This study developed chitosan-halloysite nanotube hydrogel composites as biodegradable drug delivery materials and evaluated how polymer concentration and halloysite loading affected morphology, degradation, swelling, mechanics, antibiotic release, antibacterial performance, and cytocompatibility. Chitosan was ionically crosslinked with tripolyphosphate and combined with undoped or gentamicin-loaded halloysite nanotubes in different ratios. SEM showed that higher chitosan concentrations improved hydrogel structural integrity, while halloysite addition increased surface roughness and, within a limited range, helped preserve bead shape. Lysozyme degradation studies showed that halloysite addition did not significantly alter biodegradation, whereas swelling data indicated that lower chitosan concentration produced less crosslinked, more highly swelling hydrogels. Drug-release testing showed that halloysite-enabled composites provided a more sustained gentamicin release profile than drug-loaded halloysite alone, and bacterial inhibition assays confirmed effective suppression of E. coli and S. aureus when gentamicin was incorporated. Live/dead imaging with pre-osteoblasts showed good cytocompatibility. Mechanically, halloysite improved tensile properties only within a narrow concentration window, with 1–2% halloysite giving the greatest reinforcement and higher halloysite contents leading to nanotube clustering and reduced mechanical performance.
CELLSCALE INSTRUMENT USED
UniVert
Mechanical testing of crosslinked chitosan and chitosan-halloysite hydrogel films was performed using a CellScale UniVert material testing device with a 200 N load cell. Hydrogel films were prepared in identical molds, crosslinked with tripolyphosphate, rinsed, air dried, and cut into specimens measuring approximately 10 mm × 20 mm with an average thickness of 0.02 mm. The samples were subjected to uniaxial tensile testing at a speed of 10 mm/min, and tensile stress, strain, and Young’s modulus were calculated from the resulting stress-strain curves. The UniVert results showed that increasing chitosan concentration increased tensile stress resistance but reduced elongation, while addition of halloysite nanotubes improved tensile properties only at lower concentrations. In particular, 5% chitosan with 2% halloysite showed the greatest increase in strength and modulus, whereas higher halloysite contents progressively weakened the material due to nanotube clustering and poor force conduction. These UniVert measurements were central to the paper because they established the narrow halloysite concentration range that reinforces chitosan hydrogels without compromising their structural integrity.