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首页> 外文期刊>Materials science & engineering >A bioinspired, ice-templated multifunctional 3D cryogel composite crosslinked through in situ reduction of GO displayed improved mechanical, osteogenic and antimicrobial properties
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A bioinspired, ice-templated multifunctional 3D cryogel composite crosslinked through in situ reduction of GO displayed improved mechanical, osteogenic and antimicrobial properties

机译:通过原位减少展开机械,成骨和抗微生物性能,通过原位减少交联的Bioinspired,冰模拟的多功能3D Cryogel复合材料

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摘要

3D biopolymeric scaffolds often lack the biochemical cues and mechanical strength to encourage bone tissue regeneration. Chemical crosslinkers have been extensively used to impart strength, but have been found to be toxic at the site of implantation and possess a lacuna in physical strength. We attempted to address this by engineering a self-crosslinked polymer through the in-situ reduction of Graphene oxide (GO) in a gelatin cryogel (Gel-RGO) using ice as a template to create pores. Superior osteoinductive and antimicrobial properties were further endowed on the cryogel by incorporating silver nanoparticles decorated nanohydroxyapatite in the GelRGOAg@Hap(2%) cryogel. The optimized biocompatible cryogel favoured bone cell adhesion and its proliferation. The osteoconductive and osteoinductive potential of the cryogel was confirmed through biomineralization and differentiation of bone cells. In addition, these cryogels showed prolonged antimicrobial activity against S. aureus. This investigation exhibits the achievability/prospect of building up an ideal gelatin platform without the utilization of an outside crosslinking agent via manipulating the conditions of gelation. The superior crosslinking achieved between gelatin and GO, in addition to its ability to support bone formation and prevent infection make this cryogel an attractive candidate for bone tissue engineering applications.
机译:3D生物聚糖支架通常缺乏生物化学提示和机械强度,以促进骨组织再生。化学交联剂已被广泛地用于赋予强度,但已被发现在植入部位有毒,并且具有体力的空隙。我们试图通过用冰作为模板在明胶冷冻凝胶(GEL-RGO)中的石墨烯氧化物(GO)的原位还原来解决这一点,以使用冰作为模板以产生孔。通过在Gelrgoag @ Hap(2%)冷冻凝胶中掺入纳米羟基磷灰石的银纳米颗粒装饰纳米羟基磷灰石,进一步赋予冷冻骨诱导性和抗微生物性质。优化的生物相容性冷冻机青睐骨细胞粘附及其增殖。通过骨细胞的生物化和分化来证实冷冻胶的骨导电和骨诱导电位。此外,这些Cryogels针对金黄色葡萄球菌显示出长期的抗菌活性。该研究表现出在不通过操纵凝胶化条件的情况下建立理想的明胶平台的可实现性/前景,而不会利用外交联剂。除了能够支持骨形成和预防感染的能力之外,明胶与预防感染的能力,使这款骨组织工程应用有吸引力的候选者以及对骨组织工程应用有吸引力的候选者之外,还达到了卓越的交联。

著录项

  • 来源
    《Materials science & engineering》 |2021年第2期|111584.1-111584.17|共17页
  • 作者单位

    Inst Nanosci & Technol Habitat Ctr Sect 64 Phase 10 Mohali 160062 Punjab India;

    Inst Nanosci & Technol Habitat Ctr Sect 64 Phase 10 Mohali 160062 Punjab India;

    Inst Nanosci & Technol Habitat Ctr Sect 64 Phase 10 Mohali 160062 Punjab India;

    Inst Nanosci & Technol Habitat Ctr Sect 64 Phase 10 Mohali 160062 Punjab India;

    Inst Nanosci & Technol Habitat Ctr Sect 64 Phase 10 Mohali 160062 Punjab India;

    Inst Nanosci & Technol Habitat Ctr Sect 64 Phase 10 Mohali 160062 Punjab India;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    RGO; Hap; Cryogels; Osteoinductive; Antimicrobial;

    机译:rgo;hap;cryogels;骨诱导;抗微生物;

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