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Aug 2026

Evidence from European ancestry genome-wide association studies and a case-control study suggests several selenoproteins are linked to a decreased risk of Alzheimer's disease.

BackgroundAlzheimer's disease (AD) is a neurodegenerative disorder resulting from a complex interplay of multiple factors. Recent hypotheses suggest a potential role of selenium and selenoproteins in AD pathogenesis. However, the causality relationship between them remains to be elucidated.ObjectiveThis study investigates the causal link between selenoproteins and AD risk.MethodsWe analyzed the data by leveraging genome-wide association studies from European cohorts (90,338 AD patients and 1,036,225 controls) and expression quantitative trait loci (eQTLs) from eQTLGen (31,684 individuals) and GTEx v8 (838 individuals). Mendelian randomization and summary data-based Mendelian randomization were applied to assess the potential causal associations between selenoproteins and AD. To further confirm these genetic associations at the clinical level, we conducted a case-control study to evaluate the levels of four differentially expressed selenoproteins in peripheral blood in individuals with AD and cognitively normal controls.ResultsOur analysis revealed that four selenoproteins, including selenoprotein S (SEPH2) and selenoprotein M (SELENOM), glutathione peroxidase 4 (GPX4) and thioredoxin reductase 2 (TXNRD2), were correlated with a decreased risk of AD. The levels of GPX4, SELENOM, and TXNRD2 were found to be significantly downregulated in AD patients compared to controls in the case-control validation study, supporting the change identified in our genetic analysis.ConclusionsThis study provides genetic and clinical evidence that specific selenoproteins are associated with a decreased risk of AD. The findings highlight the potential role of these proteins in AD pathophysiology and suggest their promise as biomarkers or therapeutic targets, warranting further investigation.

Peixin Jiang, Sibo Peng, Yanling Huang et al. · 0 citations
Open access Aug 2026

A Cascaded DNA Nanocircuit for Multi‐Signal‐Responsive Precision siRNA Delivery in Cancer Therapy

ABSTRACT Precision control over nucleic acid delivery remains a critical challenge in cancer therapy, particularly for siRNA‐based gene silencing, where off‐target effects limit clinical translation. Herein, we report a programmably engineered DNA nanocircuit with cascaded dual‐AND logic gates, which enables the development of a spatiotemporally controlled siRNA delivery strategy for precision cancer therapy. The DNA nanocircuit is engineered to respond to three tumor‐specific signals in a sequential manner: extracellular acidic pH, membrane‐overexpressed nucleolin (NCL), and intracellular glutathione (GSH). The first AND gate is activated by the co‐occurrence of acidic pH and NCL, triggering a conformational rearrangement that generates a molecular output. This integrated output, combined with intracellular GSH, serves as the dual input to co‐activate the second AND gate, initiating siRNA release via a cascade reaction inherent to the DNA circuit. As a proof‐of‐concept, when harnessing this DNA circuit in a temozolomide (TMZ)‐resistant glioblastoma (GBM) mouse model, we demonstrate that this design ensures highly selective release of siPARP1 in GBM cells, achieving efficient PARP1 silencing, reversed TMZ resistance, and minimized off‐target toxicity. Collectively, the cascaded dual‐AND logic, enabled by precise DNA sequence programming, represents a generalizable strategy for multi‐signal‐responsive delivery systems, highlighting the potential of DNA circuits in precision cancer therapy.

Yan Zhao, Yufei Lan, Min‐Goo Lee et al. · 0 citations