Photobiomodulation Ameliorates Alexander Disease Through AMPK / mTOR ‐Mediated Mitophagy

Alexander disease (AxD) is a rare neurodegenerative disorder characterized by the pathological accumulation of Rosenthal fibers (RFs) and astrocytic inflammation. Despite advances in elucidating its genetic basis, effective therapeutic strategies remain limited. Recent studies indicate that astrocytes in AxD exhibit excessive mitochondrial fragmentation, which may cause mitochondrial dysfunction and inflammatory response. Photobiomodulation (PBM) has been shown to improve mitochondrial function and exert anti-inflammatory effects, suggesting it may be a promising candidate for the treatment of AxD. Here, we report that exposure to 1070-nm infrared light exerts therapeutic efficacy in AxD. Specifically, using the astrocytes derived from AxD patients and a mouse model of AxD, we demonstrate that PBM regulates AMPK/mTOR signaling and promotes mitophagy, thereby attenuating reactive oxygen species production from fragmented mitochondria and subsequent inflammatory status. This study suggests PBM may serve as a novel, non-invasive therapeutic approach for the treatment of AxD.

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Publication Details

Journal
Glia
Published
2026-10-05
DOI
https://doi.org/10.1002/glia.70229
Primary Topic
Laser Applications in Dentistry and Medicine
Type
article
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article

Photobiomodulation Ameliorates Alexander Disease Through AMPK / mTOR ‐Mediated Mitophagy

Xunbin Wei, Jie Shi, Ye Wu, Nianzhuang Qiu et al.
Glia
Laser Applications in Dentistry and Medicine
article

Photobiomodulation Ameliorates Alexander Disease Through AMPK / mTOR ‐Mediated Mitophagy

Xunbin Wei, Jie Shi, Ye Wu, Nianzhuang Qiu, Ya Bin Wei, Jie Zhang, Shumin Gao, Huan Yi, Jia Jia Liu, Zhendong Feng, Lei Han, Sihan Dong
article en

Abstract

Alexander disease (AxD) is a rare neurodegenerative disorder characterized by the pathological accumulation of Rosenthal fibers (RFs) and astrocytic inflammation. Despite advances in elucidating its genetic basis, effective therapeutic strategies remain limited. Recent studies indicate that astrocytes in AxD exhibit excessive mitochondrial fragmentation, which may cause mitochondrial dysfunction and inflammatory response. Photobiomodulation (PBM) has been shown to improve mitochondrial function and exert anti-inflammatory effects, suggesting it may be a promising candidate for the treatment of AxD. Here, we report that exposure to 1070-nm infrared light exerts therapeutic efficacy in AxD. Specifically, using the astrocytes derived from AxD patients and a mouse model of AxD, we demonstrate that PBM regulates AMPK/mTOR signaling and promotes mitophagy, thereby attenuating reactive oxygen species production from fragmented mitochondria and subsequent inflammatory status. This study suggests PBM may serve as a novel, non-invasive therapeutic approach for the treatment of AxD.

GliaVol. 74(12)
Peking University (CN), Peking University Cancer Hospital (CN), Peking University First Hospital (CN), Ministry of Education (ET), Phoenix Contact (United States) (US)
Openalex Percentile: Top 12%
Laser Applications in Dentistry and Medicine
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Photobiomodulation Ameliorates Alexander Disease Through AMPK / mTOR ‐Mediated Mitophagy — Xunbin Wei, Jie Shi, et al. · Glia (2026) | TGRS Research Map | TGRS