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1.
Dev Cell ; 52(5): 617-630.e6, 2020 03 09.
Article de Anglais | MEDLINE | ID: mdl-32059772

RÉSUMÉ

The lung microvasculature is essential for gas exchange and commonly considered homogeneous. We show that VEGFA from the epithelium is required for a distinct endothelial cell (EC) population in the mouse lung. Vegfa is predominantly expressed by alveolar type 1 (AT1) cells and locally required to specify a subset of ECs. Single-cell RNA sequencing (scRNA-seq) reveals that ∼15% of lung ECs are transcriptionally distinct-marked by Carbonic anhydrase 4 (Car4)-and arise from bulk ECs, as suggested by trajectory analysis. Car4 ECs have extensive cellular projections and are separated from AT1 cells by a limited basement membrane without intervening pericytes. Car4 ECs are specifically lost upon epithelial Vegfa deletion; without Car4 ECs, the alveolar space is aberrantly enlarged despite the normal appearance of myofibroblasts. Lung Car4 ECs and retina tip ECs have common and distinct features. These findings support a signaling role of AT1 cells and shed light on alveologenesis.


Sujet(s)
Pneumocytes/métabolisme , Cellules endothéliales/cytologie , Endothélium vasculaire/cytologie , Poumon/métabolisme , Facteur de croissance endothéliale vasculaire de type A/métabolisme , Pneumocytes/cytologie , Animaux , Carbonic anhydrase-IV/génétique , Carbonic anhydrase-IV/métabolisme , Cellules cultivées , Cellules endothéliales/métabolisme , Endothélium vasculaire/métabolisme , Poumon/cytologie , Poumon/croissance et développement , Souris , Morphogenèse , Myofibroblastes/cytologie , Néovascularisation physiologique , Facteur de croissance endothéliale vasculaire de type A/génétique
2.
Am J Physiol Cell Physiol ; 307(9): C814-40, 2014 Nov 01.
Article de Anglais | MEDLINE | ID: mdl-24965590

RÉSUMÉ

Human carbonic anhydrase IV (CA IV) is GPI-anchored to the outer membrane surface, catalyzing CO2/HCO3 (-) hydration-dehydration. We examined effects of heterologously expressed CA IV on intracellular-pH (pHi) and surface-pH (pHS) transients caused by exposing oocytes to CO2/HCO3 (-)/pH 7.50. CO2 influx causes a sustained pHi fall and a transient pHS rise; CO2 efflux does the opposite. Both during CO2 addition and removal, CA IV increases magnitudes of maximal rate of pHi change (dpHi/dt)max, and maximal pHS change (ΔpHS) and decreases time constants for pHi changes (τpHi ) and pHS relaxations (τpHS ). Decreases in time constants indicate that CA IV enhances CO2 fluxes. Extracellular acetazolamide blocks all CA IV effects, but not those of injected CA II. Injected acetazolamide partially reduces CA IV effects. Thus, extracellular CA is required for, and the equivalent of cytosol-accessible CA augments, the effects of CA IV. Increasing the concentration of the extracellular non-CO2/HCO3 (-) buffer (i.e., HEPES), in the presence of extracellular CA or at high [CO2], accelerates CO2 influx. Simultaneous measurements with two pHS electrodes, one on the oocyte meridian perpendicular to the axis of flow and one downstream from the direction of extracellular-solution flow, reveal that the downstream electrode has a larger (i.e., slower) τpHS , indicating [CO2] asymmetry over the oocyte surface. A reaction-diffusion mathematical model (third paper in series) accounts for the above general features, and supports the conclusion that extracellular CA, which replenishes entering CO2 or consumes exiting CO2 at the extracellular surface, enhances the gradient driving CO2 influx across the cell membrane.


Sujet(s)
Dioxyde de carbone/métabolisme , Carbonic anhydrase-IV/métabolisme , Membrane cellulaire/métabolisme , Acétazolamide/pharmacologie , Animaux , Hydrogénocarbonates/métabolisme , Transport biologique , Substances tampon , Carbonic anhydrase-IV/antagonistes et inhibiteurs , Inhibiteurs de l'anhydrase carbonique/pharmacologie , HEPES , Humains , Concentration en ions d'hydrogène , Ovocytes/métabolisme , Xenopus laevis
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