Frontiers in Aging Neuroscience· 2026Q1
Hydrogen gas and olfactory dysfunction in Alzheimer’s disease: the Hydrogen–Olfactory–Limbic hypothesis
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- Q1SCImago
- 2026year
Short summary
This perspective proposes the Hydrogen–Olfactory–Limbic hypothesis, suggesting molecular hydrogen (H₂) can be used experimentally to investigate the causes of early olfactory dysfunction in Alzheimer's disease (AD) and test if H₂ can modulate associated biological processes.
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Key points
- Olfactory dysfunction is an early, yet poorly understood, clinical feature of Alzheimer's disease (AD).
- Amyloid-β and tau pathology are found in olfactory structures, but their causal role in dysfunction is unproven.
- The Hydrogen–Olfactory–Limbic hypothesis proposes using molecular hydrogen (H₂) as an experimental intervention.
- H₂'s known antioxidant, anti-inflammatory, and metabolic effects could help elucidate AD-related olfactory dysfunction mechanisms.
AI-generated from the title and abstract; the full text is not read.
Abstract
Olfactory dysfunction is increasingly recognized as an early clinical feature of Alzheimer’s disease (AD), often preceding measurable cognitive impairment and associated with subsequent cognitive decline. Despite this relatively consistent clinical association, the anatomical, cellular, and physiological substrates underlying olfactory dysfunction in AD remain poorly understood. Post-mortem human studies have identified amyloid-β (Aβ) and tau pathology in olfactory structures, including the olfactory epithelium and anterior olfactory nucleus. However, the available anatomical evidence remains limited, and the presence of these pathological proteins does not establish that they cause olfactory dysfunction. Likewise, it remains uncertain whether early olfactory impairment reflects peripheral sensory dysfunction, neuronal loss, synaptic or circuit abnormalities, altered higher-order olfactory processing, disruption of olfactory–limbic networks, or a combination of these processes. Although the olfactory epithelium possesses lifelong regenerative capacity, whether this capacity is altered during AD progression remains unresolved. Molecular hydrogen (H₂) has demonstrated antioxidant, anti-inflammatory, mitochondrial-modulatory, and cytoprotective effects in diverse experimental systems. However, direct evidence that hydrogen modifies AD-associated olfactory dysfunction is currently lacking. In this Perspective, we propose the Hydrogen–Olfactory–Limbic hypothesis as an experimentally testable framework rather than an established therapeutic mechanism. We suggest that molecular hydrogen can serve as an experimental intervention to determine whether modulating oxidative, inflammatory, and metabolic processes affects olfactory function and olfactory–limbic circuit physiology during AD progression. This framework integrates behavioral, anatomical, molecular, electrophysiological, regenerative, and connectivity measurements to address two fundamental questions: what causes early olfactory dysfunction in AD, and can molecular hydrogen modify biologically relevant processes associated with this phenotype?
The authors' abstract, as published at the source. Frontiers in Aging Neuroscience, 2026 · DOI ↗
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Field: Sensory Systems
Sensory SystemsNeuroscience