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Microspheres have emerged as a pivotal platform for micron-scale drug delivery, yet their utility has been greatly hindered by limitations in biodegradability, drug loading efficiency, and release kinetics, underscoring the urgent need for a next-generation microsphere platform that integrates high performance, scalability, and multifunctionality. Leveraging host-guest recognition, a series of macrocycle-incorporated polymers is synthesized and engineered a new class of supramolecular microspheres, which feature precisely tunable components, including host molecules, guest cargoes, and polymer components, as well as customizable morphologies, while enabling cost-effective, large-scale production. Following systematic validation of the host-guest recognition between β-cyclodextrin (β-CD) and lanreotide, we developed supramolecular microspheres (LAN@S-CPMs) that achieve a drug loading capacity and release duration approximately twice that of conventional microspheres, effectively curbing the disease progression of acromegaly. Beyond sustained release, porous supramolecular microspheres (S-P[5]PMs-p) fabricated from the pillar[5]arene (P[5])-incorporated polymer exhibit exceptional efficiency in spermine adsorption, while mineralized supramolecular microspheres (SORA@S-CPMs-p@CaCO) loaded with sorafeinib (SORA) are successfully employed in embolization therapy, achieving more complete vascular occlusion compared to non-mineralized microspheres. The modular design of supramolecular microspheres and facile scalability in production offer a transformative platform to overcome the multifaceted challenges currently faced by microsphere-based delivery systems.
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http://dx.doi.org/10.1002/smtd.202501053 | DOI Listing |
Small Methods
September 2025
Key Laboratory of Bioorganic Phosphorus Chemistry & Chemical Biology, Department of Chemistry, Tsinghua University, Beijing, 100084, P. R. China.
Microspheres have emerged as a pivotal platform for micron-scale drug delivery, yet their utility has been greatly hindered by limitations in biodegradability, drug loading efficiency, and release kinetics, underscoring the urgent need for a next-generation microsphere platform that integrates high performance, scalability, and multifunctionality. Leveraging host-guest recognition, a series of macrocycle-incorporated polymers is synthesized and engineered a new class of supramolecular microspheres, which feature precisely tunable components, including host molecules, guest cargoes, and polymer components, as well as customizable morphologies, while enabling cost-effective, large-scale production. Following systematic validation of the host-guest recognition between β-cyclodextrin (β-CD) and lanreotide, we developed supramolecular microspheres (LAN@S-CPMs) that achieve a drug loading capacity and release duration approximately twice that of conventional microspheres, effectively curbing the disease progression of acromegaly.
View Article and Find Full Text PDFACS Appl Bio Mater
August 2025
Maternal and Child Healthcare Medical Research Institute, Shenzhen Maternity and Child Healthcare Hospital, Southern Medical University, Shenzhen, Guangdong 518000, China.
Cell therapy has emerged as a highly effective treatment for degenerative diseases in recent years, and micro/nanorobots, with their small size and versatile mobility, have proven to be reliable carriers for active, targeted cell delivery. However, conventional cell delivery strategies rely on preseeded cells on the micro/nanorobots' surfaces, with in situ retention and subsequent release usually achieved by self-degradation of the carrier robots, which greatly limits their applicability and brings additional biosafety concerns. In this study, we propose an innovative approach to control cell capture and release by a microrobot using host-guest supramolecular interactions between azobenzene and β-cyclodextrin.
View Article and Find Full Text PDFSmall
July 2025
Sauvage Laboratory for Smart Materials, School of Integrated Circuits, Harbin Institute of Technology (Shenzhen), Shenzhen, 518055, China.
In recent years, extensive strategies are developed for designing and manufacturing micro- and nanomotors. However, the controlled assembly and motion modulation of self-assembled micromotors via directional interactions remain challenging. While host-guest systems, particularly azobenzene-β-cyclodextrin (Azo-β-CD) interactions, are well-established in supramolecular chemistry, their application to structurally guided micromotor assembly and motion control is underexplored.
View Article and Find Full Text PDFAdv Sci (Weinh)
July 2025
Department of Orthopedics, Shanghai Key Laboratory for Prevention and Treatment of Bone and Joint Diseases, Shanghai Institute of Traumatology and Orthopedics, Ruijin Hospital, Shanghai Jiao Tong University School of Medicine, 197 Ruijin 2nd Road, Shanghai, 200025, P. R. China.
Supramolecular lubrication refers to lubricant supplementation utilizing intermolecular noncovalent interactions to remodel lubrication structure at biological interfaces. The previous studies found that lubrication supplementation is closely related to damaged matrix regeneration, but the lubrication structure is prone to disintegration and failure. Here, combining with microfluidic and photopolymerization strategies, a supramolecular lubricating hydrogel microsphere is constructed, which is medicated by dipalmitoylphosphatidylcholine (DPPC) liposomes as the core, a natural component in body fluids, and complexed with cartilage matrix-binding peptide functionalized methacryloylated hyaluronan acid (WYR-HAMA) as the photoinitiated site.
View Article and Find Full Text PDFAsian J Pharm Sci
April 2025
Key Laboratory for Molecular Enzymology and Engineering of Ministry of Education, School of Life Sciences, Jilin University, Changchun 130012, China.
Herein, porous poly(lactic-co-glycolic acid) (PLGA) microspheres were prepared to load icariin and miR-23b for the treatment of metastatic lung cancer. The microspheres exhibited desirable aerodynamic diameter, high drug loading and encapsulation efficiency, as well as a favorable drug release profile, which was beneficial for the deposition and exposure of drugs in the lung tissues. The release solution from microspheres exhibited a favorable anti-proliferative effect by inducting cell apoptosis and arresting the cell cycle at G1 phase, and meanwhile inhibited the migration and invasion of cancer cells.
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