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Yicong Pan

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Open access Aug 2026

Spatial multi‐omics unveils sphingolipid metabolic reprogramming within the retinal pathological niche

Abstract Retinal ischemia‐reperfusion (RIR) injury is a central mechanism underlying irreversible vision loss in glaucoma and other retinal diseases, yet the spatial organization of the pathogenic microenvironment remains poorly understood. Here, we constructed a high‐resolution, whole‐eye spatial multi‐omics atlas integrating Stereo‐seq transcriptomics and MALDI‐MSI‐based metabolomics to capture the early molecular events in the RIR mouse model. Spatially, retinal ganglion cell (RGC) interactions with surrounding cells were markedly reduced after injury, whereas immune–glial interactions were enhanced, revealing a shift from a neuron‐centered to an immunometabolic state. Within the ganglion cell layer (GCL), the primary pathological locus, we identified Trem2 + microglia that expand in situ, establish close proximity to degenerating RGCs, and exhibit strong spatial association with dysregulated sphingolipid metabolism. Mechanistically, using Trem2 knockout mice and microglia‐specific Trem2 siRNA knockdown, we demonstrate that TREM2 directly binds to SPTLC2, the rate‐limiting enzyme of de novo sphingolipid biosynthesis, driving ceramide‐centric metabolic reprogramming that modulates the AKT‐mTOR signaling axis and amplifies inflammatory activation. Pharmacological inhibition of serine palmitoyl transferase (SPT) with myriocin reverses this cascade, protecting RGCs. Multi‐omics integration of human glaucoma aqueous humor datasets further reveals conserved upregulation of sphingolipid biosynthetic enzymes, sphingolipid metabolites, and lipid‐sensing immune effectors, offering preliminary translational clues. Collectively, our findings reveal that spatially defined immunometabolic remodeling—in which Trem2 + microglia are central—converges on sphingolipid metabolism as a druggable regulatory axis, with the TREM2‐SPTLC2 interface thus emerging as a new therapeutic opportunity for retinal neurodegenerative diseases.

Yun-Hong Shi, Jinpei Lin, Yi Wu et al. · 0 citations
Review Open access Sep 2026

Targeting ferroptosis in ocular diseases: mechanisms, clinical implications, and therapeutic horizons.

Ferroptosis, an iron-dependent form of regulated cell death driven by lipid peroxidation, has been increasingly implicated in selected ocular diseases, although its causal relevance varies across disease entities. The retina and retinal pigment epithelium are biologically susceptible to ferroptosis-related injury because of their high oxygen demand, abundant polyunsaturated lipids, mitochondrial activity, light exposure, and tightly regulated iron handling. This review summarizes core mechanisms of ocular ferroptosis, including iron uptake and export, glutathione-glutathione peroxidase 4 (GPX4)-dependent antioxidant defense, lipid peroxidation, mitochondrial dysfunction, neuroinflammation, and blood-retina barrier disruption. We discuss evidence from major degenerative, vascular, ischemic, hereditary, infectious, and immune-mediated retinal diseases, with particular attention to glaucoma, age-related macular degeneration, diabetic retinopathy, ocular toxoplasmosis, uveitis, retinal vasculitis, and inflammatory chorioretinopathy. We also evaluate ferroptosis-targeted therapeutic strategies, proposed operational criteria for defining ferroptosis in retinal disease, and candidate structural, functional, biochemical, and imaging endpoints for future translational studies. Current evidence supports ferroptosis as a context-dependent contributor to retinal injury rather than a uniform pathogenic mechanism. Future studies should integrate cell-type-resolved biomarkers, lipidomic and imaging readouts, functional rescue experiments, and clinically meaningful visual outcomes to clarify when ferroptosis modulation may support vision preservation.

Naiyuan Zhang, Huiqian Kong, Yuheng Liao et al. · 0 citations