α-Synuclein is a small presynaptic protein whose aggregation is one of the hallmarks of Parkinson's disease (PD), a neurological disorder that affects 10 people worldwide. In our quest to identify novel preventive or therapeutic treatments for PD, and following the bioprospecting research approach, we collected 60 Italian plant species to identify new neuroprotective bioactive compounds. Through a high-troughput screening on yeast cells expressing human α-synuclein, combined with an in silico phylogenetic analysis, we identified Verbascum thapsus as potential neuroprotective and antiaggregant plant. Its extract exhibits robust inhibitory activity against the amyloid aggregation of α-synuclein in vitro, as well as in neuroblastoma cells overexpressing the protein, where α-synuclein oligomers were strongly reduced. By employing a size exclusion chromatography affinity approach coupled to mass spectrometry (in collaboration with Prof. Enrica Calleri, University of Pavia), we identified the phenylpropanoid glycoside acteoside from the extract of V. thapsus as the metabolite that directly binds α-synuclein. This binding was also confirmed by native-MS. Through this interaction, acteoside inhibits both primary nucleation, by preventing nuclei formation during the lag phase, and fibril-induced amplification during the growth phase of α-synuclein fibrils, indicating it serves as a strong inhibitor of protein aggregation at multiple stages of the process. In addition, acteoside reduces oxidative stress in neuroblastoma cells exposed to α-synuclein fibrils and activates the NRF2 pathway, as shown by the increased nuclear localization of NRF2 and increased mRNA level of NRF2-dependent genes in cells treated with acteoside. Notably, acteoside improves motor performance in a Drosophila model of PD and exhibits a significant reduction of protein carbonyl groups, suggesting that this compound may mitigate oxidative stress-induced protein damage also in an in vivo model of PD. Altogether, our findings could pave the way for the development of new strategies aimed at developing acteoside as a novel neuroprotective agents targeting PD
Spandri, G., Lambiase, A., Moukham, H., Toini, E., D’Urzo, A., Zecca, G., et al. (2025). Acteoside exerts neuroprotective effects by preventing α-synuclein aggregation and oxidative stressButterfly effect: infrastructures and tools to connect biodiversity and society via pollination services. Intervento presentato a: BTBSDay 2026: DAY OF THE DEPARTMENT OF BIOTECHNOLOGY AND BIOSCIENCES OF THE UNIVERSITY OF MILANO – BICOCCA, University of Milano-Bicocca, Milan, Italy.
Acteoside exerts neuroprotective effects by preventing α-synuclein aggregation and oxidative stressButterfly effect: infrastructures and tools to connect biodiversity and society via pollination services
Spandri Giorgia;Moukham H;Zecca G;Labra M;Grassi Fabrizio;Tripodi F;Coccetti P.
2025
Abstract
α-Synuclein is a small presynaptic protein whose aggregation is one of the hallmarks of Parkinson's disease (PD), a neurological disorder that affects 10 people worldwide. In our quest to identify novel preventive or therapeutic treatments for PD, and following the bioprospecting research approach, we collected 60 Italian plant species to identify new neuroprotective bioactive compounds. Through a high-troughput screening on yeast cells expressing human α-synuclein, combined with an in silico phylogenetic analysis, we identified Verbascum thapsus as potential neuroprotective and antiaggregant plant. Its extract exhibits robust inhibitory activity against the amyloid aggregation of α-synuclein in vitro, as well as in neuroblastoma cells overexpressing the protein, where α-synuclein oligomers were strongly reduced. By employing a size exclusion chromatography affinity approach coupled to mass spectrometry (in collaboration with Prof. Enrica Calleri, University of Pavia), we identified the phenylpropanoid glycoside acteoside from the extract of V. thapsus as the metabolite that directly binds α-synuclein. This binding was also confirmed by native-MS. Through this interaction, acteoside inhibits both primary nucleation, by preventing nuclei formation during the lag phase, and fibril-induced amplification during the growth phase of α-synuclein fibrils, indicating it serves as a strong inhibitor of protein aggregation at multiple stages of the process. In addition, acteoside reduces oxidative stress in neuroblastoma cells exposed to α-synuclein fibrils and activates the NRF2 pathway, as shown by the increased nuclear localization of NRF2 and increased mRNA level of NRF2-dependent genes in cells treated with acteoside. Notably, acteoside improves motor performance in a Drosophila model of PD and exhibits a significant reduction of protein carbonyl groups, suggesting that this compound may mitigate oxidative stress-induced protein damage also in an in vivo model of PD. Altogether, our findings could pave the way for the development of new strategies aimed at developing acteoside as a novel neuroprotective agents targeting PD| File | Dimensione | Formato | |
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