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1.
Am J Respir Cell Mol Biol ; 69(3): 255-265, 2023 09.
Article in English | MEDLINE | ID: mdl-37315312

ABSTRACT

Targeted delivery of transgenes to tissue-resident stem cells and related niches offers avenues for interrogating pathways and editing endogenous alleles for therapeutic interventions. Here, we survey multiple adeno-associated virus (AAV) serotypes, administered via intranasal and retroorbital routes in mice, to target lung alveolar stem cell niches. We found that AAV5, AAV4, and AAV8 efficiently and preferentially transduce alveolar type-2 stem cells (AT2s), endothelial cells, and PDGFRA+ fibroblasts, respectively. Notably, some AAVs show different cell tropisms depending on the route of administration. Proof-of-concept experiments reveal the versatility of AAV5-mediated transgenesis for AT2-lineage labeling, clonal cell tracing after cell ablation, and conditional gene inactivation in both postnatal and adult mouse lungs in vivo. AAV6, but not AAV5, efficiently transduces both mouse and human AT2s in alveolar organoid cultures. Furthermore, AAV5 and AAV6 can be used to deliver guide RNAs and transgene cassettes for homologous recombination in vivo and ex vivo, respectively. Using this system coupled with clonal derivation of AT2 organoids, we demonstrate efficient and simultaneous editing of multiple loci, including targeted insertion of a payload cassette in AT2s. Taken together, our studies highlight the powerful utility of AAVs for interrogating alveolar stem cells and other specific cell types both in vivo and ex vivo.


Subject(s)
Dependovirus , Endothelial Cells , Mice , Animals , Humans , Dependovirus/genetics , Transduction, Genetic , Genetic Vectors , Gene Transfer Techniques , Stem Cells
2.
Proc Natl Acad Sci U S A ; 110(21): 8501-6, 2013 May 21.
Article in English | MEDLINE | ID: mdl-23650345

ABSTRACT

The Mycobacterium tuberculosis genome contains an unusually high number of toxin-antitoxin modules, some of which have been suggested to play a role in the establishment and maintenance of latent tuberculosis. Nine of these toxin-antitoxin loci belong to the mazEF family, encoding the intracellular toxin MazF and its antitoxin inhibitor MazE. Nearly every MazF ortholog recognizes a unique three- or five-base RNA sequence and cleaves mRNA. As a result, these toxins selectively target a subset of the transcriptome for degradation and are known as "mRNA interferases." Here we demonstrate that a MazF family member from M. tuberculosis, MazF-mt6, has an additional role--inhibiting translation through targeted cleavage of 23S rRNA in the evolutionarily conserved helix/loop 70. We first determined that MazF-mt6 cleaves mRNA at (5')UU↓CCU(3') sequences. We then discovered that MazF-mt6 also cleaves M. tuberculosis 23S rRNA at a single UUCCU in the ribosomal A site that contacts tRNA and ribosome recycling factor. To gain further mechanistic insight, we demonstrated that MazF-mt6-mediated cleavage of rRNA can inhibit protein synthesis in the absence of mRNA cleavage. Finally, consistent with the position of 23S rRNA cleavage, MazF-mt6 destabilized 50S-30S ribosomal subunit association. Collectively, these results show that MazF toxins do not universally act as mRNA interferases, because MazF-mt6 inhibits protein synthesis by cleaving 23S rRNA in the ribosome active center.


Subject(s)
Bacterial Proteins/metabolism , Mycobacterium tuberculosis/metabolism , RNA, Bacterial/metabolism , RNA, Ribosomal, 23S/metabolism , RNA-Binding Proteins/metabolism , Ribosome Subunits, Large, Bacterial/metabolism , Ribosome Subunits, Small, Bacterial/metabolism , Bacterial Proteins/genetics , Mycobacterium tuberculosis/genetics , Protein Biosynthesis/physiology , RNA, Bacterial/genetics , RNA, Messenger/genetics , RNA, Messenger/metabolism , RNA, Ribosomal, 23S/genetics , RNA-Binding Proteins/genetics , Ribosome Subunits, Large, Bacterial/genetics , Ribosome Subunits, Small, Bacterial/genetics
3.
Dev Cell ; 59(7): 830-840.e4, 2024 Apr 08.
Article in English | MEDLINE | ID: mdl-38377991

ABSTRACT

Tissue repair requires a highly coordinated cellular response to injury. In the lung, alveolar type 2 cells (AT2s) act as stem cells to replenish both themselves and alveolar type 1 cells (AT1s); however, the complex orchestration of stem cell activity after injury is poorly understood. Here, we establish longitudinal imaging of AT2s in murine intact tissues ex vivo and in vivo in order to track their dynamic behavior over time. We discover that a large fraction of AT2s become motile following injury and provide direct evidence for their migration between alveolar units. High-resolution morphokinetic mapping of AT2s further uncovers the emergence of distinct motile phenotypes. Inhibition of AT2 migration via genetic depletion of ArpC3 leads to impaired regeneration of AT2s and AT1s in vivo. Together, our results establish a requirement for stem cell migration between alveolar units and identify properties of stem cell motility at high cellular resolution.


Subject(s)
Alveolar Epithelial Cells , Lung , Mice , Animals , Lung/physiology , Alveolar Epithelial Cells/metabolism , Stem Cells/metabolism , Cell Movement , Cell Differentiation/physiology
4.
Cell Stem Cell ; 30(11): 1486-1502.e9, 2023 11 02.
Article in English | MEDLINE | ID: mdl-37922879

ABSTRACT

Organ regeneration requires dynamic cell interactions to reestablish cell numbers and tissue architecture. While we know the identity of progenitor cells that replace lost tissue, the transient states they give rise to and their role in repair remain elusive. Here, using multiple injury models, we find that alveolar fibroblasts acquire distinct states marked by Sfrp1 and Runx1 that influence tissue remodeling and reorganization. Unexpectedly, ablation of alveolar epithelial type-1 (AT1) cells alone is sufficient to induce tissue remodeling and transitional states. Integrated scRNA-seq followed by genetic interrogation reveals RUNX1 is a key driver of fibroblast states. Importantly, the ectopic induction or accumulation of epithelial transitional states induce rapid formation of transient alveolar fibroblasts, leading to organ-wide fibrosis. Conversely, the elimination of epithelial or fibroblast transitional states or RUNX1 loss, leads to tissue simplification resembling emphysema. This work uncovered a key role for transitional states in orchestrating tissue topologies during regeneration.


Subject(s)
Core Binding Factor Alpha 2 Subunit , Lung , Epithelial Cells , Stem Cells , Cell Communication
5.
Article in English | MEDLINE | ID: mdl-34750172

ABSTRACT

Lung epithelium, the lining that covers the inner surface of the respiratory tract, is directly exposed to the environment and thus susceptible to airborne toxins, irritants, and pathogen-induced damages. In adult mammalian lungs, epithelial cells are generally quiescent but can respond rapidly to repair of damaged tissues. Evidence from experimental injury models in rodents and human clinical samples has led to the identification of these regenerative cells, as well as pathological metaplastic states specifically associated with different forms of damages. Here, we provide a compendium of cells and cell states that exist during homeostasis in normal lungs and the lineage relationships between them. Additionally, we discuss various experimental injury models currently being used to probe the cellular sources-both resident and recruited-that contribute to repair, regeneration, and remodeling following acute and chronic injuries. Finally, we discuss certain maladaptive regeneration-associated cell states and their role in disease pathogenesis.


Subject(s)
Irritants , Lung , Animals , Epithelial Cells , Epithelium , Homeostasis , Humans , Mammals
6.
iScience ; 25(10): 105114, 2022 Oct 21.
Article in English | MEDLINE | ID: mdl-36185377

ABSTRACT

Epithelial cells of diverse tissues are characterized by the presence of a single apical domain. In the lung, electron microscopy studies have suggested that alveolar type-2 epithelial cells (AT2s) en face multiple alveolar sacs. However, apical and basolateral organization of the AT2s and their establishment during development and remodeling after injury repair remain unknown. Thick tissue imaging and electron microscopy revealed that a single AT2 can have multiple apical domains that enface multiple alveoli. AT2s gradually establish multi-apical domains post-natally, and they are maintained throughout life. Lineage tracing, live imaging, and selective cell ablation revealed that AT2s dynamically reorganize multi-apical domains during injury repair. Single-cell transcriptome signatures of residual AT2s revealed changes in cytoskeleton and cell migration. Significantly, cigarette smoke and oncogene activation lead to dysregulation of multi-apical domains. We propose that the multi-apical domains of AT2s enable them to be poised to support the regeneration of a large array of alveolar sacs.

7.
Nat Cell Biol ; 22(8): 934-946, 2020 08.
Article in English | MEDLINE | ID: mdl-32661339

ABSTRACT

Stem cells undergo dynamic changes in response to injury to regenerate lost cells. However, the identity of transitional states and the mechanisms that drive their trajectories remain understudied. Using lung organoids, multiple in vivo repair models, single-cell transcriptomics and lineage tracing, we find that alveolar type-2 epithelial cells undergoing differentiation into type-1 cells acquire pre-alveolar type-1 transitional cell state (PATS) en route to terminal maturation. Transitional cells undergo extensive stretching during differentiation, making them vulnerable to DNA damage. Cells in the PATS show an enrichment of TP53, TGFß, DNA-damage-response signalling and cellular senescence. Gain and loss of function as well as genomic binding assays revealed a direct transcriptional control of PATS by TP53 signalling. Notably, accumulation of PATS-like cells in human fibrotic lungs was observed, suggesting persistence of the transitional state in fibrosis. Our study thus implicates a transient state associated with senescence in normal epithelial tissue repair and its abnormal persistence in disease conditions.


Subject(s)
Alveolar Epithelial Cells , Cell Differentiation , Pulmonary Fibrosis/pathology , Adult Stem Cells/pathology , Alveolar Epithelial Cells/pathology , Animals , Cell Lineage , Cell Shape , Cellular Senescence , DNA Damage , Female , Gene Expression Profiling , Gene Expression Regulation , Humans , Male , Mice , Mice, Inbred C57BL , Organoids , Pulmonary Fibrosis/genetics , Signal Transduction , Tumor Suppressor Protein p53/metabolism
8.
Cell Stem Cell ; 27(6): 890-904.e8, 2020 12 03.
Article in English | MEDLINE | ID: mdl-33128895

ABSTRACT

Coronavirus infection causes diffuse alveolar damage leading to acute respiratory distress syndrome. The absence of ex vivo models of human alveolar epithelium is hindering an understanding of coronavirus disease 2019 (COVID-19) pathogenesis. Here, we report a feeder-free, scalable, chemically defined, and modular alveolosphere culture system for the propagation and differentiation of human alveolar type 2 cells/pneumocytes derived from primary lung tissue. Cultured pneumocytes express the severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) receptor angiotensin-converting enzyme receptor type-2 (ACE2) and can be infected with virus. Transcriptome and histological analysis of infected alveolospheres mirror features of COVID-19 lungs, including emergence of interferon (IFN)-mediated inflammatory responses, loss of surfactant proteins, and apoptosis. Treatment of alveolospheres with IFNs recapitulates features of virus infection, including cell death. In contrast, alveolospheres pretreated with low-dose IFNs show a reduction in viral replication, suggesting the prophylactic effectiveness of IFNs against SARS-CoV-2. Human stem cell-based alveolospheres, thus, provide novel insights into COVID-19 pathogenesis and can serve as a model for understanding human respiratory diseases.


Subject(s)
Adult Stem Cells/virology , Alveolar Epithelial Cells/drug effects , COVID-19 Drug Treatment , Interferons/pharmacology , SARS-CoV-2/immunology , Adult , Adult Stem Cells/drug effects , Adult Stem Cells/enzymology , Aged , Aged, 80 and over , Alveolar Epithelial Cells/enzymology , Alveolar Epithelial Cells/metabolism , Angiotensin-Converting Enzyme 2/metabolism , Animals , COVID-19/physiopathology , Cell Culture Techniques , Cell Differentiation , Female , Humans , Inflammation , Male , Mice , Receptors, Coronavirus/metabolism , Transcriptome , Virus Replication
9.
Dev Cell ; 44(6): 679-693.e5, 2018 03 26.
Article in English | MEDLINE | ID: mdl-29587142

ABSTRACT

We show that the loss or gain of transcription factor programs that govern embryonic cell-fate specification is associated with a form of tumor plasticity characterized by the acquisition of alternative cell fates normally characteristic of adjacent organs. In human non-small cell lung cancers, downregulation of the lung lineage-specifying TF NKX2-1 is associated with tumors bearing features of various gut tissues. Loss of Nkx2-1 from murine alveolar, but not airway, epithelium results in conversion of lung cells to gastric-like cells. Superimposing oncogenic Kras activation enables further plasticity in both alveolar and airway epithelium, producing tumors that adopt midgut and hindgut fates. Conversely, coupling Nkx2-1 loss with foregut lineage-specifying SOX2 overexpression drives the formation of squamous cancers with features of esophageal differentiation. These findings demonstrate that elements of pathologic tumor plasticity mirror the normal developmental history of organs in that cancer cells acquire cell fates associated with developmentally related neighboring organs.


Subject(s)
Cell Lineage , Esophageal Neoplasms/pathology , Lung Neoplasms/pathology , SOXB1 Transcription Factors/metabolism , Stomach Neoplasms/pathology , Thyroid Nuclear Factor 1/metabolism , Adenocarcinoma, Mucinous/genetics , Adenocarcinoma, Mucinous/metabolism , Adenocarcinoma, Mucinous/pathology , Animals , Carcinoma, Squamous Cell/genetics , Carcinoma, Squamous Cell/metabolism , Carcinoma, Squamous Cell/pathology , Cell Differentiation , Cell Plasticity , Embryonic Development , Endoderm/metabolism , Endoderm/pathology , Esophageal Neoplasms/genetics , Esophageal Neoplasms/metabolism , Female , Gene Expression Regulation, Developmental , Humans , Lung Neoplasms/genetics , Lung Neoplasms/metabolism , Male , Mice , Mice, Inbred C57BL , Mice, Knockout , Prognosis , SOXB1 Transcription Factors/genetics , Signal Transduction , Stomach Neoplasms/genetics , Stomach Neoplasms/metabolism , Survival Rate , Thyroid Nuclear Factor 1/genetics
10.
Cell Stem Cell ; 21(6): 707-708, 2017 12 07.
Article in English | MEDLINE | ID: mdl-29220660

ABSTRACT

Precise lineage trajectories and the cellular sources that contribute to regeneration after injury are largely unknown in many tissues. In this issue of Cell Stem Cell, Gadye et al. (2017) and Lin et al. (2017) show that olfactory epithelial cells transit through unique and unfamiliar paths of differentiation and undergo lineage reversion, respectively, during regeneration.


Subject(s)
Epithelial Cells , Olfactory Mucosa , Cell Differentiation
11.
Nat Commun ; 6: 7480, 2015 Jul 09.
Article in English | MEDLINE | ID: mdl-26158745

ABSTRACT

Toxin-antitoxin (TA) systems are implicated in the downregulation of bacterial cell growth associated with stress survival and latent tuberculosis infection, yet the activities and intracellular targets of these TA toxins are largely uncharacterized. Here, we use a specialized RNA-seq approach to identify targets of a Mycobacterium tuberculosis VapC TA toxin, VapC-mt4 (also known as VapC4), which have eluded detection using conventional approaches. Distinct from the one other characterized VapC toxin in M. tuberculosis that cuts 23S rRNA at the sarcin-ricin loop, VapC-mt4 selectively targets three of the 45 M. tuberculosis tRNAs (tRNA(Ala2), tRNA(Ser26) and tRNA(Ser24)) for cleavage at, or adjacent to, their anticodons, resulting in the generation of tRNA halves. While tRNA cleavage is sometimes enlisted as a bacterial host defense mechanism, VapC-mt4 instead alters specific tRNAs to inhibit translation and modulate growth. This stress-linked activity of VapC-mt4 mirrors basic features of eukaryotic tRNases that also generate tRNA halves and inhibit translation in response to stress.


Subject(s)
Bacterial Proteins/genetics , Bacterial Toxins/genetics , Endoribonucleases/genetics , Mycobacterium tuberculosis/genetics , RNA, Ribosomal, 23S/metabolism , RNA, Transfer/metabolism , Anticodon/metabolism , Bacterial Proteins/metabolism , Bacterial Toxins/metabolism , Blotting, Northern , Endoribonucleases/metabolism , Escherichia coli , In Vitro Techniques , Molecular Docking Simulation , Mycobacterium tuberculosis/growth & development , Mycobacterium tuberculosis/metabolism , Stress, Physiological/genetics
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