Publication:
Molecular Mechanisms of Acute Oxygen Sensing by Arterial Chemoreceptor Cells. Role of Hif2α

dc.contributor.authorOrtega-Sáenz, Patricia
dc.contributor.authorMoreno-Domínguez, Alejandro
dc.contributor.authorGao, Lin
dc.contributor.authorLópez-Barneo, José
dc.contributor.authoraffiliation[Ortega-Sáenz,P; Moreno-Domínguez,A; Gao,L; López-Barneo,J] Instituto de Biomedicina de Sevilla (IBiS), Hospital Universitario Virgen del Rocío/CSIC/Universidad de Sevilla, Seville, Spain. [Ortega-Sáenz,P; Moreno-Domínguez,A; Gao,L; López-Barneo,J] Departamento de Fisiología Médica y Biofísica, Facultad de Medicina, Universidad de Sevilla, Seville, Spain. [Ortega-Sáenz,P; Gao,L; López-Barneo,J] Centro de Investigación Biomédica en Red sobre Enfermedades Neurodegenerativas (CIBERNED), Madrid, Spain.
dc.contributor.funderThis research was supported by the Spanish Ministries of Science and Innovation and Health (SAF2012-39343 and SAF2016-74990-R) and the European Research Council (ERC-ADGPRJ201502629).
dc.date.accessioned2022-06-27T09:20:41Z
dc.date.available2022-06-27T09:20:41Z
dc.date.issued2020-11-23
dc.description.abstractCarotid body glomus cells are multimodal arterial chemoreceptors able to sense and integrate changes in several physical and chemical parameters in the blood. These cells are also essential for O2 homeostasis. Glomus cells are prototypical peripheral O2 sensors necessary to detect hypoxemia and to elicit rapid compensatory responses (hyperventilation and sympathetic activation). The mechanisms underlying acute O2 sensing by glomus cells have been elusive. Using a combination of mouse genetics and single-cell optical and electrophysiological techniques, it has recently been shown that activation of glomus cells by hypoxia relies on the generation of mitochondrial signals (NADH and reactive oxygen species), which modulate membrane ion channels to induce depolarization, Ca2+ influx, and transmitter release. The special sensitivity of glomus cell mitochondria to changes in O2 tension is due to Hif2α-dependent expression of several atypical mitochondrial subunits, which are responsible for an accelerated oxidative metabolism and the strict dependence of mitochondrial complex IV activity on O2 availability. A mitochondrial-to-membrane signaling model of acute O2 sensing has been proposed, which explains existing data and provides a solid foundation for future experimental tests. This model has also unraveled new molecular targets for pharmacological modulation of carotid body activity potentially relevant in the treatment of highly prevalent medical conditions.es_ES
dc.description.versionYeses_ES
dc.identifier.citationOrtega-Sáenz P, Moreno-Domínguez A, Gao L, López-Barneo J. Molecular Mechanisms of Acute Oxygen Sensing by Arterial Chemoreceptor Cells. Role of Hif2α. Front Physiol. 2020 Nov 23;11:614893es_ES
dc.identifier.doi10.3389/fphys.2020.614893es_ES
dc.identifier.essn1664-042X
dc.identifier.pmcPMC7719705
dc.identifier.pmid33329066es_ES
dc.identifier.urihttp://hdl.handle.net/10668/3708
dc.journal.titleFrontiers in Physiology
dc.language.isoen
dc.page.number13 p.
dc.publisherFrontierses_ES
dc.relation.publisherversionhttps://www.frontiersin.org/articles/10.3389/fphys.2020.614893/fulles_ES
dc.rightsAtribución 4.0 Internacional*
dc.rights.accessRightsopen access
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/*
dc.subjectCarotid bodyes_ES
dc.subjectGlomus cellses_ES
dc.subjectAcute O2 sensinges_ES
dc.subjectElectron transport chaines_ES
dc.subjectMitochondrial signalinges_ES
dc.subjectIon channelses_ES
dc.subjectMechanism of diseasees_ES
dc.subjectParagangliomaes_ES
dc.subjectCuerpo carotídeoes_ES
dc.subjectEnfermedades mitocondrialeses_ES
dc.subjectMitocondriases_ES
dc.subjectCanales iónicoses_ES
dc.subject.meshMedical Subject Headings::Anatomy::Nervous System::Neurons::Neurons, Afferent::Sensory Receptor Cells::Chemoreceptor Cells::Paraganglia, Nonchromaffin::Carotid Bodyes_ES
dc.subject.meshMedical Subject Headings::Diseases::Nutritional and Metabolic Diseases::Metabolic Diseases::Mitochondrial Diseaseses_ES
dc.subject.meshMedical Subject Headings::Anatomy::Cells::Cellular Structures::Intracellular Space::Cytoplasm::Cytoplasmic Structures::Organelles::Mitochondriaes_ES
dc.subject.meshMedical Subject Headings::Chemicals and Drugs::Amino Acids, Peptides, and Proteins::Proteins::Carrier Proteins::Membrane Transport Proteins::Ion Channelses_ES
dc.subject.meshMedical Subject Headings::Organisms::Eukaryota::Animals::Chordata::Vertebrates::Mammals::Rodentia::Muridae::Murinae::Micees_ES
dc.subject.meshMedical Subject Headings::Organisms::Eukaryota::Animalses_ES
dc.subject.meshMedical Subject Headings::Chemicals and Drugs::Inorganic Chemicals::Oxygen Compounds::Reactive Oxygen Specieses_ES
dc.subject.meshMedical Subject Headings::Phenomena and Processes::Cell Physiological Phenomena::Cell Physiological Processes::Cell Respiration::Cell Hypoxiaes_ES
dc.subject.meshMedical Subject Headings::Phenomena and Processes::Physiological Phenomena::Physiological Processes::Homeostasises_ES
dc.subject.meshMedical Subject Headings::Phenomena and Processes::Metabolic Phenomena::Metabolism::Oxidative Stresses_ES
dc.titleMolecular Mechanisms of Acute Oxygen Sensing by Arterial Chemoreceptor Cells. Role of Hif2αes_ES
dc.typereview article
dc.type.hasVersionVoR
dspace.entity.typePublication

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