Joint Department of Biomedical Engineering, College of Engineering, North Carolina State University/University of North Carolina-Chapel Hill, Raleigh, North Carolina, USA.
Comparative Medicine Institute, North Carolina State University, Raleigh, North Carolina, USA.
Tissue Eng Part B Rev. 2022 Feb;28(1):182-205. doi: 10.1089/ten.TEB.2020.0285. Epub 2021 Mar 17.
It is estimated that almost one-third of the United States population will be affected by a vocal fold (VF) disorder during their lifespan. Promising therapies to treat VF injury and scarring are mostly centered on VF tissue engineering strategies such as the injection of engineered biomaterials and cell therapy. VF tissue engineering, however, is a challenging field as the biomechanical properties, structure, and composition of the VF tissue change upon exposure to mechanical stimulation. As a result, the development of long-term VF treatment strategies relies on the characterization of engineered tissues under a controlled mechanical environment. In this review, we highlight the importance of bioreactors as a powerful tool for VF tissue engineering with a focus on the current state of the art of bioreactors designed to mimic phonation We discuss the influence of the phonatory environment on the development, function, injury, and healing of the VF tissue and its importance for the development of efficient therapeutic strategies. A concise and comprehensive overview of bioreactor designs, principles, operating parameters, and scalability are presented. An in-depth analysis of VF bioreactor data to date reveals that mechanical stimulation significantly influences cell viability and the expression of proinflammatory and profibrotic genes . Although the precision and accuracy of bioreactors contribute to generating reliable results, diverse gene expression profiles across the literature suggest that future efforts should focus on the standardization of bioreactor parameters to enable direct comparisons between studies. Impact statement We present a comprehensive review of bioreactors for vocal fold (VF) tissue engineering with a focus on the influence of the phonatory environment on the development, function, injury, and healing of the VFs and the importance of mimicking phonation on engineered VF tissues . Furthermore, we put forward a strong argument for the continued development of bioreactors in this area with an emphasis on the standardization of bioreactor designs, principles, operating parameters, and oscillatory regimes to enable comparisons between studies.
据估计,在美国人口中,几乎有三分之一的人在其一生中会受到声带(VF)障碍的影响。有前途的治疗 VF 损伤和瘢痕的疗法主要集中在 VF 组织工程策略上,例如注射工程生物材料和细胞疗法。然而,VF 组织工程是一个具有挑战性的领域,因为 VF 组织的生物力学特性、结构和组成在受到机械刺激时会发生变化。因此,长期 VF 治疗策略的发展依赖于在受控机械环境下对工程组织的特性进行表征。在这篇综述中,我们强调了生物反应器作为 VF 组织工程的有力工具的重要性,重点介绍了为模拟发声而设计的生物反应器的最新技术状态。我们讨论了发声环境对 VF 组织的发育、功能、损伤和愈合的影响,以及它对高效治疗策略发展的重要性。本文简要而全面地介绍了生物反应器的设计、原理、操作参数和可扩展性。对迄今为止的 VF 生物反应器数据进行深入分析表明,机械刺激显著影响细胞活力和促炎及促纤维化基因的表达。尽管生物反应器的精度和准确性有助于生成可靠的结果,但文献中的多样化基因表达谱表明,未来的努力应集中在生物反应器参数的标准化上,以实现研究之间的直接比较。