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Microneedle-Mediated Delivery of Lipid-Coated Cisplatin Nanoparticles for Efficient and Safe Cancer Therapy

  • Xinmiao Lan
    ,
  • Juncong She
    ,
  • Di An Lin
    ,
  • Yu Xu
    ,
  • Xuan Li
    ,
  • Wei Fa Yang
*Corresponding author for this work
  • The University of Hong Kong
    ,
  • Sun Yat-Sen University
    ,
  • Chinese University of Hong Kong
Scholary Output:
Contribution to journal
Article
Peer-review

Sustainable Development Goals

  • SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well

Abstract

Cisplatin is the first-line chemotherapeutic agent, but its systemic toxicity and side effects severely limit its clinical use. We report a microneedle technique to mediate the transdermal delivery of lipid-coated cisplatin nanoparticles (LCC-NPs) for efficient and safe cancer therapy. Cisplatin was encapsulated by tumor-targeting pH-responsive lipid nanoparticles with a high loading rate of 80%, and the encapsulation substantially increased the solubility of cisplatin and enhanced its antitumor efficiency in vitro. The LCC-NPs were embedded in dissolvable microneedles, and released from the microneedles after inserting into the skin. This enabled the nanoparticles to pass the stratum corneum for safe local delivery. An in vivo study with a xenograft tumor animal model demonstrated that microneedle arrays loaded with cisplatin nanoparticles significantly increased cytotoxicity and apoptosis in cancer cells with an apoptotic index of 58.6%, resulting in significantly reduced tumor volume and weight. Moreover, serum platinum, pulmonary toxicity, hepatotoxicity, and nephrotoxicity were not detected in vivo, indicating that this technique is biosafe. The cisplatin-nanoparticle microneedle system developed in this study may offer promising opportunities in cancer therapy for enhancing antitumor effects and reducing systemic toxicity and side effects.

Publication Information

Output type

Scholary Output:
Contribution to journal
Article
Peer-review

Original language

English (US)

Pages from-to (Number of pages)

Pages 33060-33069 (10 pages)

Journal (Volume, Issue Number)

ACS Applied Materials and Interfaces (Volume 10, Issue 39)

Publication milestones

  • Published - 10/03/2018

Publication status

Published - 10/03/2018

ISSN

1944-8244

Publication IDs

  • Scopus: 85054135674
  • PubMed: 30204401

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Funding Details

The project was supported by Hong Kong Research Grant Council General Research Fund no. 17120718 HKU Seed Fund for Basic Research nos. 201611159117 and 201511159130. X.X. would like to acknowledge financial support from the National Natural Science Foundation of China (grant no. 51705543, 61771498 and 31530023). V.W.Y.L. is funded by the Research Grant Council, Hong Kong (#17114814, #17121616, General Research Fund; and T12-401/13-R Theme-based Research Scheme), and the Hong Kong Cancer Fund, Hong Kong. J.S. would like to acknowledge finicial support from the Guangzhou Science Technology and Innovation Commission (grant no. 201607020012).We also appreciate HKU Li Ka Shing Faculty of Medicine Faculty Core Facility for the technical supports. The project was supported by Hong Kong Research Grant Council General Research Fund no. 17120718, HKU Seed Fund for Basic Research nos. 201611159117 and 201511159130. X.X. would like to acknowledge financial support from the National Natural Science Foundation of China (grant no. 51705543, 61771498 and 31530023). V.W.Y.L. is funded by the Research Grant Council, Hong Kong (#17114814, #17121616, General Research Fund; and T12-401/13-R Theme-based Research Scheme), and the Hong Kong Cancer Fund, Hong Kong. J.S. would like to acknowledge finicial support from the Guangzhou Science Technology and Innovation Commission (grant no. 201607020012). We also appreciate HKU Li Ka Shing Faculty of Medicine Faculty Core Facility for the technical supports.
FundersFunding numbers
General Research Fund
-
Hong Kong Research Grant Council General Research Fund
17120718, 201511159130, 201611159117
Research Grant Council, Hong Kong
-
NSFC
51705543, 61771498, 31530023
RGC, UGC
17121616, 17114814
Guangzhou Science, Technology and Innovation Commission
201607020012
General Research Fund of Shanghai Normal University
T12-401/13-R
HKFC
-