...
首页> 外文期刊>Archives of Materials Science and Engineering >Overview and general ideas of the development of constructions, materials, technologies and clinical applications of scaffolds engineering for regenerative medicine
【24h】

Overview and general ideas of the development of constructions, materials, technologies and clinical applications of scaffolds engineering for regenerative medicine

机译:再生医学支架工程的结构,材料,技术和临床应用发展概况和总体思路

获取原文
           

摘要

Purpose: of this paper is the general presentation of the synergic utilisation of medical knowledge, tissue engineering and materials engineering for fabrication of functional substitutes of damaged tissues in the case of which medical indications show that classical prosthetics/implantation cannot be completely avoided, and that it is also appropriate to achieve natural ingrowth of the implanted elements into a living tissue in the implant area. Design/methodology/approach: This refers to post-injury losses, post-resection losses, as well as those originating from operative treatment of cancerous tumours or inflammation processes. Implantable biomedical devices are currently aggregately considered to be medical bionic implants where bionics is understood as production and investigation of biological systems to prepare and implement artificial engineering systems which can restore the lost functions of biological systems. Findings: The development of new hybrid technologies of bioactive and engineering materials for personalised scaffolds of tissues and bones requires a number of basic research and application work. They are presented numerous examples of the needs of the research for application of various bioactive and engineering materials, and their respective materials processing and tissue engineering technologies for manufacturing of the hybrid personalised implants and scaffolds. Research limitations/implications: There are no reports in the references about an original concept presented by the Author of introduction of prosthetics/implantation and tissue engineering techniques for the purpose of natural ingrowth of the implanted elements into a living tissue in the implant area without having to use mechanical devices, at least in the connection (interface) zone of bone or organ stumps with prosthetic/implant elements. Practical implications: They are open up vast possibilities for the application of the hybrid technologies of bioactive and engineering materials for personalized scaffolds of tissues and bones in accordance with the concept of the Author, presented in this paper.Medical bionic implants encompass numerous solutions eliminating various disfunctions of a human organism, among other implants of the cardiovascular system (stents, vessel prostheses, heart valves, pacemakers, defibrillators), digestive system implants, neuron devices (implants and neuronal prostheses to the central (CNS) and peripheral nervous system (PNS), the cochlea, retina), orthopaedic prostheses (bone grafts, bone plates, fins and other connecting and stabilising devices, including screws applied in the area of ankles, knees and hands, bars and pins for stabilising fractured limbs), screws and plates in skull-jaw-face reconstructions, dental implants, and also scaffolds of bones and tissues in tissue engineering.Originality/value: The Author's idea for the embracing hybrid technologies of bioactive and engineering materials with titanium alloys including personalised scaffolds of tissues and bones will be created. It is also a challenge to achieve a synergy of clinical effects obtained with classical prosthetics/implantation of large lost post-injury or post-resection recesses together with the use of achievements in advanced tissue engineering methods at least in the interface zone of bone or organ stumps with prosthetic elements/implants.
机译:目的:本文概述了医学知识,组织工程和材料工程在制造受损组织的功能性替代品中的协同利用,在这种情况下,医学适应症表明无法完全避免传统的假体/植入,并且使植入元件自然长入植入区域内的活组织中也是适当的。设计/方法/方法:这是指损伤后的损失,切除后的损失以及源自癌性肿瘤或炎症过程的手术治疗的损失。目前,可植入的生物医学装置总体上被认为是医疗仿生植入物,其中仿生学被理解为生物系统的生产和研究,以准备和实施可以恢复生物系统丧失功能的人工工程系统。发现:用于组织和骨骼的个性化支架的生物活性和工程材料的新型混合技术的开发需要大量基础研究和应用工作。他们为应用各种生物活性和工程材料的研究需求提供了无数示例,并提供了各自的材料加工和组织工程技术来制造混合个性化植入物和支架。研究的局限性/含义:在参考文献中没有关于作者提出的关于引入假体/植入和组织工程技术的原始概念的报道,目的是使植入的元素自然向内生长到植入区域的活组织中,而无需至少在骨骼或器官残端与假体/植入元件的连接(界面)区域中使用机械设备。实际意义:根据作者的概念,它们为将生物活性和工程材料的混合技术应用于个性化的组织和骨骼支架开辟了广阔的可能性。人类机体的功能障碍,包括心血管系统的其他植入物(支架,人工血管,心脏瓣膜,起搏器,除纤颤器),消化系统植入物,神经元设备(中央和中枢神经系统假体和周围神经系统(PNS) ),耳蜗,视网膜),矫形假肢(骨移植物,骨板,鳍和其他连接和稳定装置,包括脚踝,膝盖和手部区域使用的螺钉,用于稳定骨折四肢的杆和销),螺钉和板用于组织工程中的颅骨下颌重建,牙科植入物以及骨骼和组织的支架。重要性/价值:作者提出了将生物活性和工程材料与钛合金(包括个性化的组织和骨骼支架)相融合的混合技术的想法。至少在骨骼或器官的界面区域中,通过经典的修复术/植入大量丢失的损伤后或切除后的凹处以及先进的组织工程方法的成果,以取得临床效果的协同效应也是一项挑战带有假体/植入物的树桩。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号