将增材制造与机器学习协同用于骨再生中的先进羟基磷灰石支架设计

IF 1.8 4区 材料科学 Q2 MATERIALS SCIENCE, CERAMICS
Atefeh Zarei, Ashkan Farazin
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引用次数: 0

摘要

快速成型制造(AM)方法因其适应性强、能制造出具有复杂宏观形状和特定图案的构造物而在组织工程领域引起了人们的兴趣。最近,以连续相(基体)和增强相(填料)为特征的复合材料已成为增材制造工艺的可行油墨,可制造出具有更强生物仿生和生物活性特性的支架。值得注意的是,人们对羟基磷灰石(HA)增强复合材料给予了极大的关注,尤其是在骨组织工程应用方面,因为它利用了 HA 与原生矿化组织成分的化学相似性。本综述深入探讨了如何利用 AM 技术加工 HA 增强复合材料和生物复合材料,以制造嵌入生物基质(包括细胞组织)的支架。它探讨了有关这些材料的形态、结构和体外/体内生物特性的最新研究成果。综述还根据基质性质对用于加入 HA 增强材料和制造组织替代品的方法进行了分类,并对研究现状和未来前景进行了深入分析。本综述旨在阐明在不断发展的材料组学领域所探索的策略和面临的挑战。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Synergizing additive manufacturing and machine learning for advanced hydroxyapatite scaffold design in bone regeneration

Synergizing additive manufacturing and machine learning for advanced hydroxyapatite scaffold design in bone regeneration

Additive manufacturing (AM) methods have sparked interest within the tissue engineering domain due to their adaptability and capacity to fabricate constructs featuring intricate macroscopic shapes and specific patterns. Recently, composite materials, characterized by distinct phases a continuous phase (matrix) and a reinforcing phase (filler)—have emerged as viable inks for AM processes, enabling the creation of scaffolds with enhanced biomimetic and bioactive properties. Notably, significant attention has been directed towards hydroxyapatite (HA)-reinforced composites, particularly for bone tissue engineering applications, leveraging HA’s chemical resemblance to native mineralized tissue components. This review delves into the utilization of AM techniques for processing HA-reinforced composites and biocomposites to fabricate scaffolds embedded with biological matrices, including cellular tissues. It examines recent research findings concerning the morphological, structural, and in vitro/in vivo biological characteristics of these materials. The review also categorizes the approaches based on the matrix nature used to incorporate HA reinforcements and fabricate tissue substitutes, offering a critical analysis of the current state of research and future prospects. This comprehensive overview aims to elucidate the strategies explored and challenges faced in this evolving field of materiomics.

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来源期刊
Journal of the Australian Ceramic Society
Journal of the Australian Ceramic Society Materials Science-Materials Chemistry
CiteScore
3.70
自引率
5.30%
发文量
123
期刊介绍: Publishes high quality research and technical papers in all areas of ceramic and related materials Spans the broad and growing fields of ceramic technology, material science and bioceramics Chronicles new advances in ceramic materials, manufacturing processes and applications Journal of the Australian Ceramic Society since 1965 Professional language editing service is available through our affiliates Nature Research Editing Service and American Journal Experts at the author''s cost and does not guarantee that the manuscript will be reviewed or accepted
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