Brain cholesterol biosynthesis and cholesterol levels are reduced in mouse models of Huntington's disease (HD), suggesting that locally synthesized, newly formed cholesterol is less available to neurons. This may be detrimental for neuronal function, especially given that locally synthesized cholesterol is implicated in synapse integrity and remodeling. Here, we used biodegradable and biocompatible polymeric nanoparticles (NPs) modified with glycopeptides (g7) and loaded with cholesterol (g7-NPs-Chol), which per se is not blood-brain barrier (BBB) permeable, to obtain high-rate cholesterol delivery into the brain after intraperitoneal injection in HD mice. We report that g7-NPs, in contrast to unmodified NPs, efficiently crossed the BBB and localized in glial and neuronal cells in different brain regions. We also found that repeated systemic delivery of g7-NPs-Chol rescued synaptic and cognitive dysfunction and partially improved global activity in HD mice. These results demonstrate that cholesterol supplementation to the HD brain reverses functional alterations associated with HD and highlight the potential of this new drug-administration route to the diseased brain.

Cholesterol-loaded nanoparticles ameliorate synaptic and cognitive function in Huntington's disease mice / Valenza, Marta; Chen, Jane Y.; Di Paolo, Eleonora; Ruozi, Barbara; Belletti, Daniela; Ferrari Bardile, Costanza; Leoni, Valerio; Caccia, Claudio; Brilli, Elisa; Di Donato, Stefano; Boido, Marina M.; Vercelli, Alessandro; Vandelli, Maria Angela; Forni, Flavio; Cepeda, Carlos; Levine, Michael S.; Tosi, Giovanni; Cattaneo, Elena. - In: EMBO MOLECULAR MEDICINE. - ISSN 1757-4676. - STAMPA. - 7:12(2015), pp. 1-18. [10.15252/emmm.201505413]

Cholesterol-loaded nanoparticles ameliorate synaptic and cognitive function in Huntington's disease mice

RUOZI, Barbara;BELLETTI, Daniela;VANDELLI, Maria Angela;FORNI, Flavio;TOSI, Giovanni;
2015

Abstract

Brain cholesterol biosynthesis and cholesterol levels are reduced in mouse models of Huntington's disease (HD), suggesting that locally synthesized, newly formed cholesterol is less available to neurons. This may be detrimental for neuronal function, especially given that locally synthesized cholesterol is implicated in synapse integrity and remodeling. Here, we used biodegradable and biocompatible polymeric nanoparticles (NPs) modified with glycopeptides (g7) and loaded with cholesterol (g7-NPs-Chol), which per se is not blood-brain barrier (BBB) permeable, to obtain high-rate cholesterol delivery into the brain after intraperitoneal injection in HD mice. We report that g7-NPs, in contrast to unmodified NPs, efficiently crossed the BBB and localized in glial and neuronal cells in different brain regions. We also found that repeated systemic delivery of g7-NPs-Chol rescued synaptic and cognitive dysfunction and partially improved global activity in HD mice. These results demonstrate that cholesterol supplementation to the HD brain reverses functional alterations associated with HD and highlight the potential of this new drug-administration route to the diseased brain.
2015
7
12
1
18
Cholesterol-loaded nanoparticles ameliorate synaptic and cognitive function in Huntington's disease mice / Valenza, Marta; Chen, Jane Y.; Di Paolo, Eleonora; Ruozi, Barbara; Belletti, Daniela; Ferrari Bardile, Costanza; Leoni, Valerio; Caccia, Claudio; Brilli, Elisa; Di Donato, Stefano; Boido, Marina M.; Vercelli, Alessandro; Vandelli, Maria Angela; Forni, Flavio; Cepeda, Carlos; Levine, Michael S.; Tosi, Giovanni; Cattaneo, Elena. - In: EMBO MOLECULAR MEDICINE. - ISSN 1757-4676. - STAMPA. - 7:12(2015), pp. 1-18. [10.15252/emmm.201505413]
Valenza, Marta; Chen, Jane Y.; Di Paolo, Eleonora; Ruozi, Barbara; Belletti, Daniela; Ferrari Bardile, Costanza; Leoni, Valerio; Caccia, Claudio; Brilli, Elisa; Di Donato, Stefano; Boido, Marina M.; Vercelli, Alessandro; Vandelli, Maria Angela; Forni, Flavio; Cepeda, Carlos; Levine, Michael S.; Tosi, Giovanni; Cattaneo, Elena
File in questo prodotto:
File Dimensione Formato  
emmm.201505413.full.pdf

Open access

Tipologia: Versione pubblicata dall'editore
Dimensione 1.73 MB
Formato Adobe PDF
1.73 MB Adobe PDF Visualizza/Apri
Pubblicazioni consigliate

Licenza Creative Commons
I metadati presenti in IRIS UNIMORE sono rilasciati con licenza Creative Commons CC0 1.0 Universal, mentre i file delle pubblicazioni sono rilasciati con licenza Attribuzione 4.0 Internazionale (CC BY 4.0), salvo diversa indicazione.
In caso di violazione di copyright, contattare Supporto Iris

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11380/1074511
Citazioni
  • ???jsp.display-item.citation.pmc??? 28
  • Scopus 77
  • ???jsp.display-item.citation.isi??? 71
social impact