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1.
Cell ; 181(4): 905-913.e7, 2020 05 14.
Article in English | MEDLINE | ID: mdl-32333836

ABSTRACT

We have previously provided the first genetic evidence that angiotensin converting enzyme 2 (ACE2) is the critical receptor for severe acute respiratory syndrome coronavirus (SARS-CoV), and ACE2 protects the lung from injury, providing a molecular explanation for the severe lung failure and death due to SARS-CoV infections. ACE2 has now also been identified as a key receptor for SARS-CoV-2 infections, and it has been proposed that inhibiting this interaction might be used in treating patients with COVID-19. However, it is not known whether human recombinant soluble ACE2 (hrsACE2) blocks growth of SARS-CoV-2. Here, we show that clinical grade hrsACE2 reduced SARS-CoV-2 recovery from Vero cells by a factor of 1,000-5,000. An equivalent mouse rsACE2 had no effect. We also show that SARS-CoV-2 can directly infect engineered human blood vessel organoids and human kidney organoids, which can be inhibited by hrsACE2. These data demonstrate that hrsACE2 can significantly block early stages of SARS-CoV-2 infections.


Subject(s)
Betacoronavirus/drug effects , Coronavirus Infections/drug therapy , Peptidyl-Dipeptidase A/pharmacology , Pneumonia, Viral/drug therapy , Recombinant Proteins/pharmacology , Angiotensin-Converting Enzyme 2 , Animals , Betacoronavirus/genetics , Betacoronavirus/isolation & purification , Betacoronavirus/ultrastructure , Blood Vessels/virology , COVID-19 , Chlorocebus aethiops , Humans , Kidney/cytology , Kidney/virology , Mice , Organoids/virology , Pandemics , Peptidyl-Dipeptidase A/genetics , Peptidyl-Dipeptidase A/metabolism , Receptors, Virus/metabolism , SARS-CoV-2 , Spike Glycoprotein, Coronavirus/metabolism , Vero Cells
2.
Cell ; 179(2): 527-542.e19, 2019 10 03.
Article in English | MEDLINE | ID: mdl-31585086

ABSTRACT

Much of current molecular and cell biology research relies on the ability to purify cell types by fluorescence-activated cell sorting (FACS). FACS typically relies on the ability to label cell types of interest with antibodies or fluorescent transgenic constructs. However, antibody availability is often limited, and genetic manipulation is labor intensive or impossible in the case of primary human tissue. To date, no systematic method exists to enrich for cell types without a priori knowledge of cell-type markers. Here, we propose GateID, a computational method that combines single-cell transcriptomics with FACS index sorting to purify cell types of choice using only native cellular properties such as cell size, granularity, and mitochondrial content. We validate GateID by purifying various cell types from zebrafish kidney marrow and the human pancreas to high purity without resorting to specific antibodies or transgenes.


Subject(s)
Cell Separation/methods , Flow Cytometry/methods , Software , Transcriptome , Animals , Humans , Kidney/cytology , Pancreas/cytology , Single-Cell Analysis , Zebrafish/anatomy & histology
3.
Cell ; 178(3): 521-535.e23, 2019 07 25.
Article in English | MEDLINE | ID: mdl-31348885

ABSTRACT

Intracellular accumulation of misfolded proteins causes toxic proteinopathies, diseases without targeted therapies. Mucin 1 kidney disease (MKD) results from a frameshift mutation in the MUC1 gene (MUC1-fs). Here, we show that MKD is a toxic proteinopathy. Intracellular MUC1-fs accumulation activated the ATF6 unfolded protein response (UPR) branch. We identified BRD4780, a small molecule that clears MUC1-fs from patient cells, from kidneys of knockin mice and from patient kidney organoids. MUC1-fs is trapped in TMED9 cargo receptor-containing vesicles of the early secretory pathway. BRD4780 binds TMED9, releases MUC1-fs, and re-routes it for lysosomal degradation, an effect phenocopied by TMED9 deletion. Our findings reveal BRD4780 as a promising lead for the treatment of MKD and other toxic proteinopathies. Generally, we elucidate a novel mechanism for the entrapment of misfolded proteins by cargo receptors and a strategy for their release and anterograde trafficking to the lysosome.


Subject(s)
Benzamides/metabolism , Bridged Bicyclo Compounds/pharmacology , Heptanes/pharmacology , Lysosomes/drug effects , Vesicular Transport Proteins/metabolism , Activating Transcription Factor 6/metabolism , Animals , Benzamides/chemistry , Benzamides/pharmacology , Bridged Bicyclo Compounds/therapeutic use , Epithelial Cells/cytology , Epithelial Cells/metabolism , Female , Frameshift Mutation , Heptanes/therapeutic use , Humans , Imidazoline Receptors/antagonists & inhibitors , Imidazoline Receptors/genetics , Imidazoline Receptors/metabolism , Induced Pluripotent Stem Cells/cytology , Induced Pluripotent Stem Cells/metabolism , Kidney/cytology , Kidney/metabolism , Kidney/pathology , Kidney Diseases/metabolism , Kidney Diseases/pathology , Lysosomes/metabolism , Male , Mice , Mice, Transgenic , Mucin-1/chemistry , Mucin-1/genetics , Mucin-1/metabolism , RNA Interference , RNA, Small Interfering/metabolism , Unfolded Protein Response/drug effects , Vesicular Transport Proteins/chemistry
4.
Cell ; 168(1-2): 264-279.e15, 2017 01 12.
Article in English | MEDLINE | ID: mdl-28086093

ABSTRACT

The life cycle of a primary cilium begins in quiescence and ends prior to mitosis. In quiescent cells, the primary cilium insulates itself from contiguous dynamic membrane processes on the cell surface to function as a stable signaling apparatus. Here, we demonstrate that basal restriction of ciliary structure dynamics is established by the cilia-enriched phosphoinositide 5-phosphatase, Inpp5e. Growth induction displaces ciliary Inpp5e and accumulates phosphatidylinositol 4,5-bisphosphate in distal cilia. This change triggers otherwise-forbidden actin polymerization in primary cilia, which excises cilia tips in a process we call cilia decapitation. While cilia disassembly is traditionally thought to occur solely through resorption, we show that an acute loss of IFT-B through cilia decapitation precedes resorption. Finally, we propose that cilia decapitation induces mitogenic signaling and constitutes a molecular link between the cilia life cycle and cell-division cycle. This newly defined ciliary mechanism may find significance in cell proliferation control during normal development and cancer.


Subject(s)
Cell Cycle , Cilia/metabolism , Actins/metabolism , Animals , Kidney/cytology , Kidney/metabolism , Mice , NIH 3T3 Cells , Phosphatidylinositol 4,5-Diphosphate , Phosphoric Monoester Hydrolases/metabolism , Zinc Finger Protein GLI1/metabolism
5.
Cell ; 168(1-2): 252-263.e14, 2017 Jan 12.
Article in English | MEDLINE | ID: mdl-28017328

ABSTRACT

Signaling receptors dynamically exit cilia upon activation of signaling pathways such as Hedgehog. Here, we find that when activated G protein-coupled receptors (GPCRs) fail to undergo BBSome-mediated retrieval from cilia back into the cell, these GPCRs concentrate into membranous buds at the tips of cilia before release into extracellular vesicles named ectosomes. Unexpectedly, actin and the actin regulators drebrin and myosin 6 mediate ectosome release from the tip of cilia. Mirroring signal-dependent retrieval, signal-dependent ectocytosis is a selective and effective process that removes activated signaling molecules from cilia. Congruently, ectocytosis compensates for BBSome defects as ectocytic removal of GPR161, a negative regulator of Hedgehog signaling, permits the appropriate transduction of Hedgehog signals in Bbs mutants. Finally, ciliary receptors that lack retrieval determinants such as the anorexigenic GPCR NPY2R undergo signal-dependent ectocytosis in wild-type cells. Our data show that signal-dependent ectocytosis regulates ciliary signaling in physiological and pathological contexts.


Subject(s)
Cilia/metabolism , Extracellular Vesicles/metabolism , Receptors, G-Protein-Coupled/metabolism , Actins/metabolism , Animals , Cell Line , Humans , Kidney/cytology , Kidney/metabolism , Mice , Microscopy, Electron, Scanning , Receptors, Somatostatin/metabolism , Signal Transduction
6.
Cell ; 169(4): 736-749.e18, 2017 05 04.
Article in English | MEDLINE | ID: mdl-28475899

ABSTRACT

Immune cells in the tumor microenvironment modulate cancer progression and are attractive therapeutic targets. Macrophages and T cells are key components of the microenvironment, yet their phenotypes and relationships in this ecosystem and to clinical outcomes are ill defined. We used mass cytometry with extensive antibody panels to perform in-depth immune profiling of samples from 73 clear cell renal cell carcinoma (ccRCC) patients and five healthy controls. In 3.5 million measured cells, we identified 17 tumor-associated macrophage phenotypes, 22 T cell phenotypes, and a distinct immune composition correlated with progression-free survival, thereby presenting an in-depth human atlas of the immune tumor microenvironment in this disease. This study revealed potential biomarkers and targets for immunotherapy development and validated tools that can be used for immune profiling of other tumor types.


Subject(s)
Carcinoma, Renal Cell/immunology , Carcinoma, Renal Cell/pathology , Kidney Neoplasms/immunology , Kidney Neoplasms/pathology , Tumor Microenvironment , Humans , Image Cytometry , Immune Tolerance , Kidney/cytology , Macrophages/immunology , Macrophages/pathology , Single-Cell Analysis , T-Lymphocytes/immunology , T-Lymphocytes/pathology
7.
Cell ; 170(5): 860-874.e19, 2017 Aug 24.
Article in English | MEDLINE | ID: mdl-28803730

ABSTRACT

Lower urinary tract infections are among the most common human bacterial infections, but extension to the kidneys is rare. This has been attributed to mechanical forces, such as urine flow, that prevent the ascent of bladder microbes. Here, we show that the regional hypersalinity, required for the kidney's urine-concentrating function, instructs epithelial cells to produce chemokines that localize monocyte-derived mononuclear phagocytes (MNPs) to the medulla. This hypersaline environment also increases the intrinsic bactericidal and neutrophil chemotactic activities of MNPs to generate a zone of defense. Because MNP positioning and function are dynamically regulated by the renal salt gradient, we find that patients with urinary concentrating defects are susceptible to kidney infection. Our work reveals a critical accessory role for the homeostatic function of a vital organ in optimizing tissue defense.


Subject(s)
Kidney/immunology , Phagocytes/immunology , Animals , Cell Line , Chemokine CCL2/metabolism , Chemokines/immunology , Diabetes Insipidus , Humans , Kidney/cytology , Kidney Medulla/immunology , Lipopolysaccharide Receptors/metabolism , Mice , Mice, Inbred C57BL , Monocytes/cytology , Salinity , Sodium/metabolism , Transcription Factors/genetics , Urinary Tract Infections/immunology , Urinary Tract Infections/microbiology , Urine/chemistry , Uropathogenic Escherichia coli/physiology
8.
Cell ; 166(4): 991-1003, 2016 Aug 11.
Article in English | MEDLINE | ID: mdl-27477514

ABSTRACT

Small immune complexes cause type III hypersensitivity reactions that frequently result in tissue injury. The responsible mechanisms, however, remain unclear and differ depending on target organs. Here, we identify a kidney-specific anatomical and functional unit, formed by resident macrophages and peritubular capillary endothelial cells, which monitors the transport of proteins and particles ranging from 20 to 700 kDa or 10 to 200 nm into the kidney interstitium. Kidney-resident macrophages detect and scavenge circulating immune complexes "pumped" into the interstitium via trans-endothelial transport and trigger a FcγRIV-dependent inflammatory response and the recruitment of monocytes and neutrophils. In addition, FcγRIV and TLR pathways synergistically "super-activate" kidney macrophages when immune complexes contain a nucleic acid. These data identify a physiological function of tissue-resident kidney macrophages and a basic mechanism by which they initiate the inflammatory response to small immune complexes in the kidney.


Subject(s)
Immune Complex Diseases/immunology , Kidney/cytology , Kidney/immunology , Macrophages/immunology , Animals , Antigen-Antibody Complex , Endothelial Cells , Macrophages/cytology , Mice, Inbred C57BL , Microscopy, Immunoelectron , Monocytes/cytology , Monocytes/immunology , Neutrophils/cytology , Neutrophils/immunology , Receptors, IgG/immunology
9.
Nature ; 630(8018): 943-949, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38898271

ABSTRACT

Spatial transcriptomics measures in situ gene expression at millions of locations within a tissue1, hitherto with some trade-off between transcriptome depth, spatial resolution and sample size2. Although integration of image-based segmentation has enabled impactful work in this context, it is limited by imaging quality and tissue heterogeneity. By contrast, recent array-based technologies offer the ability to measure the entire transcriptome at subcellular resolution across large samples3-6. Presently, there exist no approaches for cell type identification that directly leverage this information to annotate individual cells. Here we propose a multiscale approach to automatically classify cell types at this subcellular level, using both transcriptomic information and spatial context. We showcase this on both targeted and whole-transcriptome spatial platforms, improving cell classification and morphology for human kidney tissue and pinpointing individual sparsely distributed renal mouse immune cells without reliance on image data. By integrating these predictions into a topological pipeline based on multiparameter persistent homology7-9, we identify cell spatial relationships characteristic of a mouse model of lupus nephritis, which we validate experimentally by immunofluorescence. The proposed framework readily generalizes to new platforms, providing a comprehensive pipeline bridging different levels of biological organization from genes through to tissues.


Subject(s)
Cells , Gene Expression Profiling , Intracellular Space , Kidney , Transcriptome , Animals , Female , Humans , Mice , Cells/classification , Cells/metabolism , Disease Models, Animal , Fluorescent Antibody Technique , Gene Expression Profiling/methods , Kidney/cytology , Kidney/immunology , Kidney/metabolism , Kidney/pathology , Lupus Nephritis/genetics , Lupus Nephritis/immunology , Lupus Nephritis/metabolism , Lupus Nephritis/pathology , Reproducibility of Results , Intracellular Space/genetics , Intracellular Space/metabolism
10.
Nature ; 626(8001): 1084-1093, 2024 Feb.
Article in English | MEDLINE | ID: mdl-38355799

ABSTRACT

The house mouse (Mus musculus) is an exceptional model system, combining genetic tractability with close evolutionary affinity to humans1,2. Mouse gestation lasts only 3 weeks, during which the genome orchestrates the astonishing transformation of a single-cell zygote into a free-living pup composed of more than 500 million cells. Here, to establish a global framework for exploring mammalian development, we applied optimized single-cell combinatorial indexing3 to profile the transcriptional states of 12.4 million nuclei from 83 embryos, precisely staged at 2- to 6-hour intervals spanning late gastrulation (embryonic day 8) to birth (postnatal day 0). From these data, we annotate hundreds of cell types and explore the ontogenesis of the posterior embryo during somitogenesis and of kidney, mesenchyme, retina and early neurons. We leverage the temporal resolution and sampling depth of these whole-embryo snapshots, together with published data4-8 from earlier timepoints, to construct a rooted tree of cell-type relationships that spans the entirety of prenatal development, from zygote to birth. Throughout this tree, we systematically nominate genes encoding transcription factors and other proteins as candidate drivers of the in vivo differentiation of hundreds of cell types. Remarkably, the most marked temporal shifts in cell states are observed within one hour of birth and presumably underlie the massive physiological adaptations that must accompany the successful transition of a mammalian fetus to life outside the womb.


Subject(s)
Animals, Newborn , Embryo, Mammalian , Embryonic Development , Gastrula , Single-Cell Analysis , Time-Lapse Imaging , Animals , Female , Mice , Pregnancy , Animals, Newborn/embryology , Animals, Newborn/genetics , Cell Differentiation/genetics , Embryo, Mammalian/cytology , Embryo, Mammalian/embryology , Embryonic Development/genetics , Gastrula/cytology , Gastrula/embryology , Gastrulation/genetics , Kidney/cytology , Kidney/embryology , Mesoderm/cytology , Mesoderm/enzymology , Neurons/cytology , Neurons/metabolism , Retina/cytology , Retina/embryology , Somites/cytology , Somites/embryology , Time Factors , Transcription Factors/genetics , Transcription, Genetic , Organ Specificity/genetics
11.
Nature ; 619(7970): 585-594, 2023 Jul.
Article in English | MEDLINE | ID: mdl-37468583

ABSTRACT

Understanding kidney disease relies on defining the complexity of cell types and states, their associated molecular profiles and interactions within tissue neighbourhoods1. Here we applied multiple single-cell and single-nucleus assays (>400,000 nuclei or cells) and spatial imaging technologies to a broad spectrum of healthy reference kidneys (45 donors) and diseased kidneys (48 patients). This has provided a high-resolution cellular atlas of 51 main cell types, which include rare and previously undescribed cell populations. The multi-omic approach provides detailed transcriptomic profiles, regulatory factors and spatial localizations spanning the entire kidney. We also define 28 cellular states across nephron segments and interstitium that were altered in kidney injury, encompassing cycling, adaptive (successful or maladaptive repair), transitioning and degenerative states. Molecular signatures permitted the localization of these states within injury neighbourhoods using spatial transcriptomics, while large-scale 3D imaging analysis (around 1.2 million neighbourhoods) provided corresponding linkages to active immune responses. These analyses defined biological pathways that are relevant to injury time-course and niches, including signatures underlying epithelial repair that predicted maladaptive states associated with a decline in kidney function. This integrated multimodal spatial cell atlas of healthy and diseased human kidneys represents a comprehensive benchmark of cellular states, neighbourhoods, outcome-associated signatures and publicly available interactive visualizations.


Subject(s)
Gene Expression Profiling , Kidney Diseases , Kidney , Single-Cell Analysis , Transcriptome , Humans , Cell Nucleus/genetics , Kidney/cytology , Kidney/injuries , Kidney/metabolism , Kidney/pathology , Kidney Diseases/metabolism , Kidney Diseases/pathology , Transcriptome/genetics , Case-Control Studies , Imaging, Three-Dimensional
12.
Cell ; 154(4): 843-58, 2013 Aug 15.
Article in English | MEDLINE | ID: mdl-23953115

ABSTRACT

Mononuclear phagocytes are classified as macrophages or dendritic cells (DCs) based on cell morphology, phenotype, or select functional properties. However, these attributes are not absolute and often overlap, leading to difficulties in cell-type identification. To circumvent this issue, we describe a mouse model to define DCs based on their ontogenetic descendence from a committed precursor. We show that precursors of mouse conventional DCs, but not other leukocytes, are marked by expression of DNGR-1. Genetic tracing of DNGR-1 expression history specifically marks cells traditionally ascribed to the DC lineage, and this restriction is maintained after inflammation. Notably, in some tissues, cells previously thought to be monocytes/macrophages are in fact descendants from DC precursors. These studies provide an in vivo model for fate mapping of DCs, distinguishing them from other leukocyte lineages, and thus help to unravel the functional complexity of the mononuclear phagocyte system.


Subject(s)
Cell Lineage , Dendritic Cells/cytology , Lectins, C-Type/metabolism , Receptors, Immunologic/metabolism , Animals , Dendritic Cells/metabolism , Hematopoiesis , Inflammation/pathology , Kidney/cytology , Lectins, C-Type/genetics , Lymphoid Progenitor Cells/metabolism , Macrophages/cytology , Mice , Mice, Inbred C57BL , Phagocytes/cytology , Receptors, IgG/metabolism , Receptors, Immunologic/genetics
13.
Nature ; 612(7941): 725-731, 2022 12.
Article in English | MEDLINE | ID: mdl-36517592

ABSTRACT

Ribosomes are highly sophisticated translation machines that have been demonstrated to be heterogeneous in the regulation of protein synthesis1,2. Male germ cell development involves complex translational regulation during sperm formation3. However, it remains unclear whether translation during sperm formation is performed by a specific ribosome. Here we report a ribosome with a specialized nascent polypeptide exit tunnel, RibosomeST, that is assembled with the male germ-cell-specific protein RPL39L, the paralogue of core ribosome (RibosomeCore) protein RPL39. Deletion of RibosomeST in mice causes defective sperm formation, resulting in substantially reduced fertility. Our comparison of single-particle cryo-electron microscopy structures of ribosomes from mouse kidneys and testes indicates that RibosomeST features a ribosomal polypeptide exit tunnel of distinct size and charge states compared with RibosomeCore. RibosomeST predominantly cotranslationally regulates the folding of a subset of male germ-cell-specific proteins that are essential for the formation of sperm. Moreover, we found that specialized functions of RibosomeST were not replaceable by RibosomeCore. Taken together, identification of this sperm-specific ribosome should greatly expand our understanding of ribosome function and tissue-specific regulation of protein expression pattern in mammals.


Subject(s)
Fertility , Ribosomes , Spermatozoa , Animals , Male , Mice , Cryoelectron Microscopy/methods , Peptides/chemistry , Peptides/metabolism , Protein Biosynthesis , Protein Folding , Ribosomes/metabolism , Spermatozoa/cytology , Spermatozoa/metabolism , Fertility/physiology , Organ Specificity , Ribosomal Proteins , Kidney/cytology , Testis/cytology
14.
Physiol Rev ; 100(3): 1119-1147, 2020 07 01.
Article in English | MEDLINE | ID: mdl-32347156

ABSTRACT

Intercalated cells (ICs) are found in the connecting tubule and the collecting duct. Of the three IC subtypes identified, type B intercalated cells are one of the best characterized and known to mediate Cl- absorption and HCO3- secretion, largely through the anion exchanger pendrin. This exchanger is thought to act in tandem with the Na+-dependent Cl-/HCO3- exchanger, NDCBE, to mediate net NaCl absorption. Pendrin is stimulated by angiotensin II and aldosterone administration via the angiotensin type 1a and the mineralocorticoid receptors, respectively. It is also stimulated in models of metabolic alkalosis, such as with NaHCO3 administration. In some rodent models, pendrin-mediated HCO3- secretion modulates acid-base balance. However, of probably more physiological or clinical significance is the role of these pendrin-positive ICs in blood pressure regulation, which occurs, at least in part, through pendrin-mediated renal Cl- absorption, as well as their effect on the epithelial Na+ channel, ENaC. Aldosterone stimulates ENaC directly through principal cell mineralocorticoid hormone receptor (ligand) binding and also indirectly through its effect on pendrin expression and function. In so doing, pendrin contributes to the aldosterone pressor response. Pendrin may also modulate blood pressure in part through its action in the adrenal medulla, where it modulates the release of catecholamines, or through an indirect effect on vascular contractile force. In addition to its role in Na+ and Cl- balance, pendrin affects the balance of other ions, such as K+ and I-. This review describes how aldosterone and angiotensin II-induced signaling regulate pendrin and the contribution of pendrin-positive ICs in the kidney to distal nephron function and blood pressure.


Subject(s)
Kidney/cytology , Kidney/physiology , Sulfate Transporters/metabolism , Acid-Base Equilibrium/drug effects , Acid-Base Equilibrium/physiology , Aldosterone/pharmacology , Angiotensin II/pharmacology , Animals , Gene Expression Regulation/drug effects , Gene Expression Regulation/physiology , Humans
15.
Genes Dev ; 33(19-20): 1319-1345, 2019 10 01.
Article in English | MEDLINE | ID: mdl-31575677

ABSTRACT

There are now many reports of human kidney organoids generated via the directed differentiation of human pluripotent stem cells (PSCs) based on an existing understanding of mammalian kidney organogenesis. Such kidney organoids potentially represent tractable tools for the study of normal human development and disease with improvements in scale, structure, and functional maturation potentially providing future options for renal regeneration. The utility of such organotypic models, however, will ultimately be determined by their developmental accuracy. While initially inferred from mouse models, recent transcriptional analyses of human fetal kidney have provided greater insight into nephrogenesis. In this review, we discuss how well human kidney organoids model the human fetal kidney and how the remaining differences challenge their utility.


Subject(s)
Kidney/physiology , Models, Biological , Organoids/physiology , Gene Expression Regulation, Developmental , Humans , Kidney/cytology , Kidney/embryology , Kidney/growth & development , Organoids/cytology
16.
Genes Dev ; 32(11-12): 781-793, 2018 06 01.
Article in English | MEDLINE | ID: mdl-29891559

ABSTRACT

Autosomal dominant polycystic kidney disease (ADPKD) is an inherited disorder caused by mutations in PKD1 or PKD2 and affects one in 500-1000 humans. Limited treatment is currently available for ADPKD. Here we identify the Hippo signaling effector YAP and its transcriptional target, c-Myc, as promoters of cystic kidney pathogenesis. While transgenic overexpression of YAP promotes proliferation and tubule dilation in mouse kidneys, loss of YAP/TAZ or c-Myc suppresses cystogenesis in a mouse ADPKD model resulting from Pkd1 deficiency. Through a comprehensive kinase inhibitor screen based on a novel three-dimensional (3D) culture of Pkd1 mutant mouse kidney cells, we identified a signaling pathway involving the RhoGEF (guanine nucleotide exchange factor) LARG, the small GTPase RhoA, and the RhoA effector Rho-associated kinase (ROCK) as a critical signaling module between PKD1 and YAP. Further corroborating its physiological importance, inhibition of RhoA signaling suppresses cystogenesis in 3D culture of Pkd1 mutant kidney cells as well as Pkd1 mutant mouse kidneys in vivo. Taken together, our findings implicate the RhoA-YAP-c-Myc signaling axis as a critical mediator and potential drug target in ADPKD.


Subject(s)
Adaptor Proteins, Signal Transducing/metabolism , Kidney/physiopathology , Phosphoproteins/metabolism , Polycystic Kidney Diseases/genetics , Polycystic Kidney Diseases/physiopathology , Proto-Oncogene Proteins c-myc/metabolism , Signal Transduction , rho GTP-Binding Proteins/metabolism , Adaptor Proteins, Signal Transducing/genetics , Animals , Cell Cycle Proteins , Cell Line , Cells, Cultured , Disease Models, Animal , HEK293 Cells , Humans , Kidney/cytology , Kidney/pathology , Mice , Phosphoproteins/genetics , Polycystic Kidney Diseases/pathology , Proto-Oncogene Proteins c-myc/genetics , YAP-Signaling Proteins , rho GTP-Binding Proteins/genetics , rhoA GTP-Binding Protein
17.
Development ; 149(1)2022 01 01.
Article in English | MEDLINE | ID: mdl-34878095

ABSTRACT

Expansion of interstitial cells in the adult kidney is a hallmark of chronic disease, whereas their proliferation during fetal development is necessary for organ formation. An intriguing difference between adult and neonatal kidneys is that the neonatal kidney has the capacity to control interstitial cell proliferation when the target number has been reached. In this study, we define the consequences of inactivating the TGFß/Smad response in the mouse interstitial cell lineage. We find that pathway inactivation through loss of Smad4 leads to overproliferation of interstitial cells regionally in the kidney medulla. Analysis of markers for BMP and TGFß pathway activation reveals that loss of Smad4 primarily reduces TGFß signaling in the interstitium. Whereas TGFß signaling is reduced in these cells, marker analysis shows that Wnt/ß-catenin signaling is increased. Our analysis supports a model in which Wnt/ß-catenin-mediated proliferation is attenuated by TGFß/Smad to ensure that proliferation ceases when the target number of interstitial cells has been reached in the neonatal medulla.


Subject(s)
Cell Proliferation , Kidney/metabolism , Smad4 Protein/metabolism , Animals , Cells, Cultured , Embryonic Stem Cells/cytology , Embryonic Stem Cells/metabolism , Fibroblasts/cytology , Fibroblasts/metabolism , Kidney/cytology , Kidney/growth & development , Mesangial Cells/cytology , Mesangial Cells/metabolism , Mice , Mice, Inbred C57BL , Smad4 Protein/genetics , Transforming Growth Factor beta/metabolism , Wnt Signaling Pathway
18.
J Virol ; 98(3): e0180223, 2024 Mar 19.
Article in English | MEDLINE | ID: mdl-38334329

ABSTRACT

With a high incidence of acute kidney injury among hospitalized COVID-19 patients, considerable attention has been focussed on whether SARS-CoV-2 specifically targets kidney cells to directly impact renal function, or whether renal damage is primarily an indirect outcome. To date, several studies have utilized kidney organoids to understand the pathogenesis of COVID-19, revealing the ability for SARS-CoV-2 to predominantly infect cells of the proximal tubule (PT), with reduced infectivity following administration of soluble ACE2. However, the immaturity of standard human kidney organoids represents a significant hurdle, leaving the preferred SARS-CoV-2 processing pathway, existence of alternate viral receptors, and the effect of common hypertensive medications on the expression of ACE2 in the context of SARS-CoV-2 exposure incompletely understood. Utilizing a novel kidney organoid model with enhanced PT maturity, genetic- and drug-mediated inhibition of viral entry and processing factors confirmed the requirement for ACE2 for SARS-CoV-2 entry but showed that the virus can utilize dual viral spike protein processing pathways downstream of ACE2 receptor binding. These include TMPRSS- and CTSL/CTSB-mediated non-endosomal and endocytic pathways, with TMPRSS10 likely playing a more significant role in the non-endosomal pathway in renal cells than TMPRSS2. Finally, treatment with the antihypertensive ACE inhibitor, lisinopril, showed negligible impact on receptor expression or susceptibility of renal cells to infection. This study represents the first in-depth characterization of viral entry in stem cell-derived human kidney organoids with enhanced PTs, providing deeper insight into the renal implications of the ongoing COVID-19 pandemic. IMPORTANCE: Utilizing a human iPSC-derived kidney organoid model with improved proximal tubule (PT) maturity, we identified the mechanism of SARS-CoV-2 entry in renal cells, confirming ACE2 as the sole receptor and revealing redundancy in downstream cell surface TMPRSS- and endocytic Cathepsin-mediated pathways. In addition, these data address the implications of SARS-CoV-2 exposure in the setting of the commonly prescribed ACE-inhibitor, lisinopril, confirming its negligible impact on infection of kidney cells. Taken together, these results provide valuable insight into the mechanism of viral infection in the human kidney.


Subject(s)
Angiotensin-Converting Enzyme 2 , Kidney , Organoids , SARS-CoV-2 , Virus Internalization , Humans , Angiotensin-Converting Enzyme 2/metabolism , COVID-19/complications , COVID-19/virology , Kidney/cytology , Kidney/drug effects , Kidney/metabolism , Kidney/virology , Lisinopril/pharmacology , Lisinopril/metabolism , Organoids/cytology , Organoids/drug effects , Organoids/metabolism , Organoids/virology , Pandemics , SARS-CoV-2/metabolism , SARS-CoV-2/pathogenicity , Spike Glycoprotein, Coronavirus/metabolism , Virus Internalization/drug effects , Peptidyl-Dipeptidase A/metabolism , Angiotensin-Converting Enzyme Inhibitors/pharmacology , Acute Kidney Injury/etiology , Acute Kidney Injury/metabolism , Acute Kidney Injury/virology , Kidney Tubules, Proximal/cytology , Kidney Tubules, Proximal/drug effects , Kidney Tubules, Proximal/metabolism , Kidney Tubules, Proximal/virology , Receptors, Coronavirus/metabolism , Models, Biological , Serine Endopeptidases/metabolism , Endosomes/drug effects , Endosomes/metabolism , Endosomes/virology , Gene Expression Regulation/drug effects , Stem Cells/cytology
19.
PLoS Comput Biol ; 20(5): e1012140, 2024 May.
Article in English | MEDLINE | ID: mdl-38768266

ABSTRACT

Apical-basal polarization in renal epithelial cells is crucial to renal function and an important trigger for tubule formation in kidney development. Loss of polarity can induce epithelial-to-mesenchymal transition (EMT), which can lead to kidney pathologies. Understanding the relative and combined roles of the involved proteins and their interactions that govern epithelial polarity may provide insights for controlling the process of polarization via chemical or mechanical manipulations in an in vitro or in vivo setting. Here, we developed a computational framework that integrates several known interactions between integrins, Rho-GTPases Rho, Rac and Cdc42, and polarity complexes Par and Scribble, to study their mutual roles in the emergence of polarization. The modeled protein interactions were shown to induce the emergence of polarized distributions of Rho-GTPases, which in turn led to the accumulation of apical and basal polarity complexes Par and Scribble at their respective poles, effectively recapitulating polarization. Our multiparametric sensitivity analysis suggested that polarization depends foremost on the mutual inhibition between Rac and Rho. Next, we used the computational framework to investigate the role of integrins and GTPases in the generation and disruption of polarization. We found that a minimum concentration of integrins is required to catalyze the process of polarization. Furthermore, loss of polarization was found to be only inducible via complete degradation of the Rho-GTPases Rho and Cdc42, suggesting that polarization is fairly stable once it is established. Comparison of our computational predictions against data from in vitro experiments in which we induced EMT in renal epithelial cells while quantifying the relative Rho-GTPase levels, displayed that EMT coincides with a large reduction in the Rho-GTPase Rho. Collectively, these results demonstrate the essential roles of integrins and Rho-GTPases in the establishment and disruption of apical-basal polarity and thereby provide handles for the in vitro or in vivo regulation of polarity.


Subject(s)
Cell Polarity , Epithelial Cells , Integrins , Kidney , rho GTP-Binding Proteins , Cell Polarity/physiology , Integrins/metabolism , Epithelial Cells/metabolism , rho GTP-Binding Proteins/metabolism , Kidney/metabolism , Kidney/cytology , Animals , Computational Biology , Models, Biological , Computer Simulation , Humans , Epithelial-Mesenchymal Transition/physiology
20.
Cell Mol Life Sci ; 81(1): 306, 2024 Jul 18.
Article in English | MEDLINE | ID: mdl-39023560

ABSTRACT

Recent advances in stem cell research have led to the creation of organoids, miniature replicas of human organs, offering innovative avenues for studying diseases. Kidney organoids, with their ability to replicate complex renal structures, provide a novel platform for investigating kidney diseases and assessing drug efficacy, albeit hindered by labor-intensive generation and batch variations, highlighting the need for tailored cryopreservation methods to enable widespread utilization. Here, we evaluated cryopreservation strategies for kidney organoids by contrasting slow-freezing and vitrification methods. 118 kidney organoids were categorized into five conditions. Control organoids followed standard culture, while two slow-freezing groups used 10% DMSO (SF1) or commercial freezing media (SF2). Vitrification involved V1 (20% DMSO, 20% Ethylene Glycol with sucrose) and V2 (15% DMSO, 15% Ethylene Glycol). Assessment of viability, functionality, and structural integrity post-thawing revealed notable differences. Vitrification, particularly V1, exhibited superior viability (91% for V1, 26% for V2, 79% for SF1, and 83% for SF2 compared to 99.4% in controls). 3D imaging highlighted distinct nephron segments among groups, emphasizing V1's efficacy in preserving both podocytes and tubules in kidney organoids. Cisplatin-induced injury revealed a significant reduction in regenerative capacities in organoids cryopreserved by flow-freezing methods, while the V1 method did not show statistical significance compared to the unfrozen controls. This study underscores vitrification, especially with high concentrations of cryoprotectants, as an effective approach for maintaining kidney organoid viability and structure during cryopreservation, offering practical approaches for kidney organoid research.


Subject(s)
Cryopreservation , Cryoprotective Agents , Kidney , Organoids , Cryopreservation/methods , Organoids/cytology , Organoids/drug effects , Organoids/metabolism , Humans , Kidney/cytology , Cryoprotective Agents/pharmacology , Vitrification , Dimethyl Sulfoxide/pharmacology , Ethylene Glycol/pharmacology , Freezing , Cell Survival/drug effects
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