4.8 Article

Manganese silicate nanospheres-incorporated hydrogels:starvation therapy and tissue regeneration

期刊

BIOACTIVE MATERIALS
卷 6, 期 12, 页码 4558-4567

出版社

KEAI PUBLISHING LTD
DOI: 10.1016/j.bioactmat.2021.04.042

关键词

Manganese silicate hollow nanospheres; Composite hydrogel; Starvation therapy; Photothermal therapy; Tissue regeneration

资金

  1. National Natural Science Foundation of China [81771989]
  2. Innovation Cross Team of Chinese Academy Sciences [JCTD-2018-13]
  3. Science and Technology Commission of Shanghai Municipality [20442420300, 20490713900]
  4. Youth Innovation Promotion Association CAS

向作者/读者索取更多资源

A novel alginate hydrogel with excellent photothermal effect and starvation therapy ability was developed for preventing and treating postoperative skin tumors. The hydrogel showed promising anti-tumor effects and promoted wound healing, making it a potential multifunctional platform for treating tumor-caused skin defects in the future.
To prevent postoperative skin tumor recurrence and repair skin wound, a glucose oxidase (GOx)-loaded manganese silicate hollow nanospheres (MS HNSs)-incorporated alginate hydrogel (G/MS-SA) was constructed for starvation-photothermal therapy and skin tissue regeneration. The MS HNSs showed a photothermal conversion efficiency of 38.5%, and endowed composite hydrogels with satisfactory photothermal effect. Taking advantage of the catalytic activity of Mn ions, the composite hydrogels could decompose hydrogen peroxide (H2O2) into oxygen (O-2), which can alleviate the problem of tumor hypoxia microenvironment and endow GOx with an ability to consume glucose in the presence of O-2 for tumor starvation. Meanwhile, hyperthermia triggered by near infrared (NIR) irradiation could not only accelerate the reaction rate of H2O2 decomposition by MS HNSs and glucose consumption by GOx, but also ablate tumor cells. The anti-tumor results showed that synergistic effect of starvation-photothermal therapy led to the highest death rate of tumor cells among all groups, and its anti-tumor effect was obviously improved as compared with that of single photothermal treatment or starvation treatment. Interestingly, the introduction of MS HNSs into hydrogels could distinctly promote the epithelialization of the wound beds by releasing Mn ions as compared with the hydrogels without MS HNSs. It is expected that such a multifunctional platform with starvation-photothermal therapy will be promising for treating tumor-caused skin defects in combination of its regeneration bioactivity in the future.

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