Tissue engineering and regenerative medicine strategies for the repair of tympanic membrane perforations

Q3 Biochemistry, Genetics and Molecular Biology Biomaterials and biosystems Pub Date : 2022-06-01 DOI:10.1016/j.bbiosy.2022.100046
Elizabeth Sainsbury , Ronaldo do Amaral , Alexander W. Blayney , Rory McConn Walsh , Fergal J. O'Brien , Cian O'Leary
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引用次数: 4

Abstract

Despite the high success rate of autologous grafts in tympanic membrane repair, clinical alternatives are required for the closure of unresponsive chronic perforations that can lead to recurring infection and hearing loss. Tissue engineering and regenerative medicine approaches have emerged as another strategy to repair the eardrum, in addition to negating the need for donor tissue harvest and related surgical iatrogenicities. This review highlights the main approaches using biomaterials, growth factors, and cell therapies towards the healing of complex TM perforations. In addition, we discuss the challenges and advances for the development of reliable animal models, which will allow the optimisation and development of novel techniques. Finally, we indicate technologies that are currently used clinically and others that are closer to the market. The advances here discussed on tissue engineering and regenerative medicine strategies applied to the field of TM perforations will allow otologists, surgeons, and researchers to better bring novel technologies to the bedside as well as to develop new ones.

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鼓膜穿孔修复的组织工程与再生医学策略
尽管自体移植物在鼓膜修复中的成功率很高,但临床需要替代方法来关闭无反应的慢性穿孔,这些穿孔可能导致反复感染和听力丧失。组织工程和再生医学方法已经成为修复鼓膜的另一种策略,除了不需要获取供体组织和相关的手术医源性。本文综述了利用生物材料、生长因子和细胞疗法治疗复杂TM穿孔的主要方法。此外,我们还讨论了开发可靠动物模型的挑战和进展,这将使新技术的优化和开发成为可能。最后,我们指出了目前临床上使用的技术和其他更接近市场的技术。本文讨论的组织工程和再生医学策略应用于TM穿孔领域的进展将使耳科医生、外科医生和研究人员更好地将新技术带到床边,并开发新的技术。
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