TY  - JOUR
T1  - Metal-organic frameworks for microneedles
T2  - Bridging the gap between nanomaterials and transdermal therapeutics
AU  - Nail, Aminov
AU  - Liu, Huan
AU  - Meng, Decheng
AU  - Zhu, Liran
AU  - Guo, Xiaohan
AU  - Li, Cong
AU  - Ye, Xiaoqing
AU  - Li, Huanjun
N1  - Publisher Copyright:
© 2025 Elsevier B.V.
PY  - 2025/12
Y1  - 2025/12
N2  - This review explores the integration of metal-organic frameworks (MOFs) and microneedles (MNs) for transdermal drug delivery (TDD), highlighting their potential in biomedical applications. We discuss various MOFs commonly used in healthcare, their synthesis methods, and structural properties that contribute to controlled drug release. Different types of MNs, such as solid, coated, hollow, dissolvable, and hydrogen-forming, and their fabrication techniques are examined for their effectiveness in enhancing drug delivery. MOF-based MNs have demonstrated promising results in enabling sustained and responsive drug release, improving therapeutic outcomes. The applications of MOF-based MNs extend across multiple fields, including wound healing, cancer treatment, biosensing, and skincare. Additionally, their potential in managing chronic conditions such as diabetes, as well as in addressing complex medical challenges like spinal cord injury, Alzheimer's disease, and hair loss, is explored. Despite significant advancements, challenges remain in optimizing MOF stability and MN mechanical properties for clinical use. This review discusses current progress, limitations, and future directions for advancing MOF-based MN technologies toward real-world medical applications.
AB  - This review explores the integration of metal-organic frameworks (MOFs) and microneedles (MNs) for transdermal drug delivery (TDD), highlighting their potential in biomedical applications. We discuss various MOFs commonly used in healthcare, their synthesis methods, and structural properties that contribute to controlled drug release. Different types of MNs, such as solid, coated, hollow, dissolvable, and hydrogen-forming, and their fabrication techniques are examined for their effectiveness in enhancing drug delivery. MOF-based MNs have demonstrated promising results in enabling sustained and responsive drug release, improving therapeutic outcomes. The applications of MOF-based MNs extend across multiple fields, including wound healing, cancer treatment, biosensing, and skincare. Additionally, their potential in managing chronic conditions such as diabetes, as well as in addressing complex medical challenges like spinal cord injury, Alzheimer's disease, and hair loss, is explored. Despite significant advancements, challenges remain in optimizing MOF stability and MN mechanical properties for clinical use. This review discusses current progress, limitations, and future directions for advancing MOF-based MN technologies toward real-world medical applications.
KW  - Biomedical applications
KW  - Metal-organic frameworks
KW  - Microneedles
KW  - Multifunctional nanomaterials
KW  - Nanomaterials
KW  - Stimuli-responsive systems
KW  - Transdermal drug delivery systems
UR  - http://www.scopus.com/pages/publications/105013987938
U2  - 10.1016/j.jddst.2025.107444
DO  - 10.1016/j.jddst.2025.107444
M3  - Review article
AN  - SCOPUS:105013987938
SN  - 1773-2247
VL  - 114
JO  - Journal of Drug Delivery Science and Technology
JF  - Journal of Drug Delivery Science and Technology
M1  - 107444
ER  -