Photoacoustic imaging of 3D-printed vascular networks

Author:

Ma ChenshuoORCID,Li Wanlu,Li Daiwei,Chen Maomao,Wang Mian,Jiang Laiming,Mille Luis SantiagoORCID,Garciamendez Carlos Ezio,Zhao Zhibo,Zhou Qifa,Zhang Yu ShrikeORCID,Yao JunjieORCID

Abstract

Abstract Thrombosis in the circulation system can lead to major myocardial infarction and cardiovascular deaths. Understanding thrombosis formation is necessary for developing safe and effective treatments. In this work, using digital light processing (DLP)-based 3D printing, we fabricated sophisticated in vitro models of blood vessels with internal microchannels that can be used for thrombosis studies. In this regard, photoacoustic microscopy (PAM) offers a unique advantage for label-free visualization of the 3D-printed vessel models, with large penetration depth and functional sensitivity. We compared the imaging performances of two PAM implementations: optical-resolution PAM and acoustic-resolution PAM, and investigated 3D-printed vessel structures with different patterns of microchannels. Our results show that PAM can provide clear microchannel structures at depths up to 3.6 mm. We further quantified the blood oxygenation in the 3D-printed vascular models, showing that thrombi had lower oxygenation than the normal blood. We expect that PAM can find broad applications in 3D printing and bioprinting for in vitro studies of various vascular and other diseases.

Funder

American Heart Association

Dr. Caroline Connor

BRAIN Initiative

United States National Institutes of Health

Brigham Research Institute

National Science Foundation

Publisher

IOP Publishing

Subject

Biomedical Engineering,General Medicine,Biomaterials,Biochemistry,Bioengineering,Biotechnology

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