TY - JOUR
T1 - DDOX expands the repertoire of tetracyclines for Parkinson’s disease by preventing the cellular uptake and intracellular impact of α-synuclein preformed fibrils
AU - Teran, María del Milagro
AU - Tomas-Grau, Rodrigo Hernán
AU - Soliz-Santander, Estefanía Silvana
AU - Guayán, María Laura
AU - Budeguer Isa, Valentina
AU - Luna Mercado, Alvaro
AU - Avila, Cesar Luis
AU - Sosa-Padilla, Bernardo
AU - Cruz, Hernán
AU - Ciss, Ismaila
AU - Besnault, Pierre
AU - Socias, Sergio Benjamín
AU - Vera Pingitore, Esteban
AU - Ferrié, Laurent
AU - Raisman-Vozari, Rita
AU - Michel, Patrick Pierre
AU - Figadère, Bruno
AU - Chehín, Rosana Nieves
AU - Ploper, Diego
N1 - Publisher Copyright:
© The Author(s) 2025.
PY - 2025/12/1
Y1 - 2025/12/1
N2 - The increasing prevalence of Parkinson’s disease (PD) requires innovative multi-targeted disease-modifying therapies to counteract the toxicity associated with the amplification, propagation, and accumulation of alpha-synuclein (α-Syn) aggregates in the brain. Tetracyclines, particularly doxycycline, have demonstrated multimodal neuroprotective effects, both in vitro and in vivo. The non-antibiotic derivative of doxycycline 4-dedimethylamino-12a-deoxydoxycycline (DDOX), has been recently shown to rescue neurons from oxidative injury. Here, we demonstrate that DDOX showcases a diverse range of mechanisms targeting α-Syn aggregates. Notably, DDOX inhibited the aggregation of α-Syn and the seeding ability of α-Syn pre-formed fibrils (PFF) in biophysical and cellular assays. In addition, the compound ameliorated the relocalization of total and phospho-α-Syn, triggered by exogenous α-Syn PFF. Surprisingly, DDOX drastically mitigated lysosomal stress induced by these aggregates. Moreover, we determined that DDOX effectively impeded the internalization of fluorescently labeled α-Syn PFF. Biophysical techniques and molecular docking simulations suggest that DDOX binds to hydrophobic patches on α-Syn fibrils. Our findings reveal novel neuroprotective attributes of tetracyclines, wherein a direct extracellular interaction between DDOX and α-Syn aggregated species mitigates their intracellular impact. These results provide a promising foundation for DDOX, a drug that aims to interfere with the intracellular seeding, propagation and uptake of α-Syn fibrils in neurodegenerative conditions.
AB - The increasing prevalence of Parkinson’s disease (PD) requires innovative multi-targeted disease-modifying therapies to counteract the toxicity associated with the amplification, propagation, and accumulation of alpha-synuclein (α-Syn) aggregates in the brain. Tetracyclines, particularly doxycycline, have demonstrated multimodal neuroprotective effects, both in vitro and in vivo. The non-antibiotic derivative of doxycycline 4-dedimethylamino-12a-deoxydoxycycline (DDOX), has been recently shown to rescue neurons from oxidative injury. Here, we demonstrate that DDOX showcases a diverse range of mechanisms targeting α-Syn aggregates. Notably, DDOX inhibited the aggregation of α-Syn and the seeding ability of α-Syn pre-formed fibrils (PFF) in biophysical and cellular assays. In addition, the compound ameliorated the relocalization of total and phospho-α-Syn, triggered by exogenous α-Syn PFF. Surprisingly, DDOX drastically mitigated lysosomal stress induced by these aggregates. Moreover, we determined that DDOX effectively impeded the internalization of fluorescently labeled α-Syn PFF. Biophysical techniques and molecular docking simulations suggest that DDOX binds to hydrophobic patches on α-Syn fibrils. Our findings reveal novel neuroprotective attributes of tetracyclines, wherein a direct extracellular interaction between DDOX and α-Syn aggregated species mitigates their intracellular impact. These results provide a promising foundation for DDOX, a drug that aims to interfere with the intracellular seeding, propagation and uptake of α-Syn fibrils in neurodegenerative conditions.
KW - Alpha-synuclein
KW - Doxycycline
KW - PFF
KW - Parkinson’s disease
KW - Preformed fibril
KW - Tetracyclines
KW - Uptake
UR - https://www.scopus.com/pages/publications/105020283758
U2 - 10.1038/s41598-025-15991-w
DO - 10.1038/s41598-025-15991-w
M3 - Article
C2 - 41162400
AN - SCOPUS:105020283758
SN - 2045-2322
VL - 15
JO - Scientific Reports
JF - Scientific Reports
IS - 1
M1 - 37769
ER -