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Cerebral Hemodynamic Changes at High Altitude in Adults: A Systematic Review and Meta-analysis of Transcranial Doppler and Duplex Ultrasound Studies.

Created on 23 Jul 2026

Authors

J Pierre Zila-Velasque, Pamela Grados-Espinoza, Sebastian Abanto-Urbano, Mely Olarte-Durand, Martha I Vilca-Salas, Paula C Moran-Ballon, Carlos Quispe-Vicuña, Victor Velasquez-Rimachi, Joel Sequeiros, Kateriny Margot Regalado-Rodriguez, Patrick E Zila-Velasque, Sthefano E Zila-Velasque, Sheidy Clemente-Tueros, Fernando Terry, Carlos Alva-Diaz

Published in

Journal of applied physiology (Bethesda, Md. : 1985). Jul 22, 2026. Epub Jul 22, 2026.

Abstract

Exposure to intermediate and high altitude induces hypobaric hypoxia, which may alter cerebral hemodynamics through complex interactions involving hypoxia-driven vasodilation, hypocapnia, hematological changes, and vascular remodeling; however, cerebrovascular responses vary substantially between native high-altitude populations and lowlander individuals. We conducted a systematic review and meta-analysis to quantify altitude-related changes in cerebral blood flow (CBF) and related hemodynamic parameters and to explore sources of heterogeneity. Major databases were searched through inception to November 2025 for observational studies evaluating cerebral hemodynamics at ≥1,500 m above sea level. Outcomes included mean velocity (MV), volumetric blood flow, arterial diameter, cerebrovascular conductance, cerebral oxygen saturation, autoregulation index, and global CBF. Random-effects models (Paule-Mandel) were used to pool mean differences, with subgroup and meta-regression analyses performed; certainty of evidence was assessed using GRADE. Fifty-five studies including 1,935 participants were analyzed. Altitude exposure was associated with a reduction in mean cerebral artery velocity (MD -5.79 cm/s; 95% CI -9.37 to -2.21; I² = 96%), reduced volumetric blood flow (MD -32.99 ml/min; 95% CI -45.24 to -20.73; I² = 98%), decreased arterial diameter (MD -0.27 mm; 95% CI -0.45 to -0.08; I² = 91%), lower cerebrovascular conductance (MD -0.43 ml/min/mmHg; 95% CI -0.65 to -0.21; I² = 24%), reduced cerebral oxygen saturation (MD -4.45%; 95% CI -6.77 to -2.14; I² = 74%), and lower global cerebral blood flow (MD -155.00 ml/min; 95% CI -350.11 to 40.11; I² = 95%), although heterogeneity was substantial across outcomes. Subgroup analyses suggested that native high-altitude populations and lowlander individuals exhibit distinct cerebrovascular responses, with population status, age, and altitude level explaining part of the observed variability. Overall certainty of evidence was very low. These findings indicate that exposure to altitude is associated with heterogeneous but consistent alterations in cerebral hemodynamic parameters, with marked differences between native and non-native populations, underscoring the importance of population-specific physiological adaptation when interpreting cerebrovascular responses to hypoxia.

PMID:
42485264
Bibliographic data and abstract were imported from PubMed on 23 Jul 2026.

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