Aug 2026· Small· Vol 22, pp.
e74933
· 0 citations· 196 references
Medicine
TL;DR
This review delineates the evolution from fundamental material design principles, such as NC morphology control and surface chemistry modulation, to the development of NC-based platforms capable of disrupting mature biofilms and eliminating pathogenic bacteria.
Abstract
Antibiotic resistance and biofilm-associated infections represent persistent barriers to effective tissue healing, particularly in chronic and implant-associated wounds. Despite substantial advances in material design, most antibacterial wound dressings remain passive, empirically developed, and poorly adapted to the dynamic biological microenvironment of infection. Nanocellulose (NC), offers exceptional mechanical strength, high surface area, and excellent biocompatibility, positioning it as a versatile matrix for advanced therapeutic applications. Recent innovations focus on engineering NC composites through functionalization with bioactive moieties that enable the activation or localized release of antimicrobial agents selectively within pathological microenvironments. These advanced NC systems are specifically designed to overcome biofilm penetration barriers while minimizing systemic toxicity through site-specific intervention. This review delineates the evolution from fundamental material design principles, such as NC morphology control and surface chemistry modulation, to the development of NC-based platforms capable of disrupting mature biofilms and eliminating pathogenic bacteria. We highlight the breadth, versatility, and long-term potential of NC derivatives and composites as adaptable platforms for antibacterial and antibiofilm applications across multiple infected tissues, including skin, bone, diabetic foot ulcers, and dental infections. Furthermore, we emphasize the translational significance of NC-based hydrogels and scaffolds in future healthcare, positioning them as next-generation, clinically relevant platforms.
Antibacterial hydrogel microneedles (HMNs) have emerged as promising wound-care platforms by integrating the therapeutic versatility of hydrogels with the minimally invasive tissue penetration of microneedles. This review summarizes recent advances in antibacterial HMNs, focusing on the interplay among material composi...
Ji-Hong Li, Wei Wei, Ying Li et al.· Advanced Healthcare Material...· 0 citations
Bacterial infection, biofilm formation, and the associated oxidative stress and persistent inflammation represent major obstacles to wound healing, tissue engineering, and implantable medical devices. Owing to their highly hydrated three-dimensional networks, favorable tissue compatibility, and versatile capacity for f...
Peng Liu, Lin Chen, Jin-Jun Tian et al.· Gels· 0 citations
Wound infections affect 2% of the global population, causing chronic wounds and healthcare burdens as conventional antibiotics increasingly fail against biofilms. Consequently, attention is shifting toward advanced dressings that simultaneously prevent infection and support tissue regeneration. Among these, fibrous dru...
Merve Gul, M. Rosalia, P. Grisoli et al.· International Journal of Pha...· 0 citations
A hydrogel-enabled perspective supports indication-driven design and more rigorous evaluation of local biomaterial strategies for PJI and indicates that hydrogels are not universally superior when mechanical support, established surgical familiarity, or long-term structural stability is required.
Chao Zhang, Rui Zhang, Yuwen Yang et al.· Frontiers in Cell and Develo...· 0 citations
Periprosthetic joint infection (PJI) remains one of the most serious complications of arthroplasty, largely due to the formation of microbial biofilms on implant surfaces. Biofilm-associated infections exhibit increased tolerance to antimicrobial therapy and host immune responses, making eradication difficult and often...
Karolina Kraus, Paweł Mikziński, Bindu Subhadra et al.· Microorganisms· 0 citations
Acute and chronic wounds remain a major clinical burden, motivating the design of multilayer biomedical composite systems capable of combining structural support, antimicrobial protection, and controlled release of therapeutic agents within a single device. These architectures integrate natural and synthetic biomateria...
Jocelyn Marcela Alcalá-Zacarías, J. M. Cornejo-Bravo, A. Serrano-Medina et al.· Journal of Composites Scienc...· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.