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bioRxiv · 10.1101/2023.07.06.547988

Honokiol decreases alpha-synuclein mRNA levels and reveals novel targets for modulating alpha-synuclein expression.

Abstract

Neuronal inclusions comprised of aggregated alpha-synuclein (syn) represent a key histopathological feature of neurological disorders collectively termed "synucleinopathies", which includes Parkinsons disease (PD). Mutations and amplifications in the SNCA gene encoding syn cause familial forms of PD and a large body of evidence indicate a correlation between syn accumulation and disease. Decreasing syn expression is recognized as a valid target for PD therapeutics, with down-regulation of SNCA expression potentially attenuating downstream cascades of pathologic events. Honokiol (HKL) is a polyphenolic compound derived from magnolia tree bark that has demonstrated neuroprotective properties. Here, we describe potential beneficial effects of HKL on syn levels in multiple experimental models. Using human neuroglioma cells stably overexpressing syn and mouse primary neurons, we demonstrate that HKL treatment results in a significant decrease in syn expression at both the protein and mRNA levels. Our data support a mechanism whereby HKL acts by post-transcriptional modulation of SNCA rather than modulating syn protein degradation. Additionally, transcriptional profiling of mouse cortical neurons treated with HKL identified several differentially expressed genes (DEG) as potential targets to modulate SNCA expression. Overall, these data highlight a viable strategy to reduce syn levels, which represents a promising target to modify disease progression in PD and other synucleinopathies. In addition, HKL acts as a powerful tool for investigating SNCA gene modulation and its downstream effects.

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BibTeXRIS

Fagen, S., Burgess, J. D., Lim, M., Amerna, D., Kaya, Z. B., Faroqi, A. H., Perisetla, P., DeMeo, N. N., Stojkovska, I., Quiriconi, D. J., Mazzulli, J. R., Delenclos, M., Boschen, S. L., McLean, P. J.. 2023-07-09. Honokiol decreases alpha-synuclein mRNA levels and reveals novel targets for modulating alpha-synuclein expression.. https://doi.org/10.1101/2023.07.06.547988

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