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Advances in Smoking Related In Vitro Inhalation Toxicology: A Perspective Case of Challenges and Opportunities from Progresses in Lung-on-Chip Technologies

期刊

CHEMICAL RESEARCH IN TOXICOLOGY
卷 34, 期 9, 页码 1984-2002

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.chemrestox.1c00219

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资金

  1. BfR [SFP 1322-735, SFP 1322-725]
  2. Hamad Medical Corporation, Qatar [IRGC-05-SI-18-360]
  3. HMC

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Research on the inhalation toxicology of particulate matter from the environment, cigarette smoke, and e-cigarette liquid vapes has focused on the adverse effects on lung tissue. In vitro air-liquid interface (ALI) culture models show potential for toxicity assessment, particularly in the context of e-cigarette toxicity and the complexity of vape flavor components. Advances in developing an ideal exposure system, such as lung-on-chip (LOC) technologies utilizing microfluidic devices, offer new opportunities for studying smoke-related inhalation toxicity.
The inhalation toxicology of multifaceted particulate matter from the environment, cigarette smoke, and e-cigarette liquid vapes is a major research topic concerning the adverse effect of these items on lung tissue. In vitro air-liquid interface (ALI) culture models hold more potential in an inhalation toxicity assessment. Apropos to e-cigarette toxicity, the multiflavor components of the vapes pose a complex experimental bottleneck. While an appropriate ALI setup has been one part of the focus to overcome this, parallel attention towards the development of an ideal exposure system has pushed the field forward. With the advent of microfluidic devices, lung-on-chip (LOC) technologies show enormous opportunities in in vitro smoke-related inhalation toxicity. In this review, we provide a framework, establish a paradigm about smoke-related inhalation toxicity testing in vitro, and give a brief overview of breathing LOC experimental design concepts. The capabilities with optimized bioengineering approaches and microfluidics and their fundamental pros and cons are presented with specific case studies. The LOC model can imitate the structural, functional, and mechanical properties of human alveolar-capillary interface and are more reliable than conventional in vitro models. Finally, we outline current perspective challenges as well as opportunities of future development to smoking lungs-on-chip technologies based on advances in soft robotics, machine learning, and bioengineering.

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