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三维生物打印皮肤微浮雕及其在皮肤衰老中的作用。

Three-Dimensional Bioprinted Skin Microrelief and Its Role in Skin Aging.

作者信息

Sun Wenxuan, Wang Bo, Yang Tianhao, Yin Ruixue, Wang Feifei, Zhang Hongbo, Zhang Wenjun

机构信息

School of Mechanical and Power Engineering, East China University of Science and Technology, Shanghai 200237, China.

Yunnan Botanee Bio-Technology Group Co., Ltd., Kunming 650033, China.

出版信息

Biomimetics (Basel). 2024 Jun 17;9(6):366. doi: 10.3390/biomimetics9060366.

Abstract

Skin aging is a complex physiological process, in which cells and the extracellular matrix (ECM) interreact, which leads to a change in the mechanical properties of skin, which in turn affects the cell secretion and ECM deposition. The natural skin microrelief that exists from birth has rarely been taken into account when evaluating skin aging, apart from the common knowledge that microreliefs might serve as the starting point or initialize micro-wrinkles. In fact, microrelief itself also changes with aging. Does the microrelief have other, better uses? In this paper, owing to the fast-developing 3D printing technology, skin wrinkles with microrelief of different age groups were successfully manufactured using the Digital light processing (DLP) technology. The mechanical properties of skin samples with and without microrelief were tested. It was found that microrelief has a big impact on the elastic modulus of skin samples. In order to explore the role of microrelief in skin aging, the wrinkle formation was numerically analyzed. The microrelief models of different age groups were created using the modified Voronoi algorithm for the first time, which offers fast and flexible mesh formation. We found that skin microrelief plays an important role in regulating the modulus of the epidermis, which is the dominant factor in wrinkle formation. The wrinkle length and depth were also analyzed numerically for the first time, owing to the additional dimension offered by microrelief. The results showed that wrinkles are mainly caused by the modulus change of the epidermis in the aging process, and compared with the dermis, the hypodermis is irrelevant to wrinkling. Hereby, we developed a hypothesis that microrelief makes the skin adaptive to the mechanical property changes from aging by adjusting its shape and size. The native-like skin samples with microrelief might shed a light on the mechanism of wrinkling and also help with understanding the complex physiological processes associated with human skin.

摘要

皮肤老化是一个复杂的生理过程,其中细胞与细胞外基质(ECM)相互作用,导致皮肤力学性能发生变化,进而影响细胞分泌和ECM沉积。除了微纹理可能是微皱纹的起点或引发因素这一常识外,在评估皮肤老化时,人们很少考虑从出生就存在的天然皮肤微纹理。事实上,微纹理本身也会随着衰老而变化。微纹理还有其他更好的用途吗?在本文中,由于快速发展的3D打印技术,利用数字光处理(DLP)技术成功制造出了不同年龄组具有微纹理的皮肤皱纹。测试了有和没有微纹理的皮肤样本的力学性能。发现微纹理对皮肤样本的弹性模量有很大影响。为了探究微纹理在皮肤老化中的作用,对皱纹形成进行了数值分析。首次使用改进的Voronoi算法创建了不同年龄组的微纹理模型,该算法能快速灵活地生成网格。我们发现皮肤微纹理在调节表皮模量方面起着重要作用,而表皮模量是皱纹形成的主导因素。由于微纹理提供了额外的维度,首次对皱纹长度和深度也进行了数值分析。结果表明,皱纹主要是由衰老过程中表皮模量的变化引起的,与真皮相比,皮下组织与皱纹形成无关。据此,我们提出了一个假设,即微纹理通过调整其形状和大小使皮肤适应衰老引起的力学性能变化。具有微纹理的类似天然皮肤样本可能会揭示皱纹形成的机制,也有助于理解与人类皮肤相关的复杂生理过程。

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