TY - JOUR
T1 - Designing MOF-Thermogel Nanocomposites for Differential Multidrug Release in Combination Cancer Therapy
AU - Zeng, WY
AU - Tan, TTY
AU - Lin, QY
AU - Loh, WW
AU - Lee, YH
AU - Reithofer, MR
AU - Loh, XJ
AU - Chin, JM
AU - Lim, JYC
N1 - Accession Number
WOS:001555749200001
Publisher Copyright:
© 2025 American Chemical Society
PY - 2025
Y1 - 2025
N2 - 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.
AB - 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.
KW - metal-organic framework
KW - hydrogel composites
KW - controlled drug release
KW - synergistic chemotherapy
KW - localized tumor treatment
KW - CELL LUNG-CANCER
KW - METAL-ORGANIC FRAMEWORKS
KW - DRUG-DELIVERY
KW - BREAST-CANCER
KW - GEMCITABINE
KW - DOXORUBICIN
KW - PACLITAXEL
KW - 5-FLUOROURACIL
KW - CHEMOTHERAPY
KW - CYCLE
KW - metal−organic framework
UR - https://www.scopus.com/pages/publications/105015425882
U2 - 10.1021/acsanm.5c03527
DO - 10.1021/acsanm.5c03527
M3 - Article
SN - 2574-0970
VL - 8
SP - 17297
EP - 17310
JO - ACS Applied Nano Materials
JF - ACS Applied Nano Materials
IS - 35
ER -