Alzheimer's disease (AD) is a complex, multifactorial neurodegenerative disorder whose core pathological hallmarks include Aβ aggregation, tau hyperphosphorylation, chronic neuroinflammation, oxidative stress, mitochondrial dysfunction, and gut microbiota dysbiosis. Lignans, a class of naturally occurring polyphenolic dimers widely distributed in medicinal plants and diet, exhibit multi-target neuroprotective effects with low toxicity. This review provides a systematic synthesis of the anti-AD pharmacological mechanisms underlying nine structurally distinct lignan subtypes-dibenzocyclooctadiene, tetrahydrofuran, bisepoxy, benzofuran, and biphenyl types-emphasizing scaffold-dependent structure-activity relationships. Key mechanistic pathways encompass direct inhibition of Aβ aggregation and tau phosphorylation, activation of the Nrf2 antioxidant signaling axis and PI3K/Akt pro-survival pathways, suppression of NF-κB-mediated neuroinflammation, restoration of cholinergic function, protection of mitochondria via SIRT3, inhibition of ferroptosis through Gsk3β/Nrf2/GPX4 signaling, and modulation of the gut-brain axis via microbiota-mediated conversion to enterolactone. This review addresses key pharmacokinetic limitations such as low oral bioavailability, rapid metabolism, and limited brain exposure, alongside strategies including structural modification, brain-targeted delivery systems, and gut microbiota modulation. Despite promising preclinical evidence, clinical translation remains limited. Future research priorities should focus on direct target validation, network pharmacology, optimized formulations, and well-designed clinical trials to develop lignans into next-generation anti-aging and anti-AD therapeutics.
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