透明质酸
光热治疗
自愈水凝胶
活性氧
辐照
伤口愈合
生物医学工程
材料科学
单线态氧
原位
生物物理学
纳米技术
氧气
化学
高分子化学
有机化学
生物化学
生物
核物理学
免疫学
遗传学
物理
医学
作者
Yu Zhang,Haixia Wu,Peipei Li,Wenxin Liu,Yanling Zhang,Alideertu Dong
标识
DOI:10.1002/adhm.202101722
摘要
Abstract Most injectable hydrogels used in biomedical engineering have unsatisfactory and untunable mechanical properties, making it difficult to match them with the mechanical strengths of different tissues and organs, which can cause a series of adverse consequences such as immune rejection and soft tissue contusion. In this contribution, dopamine‐modified hyaluronic acid (HA‐DA) is developed as the backbone for an injectable hydrogel using a catechol–Fe 3+ coordination crosslinking strategy. Due to dynamic physical crosslinking, the hydrogel can be easily injected through a single syringe. Into the hydrogel, black phosphorous nanosheets loaded with a Zr‐based porphyrinic metal−organic framework (PCN@BP) are introduced that could generate reactive oxygen species (ROS) under 660 nm laser irradiation, this promotes the oxidative coupling of dopamine in the presence of the ROS, introducing in situ chemical crosslinking into the hydrogel. A physical/chemical double‐crosslinked hydrogel is obtained, effectively improving the hydrogel's mechanical properties, which are tuned in situ by adjusting the irradiation time to match the mechanical modulus of different biological tissues. Combining the excellent photothermal properties and photodynamic performance of the PCN@BP nanosheets yields effective sterilization under mild conditions (below 50 °C, low ROS production). The results show that this hydrogel is an excellent multifunctional wound dressing.
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