Abstract
Changliang Liu, Lu Dai, Kun Zheng, Chuanling Pan, Xuefei He, Huaping Zheng, Cheng Deng
Abstract
Authors
Institutions
No ROR-resolved institution is linked to this work yet.
Provenance
crossref
Confidence 100%
pubmed
Confidence 98%
europepmc
Confidence 96%
unpaywall
Confidence 95%
datacite
Confidence 0%
No local reference links have been materialized yet.
No local citing links have been materialized yet.
Altitude Illnesses
10.1038/s41572-024-00526-w · 2024
Genome‐Wide Association Study Reveals Acute Mountain Sickness Susceptibility in Chinese Population
10.1007/s00438-026-02360-z · 2026
Isolated High‐Altitude Cerebral Edema in the Himalayas: A Case Report
10.1097/ms9.0000000000004199 · 2025
High‐Altitude Pulmonary Edema
10.1093/emph/eoaa052 · 2021
Does This Patient Have Acute Mountain Sickness?: The Rational Clinical Examination Systematic Review
10.1001/jama.2017.16192 · 2017
Chronic Mountain Sickness: Clinical Aspects, Etiology, Management, and Treatment
10.1089/ham.2016.0031 · 2016
High‐Altitude Pulmonary Hypertension: A Pathophysiological Entity to Different Diseases
10.1183/09031936.03.00052403 · 2003
Effect of High‐Altitude Exposure on the Heart
10.1097/cd9.0000000000000082 · 2023
ARID1B, a Molecular Suppressor of Erythropoiesis, Is Essential for the Prevention of Monge's Disease
10.1038/s12276-022-00769-1 · 2022
SNPs, Linkage Disequilibrium, and Chronic Mountain Sickness in Tibetan Chinese
10.2147/hp.s117967 · 2017
Pathophysiology and Treatment of High‐Altitude Pulmonary Vascular Disease
10.1161/circulationaha.114.006977 · 2015
Pathophysiology and Therapy of High‐Altitude Sickness: Practical Approach in Emergency and Critical Care
10.3390/jcm11143937 · 2022
Dysregulation of Metabolites and High‐Altitude Illnesses Development Under Plateau Conditions
10.3389/fphys.2025.1600374 · 2025
Molecular Mechanisms of High‐Altitude Acclimatization
10.3390/ijms24021698 · 2023
G Protein‐Coupled Receptors (GPCRs): Advances in Structures, Mechanisms and Drug Discovery
10.1038/s41392-024-01803-6 · 2024
Diversity and Modularity of G Protein‐Coupled Receptor Structures
10.1016/j.tips.2011.09.003 · 2012
Trends in GPCR Drug Discovery: New Agents, Targets and Indications
10.1038/nrd.2017.178 · 2017
G Protein‐Coupled Receptors: A Century of Research and Discovery
10.1161/circresaha.124.323067 · 2024
Recent Advances on the Role of G Protein‐Coupled Receptors in Hypoxia‐Mediated Signaling
10.1208/s12248-016-9881-6 · 2016
Role of G‐Protein Coupled Receptors in Cardiovascular Diseases
10.3389/fcvm.2023.1130312 · 2023
A Review of the Role of Bradykinin and Nitric Oxide in the Cardioprotective Action of Angiotensin‐Converting Enzyme Inhibitors: Focus on Perindopril
10.1007/s40119-019-00150-w · 2019
G‐Protein‐Coupled Receptor (GPCR) Signaling in the Carotid Body: Roles in Hypoxia and Cardiovascular and Respiratory Disease
10.3390/ijms21176012 · 2020
GABA Function May be Related to the Impairment of Learning and Memory Caused by Systemic Prenatal Hypoxia‐Ischemia
10.1016/j.nlm.2018.01.004 · 2018
GPCRs Identified on Mitochondrial Membranes: New Therapeutic Targets for Diseases
10.1016/j.jpha.2024.101178 · 2025
Extreme Terrestrial Environments: Life in Thermal Stress and Hypoxia. A Narrative Review
10.3389/fphys.2018.00572 · 2018
Altitude Hypoxia and Hypoxemia: Pathogenesis and Management
10.1038/s41392-025-02531-1 · 2026
β2‐Adrenergic Receptor‐Dependent Attenuation of Hypoxic Pulmonary Vasoconstriction Prevents Progression of Pulmonary Arterial Hypertension in Intermittent Hypoxic Rats
10.1371/journal.pone.0110693 · 2014
Flow‐Mediated Vasodilation Through Mechanosensitive G Protein‐Coupled Receptors in Endothelial Cells
10.1016/j.tcm.2020.12.010 · 2022
A Current View of G Protein‐Coupled Receptor‐Mediated Signaling in Pulmonary Hypertension: Finding Opportunities for Therapeutic Intervention
10.20517/2574-1209.2018.44 · 2018
Medical Conditions and High‐Altitude Travel
10.1056/nejmra2104829 · 2022
Acute Mountain Sickness: Do Different Time Courses Point to Different Pathophysiological Mechanisms?
10.1152/japplphysiol.00305.2019 · 2020
Symptom Progression in Acute Mountain Sickness During a 12‐Hour Exposure to Normobaric Hypoxia Equivalent to 4500 m
10.1089/ham.2014.1039 · 2014
High‐Altitude Illnesses: Old Stories and New Insights Into the Pathophysiology, Treatment and Prevention
10.1016/j.smhs.2021.04.001 · 2021
Recent Advances in Predicting Acute Mountain Sickness: From Multidimensional Cohort Studies to Cutting‐Edge Model Applications
10.3389/fphys.2024.1397280 · 2024
Who Should Not Go High: Chronic Disease and Work at Altitude during Construction of the Qinghai‐Tibet Railroad
10.1089/ham.2007.1015 · 2007
Children at High Altitude: An International Consensus Statement by an Ad Hoc Committee of the International Society for Mountain Medicine, March 12, 2001
10.1089/15270290152608561 · 2001
High Altitude Pulmonary Edema, High Altitude Cerebral Edema, and Acute Mountain Sickness: An Enhanced Opinion From the High Andes – La Paz, Bolivia 3,500 m
10.1515/reveh-2021-0172 · 2023
The Brain at High Altitude: From Molecular Signaling to Cognitive Performance
10.3390/ijms241210179 · 2023
Altered Free Radical Metabolism in Acute Mountain Sickness: Implications for Dynamic Cerebral Autoregulation and Blood‐Brain Barrier Function
10.1113/jphysiol.2008.159855 · 2009
Overactivation of Corticotropin‐Releasing Factor Receptor Type 1 and Aquaporin‐4 by Hypoxia Induces Cerebral Edema
10.1073/pnas.1404493111 · 2014
Angiotensin II Receptor 1 Gene Variants Are Associated With High‐Altitude Pulmonary Edema Risk
10.18632/oncotarget.12489 · doi-reference
Genetic Variation of the β2 ‐Adrenergic Receptor Is Associated With Differences in Lung Fluid Accumulation in Humans
10.1152/japplphysiol.01300.2006 · doi-reference
Association Between Single Nucleotide Polymorphisms in ADRB2, GNB3 and GSTP1 Genes and High‐Altitude Pulmonary Edema (HAPE) in the Chinese Han Population
10.18632/oncotarget.15309 · doi-reference
Probable Role of β2‐Adrenergic Receptor Gene Haplotype in High‐Altitude Pulmonary Oedema
10.1111/j.1440-1843.2010.01757.x · doi-reference
Prophylactic Bosentan Does Not Improve Exercise Capacity or Lower Pulmonary Artery Systolic Pressure at High Altitude
10.1016/j.resp.2008.10.005 · doi-reference
Update on High‐Altitude Pulmonary Edema: Pathogenesis, Prevention, and Treatment
10.1580/07-weme-rev-173.1 · doi-reference
Secondary Prevention of HAPE in a Mount Everest Summiteer
10.1089/ham.2008.1094 · doi-reference
Acetazolamide Effect on Ambulatory Blood Pressure in Patients With Obstructive Sleep Apnoea Living at High Altitude: A Randomized Trial
10.1093/eurheartj/ehaf648 · doi-reference
Response to High‐Altitude Triggers in Seasonal Asthmatics on and off Inhaled Corticosteroid Treatment
10.1016/j.waojou.2022.100698 · doi-reference
Rhodiola crenulata‐ and Cordyceps sinensis‐Based Supplement Boosts Aerobic Exercise Performance After Short‐Term High Altitude Training
10.1089/ham.2013.1114 · doi-reference
Efficacy and Safety of Rhodiola crenulata Extract in the Treatment of Acute High Altitude Disease, Based on Studies Involving Populations in China: A Systematic Review and Meta‐Analysis
10.3389/fphar.2025.1595953 · doi-reference
A Novel Point Source Oxygen Supply Method for Sleeping Environment Improvement at High Altitudes
10.1007/s12273-021-0780-0 · doi-reference
Effect of Exercise Training in Rats Exposed to Chronic Hypoxia: Application for Monge's Disease
10.14814/phy2.14750 · doi-reference
Influence of Chronic Hypoxia on the Hypoxic Ventilatory Response of Juvenile and Adult Rats
10.1016/j.resp.2023.104118 · doi-reference
Metabolite and Protein Shifts in Mature Erythrocyte Under Hypoxia
10.1016/j.isci.2024.109315 · doi-reference
Progress in the Treatment of High Altitude Cerebral Edema: Targeting REDOX Homeostasis
10.2147/jir.s415695 · doi-reference
The Influence of CO2 and Exercise on Hypobaric Hypoxia Induced Pulmonary Edema in Rats
10.3389/fphys.2018.00130 · doi-reference
Emerging Concepts in Acute Mountain Sickness and High‐Altitude Cerebral Edema: From the Molecular to the Morphological
10.1007/s00018-009-0145-9 · doi-reference
Acute Mountain Sickness, High Altitude Cerebral Oedema, High Altitude Pulmonary Oedema: The Current Concepts
10.1016/s0377-1237(08)80062-7 · doi-reference
High‐Altitude Medicine
10.1164/rccm.201207-1323ci · doi-reference
Protective Effects of Epigallocatechin‐3‐Gallate Counteracting the Chronic Hypobaric Hypoxia‐Induced Myocardial Injury in Plain‐Grown Rats at High Altitude
10.1007/s12192-023-01386-1 · doi-reference
Pharmacological Inhibition of Mitochondrial Division Attenuates Simulated High‐Altitude Exposure‐Induced Cerebral Edema in Mice: Involvement of Inhibition of the NF‐κB Signaling Pathway in Glial Cells
10.1016/j.ejphar.2022.175137 · doi-reference
Caveolin‐1 Accelerates Hypoxia‐Induced Endothelial Dysfunction in High‐Altitude Cerebral Edema
10.1186/s12964-022-00976-3 · doi-reference
Chronic Hypoxia Leads to Cognitive Impairment by Promoting HIF‐2α‐Mediated Ceramide Catabolism and Alpha‐Synuclein Hyperphosphorylation
10.1038/s41420-022-01260-6 · doi-reference
Seven‐Transmembrane‐Spanning Receptors and Heart Function
10.1038/415206a · doi-reference
CCR2/CCR5‐Mediated Macrophage‐Smooth Muscle Cell Crosstalk in Pulmonary Hypertension
10.1183/13993003.02308-2018 · doi-reference
Antagonism of CXCR7 Attenuates Chronic Hypoxia–Induced Pulmonary Hypertension
10.1038/pr.2012.30 · doi-reference
CCR2 Deficiency, Dysregulation of Notch Signaling, and Spontaneous Pulmonary Arterial Hypertension
10.1165/rcmb.2012-0182oc · doi-reference
C‐C Motif Chemokine Receptor‐2 Blockade Ameliorates Pulmonary Hypertension in Rats and Synergizes With a Pulmonary Vasodilator
10.1093/cvr/cvae244 · doi-reference
Inflammation and Immunity in the Pathogenesis of Hypoxic Pulmonary Hypertension
10.3389/fimmu.2023.1162556 · doi-reference
P2Y 1 and P2Y 12 Receptors in Hypoxia‐and Adenosine Diphosphate‐Induced Pulmonary Vasoconstriction In Vivo in the Pig
10.1007/s00421-014-2921-y · doi-reference
The P2‐Receptor‐Mediated Ca2+ Signalosome of the Human Pulmonary Endothelium‐Implications for Pulmonary Arterial Hypertension
10.1007/s11302-019-09674-1 · doi-reference
Purinergic Dysregulation in Pulmonary Hypertension
10.1152/ajpheart.00572.2015 · doi-reference
Shear Stress Unveils Patient‐Specific Transcriptional Signatures in PAH: Towards Personalized Molecular Diagnostics
10.7150/thno.105729 · doi-reference
SMAD4 Maintains the Fluid Shear Stress Set Point to Protect Against Arterial‐Venous Malformations
10.1172/jci168352 · doi-reference
Evidence for Possible Involvement of 5‐HT(2B) Receptors in the Cardiac Valvulopathy Associated With Fenfluramine and Other Serotonergic Medications
10.1161/01.cir.102.23.2836 · doi-reference
Evidence for a Control of Plasma Serotonin Levels by 5‐Hydroxytryptamine2B Receptors in Mice
10.1124/jpet.105.098269 · doi-reference
High Plasma Serotonin Levels in Primary Pulmonary Hypertension. Effect of Long‐Term Epoprostenol (Prostacyclin) Therapy
10.1161/01.atv.20.10.2233 · doi-reference
Increased Plasma Serotonin in Primary Pulmonary Hypertension
10.1016/s0002-9343(99)80156-9 · doi-reference
Endothelin Receptor B, a Candidate Gene From Human Studies at High Altitude, Improves Cardiac Tolerance to Hypoxia in Genetically Engineered Heterozygote Mice
10.1073/pnas.1507486112 · doi-reference