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February 8, 2026Journal of Neuroinflammation0 citationsOpen Access

Cell-intrinsic vulnerability and immune activation cooperate to drive degeneration in a mitochondrial complex I deficiency model of optic neuropathy

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DSDaniela Santamaría-MuñozRRRaenier V. ReyesMKMiranda R. Krueger

Key Points

  • This research examines how mitochondrial dysfunction and immune activation lead to retinal ganglion cell degeneration in optic neuropathy.
  • Developed conditional transgenic models targeting mitochondrial complex I subunit Ndufs4 in the retina.
  • Assessed vision loss and RGC degeneration in models with Ndufs4 deletion.
  • Investigated the role of myeloid cells and inflammation in RGC preservation.
  • Broad deletion of Ndufs4 caused vision loss and RGC degeneration along with immune activation.
  • Depletion of myeloid cells significantly preserved RGCs, indicating inflammation's active role in degeneration.
  • Mosaic model showed that mitochondrial impairment in RGCs initiates degeneration, which later propagates to surrounding cells.

Abstract

Mitochondrial dysfunction is a central hallmark of many optic neuropathies, yet the mechanisms linking intrinsic metabolic stress to retinal ganglion cell (RGC) degeneration remain unclear. To bridge this gap, we developed conditional transgenic models targeting the mitochondrial complex I subunit Ndufs4 in the retina. Broad deletion of Ndufs4 in the retina resulted in vision loss, progressive RGC degeneration, and pronounced immune activation before overt RGC death. Strikingly, depletion of myeloid cells significantly preserved RGCs, demonstrating that inflammation is not simply a downstream consequence but a participant in the degeneration process. To further distinguish between intrinsic and extrinsic mechanisms, we generated a mosaic model in which only subsets of retinal cells lacked Ndufs4 . In this paradigm, the degeneration first appeared selectively in mutant regions, suggesting that mitochondrial impairment within RGCs is necessary to initiate vulnerability. At later stages, however, the degeneration extended beyond mutant territories, highly suggestive of a propagation through non-cell autonomous processes. Together, these findings support a model in which mitochondrial dysfunction creates the conditions for neuronal vulnerability, while immune responses govern the timing and extent of cell loss. This framework explains the consistent co-occurrence of metabolic deficits and neuroinflammation in optic neuropathies and highlights the importance of their interactions in disease progression. By clarifying the intersection of intrinsic and extrinsic mechanisms, this work advances our understanding of RGC degeneration and provides a conceptual basis for deciphering pathogenic processes across diverse optic neuropathies.

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Cite This Study

Santamaría-Muñoz et al. (2026) studied this question.

synapsesocial.com/papers/6987eb5df6bacdd2fe8fc986https://doi.org/10.1186/s12974-026-03707-4
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