopoiesis. We couple cascading single-cell expression patterns with dynamic changes in differentiation and growth speeds. The resulting explicit linkage between molecular states and cellular behavior reveals widely varying self-renewal and differentiation properties across distinct lineages. Transplanted stem cells show strong acceleration of differentiation at specific stages of erythroid and neutrophil production, illustrating how the model can quantify the impact of perturbations. Our reconstruction of dynamic behavior from snapshot measurements is akin to how a kinetoscope allows sequential images to merge into a movie. We posit that this approach is generally applicable to understanding tissue-scale dynamics at high resolution.


Subject(s)
Bone Marrow , Hematopoietic Stem Cells , Animals , Mice , Hematopoietic Stem Cells/metabolism , Hematopoiesis/genetics , Cell Differentiation
12.
Nat Commun ; 14(1): 2686, 2023 05 10.
Article in English | MEDLINE | ID: mdl-37164982

ABSTRACT

Investigating organ biology often requires methodologies to induce genetically distinct clones within a living tissue. However, the 3D nature of clones makes sample image analysis challenging and slow, limiting the amount of information that can be extracted manually. Here we develop PECAn, a pipeline for image processing and statistical data analysis of complex multi-genotype 3D images. PECAn includes data handling, machine-learning-enabled segmentation, multivariant statistical analysis, and graph generation. This enables researchers to perform rigorous analyses rapidly and at scale, without requiring programming skills. We demonstrate the power of this pipeline by applying it to the study of Minute cell competition. We find an unappreciated sexual dimorphism in Minute cell growth in competing wing discs and identify, by statistical regression analysis, tissue parameters that model and correlate with competitive death. Furthermore, using PECAn, we identify several genes with a role in cell competition by conducting an RNAi-based screen.


Subject(s)
Carya , Animals , Cell Competition , Image Processing, Computer-Assisted/methods , Imaging, Three-Dimensional , Machine Learning
13.
Blood Adv ; 7(14): 3366-3377, 2023 07 25.
Article in English | MEDLINE | ID: mdl-36809781

ABSTRACT

Hematopoietic stem cells (HSCs) are a rare type of hematopoietic cell that can entirely reconstitute the blood and immune system after transplantation. Allogeneic HSC transplantation (HSCT) is used clinically as a curative therapy for a range of hematolymphoid diseases; however, it remains a high-risk therapy because of its potential side effects, including poor graft function and graft-versus-host disease (GVHD). Ex vivo HSC expansion has been suggested as an approach to improve hematopoietic reconstitution in low-cell dose grafts. Here, we demonstrate that the selectivity of polyvinyl alcohol (PVA)-based mouse HSC cultures can be improved using physioxic culture conditions. Single-cell transcriptomic analysis helped confirm the inhibition of lineage-committed progenitor cells in physioxic cultures. Long-term physioxic expansion also afforded culture-based ex vivo HSC selection from whole bone marrow, spleen, and embryonic tissues. Furthermore, we provide evidence that HSC-selective ex vivo cultures deplete GVHD-causing T cells and that this approach can be combined with genotoxic-free antibody-based conditioning HSCT approaches. Our results offer a simple approach to improve PVA-based HSC cultures and the underlying molecular phenotype, and highlight the potential translational implications of selective HSC expansion systems for allogeneic HSCT.


Subject(s)
Graft vs Host Disease , Hematopoietic Stem Cell Transplantation , Animals , Mice , Hematopoietic Stem Cell Transplantation/methods , Hematopoietic Stem Cells/metabolism , Transplantation, Homologous , Graft vs Host Disease/etiology , Graft vs Host Disease/prevention & control , Graft vs Host Disease/metabolism
14.
Cell Genom ; 3(12): 100426, 2023 Dec 13.
Article in English | MEDLINE | ID: mdl-38116120

ABSTRACT

Acute myeloid leukemia (AML) and myeloid neoplasms develop through acquisition of somatic mutations that confer mutation-specific fitness advantages to hematopoietic stem and progenitor cells. However, our understanding of mutational effects remains limited to the resolution attainable within immunophenotypically and clinically accessible bulk cell populations. To decipher heterogeneous cellular fitness to preleukemic mutational perturbations, we performed single-cell RNA sequencing of eight different mouse models with driver mutations of myeloid malignancies, generating 269,048 single-cell profiles. Our analysis infers mutation-driven perturbations in cell abundance, cellular lineage fate, cellular metabolism, and gene expression at the continuous resolution, pinpointing cell populations with transcriptional alterations associated with differentiation bias. We further develop an 11-gene scoring system (Stem11) on the basis of preleukemic transcriptional signatures that predicts AML patient outcomes. Our results demonstrate that a single-cell-resolution deep characterization of preleukemic biology has the potential to enhance our understanding of AML heterogeneity and inform more effective risk stratification strategies.

15.
J Exp Med ; 219(11)2022 11 07.
Article in English | MEDLINE | ID: mdl-36048017

ABSTRACT

Hematopoietic stem cells (HSCs) and multipotent progenitors (MPPs) generate all cells of the blood system. Despite their multipotency, MPPs display poorly understood lineage bias. Here, we examine whether lineage-specifying transcription factors, such as the B-lineage determinant EBF1, regulate lineage preference in early progenitors. We detect low-level EBF1 expression in myeloid-biased MPP3 and lymphoid-biased MPP4 cells, coinciding with expression of the myeloid determinant C/EBPα. Hematopoietic deletion of Ebf1 results in enhanced myelopoiesis and reduced HSC repopulation capacity. Ebf1-deficient MPP3 and MPP4 cells exhibit an augmented myeloid differentiation potential and a transcriptome with an enriched C/EBPα signature. Correspondingly, EBF1 binds the Cebpa enhancer, and the deficiency and overexpression of Ebf1 in MPP3 and MPP4 cells lead to an up- and downregulation of Cebpa expression, respectively. In addition, EBF1 primes the chromatin of B-lymphoid enhancers specifically in MPP3 cells. Thus, our study implicates EBF1 in regulating myeloid/lymphoid fate bias in MPPs by constraining C/EBPα-driven myelopoiesis and priming the B-lymphoid fate.


Subject(s)
Hematopoietic Stem Cells , Trans-Activators/metabolism , Animals , Cell Differentiation , Cell Lineage , Hematopoiesis , Hematopoietic Stem Cells/metabolism , Mice , Multipotent Stem Cells/physiology , Myelopoiesis/genetics , Trans-Activators/genetics , Transcription Factors/metabolism
16.
Nat Cell Biol ; 23(2): 136-146, 2021 02.
Article in English | MEDLINE | ID: mdl-33495633

ABSTRACT

Cell competition allows winner cells to eliminate less fit loser cells in tissues. In Minute cell competition, cells with a heterozygous mutation in ribosome genes, such as RpS3+/- cells, are eliminated by wild-type cells. How cells are primed as losers is partially understood and it has been proposed that reduced translation underpins the loser status of ribosome mutant, or Minute, cells. Here, using Drosophila, we show that reduced translation does not cause cell competition. Instead, we identify proteotoxic stress as the underlying cause of the loser status for Minute competition and competition induced by mahjong, an unrelated loser gene. RpS3+/- cells exhibit reduced autophagic and proteasomal flux, accumulate protein aggregates and can be rescued from competition by improving their proteostasis. Conversely, inducing proteotoxic stress is sufficient to turn otherwise wild-type cells into losers. Thus, we propose that tissues may preserve their health through a proteostasis-based mechanism of cell competition and cell selection.


Subject(s)
Cell Competition , Drosophila melanogaster/cytology , Proteins/toxicity , Stress, Physiological , Animals , Apoptosis/drug effects , Caspase 3/metabolism , Cell Competition/drug effects , Drosophila melanogaster/drug effects , Drosophila melanogaster/ultrastructure , Green Fluorescent Proteins/metabolism , Proteasome Endopeptidase Complex/metabolism , Protein Aggregates , Protein Biosynthesis/drug effects , Proteostasis/drug effects , Ribosomal Proteins/metabolism , Stress, Physiological/drug effects
17.
Article in English | MEDLINE | ID: mdl-31932320

ABSTRACT

Technological advances play a key role in furthering our understanding of stem cell biology, and advancing the prospects of regenerative therapies. Highly parallelized methods, developed in the last decade, can profile DNA, RNA, or proteins in thousands of cells and even capture data across two or more modalities (multiomics). This allows unbiased and precise definition of molecular cell states, thus allowing classification of cell types, tracking of differentiation trajectories, and discovery of underlying mechanisms. Despite being based on destructive techniques, novel experimental and bioinformatic approaches enable embedding and extraction of temporal information, which is essential for deconvolution of complex data and establishing cause and effect relationships. Here, we provide an overview of recent studies pertinent to stem cell biology, followed by an outlook on how further advances in single-cell molecular profiling and computational analysis have the potential to shape the future of both basic and translational research.


Subject(s)
Computational Biology/methods , Single-Cell Analysis/methods , Stem Cell Research , Animals , Cell Differentiation/genetics , Humans , Models, Biological , Muscles/metabolism , Neurons/metabolism , Stem Cells
18.
Exp Hematol ; 76: 1-12.e5, 2019 08.
Article in English | MEDLINE | ID: mdl-31326613

ABSTRACT

Pluripotent stem cell (PSC) differentiation in vitro represents a powerful and tractable model to study mammalian development and an unlimited source of cells for regenerative medicine. Within hematology, in vitro PSC hematopoiesis affords novel insights into blood formation and represents an exciting potential approach to generate hematopoietic and immune cell types for transplantation and transfusion. Most studies to date have focused on in vitro hematopoiesis from mouse PSCs and human PSCs. However, differences in mouse and human PSC culture protocols have complicated the translation of discoveries between these systems. We recently developed a novel chemical media formulation, expanded potential stem cell medium (EPSCM), that maintains mouse PSCs in a unique cellular state and extraembryonic differentiation capacity. Herein, we describe how EPSCM can be directly used to stably maintain human PSCs. We further demonstrate that human PSCs maintained in EPSCM can spontaneously form embryoid bodies and undergo in vitro hematopoiesis using a simple differentiation protocol, similar to mouse PSC differentiation. EPSCM-maintained human PSCs generated at least two hematopoietic cell populations, which displayed distinct transcriptional profiles by RNA-sequencing (RNA-seq) analysis. EPSCM also supports gene targeting using homologous recombination, affording generation of an SPI1 (PU.1) reporter PSC line to study and track in vitro hematopoiesis. EPSCM therefore provides a useful tool not only to study pluripotency but also hematopoietic cell specification and developmental-lineage commitment.


Subject(s)
Culture Media/pharmacology , Hematopoiesis/drug effects , Human Embryonic Stem Cells/drug effects , Pluripotent Stem Cells/drug effects , Animals , Cell Culture Techniques/methods , Cell Cycle , Cell Lineage , Cells, Cultured , Cellular Reprogramming Techniques , Embryoid Bodies/drug effects , Fibroblasts/cytology , Genes, Reporter , Human Embryonic Stem Cells/cytology , Humans , Mice , Neural Stem Cells/cytology , Neural Stem Cells/drug effects , Pluripotent Stem Cells/cytology , Pluripotent Stem Cells/transplantation , Sequence Analysis, RNA , Species Specificity , Stem Cell Transplantation/adverse effects , Teratoma/etiology
20.
Nat Commun ; 8(1): 136, 2017 07 26.
Article in English | MEDLINE | ID: mdl-28743877

ABSTRACT

Cell competition is a form of cell interaction that causes the elimination of less fit cells, or losers, by wild-type (WT) cells, influencing overall tissue health. Several mutations can cause cells to become losers; however, it is not known how. Here we show that Drosophila wing disc cells carrying functionally unrelated loser mutations (Minute and mahjong) display the common activation of multiple stress signalling pathways before cell competition and find that these pathways collectively account for the loser status. We find that JNK signalling inhibits the growth of losers, while JAK/STAT signalling promotes competition-induced winner cell proliferation. Furthermore, we show that losers display oxidative stress response activation and, strikingly, that activation of this pathway alone, by Nrf2 overexpression, is sufficient to prime cells for their elimination by WT neighbours. Since oxidative stress and Nrf2 are linked to several diseases, cell competition may occur in a number of pathological conditions.Cell competition causes the removal of less fit cells ('losers') but why some gene mutations turn cells into losers is unclear. Here, the authors show that Drosophila wing disc cells carrying some loser mutations activate Nrf2 and JNK signalling, which contribute to the loser status.


Subject(s)
Drosophila Proteins/metabolism , Drosophila melanogaster/metabolism , Oxidative Stress , Signal Transduction , Animals , Animals, Genetically Modified , Apoptosis/genetics , Cell Proliferation/genetics , Drosophila Proteins/genetics , Drosophila melanogaster/cytology , Drosophila melanogaster/genetics , Enzyme Activation , Gene Expression Profiling/methods , Imaginal Discs/cytology , JNK Mitogen-Activated Protein Kinases/genetics , JNK Mitogen-Activated Protein Kinases/metabolism , Janus Kinases/genetics , Janus Kinases/metabolism , Microscopy, Confocal , Mutation , STAT Transcription Factors/genetics , STAT Transcription Factors/metabolism , Transcription Factors/genetics , Transcription Factors/metabolism , Wings, Animal/cytology
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