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  3. Liposomal aggregates sustain the release of rapamycin and protect cartilage from friction.
 

Liposomal aggregates sustain the release of rapamycin and protect cartilage from friction.

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BORIS DOI
10.48350/185083
Date of Publication
November 15, 2023
Publication Type
Article
Division/Institute

Departement für Chemi...

Universitätsinstitut ...

Contributor
Bordon, Gregor
Departement für Chemie, Biochemie und Pharmazie (DCBP) Universität Bern
Ramakrishna, Shivaprakash N
Edalat, Sam G
Eugster, Remo
Departement für Chemie, Biochemie und Pharmazie (DCBP) Universität Bern
Arcifa, Andrea
Vermathen, Martina
Departement für Chemie, Biochemie und Pharmazie (DCBP) Universität Bern
Aleandri, Simone
Departement für Chemie, Biochemie und Pharmazie (DCBP) Universität Bern
Bertoncelj, Mojca Frank
Furrer, Julienorcid-logo
Departement für Chemie, Biochemie und Pharmazie (DCBP) Universität Bern
Vermathen, Peterorcid-logo
Universitätsinstitut für Diagnostische und Interventionelle Neuroradiologie (DIN)
Isa, Lucio
Crockett, Rowena
Distler, Oliver
Luciani, Paolaorcid-logo
Departement für Chemie, Biochemie und Pharmazie (DCBP) Universität Bern
Subject(s)

600 - Technology::610...

500 - Science::570 - ...

500 - Science::540 - ...

Series
Journal of Colloid and Interface Science
ISSN or ISBN (if monograph)
0021-9797
Publisher
Elsevier
Language
English
Publisher DOI
10.1016/j.jcis.2023.07.087
PubMed ID
37494862
Uncontrolled Keywords

Aggregation kinetics ...

Description
Liposomes show promise as biolubricants for damaged cartilage, but their small size results in low joint and cartilage retention. We developed a zinc ion-based liposomal drug delivery system for local osteoarthritis therapy, focusing on sustained release and tribological protection from phospholipid lubrication properties. Our strategy involved inducing aggregation of negatively charged liposomes with zinc ions to extend rapamycin (RAPA) release and improve cartilage lubrication. Liposomal aggregation occurred within 10 min and was irreversible, facilitating excess cation removal. The aggregates extended RAPA release beyond free liposomes and displayed irregular morphology influenced by RAPA. At nearly 100 µm, the aggregates were large enough to exceed the previously reported size threshold for increased joint retention. Tribological assessment on silicon surfaces and ex vivo porcine cartilage revealed the system's excellent protective ability against friction at both nano- and macro-scales. Moreover, RAPA was shown to attenuate the fibrotic response in human OA synovial fibroblasts. Our findings suggest the zinc ion-based liposomal drug delivery system has potential to enhance OA therapy through extended release and cartilage tribological protection, while also illustrating the impact of a hydrophobic drug like RAPA on liposome aggregation and morphology.
Handle
https://boris-portal.unibe.ch/handle/20.500.12422/168960
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FileFile TypeFormatSizeLicensePublisher/Copright statementContent
1-s2.0-S002197972301336X-main.pdftextAdobe PDF3.52 MBAttribution (CC BY 4.0)publishedOpen
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