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Designing MOF-Thermogel Nanocomposites for Differential Multidrug Release in Combination Cancer Therapy

  • WY Zeng
  • , TTY Tan (Korresp. Autor*in)
  • , QY Lin
  • , WW Loh
  • , YH Lee
  • , MR Reithofer
  • , XJ Loh
  • , JM Chin
  • , JYC Lim (Korresp. Autor*in)

Veröffentlichungen: Beitrag in FachzeitschriftArtikelPeer Reviewed

Abstract

Combination chemotherapy is a leading strategy for advanced cancer treatment, bringing about improved therapeutic responses compared with single-drug chemotherapy. However, achieving the required sequence of drug delivery needed for optimal therapeutic benefits via a single-drug delivery system remains highly challenging, often involving systems of considerable complexities. Herein, we report the design of composites comprising nanoscale metal-organic frameworks (MOFs) and temperature-responsive hydrogels (thermogels) as versatile, modular, yet simple-to-formulate platforms for controlled, localized release of combination chemotherapeutics, which can be used for solid tumor treatment. First, the encapsulation behavior, drug-host interactions, and in vitro release kinetics of four chemotherapeutic drugs-gemcitabine (GEM), 5-fluorouracil (5-FU), doxorubicin (DOX), and paclitaxel (PTX)-from nanoscale MOF carriers and the bulk gel phase were elucidated. Based on these differences, we designed dual- and even triple-drug formulations that could achieve sustained drug release over 10-18 days, with different rates of drug release that mimic clinically relevant sequential dosage. In all cases, MOF-thermogel multidrug formulations were highly injectable when chilled, potentially allowing minimally invasive and site-specific administration of multidrug cocktails to targeted tumor sites. Our findings establish MOF-thermogel nanocomposites as a highly customizable platform for tailoring multidrug release kinetics, relative rates, sequence, and release duration to meet different therapeutic demands for solid tumor chemotherapy and related applications.
OriginalspracheEnglisch
Seiten (von - bis)17297-17310
Seitenumfang14
FachzeitschriftACS Applied Nano Materials
Jahrgang8
Ausgabenummer35
DOIs
PublikationsstatusVeröffentlicht - 2025

Fördermittel

W.Z. acknowledges A*STAR Research Attachment Programme (ARAP) and the Mahlke–Obermann Stiftung for the provision of a Ph.D. scholarship. J.Y.C.L. is grateful to the A*STAR Central Research Fund (UIBR) for funding support. X.J.L. acknowledges funding from the National Research Foundation (NRF) Singapore under its NRF Investigatorship (NRF-NRFI07-2021-0003). J.M.C. acknowledges the European Research Council (ERC) for funding part of this work under the European Union’s Horizon 2020 Research and Innovation Program (ERC Consolidator Grant Agreement 101002176). J.Y.C.L. is grateful to the A*STAR Central Research Fund (UIBR) for funding support. X.J.L. acknowledges funding from the National Research Foundation (NRF) Singapore under its NRF Investigatorship (NRF-NRFI07-2021-0003). J.M.C. acknowledges the European Research Council (ERC) for funding part of this work under the European Union’s Horizon 2020 Research and Innovation Program (ERC Consolidator Grant Agreement 101002176).

UN SDGs

Dieser Output leistet einen Beitrag zu folgendem(n) Ziel(en) für nachhaltige Entwicklung

  1. SDG 3 – Gesundheit und Wohlergehen
    SDG 3 – Gesundheit und Wohlergehen

ÖFOS 2012

  • 301904 Krebsforschung
  • 210002 Nanobiotechnologie
  • 205004 Funktionsmaterialien
  • 301208 Pharmazeutische Technologie

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