Microglial lipid metabolism in perioperative neurocognitive risk: aging-related priming, organelle crosstalk, and lipid-redox injury

Abstract Perioperative neurocognitive disorders (PND) are clinically important complications in older surgical patients, but broad neuroinflammatory models do not fully explain age-related susceptibility or failed recovery. Aging alters microglial surveillance, phagocytosis, mitochondrial function, lipid handling, and inflammatory thresholds before surgery. This mechanism-focused narrative review, informed by a structured literature search, examines impaired microglial lipid handling as an interface between brain aging and perioperative cognitive vulnerability. Evidence is organized along three axes: lipid sensing, uptake, and storage; lipid catabolism and polyunsaturated fatty acid (PUFA) remodeling; and lipid-redox injury with downstream synaptic and circuit dysfunction. Direct perioperative support is strongest for age-associated microglial activation, immune modulation through triggering receptor expressed on myeloid cells 2 (TREM2), fatty acid desaturase 1 (FADS1)-dependent lipid remodeling, and neuronal or astrocytic ferroptosis-related injury. In contrast, microglial lipid catabolism mediated by multifunctional enzyme type 2 (MFE-2), apolipoprotein E4 (APOE4)-associated triglyceride metabolism, and TREM2-dependent lipid-droplet regulation are supported mainly by aging, neurodegeneration, or ischemic injury studies. Separating clinical and preclinical perioperative findings from nonperioperative mechanisms defines a testable lipid-neuroimmune framework for causal experiments, biomarker development, and mechanism-guided intervention.

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Publication Details

Journal
Reviews in the Neurosciences
Published
2026-10-07
DOI
https://doi.org/10.1515/revneuro-2026-0136
Primary Topic
Neuroinflammation and Neurodegeneration Mechanisms
Type
article
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article

Microglial lipid metabolism in perioperative neurocognitive risk: aging-related priming, organelle crosstalk, and lipid-redox injury

祝继洪, Dingliang Cai, Yeru Chen, Fangla Luo et al.
Reviews in the Neurosciences
Neuroinflammation and Neurodegeneration Mechanisms
article

Microglial lipid metabolism in perioperative neurocognitive risk: aging-related priming, organelle crosstalk, and lipid-redox injury

祝继洪, Dingliang Cai, Yeru Chen, Fangla Luo, Gang Chen, Huajing Cai, Xinlong Ke, Yijing Li
article en

Abstract

Abstract Perioperative neurocognitive disorders (PND) are clinically important complications in older surgical patients, but broad neuroinflammatory models do not fully explain age-related susceptibility or failed recovery. Aging alters microglial surveillance, phagocytosis, mitochondrial function, lipid handling, and inflammatory thresholds before surgery. This mechanism-focused narrative review, informed by a structured literature search, examines impaired microglial lipid handling as an interface between brain aging and perioperative cognitive vulnerability. Evidence is organized along three axes: lipid sensing, uptake, and storage; lipid catabolism and polyunsaturated fatty acid (PUFA) remodeling; and lipid-redox injury with downstream synaptic and circuit dysfunction. Direct perioperative support is strongest for age-associated microglial activation, immune modulation through triggering receptor expressed on myeloid cells 2 (TREM2), fatty acid desaturase 1 (FADS1)-dependent lipid remodeling, and neuronal or astrocytic ferroptosis-related injury. In contrast, microglial lipid catabolism mediated by multifunctional enzyme type 2 (MFE-2), apolipoprotein E4 (APOE4)-associated triglyceride metabolism, and TREM2-dependent lipid-droplet regulation are supported mainly by aging, neurodegeneration, or ischemic injury studies. Separating clinical and preclinical perioperative findings from nonperioperative mechanisms defines a testable lipid-neuroimmune framework for causal experiments, biomarker development, and mechanism-guided intervention.

Reviews in the Neurosciences
Sir Run Run Shaw Hospital (CN)
Openalex Percentile: Top 17%
Neuroinflammation and Neurodegeneration Mechanisms
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