AI Article Synopsis

  • Silicate-substituted calcium phosphate (Si-CaP) ceramics are effective materials for bone grafts due to their favorable biological properties but suffer from weak mechanical strength and poor structure control.
  • * Researchers developed a new porous 3D printed Si-CaP scaffold using digital light processing (DLP) technology, which improved its mechanical properties, structural uniformity, and internal permeability.
  • * The 3D printed Si-CaP scaffold enhanced bone cell activity and mineralization while enabling sustained release of essential ions, making it a promising option for better bone tissue engineering and regeneration.

Article Abstract

Silicate-substituted calcium phosphate (Si-CaP) ceramics, alternative materials for autogenous bone grafting, exhibit excellent osteoinductivity, osteoconductivity, biocompatibility, and biodegradability; thus, they have been widely used for treating bone defects. However, the limited control over the spatial structure and weak mechanical properties of conventional Si-CaP ceramics hinder their wide application. Here, we used digital light processing (DLP) printing technology to fabricate a novel porous 3D printed Si-CaP scaffold to enhance the scaffold properties. Scanning electron microscopy, compression tests, and computational fluid dynamics simulations of the 3D printed Si-CaP scaffolds revealed a uniform spatial structure, appropriate mechanical properties, and effective interior permeability. Furthermore, compared to Si-CaP groups, 3D printed Si-CaP groups exhibited sustained release of silicon (Si), calcium (Ca), and phosphorus (P) ions. Furthermore, 3D printed Si-CaP groups had more comprehensive and persistent osteogenic effects due to increased osteogenic factor expression and calcium deposition. Our results show that the 3D printed Si-CaP scaffold successfully improved bone marrow mesenchymal stem cells (BMSCs) adhesion, proliferation, and osteogenic differentiation and possessed a distinct apatite mineralization ability. Overall, with the help of DLP printing technology, Si-CaP ceramic materials facilitate the fabrication of ideal bone tissue engineering scaffolds with essential elements, providing a promising approach for bone regeneration.

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Source
http://dx.doi.org/10.1002/bit.28202DOI Listing

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Background And Purpose: Structuring scaffold with both osteogenic and angiogenesis capabilities is a challenge for bone tissue engineering. Powder structured Si-CaP materials have shown excellent osteogenic properties and induction of stem cell differentiation. Our research group have successful produced 3D printed Si-CaP scaffolds by DLP technology.

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Article Synopsis
  • Silicate-substituted calcium phosphate (Si-CaP) ceramics are effective materials for bone grafts due to their favorable biological properties but suffer from weak mechanical strength and poor structure control.
  • * Researchers developed a new porous 3D printed Si-CaP scaffold using digital light processing (DLP) technology, which improved its mechanical properties, structural uniformity, and internal permeability.
  • * The 3D printed Si-CaP scaffold enhanced bone cell activity and mineralization while enabling sustained release of essential ions, making it a promising option for better bone tissue engineering and regeneration.
View Article and Find Full Text PDF

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