Yvan Hanscom-Trofy, Andrew Gregory, Gilbert C Morgan, Hongwei Yu, Rui Dong, Fan Fan
Neurovascular dysfunction, characterized by impaired cerebral blood flow (CBF) autoregulation and neurovascular coupling (NVC), represents a critical upstream facilitator of Alzheimer's disease (AD) that precedes overt cognitive decline. While traditional therapeutic strategies that focus strictly on amyloid β clearance have achieved limited long-term clinical efficacy, targeting the mechanisms governing neurovascular uncoupling offers a promising frontier. Calcium ions (Ca2+) serve as the quintessential second messenger, linking neuronal metabolic demand to real-time microvascular responsiveness within the neurovascular unit (NVU). In AD, this tightly coordinated Ca2+ homeostatic network undergoes a widespread, cell-specific, and stage-dependent collapse. Here, we systematically summarize physiological Ca2+ handling mediated by plasma membrane channels, transporters, and intracellular organelles in the cerebral vasculature. We further dissect cell type-specific Ca2+ dysregulation throughout the NVU during AD progression, including biphasic alterations in neurons, astrocytes, and endothelial cells, as well as progressive Ca2+ overload in pericytes and vascular smooth muscle cells. Additionally, we review repurposed and novel pharmacological agents targeting Ca2+ pathways to restore NVC and CBF homeostasis, as well as cell type-specific therapeutic challenges. Finally, we discuss unresolved controversies regarding the causal relationship between Ca2+ dysfunction and AD protein pathology and highlight future directions for early intervention. This review emphasizes Ca2+ signaling as a promising therapeutic target to break the vicious cycle of neurovascular impairment and neurodegeneration in AD.