The hyaluronic acid (HA)-surface-modified zeolitic imidazolate frameworks (ZIFs) nanoplatform enables active targeting by specifically binding to the CD44 receptor highly expressed on tumor and inflammatory cells. Additionally, the high concentration of hyaluronidase in the lesion microenvironment under weakly acidic conditions progressively degrades the HA shell layer by layer, triggering the dissociation of the ZIF framework and release of therapeutic agents. Meanwhile, the hydrophilic HA layer forms a hydration barrier that inhibits non-specific protein adsorption, enhancing systemic drug delivery efficiency. This platform has evolved into a multifunctional nano-system suitable for drug delivery, biological imaging, and catalytic therapy, applicable in synergistic treatment scenarios for various diseases including malignancies, bacterial infections, skin wound healing, and osteoarticular injuries. Focusing on HA-functionalized ZIFs (HA-ZIFs), this study systematically elucidates the mechanisms of HA modification on interface interactions and compares the effects of different ZIF frameworks and molecular weight of HA on targeting efficacy, biocompatibility, and synergistic therapeutic outcomes. The application mechanisms of HA-ZIFs are reviewed in modular sections across multimodal cancer therapy, integrated tumor diagnosis/treatment, antimicrobial action against drug-resistant bacteria, chronic wound repair, osteoarthritis, and ischemic tissue regeneration, with particular emphasis on chemodynamic, photodynamic/photothermal, and immunomodulatory synergistic pathways. Finally, key challenges hindering clinical translation are discussed, including insufficient stability of multi-functional small-molecule co-carrier systems, lack of comprehensive degradation/metabolism data and long-term toxicological profiles in large animal models, as well as uncertainties regarding prolonged in vivo accumulation and immunological risks. This review systematically examines the value of HA-ZIFs nanoplatforms in advancing clinically relevant medical technologies from an updated and structured perspective.
Rong-Hua Shi, Ying Feng, Yenuo Chen et al.· International Journal of Bio...· 0 citations
Phenothiazine derivatives, with excellent photophysical properties and structural tunability, are commonly used as core skeletons for fluorescent probes targeting reactive oxygen species like hypochlorous acid (HClO). However, the optical characteristics of most reported phenothiazine-based probes are predominantly characterized by either aggregation-caused quenching (ACQ) or aggregation-induced emission (AIE), limiting their practical biological sensing applications. Dual-state emission (DSE) designates fluorophores that maintain significant fluorescence whether in solution or in solid/aggregated states, effectively overcome these drawbacks, yet DSE-based HClO probes remain rarely reported. Herein, we rationally design and synthesize a novel phenothiazine-skeleton DSE fluorophore (PTZ-DNs), which spontaneously self-assembles into water-dispersible nanoparticles (PTZ-DNs NPs) to construct a DSE nanoprobe for HClO sensing and bioimaging. This self-assembled nanoplatform exhibits prominent performances, including favorable aqueous dispersibility, rapid HClO response (<10 s), superior long-term luminescent stability, and good biocompatibility. This work provides a design strategy to develop a DSE-based nanoprobe for detecting biologically relevant reactive species.