The escalating global prevalence of Alzheimer's disease (AD) requires the development of sensitive, non-invasive diagnostic strategies capable of detecting pathological changes previous the clinical onset. By exploiting the spontaneous formation of the biomolecular corona (BC) around nanoparticles (NPs), it's possible to capture a rich, disease-specific fingerprint from the plasma that reflects systemic alterations often invisible to traditional diagnostic assays. In the present study, we demonstrate the efficacy of an innovative nanotechnological platform utilizing a synergistic dual-silica NPs system (comprising amino- and sulfonate-functionalized surfaces) integrated with proteomic and lipidomic profiling of the NP-associated BC. Our results revealed a significant enrichment of ribosomal machinery in the BC of AD patients, contrasted by a simultaneous decrease of glycolytic enzymes and mitochondrial respiratory components. This metabolic impairment is further corroborated by the lipidomic profile, which shows a reduction in short-chain acyl-carnitines (C2, C3, C5) and essential membrane phospholipids. Additionally, the observed loss of structural proteins, such as Cofilin-1 and Vinculin, contributes to a comprehensive molecular fingerprint unique to the AD phenotype.

Greco, A., Baretta, R., Fonzo, A., Armirotti, A., Cinti, S., Mirasoli, M., et al. (2026). Engineering Nanoplatforms for Alzheimer's Disease Detection via Biomolecular Corona Proteomic and Lipidomic Profiling. ADVANCED HEALTHCARE MATERIALS [10.1002/adhm.71441].

Engineering Nanoplatforms for Alzheimer's Disease Detection via Biomolecular Corona Proteomic and Lipidomic Profiling

Corbo, Claudia
2026

Abstract

The escalating global prevalence of Alzheimer's disease (AD) requires the development of sensitive, non-invasive diagnostic strategies capable of detecting pathological changes previous the clinical onset. By exploiting the spontaneous formation of the biomolecular corona (BC) around nanoparticles (NPs), it's possible to capture a rich, disease-specific fingerprint from the plasma that reflects systemic alterations often invisible to traditional diagnostic assays. In the present study, we demonstrate the efficacy of an innovative nanotechnological platform utilizing a synergistic dual-silica NPs system (comprising amino- and sulfonate-functionalized surfaces) integrated with proteomic and lipidomic profiling of the NP-associated BC. Our results revealed a significant enrichment of ribosomal machinery in the BC of AD patients, contrasted by a simultaneous decrease of glycolytic enzymes and mitochondrial respiratory components. This metabolic impairment is further corroborated by the lipidomic profile, which shows a reduction in short-chain acyl-carnitines (C2, C3, C5) and essential membrane phospholipids. Additionally, the observed loss of structural proteins, such as Cofilin-1 and Vinculin, contributes to a comprehensive molecular fingerprint unique to the AD phenotype.
Articolo in rivista - Articolo scientifico
Alzheimer's disease; biomolecular corona; diagnosis; mass spectrometry; nanoparticles;
English
11-lug-2026
2026
e71441
none
Greco, A., Baretta, R., Fonzo, A., Armirotti, A., Cinti, S., Mirasoli, M., et al. (2026). Engineering Nanoplatforms for Alzheimer's Disease Detection via Biomolecular Corona Proteomic and Lipidomic Profiling. ADVANCED HEALTHCARE MATERIALS [10.1002/adhm.71441].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/10281/616443
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