Bioactive Hydrogel–MOF Composites as Resistance-Modulating Wound Interfaces: Molecular Mechanisms and Rational Design for Chronic Wound Management
Nallely G. Hernández-Hernández, Irving A. González-Lara, Lesly Katleya Usme-Duque, Lía A. Martínez-Berlanga, Grecia D. Ortíz-Hernández, María I. León-Campos, Bertha Puente-Urbina, Miguel A. Medina-Morales, Elan I. Loredo-Alcalá, Leopoldo J. Ríos-González, Thelma K. Morales-Martínez, Roberto Arredondo-Valdés, Adolfo Romero-Galarza, Lucía F. Cano-Salazar, Rebeca Betancourt-Galindo, María O. González-Díaz, Nayeli Rodríguez-Fuentes, Javier Enríquez-Medrano, Florentino Soriano-Corral, Raul Rosales-Ibáñez, Amairany Rodríguez-Navarrete, Denis A. Cabrera-Munguía, Jesús A. Claudio-RizoChronic wounds are complex environments marked by persistent inflammation, oxidative stress, hypoxia, and conditions that favor antimicrobial resistance (AMR). Conventional antibiotics often fail due to bacterial persistence and the physicochemical barriers of the wound milieu. Biofilm-associated extracellular polymeric substances (EPS), efflux pump activity, quorum sensing (QS), and horizontal gene transfer (HGT) collectively drive antimicrobial tolerance and resistance dissemination, turning chronic wounds into reservoirs of multidrug-resistant pathogens. Consequently, emerging wound therapies demand multifunctional strategies that modulate the wound microenvironment while interfering with resistance-associated phenotypes. Hydrogel–metal–organic framework (MOF) composites have been explored as multifunctional interfaces that combine extracellular matrix-mimetic properties, tunable porosity, stimuli-responsiveness, and controlled therapeutic delivery with the bioactive functions of MOFs. Depending on their composition and architecture, these systems may exert antimicrobial and antibiofilm effects through ionic, electrostatic, osmotic, catalytic, and oxidative mechanisms, while also influencing ROS levels, inflammation, angiogenesis, and local drug transport. However, antimicrobial activity alone does not equate to resistance modulation. Evidence for direct effects on efflux systems, resistance phenotypes, or HGT remains inconsistent across reported platforms. This review critically examines representative hydrogel–MOF systems for chronic wound applications, comparing their composition, physicochemical properties, biological functions, proposed resistance-related mechanisms, advantages, limitations, and current level of evidence. We emphasize distinguishing experimentally demonstrated resistance-modulating effects from mechanistically proposed functions, and identifying design trade-offs and evidence gaps that must be addressed to develop wound interfaces capable of both supporting tissue regeneration and improving infection control.