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March 5, 2026Cell Death and Differentiation2 citationsOpen Access

ACSL4-mediated astrocyte ferroptosis augments neuroinflammation and exacerbates NMOSD pathology

HWHaixia WenYZYinyu ZiZLZhuhe Liu

Key Points

  • This research aims to explore how ACSL4-mediated ferroptosis in astrocytes influences NMOSD pathology.
  • Utilized single-nucleus RNA sequencing to examine astrocytic ferroptosis in NMOSD mouse models.
  • Confirmed ferroptosis activation through in vitro experiments measuring intracellular Fe²⁺, lipid peroxidation, and glutathione levels.
  • Validated the upregulation of ACSL4 in astrocytes affected by AQP4-IgG in NMOSD models.
  • Employed Egr1 siRNA to reverse ACSL4 upregulation and assess its effects on NMOSD outcomes.
  • Astrocytic ferroptosis correlated with increased inflammatory reactive astrocytes in NMOSD.
  • Suppressing ACSL4 expression reduced ferroptosis and reactive astrocytes in NMOSD models.
  • Mitigation of demyelination and improvement in NMOSD prognosis were observed following ACSL4 interference.

Abstract

Abstract Neuromyelitis optica spectrum disorder (NMOSD) is recognized as a form of astrocytopathy; however, the mechanisms underlying aquaporin (AQP)4-IgG-induced astrocytic dysfunction remain to be fully elucidated. Here, single-nucleus RNA sequencing revealed that astrocytic ferroptosis is observed in mouse models of NMOSD, accompanied by expression alterations of multiple ferroptosis regulators. The activation of ferroptosis in astrocytes was further confirmed in in vitro NMOSD models through increased intracellular Fe²⁺ levels, lipid peroxidation, malondialdehyde, and lactate dehydrogenase levels, alongside reduced glutathione levels. Moreover, a remarkable increase in inflammatory reactive astrocytes was observed both in vivo and in vitro during NMOSD pathology. Notably, acyl-CoA synthetase long-chain family member 4 (ACSL4) upregulation in astrocytes was validated in NMOSD models. AQP4-IgG-induced ACSL4 upregulation was reversed by early growth response 1 (Egr1) siRNA. Suppressing ACSL4 expression mitigated astrocytic ferroptosis, reduced reactive astrocytes, attenuated demyelination, and ultimately improved NMOSD prognosis in mice. These findings demonstrate that ACSL4 mediates astrocytic ferroptosis, thereby contributing to NMOSD progression. Targeting ACSL4 may represent a promising astrocyte-directed therapeutic strategy for NMOSD.

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Cite This Study

Wen et al. (2026) studied this question.

synapsesocial.com/papers/69a91e65d6127c7a504c266ahttps://doi.org/10.1038/s41418-026-01692-y
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