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高通气率的使用导致生物工程肺支架的再细胞化增强。

Use of High-Rate Ventilation Results in Enhanced Recellularization of Bioengineered Lung Scaffolds.

机构信息

Latner Thoracic Research Laboratories, Division of Thoracic Surgery, University Health Network, Toronto, Ontario, Canada.

Institute of Biomaterials and Biomedical Engineering, University of Toronto, Toronto, Ontario, Canada.

出版信息

Tissue Eng Part C Methods. 2021 Dec;27(12):661-671. doi: 10.1089/ten.TEC.2021.0182.

Abstract

While transplantation is a viable treatment option for end-stage lung diseases, this option is highly constrained by the availability of organs and postoperative complications. A potential solution is the use of bioengineered lungs generated from repopulated acellular scaffolds. Effective recellularization, however, remains a challenge. In this proof-of-concept study, mice lung scaffolds were decellurized and recellurized using human bronchial epithelial cells (BEAS2B). We present a novel liquid ventilation protocol enabling control over tidal volume and high rates of ventilation. The use of a physiological tidal volume (300 μL) for mice and a higher ventilation rate (40 breaths per minute vs. 1 breath per minute) resulted in higher cell numbers and enhanced cell surface coverage in mouse lung scaffolds as determined via histological evaluation, genomic polymerase chain reaction (PCR) analysis, and immunohistochemistry. A biomimetic lung bioreactor system was designed to include the new ventilation protocol and allow for simultaneous vascular perfusion. We compared the lungs cultured in our dual system to lungs cultured with a bioreactor allowing vascular perfusion only and showed that our system significantly enhances cell numbers and surface coverage. In summary, our results demonstrate the importance of the physical environment and forces for lung recellularization. Impact statement New bioreactor systems are required to further enhance the regeneration process of bioengineered lungs. This proof-of-concept study describes a novel ventilation protocol that allows for control over ventilation parameters such as rate and tidal volume. Our data show that a higher rate of ventilation is correlated with higher cell numbers and increased surface coverage. We designed a new biomimetic bioreactor system that allows for ventilation and simultaneous perfusion. Compared to a traditional perfusion only system, recellularization was enhanced in lungs recellularized with our new biomimetic bioreactor.

摘要

虽然移植是治疗终末期肺部疾病的可行方法,但由于器官的可用性和术后并发症,这种方法受到很大限制。一种潜在的解决方案是使用重新填充细胞的无细胞支架生成的生物工程肺。然而,有效的再细胞化仍然是一个挑战。在这项概念验证研究中,使用人支气管上皮细胞(BEAS2B)对小鼠肺支架进行脱细胞和再细胞化。我们提出了一种新的液体通气方案,能够控制潮气量和高通气率。使用生理潮气量(300μL)进行小鼠通气和更高的通气率(40 次/分钟,而不是 1 次/分钟),通过组织学评估、基因组聚合酶链反应(PCR)分析和免疫组织化学,导致小鼠肺支架中的细胞数量增加和细胞表面覆盖率提高。设计了一种仿生肺生物反应器系统,包括新的通气方案,并允许同时进行血管灌注。我们将在我们的双系统中培养的肺与仅允许血管灌注的生物反应器中培养的肺进行了比较,并表明我们的系统显著提高了细胞数量和表面覆盖率。总之,我们的结果表明了物理环境和力对肺再细胞化的重要性。

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