| Title: |
Vestibular-evoked balance responses are blunted in lowlanders and Tibetan highlanders with ascent to 4300 m. |
| Authors: |
Dickenson, Jessica A.; Debenham, Mathew I.B.; Dalton, Brian H.; Harman, Taylor S.; Kunwar, Ajaya J.; Thakur, Nilam; Dhungel, Sunil; Sherpa, Nima; Bigham, Abigail W.; Brutsaert, Tom D.; Day, Trevor A.; Strzalkowski, Nicholas D.J. |
| Source: |
Applied Physiology, Nutrition & Metabolism; 11/6/2025, Vol. 50, p1-10, 10p |
| Subject Terms: |
Vestibular apparatus; Acclimatization; Statistical power analysis; Altitudes; Physiological adaptation; T-test (Statistics); Data analysis; Research funding; Two-way analysis of variance; Analysis of variance; Statistics; Vestibular stimulation; Postural balance; Hypoxemia |
| Geographic Terms: |
Himalaya Mountains; Tibet (China) |
| Abstract: |
Hypoxia influences postural control and vestibular function. However, the vestibular control of standing balance at high altitude is poorly understood. Furthermore, Tibetan highlanders are physiologically adapted to high altitude, but it is unclear whether vestibular-driven signals for balance within this population acclimate differently than lowlanders with ascent. This study investigated vestibular-evoked balance responses in unacclimatized lowlanders and Tibetan highlanders at low altitude (1400 m) and after 6 or 7 days of incremental ascent to high altitude (4300 m). Twenty-eight participants (15 lowlanders, 8 F, 7 M; 13 Tibetan highlanders, 7 F, 6 M) stood on a force plate facing forward with their eyes closed and underwent 90-s stochastic electrical vestibular stimulation trials at a peak-to-peak amplitude of ±2 or ±4 mA. Vestibular-evoked balance responses were quantified using cumulant density and coherence (0–5 and 5–10 Hz) between electrical vestibular stimulation and mediolateral forces. With ±2 mA stimulation, the peak-to-peak amplitude of vestibular-evoked balance responses decreased at high compared to low altitude for both groups (P = 0.003). With ±4 mA stimulation, only lowlanders showed a reduction in peak-to-peak amplitude at high altitude (P = 0.03), and their responses were smaller than Tibetan highlanders at high altitude (P = 0.046). For frequency-domain outcomes, lowlanders exhibited a smaller 0–5 Hz coherence area at high compared to low altitude with ±2 mA stimulation (P = 0.002), whereas Tibetan highlanders showed no change. No differences in coherence area were observed in either group with ±4 mA stimulation. These findings indicate that while the vestibular control of balance is blunted at high altitude for lowlanders and highlanders, the altitude effect is greater in lowlanders. [ABSTRACT FROM AUTHOR] |
| : |
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| Database: |
Complementary Index |