Liposome-Micelle-Hybrid (LMH) Carriers for Controlled Co-Delivery of 5-FU and Paclitaxel as Chemotherapeutics

Author:

Hassan Md. Musfizur12,Romana Bilquis13,Mao Guangzhao2ORCID,Kumar Naresh1,Sonvico Fabio4ORCID,Thordarson Pall1,Joyce Paul3ORCID,Bremmell Kristen E.3ORCID,Barnes Timothy J.3ORCID,Prestidge Clive A.3ORCID

Affiliation:

1. School of Chemistry, The Australian Centre for Nanomedicine, The University of New South Wales, Sydney, NSW 2052, Australia

2. School of Chemical Engineering, The University of New South Wales, Sydney, NSW 2052, Australia

3. Clinical and Health Sciences, University of South Australia, Adelaide, SA 5000, Australia

4. Department of Food and Drug, University of Parma, 43124 Parma, Italy

Abstract

Paclitaxel (PTX) and 5-fluorouracil (5-FU) are clinically relevant chemotherapeutics, but both suffer a range of biopharmaceutical challenges (e.g., either low solubility or permeability and limited controlled release from nanocarriers), which reduces their effectiveness in new medicines. Anticancer drugs have several major limitations, which include non-specificity, wide biological distribution, a short half-life, and systemic toxicity. Here, we investigate the potential of liposome-micelle-hybrid (LMH) carriers (i.e., drug-loaded micelles encapsulated within drug-loaded liposomes) to enhance the co-formulation and delivery of PTX and 5-FU, facilitating new delivery opportunities with enhanced chemotherapeutic performance. We focus on the combination of liposomes and micelles for co-delivery of PTX and 5_FU to investigate increased drug loading, improved solubility, and transport/permeability to enhance chemotherapeutic potential. Furthermore, combination chemotherapy (i.e., containing two or more drugs in a single formulation) may offer improved pharmacological performance. Compared with individual liposome and micelle formulations, the optimized PTX-5FU-LMH carriers demonstrated increased drug loading and solubility, temperature-sensitive release, enhanced permeability in a Caco-2 cell monolayer model, and cancer cell eradication. LMH has significant potential for cancer drug delivery and as a next-generation chemotherapeutic.

Funder

Australian National Health and Medical Research Council

Australian Research Council (ARC) Discovery

ARC Centre of Excellence Grant

ARC Future Fellowship

Australian Government for Australian Postgraduate Awards

Publisher

MDPI AG

Subject

Pharmaceutical Science

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