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Gelatin-based electrospun and lyophilized scaffolds with nano scale feature for bone tissue engineering application: review

期刊

JOURNAL OF BIOMATERIALS SCIENCE-POLYMER EDITION
卷 33, 期 13, 页码 1704-1758

出版社

TAYLOR & FRANCIS LTD
DOI: 10.1080/09205063.2022.2068943

关键词

Gelatin; bone tissue engineering; electrospun scaffolds; freeze-dried scaffolds; extracellular matrix

资金

  1. Department of Biotechnology (DBT), India [BT/PR13005/MED/31/294/2015]

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The rebuilding of damaged human bone tissue is an important objective in bone tissue engineering. Fabricated scaffolds, which mimic the native extracellular matrix of bone, are used as artificial supports and materials for regeneration of new bone tissues. Gelatin, a potential candidate, can be blended with other polymers or composites to enhance its performance as a bone graft. Freeze-drying and electrospinning are popular techniques for scaffold fabrication, providing a unique architecture with desired porosity and pore interconnectivity. These scaffolds resemble the natural bone extracellular matrix and have applications in bone tissue engineering.
The rebuilding of the normal functioning of the damaged human body bone tissue is one of the main objectives of bone tissue engineering (BTE). Fabricated scaffolds are mostly treated as artificial supports and as materials for regeneration of neo bone tissues and must closely biomimetic the native extracellular matrix of bone. The materials used for developing scaffolds should be biodegradable, nontoxic, and biocompatible. For the resurrection of bone disorder, specifically natural and synthetic polymers such as chitosan, PCL, gelatin, PGA, PLA, PLGA, etc. meet the requirements for serving their functions as artificial bone substitute materials. Gelatin is one of the potential candidates which could be blended with other polymers or composites to improve its physicochemical, mechanical, and biological performances as a bone graft. Scaffolds are produced by several methods including electrospinning, self-assembly, freeze-drying, phase separation, fiber drawing, template synthesis, etc. Among them, freeze-drying and electrospinning are among the popular, simplest, versatile, and cost-effective techniques. The design and preparation of freeze-dried and electrospun scaffolds are of intense research over the last two decades. Freeze-dried and electrospun scaffolds offer a distinctive architecture at the micro to nano range with desired porosity and pore interconnectivity for selective movement of small biomolecules and play its role as an appropriate matrix very similar to the natural bone extracellular matrix. This review focuses on the properties and functionalization of gelatin-based polymer and its composite in the form of bone scaffolds fabricated primarily using lyophilization and electrospinning technique and their applications in BTE.

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