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Updated: Sep 11, 2025

Construction and Characterization of a Novel Vocal Fold Bioreactor
Published on: August 1, 2014
Oxygen Microenvironment of the Maculae Flavae of the Vocal Fold as a Stem Cell Niche
Kiminori Sato1, Shun-Ichi Chitose1, Fumihiko Sato1
1Department of Otolaryngology-Head and Neck Surgery, Kurume University School of Medicine, Kurume, Japan.
Objectives:
Recent studies have suggested that tissue stem cells reside within the anterior and posterior maculae flavae of the human vocal fold mucosa. This study aimed to investigate the oxygen microenvironment of the maculae flavae as a stem cell niche and its potential role in regulating cellular metabolism and maintaining stem cell properties.
Methods:
Five normal human adult vocal folds obtained from autopsy cases were examined using immunohistochemistry.
Results:
Cells within the maculae flavae of the vocal folds expressed hypoxia-inducible factor-1α (HIF-1α) and vascular endothelial growth factor (VEGF), indicating that the maculae flavae exist in a hypoxic microenvironment. They expressed lactate dehydrogenase A (LDHA, glycolytic enzyme that catalyzes pyruvate into lactate) and pyruvate dehydrogenase kinase 1 (PDK1, kinase that inactivates the pyruvate dehydrogenase enzyme complex through phosphorylation), indicating the cells in the maculae flavae relied more on anaerobic glycolysis in comparison with oxidative phosphorylation. Additionally, cytoglobin, a regulator of oxygen homeostasis that suppresses mitochondrial activity, was also expressed.
Conclusions:
The present study suggests that the cells in the maculae flavae of the human vocal fold operate in a hypoxic microenvironment, relying more on anaerobic glycolysis for energy production than on oxidative phosphorylation. The hypoxic condition, regulated by HIF-1α, likely promotes the maintenance of stemness and prevents the generation of toxic reactive oxygen species, favoring the preservation of the undifferentiated state of stem cells within the niche. This environment may play a crucial role in sustaining the regenerative capacity of the vocal fold mucosa.
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