Chen Juanlu, Li-Han Chen
Alzheimer's disease (AD) is increasingly recognized as a disorder involving interacting neuroimmune, glial, vascular, and synaptic processes that are not fully captured by single-pathway therapeutic models. Although anti-amyloid monoclonal antibodies slow clinical progression in selected early amyloid-positive patients, their benefit remains stage-dependent, monitoring-intensive, and incomplete with respect to downstream neural dysfunction. Clinically, vulnerable older adults may show abrupt cognitive decline after pneumonia-related hospitalization or other severe infections. This observation raises a pharmacological question: whether infection-triggered peripheral immune events activate modifiable risk processes before they become sustained neuroimmune and synaptic dysfunction. NETosis is one candidate mechanism linking peripheral inflammatory stress to endothelial injury, blood-brain barrier vulnerability, myeloid priming, and microglial dysregulation. Acute infection may represent a high-intensity peripheral NETosis-related trigger, whereas periodontitis provides a chronic, low-grade, neutrophil-rich, microbially driven, clinically measurable, and modifiable peripheral inflammatory model. We propose a node-based pharmacological framework organized around NETosis-associated immune amplification, microglial state dysregulation, and synaptic vulnerability. Selected phytochemicals are examined as node-aligned pharmacological probes rather than validated AD therapeutics: baicalin and hesperidin for NETosis-associated immune amplification, berberine for microglial state modulation, and catalpol as a synapse-proximal candidate.