The Exercise-CTSS-AD Axis: a novel framework for understanding exercise-induced neuroprotection in Alzheimer's disease.
D, Y., W, G., & B, W. (2026). The Exercise-CTSS-AD Axis: a novel framework for understanding exercise-induced neuroprotection in Alzheimer's disease.. Metabolic brain disease. https://doi.org/10.1007/s11011-026-01930-9
D Y, W G, B W. The Exercise-CTSS-AD Axis: a novel framework for understanding exercise-induced neuroprotection in Alzheimer's disease.. Metabolic brain disease. 2026; doi: 10.1007/s11011-026-01930-9
D Y, W G, B W. The Exercise-CTSS-AD Axis: a novel framework for understanding exercise-induced neuroprotection in Alzheimer's disease.[J]. Metabolic brain disease. 2026. DOI: 10.1007/s11011-026-01930-9.
@article{d2026,
author = {Yang D and Guo W and Wang B},
title = {The Exercise-CTSS-AD Axis: a novel framework for understanding exercise-induced neuroprotection in Alzheimer's disease.},
journal = {Metabolic brain disease},
year = {2026},
doi = {10.1007/s11011-026-01930-9},
note = {PMID: 42463907},
}
TY - JOUR AU - Yang D AU - Guo W AU - Wang B TI - The Exercise-CTSS-AD Axis: a novel framework for understanding exercise-induced neuroprotection in Alzheimer's disease. T2 - Metabolic brain disease PY - 2026 DO - 10.1007/s11011-026-01930-9 AN - PMID:42463907 ER -
Disease-modifying therapies for Alzheimer's disease (AD) targeting amyloid-β and tau have consistently failed, highlighting the urgent need for innovative therapeutic strategies. Cathepsin S (CTSS), a lysosomal cysteine protease upregulated in AD, functions as a "multifaceted disruptor" that interconnects neuroinflammation, blood-brain barrier (BBB) dysfunction, and Aβ metabolic dysregulation. Although exercise is a validated non-pharmacological intervention that mitigates AD pathology, its multi-target molecular mechanisms remain elusive. Here, we propose and substantiate the "Exercise-CTSS-AD Axis" hypothesis, positing that exercise confers neuroprotection by suppressing CTSS through synergistic anti-inflammatory, anti-aging, and metabolic regulatory pathways. Exercise-induced myokines and clearance of senescent cells inhibit CTSS transcription, while AMPK-TFEB axis activation enhances lysosomal function to repress CTSS enzymatic activity. This systemic CTSS suppression preserves BBB integrity, ameliorates microglia-driven neuroinflammation, and restores Aβ homeostasis by reducing production and enhancing clearance. Our framework provides a unifying molecular explanation for the pleiotropic benefits of exercise, positions CTSS as a quantifiable biomarker for personalized exercise regimens, and supports an innovative combinatorial strategy: "Exercise + low-dose CTSS inhibitors" as a disease-modifying therapy for AD.