MedicineEnvironmental Science

Xinli Yu, Jiaxi Li, Yuchen Wang, Xuemin Li, Li Ding

2026.2.10Journal of Applied Physiology

DOI: 10.1152/japplphysiol.00977.2025

tlooto Summary

Results suggest that retinal vascular dilation reaches a functional ceiling, leading to neurovascular uncoupling, and that the system exhibits a metabolic lag during recovery, suggesting a distinct physiological hysteresis.

Abstract

BACKGROUND Acute hypobaric hypoxia induces rapid neurovascular adjustments in the central nervous system, yet the specific spatiotemporal dynamics of these responses remain incompletely understood. The retina, with its high metabolic demand and direct accessibility, provides a unique noninvasive model to investigate neurovascular coupling dynamics under simulated high-altitude hypoxia.

METHODS Twenty-one healthy adults underwent ophthalmic evaluations at sea level, during a stepwise ascent to 4,500 m in a hypobaric chamber (simulated altitudes: 3,500 m, 4,000 m, 4,500 m), and during a subsequent recovery phase. Images were acquired 10 minutes after reaching each plateau. Optical coherence tomography angiography (OCTA) was used to quantify vessel density (VD), perfusion area (PA), and small-vessel density (SVD). Full-field electroretinogram (ERG) was recorded under dark- and light-adapted conditions. Linear mixed-effects models and correlation analyses were used to assess altitude-related changes.

RESULTS The Superficial Vascular Plexus (SVP) exhibited a sustained compensatory vasodilation (increased VD and PA) across all altitudes. In contrast, ERG amplitudes declined significantly at 4,500 m, revealing a functional supply-demand mismatch. Strict statistical analysis revealed a loss of linear neurovascular correlation during hypoxia, while strong correlations re-emerged during the recovery-phase. Additionally, physiological parameters did not immediately return to baseline during recovery, indicating a distinct physiological hysteresis.

CONCLUSIONS The retina displays differential neurovascular responses during progressive hypoxia. While the superficial microvasculature mounts a sustained compensatory response, neuronal function decompensates under severe stress. These results suggest that retinal vascular dilation reaches a functional ceiling, leading to neurovascular uncoupling, and that the system exhibits a metabolic lag during recovery.

Citation format

YU, Xinli, et al. Dynamic neurovascular adaptation of the retina during high-altitude hypoxia: Integrated analysis of ERG and OCTA changes in healthy subjects. Journal of Applied Physiology, 2026, 140(3): 733–744.