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用于再生医学的羊膜生物聚合物

Amniotic Membrane Biopolymer for Regenerative Medicine.

作者信息

Milyudin Evgeny, Volova Larisa Teodorovna, Kuchuk Ksenia E, Timchenko Elena V, Timchenko Pavel E

机构信息

Biotechnology Center "Biotech", Samara State Medical University, 443079 Samara, Russia.

出版信息

Polymers (Basel). 2023 Feb 28;15(5):1213. doi: 10.3390/polym15051213.

Abstract

Biopolymers based on the amniotic membrane compare favorably with synthetic materials in that, along with a specific 2D structure, they have biologically active properties. However, in recent years, there has been a tendency to perform decellularization of the biomaterial during the preparation of the scaffold. In this study, we studied the microstructure of 157 samples and identified individual biological components in the manufacture of a medical biopolymer from an amniotic membrane using various methods. Group 1 had 55 samples, and the amniotic membrane was impregnated with glycerol and dried over silica gel. Group 2 had 48 samples, and the decellularized amniotic membrane was impregnated with glycerol followed by lyophilization, Group 3 had 44 samples, and the decellularized amniotic membrane without pre-impregnation with glycerol was subjected to lyophilization. Decellularization was performed by treatment with a low-frequency ultrasound at a frequency of 24-40 kHz in an ultrasonic bath. A morphological study using a light microscope and a scanning electron microscope showed the preservation of the structure of the biomaterial and more complete decellularization in samples subjected to lyophilization without prior impregnation with glycerol. The study of the Raman spectroscopy lines of a biopolymer made from a lyophilized amniotic membrane without preliminary impregnation with glycerin showed significant differences in the intensity of the spectral lines of amides, glycogen, and proline. Additionally, in these samples, the spectral lines of Raman scattering the characteristic of glycerol were not visualized; therefore, only biological substances characteristic of the native amniotic membrane have been preserved.

摘要

基于羊膜的生物聚合物与合成材料相比具有优势,因为它们除了具有特定的二维结构外,还具有生物活性特性。然而,近年来,在制备支架的过程中出现了对生物材料进行脱细胞处理的趋势。在本研究中,我们使用各种方法研究了157个样本的微观结构,并确定了从羊膜制造医用生物聚合物过程中的各个生物成分。第1组有55个样本,羊膜用甘油浸渍并在硅胶上干燥。第2组有48个样本,脱细胞羊膜用甘油浸渍后进行冻干,第3组有44个样本,未预先用甘油浸渍的脱细胞羊膜进行冻干。脱细胞处理是在超声浴中用频率为24 - 40kHz的低频超声进行的。使用光学显微镜和扫描电子显微镜进行的形态学研究表明,在未预先用甘油浸渍而进行冻干的样本中,生物材料的结构得以保留,并且脱细胞更完全。对未经甘油预处理的冻干羊膜制成的生物聚合物的拉曼光谱线研究表明,酰胺、糖原和脯氨酸的光谱线强度存在显著差异。此外,在这些样本中,未观察到甘油特征性的拉曼散射光谱线;因此,仅保留了天然羊膜特有的生物物质。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f913/10006864/402811b77189/polymers-15-01213-g001.jpg

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