| Literature DB >> 33941687 |
Di Huang1,2, Tingting Liu1,2,3, Junlong Liao1,4, Sushila Maharjan1, Xin Xie1, Montserrat Pérez1,5, Ingrid Anaya1,5, Shiwei Wang1, Alan Tirado Mayer1,6, Zhixin Kang1, Weijia Kong1, Valerio Luca Mainardi1,7,8, Carlos Ezio Garciamendez-Mijares1,6, Germán García Martínez1,6, Matteo Moretti7,9,10, Weijia Zhang11,12,13, Zhongze Gu4, Amir M Ghaemmaghami14, Yu Shrike Zhang15.
Abstract
Here, we present a physiologically relevant model of the human pulmonary alveoli. This alveolar lung-on-a-chip platform is composed of a three-dimensional porous hydrogel made of gelatin methacryloyl with an inverse opal structure, bonded to a compartmentalized polydimethylsiloxane chip. The inverse opal hydrogel structure features well-defined, interconnected pores with high similarity to human alveolar sacs. By populating the sacs with primary human alveolar epithelial cells, functional epithelial monolayers are readily formed. Cyclic strain is integrated into the device to allow biomimetic breathing events of the alveolar lung, which, in addition, makes it possible to investigate pathological effects such as those incurred by cigarette smoking and severe acute respiratory syndrome coronavirus 2 pseudoviral infection. Our study demonstrates a unique method for reconstitution of the functional human pulmonary alveoli in vitro, which is anticipated to pave the way for investigating relevant physiological and pathological events in the human distal lung.Entities:
Keywords: alveoli; distal lung; inverse opal; lung-on-a-chip; three-dimensional
Year: 2021 PMID: 33941687 DOI: 10.1073/pnas.2016146118
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 11.205