4.8 Article

Cocrystal Strategy toward Multifunctional 3D-Printing Scaffolds Enables NIR-Activated Photonic Osteosarcoma Hyperthermia and Enhanced Bone Defect Regeneration

Journal

ADVANCED FUNCTIONAL MATERIALS
Volume 30, Issue 25, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adfm.201909938

Keywords

3D-printing scaffolds; biomaterials; bone regeneration; cocrystal strategy; osteosarcoma; photonic hyperthermia

Funding

  1. National Key R&D Program of China [2016YFA0203700]
  2. National Natural Science Foundation of China [51872185, 51722211, 51672303, 51902336, 81672143]
  3. Program of Shanghai Subject Chief Scientist [18XD1404300]
  4. Development Fund for Shanghai Talents [2018114]
  5. Science and Technology Commission of Shanghai Municipality [17060502400]
  6. China Postdoctoral Science Foundation [2018M642097]

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Malignant bone tumors are one of the major serious diseases in clinic. Inferior reconstruction of new bone and rapid propagation of residual tumor cells are the main challenges to surgical intervention. Herein, a bifunctional DTC@BG scaffold for near-infrared (NIR)-activated photonic thermal ablation of osteosarcoma and accelerated bone defect regeneration is engineered by in situ growth of NIR-absorbing cocrystal (DTC) on the surface of a 3D-printing bioactive glass (BG) scaffold. The prominent photothermal conversion performance and outstanding bone regeneration capability of DTC@BG scaffolds originate from the precise tailoring of the bandgap between the electron donors and acceptors of DTC and promote new bone growth performance of BG scaffolds. DTC@BG scaffolds not only significantly promote tumor cell ablation in vitro, but also effectively facilitate bone tumor suppression in vivo. In particular, DTC@BG scaffolds exhibit excellent capability in stimulating osteogenic differentiation and angiogenesis, and finally promote newborn bone formation in the bone defects. This research represents the first paradigm for ablating osteosarcoma and facilitating new bone formation through precise modulation of electron donors and acceptors in the cocrystal, which offers a new avenue to construct high-efficiency therapeutic platforms based on cocrystal strategy for ablation of malignant bone tumor.

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