Establishment of a 3D-Printed Tissue-on-a-Chip Model for Live Imaging of Bacterial Infections.

4区 医学 Q2 Biochemistry, Genetics and Molecular Biology
Albert Fuglsang-Madsen, Janus Anders Juul Haagensen, Charlotte De Rudder, Filipa Bica Simões, Søren Molin, Helle Krogh Johansen
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引用次数: 0

Abstract

Despite advances in healthcare, bacterial pathogens remain a severe global health threat, exacerbated by rising antibiotic resistance. Lower respiratory tract infections, with their high death toll, are of particular concern. Accurately replicating host-pathogen interactions in laboratory models is crucial for understanding these diseases and evaluating new therapies. In this communication, we briefly present existing in vivo models for cystic fibrosis and their limitations in replicating human respiratory infections. We then present a novel, 3D-printed, cytocompatible microfluidic lung-on-a-chip device, designed to simulate the human lung environment, and with possible use in recapitulating general infectious diseases.Our device enables the colonisation of fully differentiated lung epithelia at an air-liquid interface with Pseudomonas aeruginosa, a key pathogen in many severe infections. By incorporating dynamic flow, we replicate the clearance of bacterial toxins and planktonic cells, simulating both acute and chronic infections. This platform supports real-time monitoring of therapeutic interventions, mimics repeated drug administrations as in clinical settings, and facilitates the analysis of colony-forming units and cytokine secretion over time. Our findings indicate that this lung-on-a-chip device has significant potential for advancing infectious disease research, in optimizing treatment strategies against infections and in developing novel treatments.

建立用于细菌感染实时成像的3d打印组织芯片模型。
尽管医疗保健取得了进步,但细菌性病原体仍然是严重的全球健康威胁,抗生素耐药性的上升加剧了这一威胁。死亡率高的下呼吸道感染尤其令人关切。在实验室模型中准确复制宿主-病原体相互作用对于理解这些疾病和评估新疗法至关重要。在本文中,我们简要介绍了囊性纤维化的现有体内模型及其在复制人类呼吸道感染方面的局限性。然后,我们提出了一种新颖的,3d打印的,细胞兼容的微流控肺芯片设备,旨在模拟人类肺部环境,并可能用于概括一般传染病。我们的设备使完全分化的肺上皮定植在空气-液体界面与铜绿假单胞菌,许多严重感染的关键病原体。通过结合动态流动,我们复制了细菌毒素和浮游细胞的清除,模拟了急性和慢性感染。该平台支持实时监测治疗干预措施,模拟临床环境中的重复给药,并促进对菌落形成单位和细胞因子分泌的分析。我们的研究结果表明,这种肺芯片设备在推进传染病研究、优化抗感染治疗策略和开发新型治疗方法方面具有重大潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Advances in experimental medicine and biology
Advances in experimental medicine and biology 医学-医学:研究与实验
CiteScore
5.90
自引率
0.00%
发文量
465
审稿时长
2-4 weeks
期刊介绍: Advances in Experimental Medicine and Biology provides a platform for scientific contributions in the main disciplines of the biomedicine and the life sciences. This series publishes thematic volumes on contemporary research in the areas of microbiology, immunology, neurosciences, biochemistry, biomedical engineering, genetics, physiology, and cancer research. Covering emerging topics and techniques in basic and clinical science, it brings together clinicians and researchers from various fields.
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