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载氧化钼纳米粒子的胶原支架在创伤治疗中的应用。

Applications of molybdenum oxide nanoparticles impregnated collagen scaffolds in wound therapeutics.

机构信息

Biological Materials Laboratory, CSIR-Central Leather Research Institute, Chennai 600020, India.

Biological Materials Laboratory, CSIR-Central Leather Research Institute, Chennai 600020, India.

出版信息

J Trace Elem Med Biol. 2022 Jul;72:126983. doi: 10.1016/j.jtemb.2022.126983. Epub 2022 Apr 9.

Abstract

INTRODUCTION

The highly complex pathophysiology of the wound micro-environment demands the development of a multi-faceted system which would enhance the wound healing cascade. Incorporation of nanotechnology in wound therapeutics has opened up new avenues to tourment the diseased condition. Amongst the various types of nanoparticles molybdenum oxide nanoparticles posses various inherent properties that makes it a versatile material to be used in healing. Incorporation of Molybdenum nanoparticles into collagen scaffolds would provide a synergistic and sequential healing process ensuring the formation of a fully functional tissue.

MATERIALS AND METHODS

The physico-chemical characterization of the synthesized materials were done using SEM and FT-IR techniques. The bicompatibility and cell proliferation were tested using HaCaT cell lines. Pro-angiogenic ability of the scaffold was tested using CAM assay and Chick aortic arch assay. Finally the in-vivo wound healing ability of the material was tested by creating wound of about 6 cm on the dorsal side of Wistar rats and observed for about 21 days.

RESULTS

The characterization of the scaffold revealed the presence MoO nanoparticles and their structural integrity within the scaffold. The synthesized MoO-collagen nanocomposite was found to be biocompatible and hemocompatible. The in-vitro studies demonstrated that the MoO-collagen scaffold significantly increased the cell adhesion and migration to nearly 2 fold. The MoO embedded collagen sheets synergistically favoured neovascularization and re-epithelization,which would potentially enhance therapeutic efficiency of the scaffold. The nanocomposite also encouraged results in in-vivo analysis, the Wistar rats treated with MoO-collagen scaffolds showed complete healing in about 15 days.

CONCLUSION

The fabricated MoO-collagen scaffold was found to play an important role in all major events of wound healing such as adhesion, migration, proliferation and angiogenesis. The in-vivo healing assay also proved that the healing rate of animals treated with the samples was comparatively faster. Further research using various trace elements would open up promising avenues in healing therapeutics.

摘要

简介

伤口微环境的高度复杂病理生理学需要开发一个多方面的系统,以增强伤口愈合级联反应。将纳米技术纳入伤口治疗开辟了新的途径来治疗疾病。在各种类型的纳米粒子中,氧化钼纳米粒子具有各种固有特性,使其成为一种多功能材料,可用于治疗。将钼纳米粒子掺入胶原支架中会提供协同和顺序愈合过程,确保形成完全功能的组织。

材料和方法

使用 SEM 和 FT-IR 技术对合成材料的物理化学特性进行了表征。使用 HaCaT 细胞系测试了生物相容性和细胞增殖。使用 CAM 测定法和鸡主动脉弓测定法测试了支架的促血管生成能力。最后,通过在 Wistar 大鼠背部创建约 6 厘米的伤口,测试了材料的体内伤口愈合能力,并观察了约 21 天。

结果

支架的表征表明存在 MoO 纳米粒子及其在支架内的结构完整性。合成的 MoO-胶原纳米复合材料被发现具有生物相容性和血液相容性。体外研究表明,MoO-胶原支架显著增加了细胞粘附和迁移,接近 2 倍。MoO 嵌入的胶原片协同促进了血管生成和再上皮化,这将潜在地提高支架的治疗效率。纳米复合材料也在体内分析中取得了结果,用 MoO-胶原支架治疗的 Wistar 大鼠在大约 15 天内完全愈合。

结论

所制备的 MoO-胶原支架在伤口愈合的所有主要事件中都发挥了重要作用,如粘附、迁移、增殖和血管生成。体内愈合试验还证明,用样品治疗的动物的愈合速度较快。使用各种微量元素的进一步研究将在治疗治疗学方面开辟有前途的途径。

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