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Machine Learning-Enhanced Ultrasensitive Immuno-CRISPR Array Facilitates Early Diagnosis of Alzheimer’s Disease by Detecting Multiple Plasma Biomarkers

Advanced Science. 2026-06; 
Liding Zhang, Changwen Yang, Qian Yao, Xuewei Du, Shuai Ding, Yaoqiang Shi, Can Sheng, Ming Wang, Ying Han, Haiming Luo
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Abstract

Early and accurate diagnosis of Alzheimer's disease (AD) remains a significant challenge due to the multifactorial and dynamic nature of its pathology. Although plasma-based biomarkers such as amyloid-β (Aβ) and phosphorylated tau (p-tau) have shown promise as diagnostic indicators, current single-biomarker detection techniques lack the requisite sensitivity and specificity for early-stage diagnosis. Here, we present the development of an ultrasensitive CRISPR-based multi-protein detection array (UCMDA) capable of concurrently detecting six core AD biomarkers, including Aβ40, Aβ42, p-tau181, p-tau217, p-tau231, and p-tau396,404. By integrating antibody pair-based multiplex recombinase polymerase amplificati... More

Keywords

Alzheimer's disease; early diagnosis; immuno‐CRISPR; multiple RPA; multi‐target detection; plasma biomarkers.