This work aimed to identify AD-related olfactory and visual or retinal abnormalities, combine core inflammatory pathways and their interactions with amyloid-β and tau pathology, and summarize actionable targets and candidate interventions along a “receptor–intracellular signaling-inflammasome-effector” axis, to inform earlier-stage detection and mechanism-guided intervention in AD.
Abstract
Alzheimer’s disease (AD) is the most common cause of dementia and major public-health challenge in aging societies worldwide. Accumulating evidence suggests that olfactory and visual deficits can precede overt cognitive symptoms and are closely associated with amyloid-β deposition, pathological tau phosphorylation, and disease progression. Early sensory abnormalities in AD likely arise from converging pathological processes. Among these, chronic neuroinflammation marked by microglial and astrocytic reactivity, inflammasome activation and increased pro-inflammatory mediators might play a pivotal role linking sensory-circuit injury to neurodegeneration. A coherent synthesis of the inflammatory mechanisms underlying early olfactory and visual impairment in AD remains limited, and putative molecular pathways and interventions have not been fully integrated. We aimed to identify AD-related olfactory and visual or retinal abnormalities, combine core inflammatory pathways and their interactions with amyloid-β and tau pathology, and summarize actionable targets and candidate interventions along a “receptor–intracellular signaling-inflammasome-effector” axis, to inform earlier-stage detection and mechanism-guided intervention in AD.
Overall, this review makes a case for integrative, pathway-based therapeutic models, and multiple approaches may facilitate for drug development, biomarker identification and patient management in Alzheimer's disease.
The molecular mechanisms underlying NLRP3 inflammasome activation in Alzheimer’s disease, its interaction with pro-inflammatory cytokine networks, and the emerging role of inflammasome-related biomarkers in disease characterization are examined.
Hira Shabbir· Scholars International Journ...· 0 citations
A “cellular state–pathological network–therapeutic window” framework is proposed and the roles of microglia in amyloid-β plaque seeding and compaction, NLRP3 inflammasome activation, mitochondrial DNA–cGAS–STING signaling, complement-mediated synaptic engulfment, and bidirectional microglia–tau feedback are systematically discussed.
Lian-Jing Xu, Ying Zhang, Li Jiang et al.· Frontiers in Cellular Neuros...· 0 citations
The dual and stage‐dependent roles of microglia and astrocytes are explored, discussion of blood–brain barrier dysfunction and peripheral immune infiltration as underappreciated pathogenic contributors are expanded, and emerging evidence linking neuroinflammation specifically to tau pathology is integrated.
S. Papelian· International Journal of Dev...· 0 citations
Alzheimer's disease (AD) is the leading cause of dementia, yet current therapies provide limited clinical benefit. Neuroinflammation, as an early and sustained driver of AD, places the NLRP3 inflammasome at the center of pathological and therapeutic focus. In this review, we synthesize recent advances in the structure, assembly, and activation of the NLRP3 inflammasome, and evaluate its contribution to AD using evidence from human brain tissues, cerebrospinal fluid, and diverse AD animal models. Available data consistently support aberrant NLRP3 activation in AD brain, where it is closely associated with amyloid-β (Aβ) deposition, tau pathology, glial reactivity, and cognitive decline. We further discuss the cell-type-specific roles of microglia and astrocytes, highlighting microglia as the principal effector cells in inflammasome-associated pathology. Mechanistically, Aβ and tau converge on NLRP3 activation through interconnected pathways involving K+ efflux, lysosomal rupture, mitochondrial dysfunction, and impaired autophagy. Downstream IL-1β, IL-18, and gasdermin D amplify neuroinflammation and neuronal injury. We summarize emerging therapeutic strategies directly targeting its core components or downstream effectors, as well as anti-AD agents with indirect NLRP3 modulation including endogenous molecules, repurposed drugs, and natural products. Collectively, this review regards NLRP3 inflammasome as a critical inflammatory hub and a promising target for disease-modifying therapy in AD, and provide useful perspectives on AD pathogenesis and inform the development of more rational therapeutic strategies.
Wenwen Lian, Fulin Zhou, Zhuohang Tong et al.· Ageing Research Reviews· 0 citations
Alzheimer’s disease (AD) is the leading cause of dementia and a heterogeneous neurodegenerative disorder characterized by amyloid-β (Aβ) and tau pathology, impaired proteostasis, neurovascular dysfunction, maladaptive glial and immune responses, and synaptic dysfunction. Human genetic evidence supports an upstream role for Aβ. Anti-Aβ monoclonal antibodies substantially reduce amyloid burden and modestly slow clinical decline in early symptomatic AD. Continued decline despite plaque removal is consistent with ongoing downstream tau pathology, glial responses, and neuronal injury. This narrative review examines AD mechanisms, biomarkers, and therapeutic prospects from a geroscience perspective and applies the eight hallmarks of neurodegenerative diseases as an analytical framework. Advances in blood-based biomarkers, particularly plasma phosphorylated tau 217, may improve biological detection, but their clinical value depends on assay performance, intended use, and patient context. Gut dysbiosis and gut–brain communication are considered separately as candidate systemic modifiers because causal evidence in humans remains insufficient. The hallmarks are overlapping analytical categories, not independent primary causes, and their therapeutic relevance depends on disease stage and pathway activity. Future studies should establish which preventive strategies and biomarker-guided, stage-matched combination therapies improve clinically meaningful outcomes and identify the patients most likely to benefit.
P. Chmielewski· Cells· 0 citations
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