A tough soft–hard interface in the human knee joint driven by multiscale toughening mechanisms

IF 9.1 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Wenyue Li, Xiaozhao Wang, Renwei Mao, Dong Li, Hongxu Meng, Ru Zhang, Jinghua Fang, Zhengzhong Kang, Boxuan Wu, Weiwei Ma, Xudong Yao, Chang Xie, Rui Li, Jin Wang, Xiao Chen, Xihao Pan, Weiqiu Chen, Wangping Duan, Huajian Gao, Hongwei Ouyang
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引用次数: 0

Abstract

Joining heterogeneous materials in engineered structures remains a significant challenge due to stress concentration at interfaces, which often leads to unexpected failures. Investigating the complex, multiscale-graded structures found in animal tissue provides valuable insights that can help address this challenge. The human meniscus root–bone interface is an exemplary model, renowned for its exceptional fatigue resistance, toughness, and interfacial adhesion properties throughout its lifespan. Here, we investigated the multiscale graded mineralization structure and their strengthening mechanisms within the 30-micron soft–hard interface at the root–bone junction. This graded interface, featuring interdigitated structures and an exponential increase in modulus, undergoes a phase transition from amorphous calcium phosphate (ACP) to gradually matured hydroxyapatite (HAP) crystals, regulated by location-specific distributed biomolecules. In coordination with collagen fibril deformation and reorientation, the in situ tensile mechanical experiments and molecular dynamic simulations revealed that immature ACP particles debond from the collagenous matrix and translocate to dissipate energy, while the progressively matured HAP crystals with high stiffness pins propagating cracks, thereby enhancing both the toughness and fatigue resistance of the interface. To further validate our findings, we built biomimetic soft–hard interfaces with phase-transforming mineralization which exhibited boosted strength, toughness, and interface adhesion. This interface model is generalizable to other material joints and provides a blueprint for developing robust soft–hard composites across various applications.
由多尺度增韧机制驱动的人体膝关节软-硬界面
由于界面应力集中,在工程结构中连接非均质材料仍然是一个重大挑战,经常导致意外的失效。研究在动物组织中发现的复杂的、多尺度的分级结构提供了有价值的见解,可以帮助解决这一挑战。人类半月板根-骨界面是一个典型的模型,以其优异的抗疲劳性、韧性和界面粘附性能而闻名于世。本文研究了根-骨交界处30微米软-硬界面内的多尺度梯度矿化结构及其强化机制。这种梯度界面具有指间结构和模量指数增长的特点,在位置特异性分布的生物分子的调控下,经历了从无定形磷酸钙(ACP)到逐渐成熟的羟基磷灰石(HAP)晶体的相变。原位拉伸力学实验和分子动力学模拟结果表明,未成熟的ACP颗粒在胶原纤维变形和重定向的协同作用下,从胶原基质中脱落并转移能量,而逐渐成熟的高刚度HAP晶体则在裂纹中扩展,从而增强了界面的韧性和抗疲劳性。为了进一步验证我们的发现,我们构建了具有相变矿化的仿生软硬界面,其强度、韧性和界面附着力都得到了提高。该接口模型可推广到其他材料接头,并为开发跨各种应用的坚固软硬复合材料提供了蓝图。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
19.00
自引率
0.90%
发文量
3575
审稿时长
2.5 months
期刊介绍: The Proceedings of the National Academy of Sciences (PNAS), a peer-reviewed journal of the National Academy of Sciences (NAS), serves as an authoritative source for high-impact, original research across the biological, physical, and social sciences. With a global scope, the journal welcomes submissions from researchers worldwide, making it an inclusive platform for advancing scientific knowledge.
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