Engineered wound dressing materials with excellent injectability,
self-healing ability, tissue-adhesiveness, especially the ones possessing
potential therapeutic effects have great practical significance in
healthcare. Herein, an injectable quaternary ammonium chitosan (QCS)/tannic
acid (TA) hydrogel based on QCS and TA was designed and fabricated
by facile mixing of the two ingredients under physiological conditions.
In this system, hydrogels were mainly cross-linked by dynamic ionic
bonds and hydrogen bonds between QCS and TA, which endows the hydrogel
with excellent injectable, self-healing, and adhesive properties.
Benefitting from the inherent antioxidative, antibacterial, and hemostatic
abilities of TA and QCS, this hydrogel showed superior reactive oxygen
species scavenging activity, broad-spectrum antibacterial ability,
as well as rapid hemostatic capability. Moreover, the QCS/TA2.5 hydrogel (containing 2.5% TA) exhibited excellent biocompatibility.
The in vivo experiments also showed that QCS/TA2.5 hydrogel
dressing not only rapidly stopped the bleeding of arterial and deep
incompressible wounds in mouse tail amputation, femoral artery hemorrhage,
and liver incision models but also significantly accelerated wound
healing in a full-thickness skin wound model. For the great potentials
listed above, this multifunctional QCS/TA2.5 hydrogel offers
a promising network as a dressing material for both rapid hemostasis
and skin wound repair.
Multifunctional hydrogel as a sealant or wound dressing with high adhesiveness and excellent antibacterial activity is highly desirable in clinical applications. In this contribution, one-step synthetic hydrogel based on quaternized chitosan (QCS), tannic acid (TA), and ferric iron (Fe(III)) is developed for skin incision closure and Staphylococcus aureus (S. aureus)-infected wound healing. In this hydrogel system, the ionic bonds and hydrogen bonds between QCS and TA form the main backbone of hydrogel, the metal coordination bonds between TA and Fe(III) (catechol-Fe) endow hydrogel with excellent adhesiveness and (near-infrared light) NIR-responsive photothermal property, and these multiple dynamic physical crosslinks enable QCS/TA/Fe hydrogel with flexible self-healing ability and injectability. Moreover, QCS/TA/Fe hydrogel possesses superior antioxidant, anti-inflammatory, hemostasis, and biocompatibility. Also, it is safe for vital organs. The data from the mouse skin incision model and infected full-thickness skin wound model presented the high wound closure effectiveness and acceleration of the wound healing process by this multifunctional hydrogel, highlighting its great potential in wound management.
Injectable hydrogel has the advantage to fill the defective area and thereby shows promise as therapeutic implant or cell/drug delivery vehicle for tissue repair. In this study, an injectable hyaluronic acid hydrogel
in situ
dual-enzymatically cross-linked by galactose oxidase (GalOx) and horseradish peroxidase (HRP) was synthesized and optimized, and the therapeutic effect of this hydrogel encapsulated with bone mesenchymal stem cells (BMSC) and nerve growth factors (NGF) for traumatic brain injury (TBI) mice was investigated. Results from
in vitro
experiments showed that either tyramine-modified hyaluronic acid hydrogels (HT) or NGF loaded HT hydrogels (HT/NGF) possessed good biocompatibility. More importantly, the HT hydrogels loaded with BMSC and NGF could facilitate the survival and proliferation of endogenous neural cells probably by neurotrophic factors release and neuroinflammation regulation, and consequently improved the neurological function recovery and accelerated the repair process in a C57BL/6 TBI mice model. All these findings highlight that this injectable, BMSC and NGF-laden HT hydrogel has enormous potential for TBI and other tissue repair therapy.
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