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Review Open access Aug 2026

Hydrogel-based strategies for periprosthetic joint infection: from osteoimmune mechanisms to clinical translation

Periprosthetic joint infection (PJI) is sustained by implant-associated biofilms, ineffective immune activation, oxidative stress, and impaired osseointegration, and therefore requires more than local bacterial killing alone. Hydrogel-based therapies have attracted growing attention, but their biological effects are often attributed indiscriminately to the hydrogel even when they are primarily produced by incorporated antibiotics, antimicrobial peptides, enzymes, nanoparticles, growth factors, or cells. This narrative review develops a material-centered framework that distinguishes three sources of therapeutic activity: matrix-intrinsic functions, payload-derived biological effects, and hydrogel-enabled effects. We summarize the interface-specific pathophysiology of PJI and analyze the hydrogel properties most relevant to peri-implant treatment, including local retention, injectability, conformability to irregular dead space, wet-surface and implant-interface adaptation, tunable degradation, controlled or stimuli-responsive release, and extracellular matrix-like support. Representative antibacterial, antibiofilm, redox-regulating, immunomodulatory, angiogenic, and osteogenic systems are assessed according to their material composition, payload, release mechanism, experimental model, and direct relevance to true PJI. Hydrogels are also compared with polymethylmethacrylate cement, calcium sulfate carriers, nanoparticles or microspheres, electrospun scaffolds, and conventional implant coatings to clarify their scenario-specific advantages and limitations. The available evidence indicates that hydrogels are most valuable when they improve spatial retention, temporal sequencing, interface contact, or compatibility with labile therapeutics; they are not universally superior when mechanical support, established surgical familiarity, or long-term structural stability is required. Translation will depend on clinically representative implant-associated models, standardized reporting, sterilization and storage compatibility, reproducible manufacturing, surgical usability, and proportionate regulatory complexity. This hydrogel-enabled perspective supports indication-driven design and more rigorous evaluation of local biomaterial strategies for PJI.

Chao Zhang, Rui Zhang, Yuwen Yang et al. · 0 citations
Open access Aug 2026

Biomaterial-mediated remodelling of the inflammatory microenvironment: a pH/ROS-responsive EGCG–metformin hydrogel for infected diabetic wound regeneration

Introduction Diabetic chronic wounds resist healing because persistent bacterial infection, excessive reactive oxygen species (ROS), unresolved pro-inflammatory responses, impaired angiogenesis, and defective tissue remodelling act simultaneously and reinforce one another. We therefore developed an injectable, microenvironment-responsive nanocomposite hydrogel, AP@EM-gel, to target these interconnected pathological processes. Methods AP@EM-gel was constructed from dopamine-grafted alginate (Alg-DA), phenylboronic-acid-modified ε-poly-L-lysine (EPBA), and co-assembled epigallocatechin gallate–metformin nanoparticles (EGCG-MET NPs). Its physicochemical properties, pH/ROS-responsive drug release, antibacterial and antioxidant activities, cytocompatibility, pro-angiogenic effects, and macrophage-modulating capacity were evaluated in vitro. Therapeutic efficacy was further assessed in a streptozotocin-induced diabetic rat model of Staphylococcus aureus-infected full-thickness wounds. Results Dynamic boronate-ester crosslinking produced a self-healing and injectable network that released approximately 73% of EGCG and 68% of metformin under combined pH 6.4 and H2O2 conditions, compared with approximately 38% and 36%, respectively, at pH 7.4. AP@EM-gel achieved antibacterial rates of approximately 93% against S. aureus and 91% against Escherichia coli, exhibited broad-spectrum radical-scavenging activity, and showed favourable cyto- and haemocompatibility. It restored VEGF and bFGF expression in oxidatively stressed endothelial cells and promoted macrophage repolarisation toward the reparative M2 phenotype. In vivo, AP@EM-gel produced near-complete wound closure by day 14 and improved bacterial clearance, re-epithelialisation, collagen organisation, angiogenesis, and inflammatory resolution compared with the commercial dressing. Discussion AP@EM-gel simultaneously interrupts infection, oxidative stress, dysregulated macrophage polarisation, and impaired angiogenesis. This pathology-responsive, multi-target hydrogel represents a promising smart dressing for infected diabetic wound regeneration.

Rui Zhang, Suk Fei Tan, Ye Wang et al. · 0 citations