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纳米羟基磷灰石/胶原复合材料作为骨再生的支架材料。

Nano-hydroxyapatite/collagen composite as scaffold material for bone regeneration.

机构信息

Medical Bionanotechnology, Faculty of Allied Health Sciences, Chettinad Hospital and Research Institute, Chettinad Academy of Research and Education, Kelambakkam 603103, Tamilnadu, India.

Centre for Nanoscience and Technology, Amrita Vishwa Vidyapeetham, Cochin 682041, Kerala, India.

出版信息

Biomed Mater. 2023 Apr 14;18(3). doi: 10.1088/1748-605X/acc99e.


DOI:10.1088/1748-605X/acc99e
PMID:37001544
Abstract

Regenerative medicine is one of the applications of tissue engineering technology that has upsurged the hope of reforming defective organs, especially bones. Bone regeneration is a natural process but becomes complicated under trauma and disease conditions. Even though there are various conventional methods, the usage of scaffolds serves to be a promising technique where they act as the supporting material and the necessary nutrient factors are supplemented alongside, which facilitates the attachment and growth of cells over the scaffold's surface. Human bone is mainly comprised of a hydroxyapatite (HA)/collagen complex. Recently, reports validated that the HA in the nano regime showed higher cell adherence and subsequent growth. Therefore, while using nano-HA/collagen complex as a scaffold material, the limitations of conventional routes of bone regeneration can be minimized. In this context, the present review focuses on the use and fabrication of nano-HA/collagen complex as a scaffold material for the bone regeneration process.

摘要

再生医学是组织工程技术的应用之一,它燃起了修复缺陷器官,尤其是骨骼的希望。骨再生是一个自然的过程,但在创伤和疾病条件下变得复杂。尽管有各种传统方法,但支架的使用被证明是一种有前途的技术,因为它作为支撑材料,同时补充必要的营养因素,这有利于细胞在支架表面的附着和生长。人体骨骼主要由羟基磷灰石(HA)/胶原复合物组成。最近的报告证实,纳米级的 HA 显示出更高的细胞黏附和随后的生长。因此,在使用纳米 HA/胶原复合物作为支架材料时,可以最大限度地减少传统骨再生途径的局限性。在这方面,本综述重点介绍了纳米 HA/胶原复合物作为支架材料在骨再生过程中的使用和制备。

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[2]
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[3]
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[4]
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[6]
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引用本文的文献

[1]
Effect of Zinc and Magnesium Compounds and Nano-Hydroxyapatite on the Physicochemical Properties and Biological Activity of Alginate and Gelatin Scaffolds for Osteochondral Defects.

J Funct Biomater. 2025-8-19

[2]
3D-Cultured MC3T3-E1-Derived Exosomes Promote Endothelial Cell Biological Function under the Effect of LIPUS.

Biomolecules. 2024-9-13

[3]
Three-dimensional printed calcium phosphate scaffolds emulate bone microstructure to promote bone regrowth and repair.

J Mater Sci Mater Med. 2024-9-3

[4]
Application of gelatin-based composites in bone tissue engineering.

Heliyon. 2024-8-14

[5]
Preparation and Characterization of Carboxymethyl Chitosan/Sodium Alginate Composite Hydrogel Scaffolds Carrying Chlorhexidine and Strontium-Doped Hydroxyapatite.

ACS Omega. 2024-5-12

[6]
A novel Chilean salmon fish backbone-based nanoHydroxyApatite functional biomaterial for potential use in bone tissue engineering.

Front Med (Lausanne). 2024-5-7

[7]
Citric Acid Cross-Linked Gelatin-Based Composites with Improved Microhardness.

Polymers (Basel). 2024-4-12

[8]
Mgp High-Expressing MSCs Orchestrate the Osteoimmune Microenvironment of Collagen/Nanohydroxyapatite-Mediated Bone Regeneration.

Adv Sci (Weinh). 2024-6

[9]
Research hotspots and trends of nanomaterials in stomatology: A bibliometric analysis from 2000 to 2023.

Heliyon. 2024-3-13

[10]
Experimental study of dexamethasone-loaded hollow hydroxyapatite microspheres applied to direct pulp capping of rat molars.

Front Endocrinol (Lausanne). 2023

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