Institute for Regenerative Medicine, Sechenov First Moscow State Medical University, Moscow, 119991, Russia.
CAS Key Laboratory for Biomedical Effects of Nanomaterials and Nanosafety, CAS Center for Excellence in Nanoscience, National Center for Nanoscience and Technology of China, Beijing, 100190, P. R. China.
Biotechnol J. 2020 Aug;15(8):e1900334. doi: 10.1002/biot.201900334. Epub 2020 Mar 4.
Bioprosthetic materials based on mammalian pericardium tissue are the gold standard in reconstructive surgery. Their application range covers repair of rectovaginal septum defects, abdominoplastics, urethroplasty, duraplastics, maxillofacial, ophthalmic, thoracic and cardiovascular reconstruction, etc. However, a number of factors contribute to the success of their integration into the host tissue including structural organization, mechanical strength, biocompatibility, immunogenicity, surface chemistry, and biodegradability. In order to improve the material's properties, various strategies are developed, such as decellularization, crosslinking, and detoxification. In this review, the existing issues and long-term achievements in the development of bioprosthetic materials based on the mammalian pericardium tissue, aimed at a wide-spectrum application in reconstructive surgery are analyzed. The basic technical approaches to preparation of biocompatible forms providing continuous functioning, optimization of biomechanical and functional properties, and clinical applicability are described.
基于哺乳动物心包组织的生物假体材料是重建外科的金标准。它们的应用范围包括修复直肠阴道隔缺陷、腹部整形术、尿道成形术、硬脑膜成形术、颌面、眼科、胸科和心血管重建等。然而,许多因素有助于它们成功地整合到宿主组织中,包括结构组织、机械强度、生物相容性、免疫原性、表面化学和可生物降解性。为了改善材料的性能,开发了各种策略,如脱细胞、交联和解毒。在这篇综述中,分析了基于哺乳动物心包组织的生物假体材料在发展过程中存在的问题和取得的长期成就,旨在广泛应用于重建外科。描述了制备生物相容性形式的基本技术方法,这些方法提供了连续的功能、优化的生物力学和功能特性以及临床适用性。