Engineering Tridimensional Hydrogel Tissue and Organ Phantoms with Tunable Springiness

Author:

Liu Desheng12,Jiang Pan1,Wang Yixian3,Lu Yaozhong1,Wu Jiayu4,Xu Xin4,Ji Zhongying15,Sun Chufeng3,Wang Xiaolong125ORCID,Liu Weimin12

Affiliation:

1. State Key Laboratory of Solid Lubrication Lanzhou Institute of Chemical Physics Chinese Academy of Sciences Lanzhou 730000 China

2. Center of Materials Science and Optoelectronics Engineering University of Chinese Academy of Sciences Beijing 100049 China

3. School of Chemical Engineering Northwest Minzu University Lanzhou 730030 China

4. School of Chemistry and Chemical Engineering Key Laboratory of Materials‐Oriented Chemical Engineering of Xinjiang Uygur Autonomous Region Shihezi University Shihezi 832003 China

5. Shandong Laboratory of Yantai Advanced Materials and Green Manufacturing Yantai Zhongke Research Institute of Advanced Materials and Green Chemical Engineering Yantai 264006 China

Abstract

AbstractBiomimicking organ phantoms with vivid biological structures and soft and slippery features are essential for in vitro biomedical applications yet remain hither to unmet challenges in their fabrication such as balancing between spatial structural complexity and matchable mechanical properties. Herein, 3D printable tissue‐mimicking elastomeric double network hydrogels with tailorable stiffness are evolved to idiosyncratically match diverse biological soft tissues by regulating the compositions of hydrogel matrix and the density of metal coordination bonds. Relying on digital light processing 3D printing, various mechanically tunable biomimetic volumetric hydrogel organ constructs with structural complexity and fidelity, including kidney, brain, heart, liver, stomach, lung, trachea, intestine, and even the intricate vascularized tissues, are fabricated faultlessly. Proof‐of‐concept 3D printed hydrogel heart and liver phantoms provide sophisticated internal channels and cavity structures and external realistic anatomical architectures that more closely mimic native organs. For the in vitro application demonstration, a 3D printed hydrogel brain phantom with tortuous cerebral arteries and slippery characters serves as an effective neurosurgical training platform for realistic simulation of endovascular interventions. This platform offers a means to construct mechanically precisely tunable hydrogel‐based biomimetic organ phantoms that are expected to be used in surgical training, medical device testing, and organs‐on‐chips.

Funder

National Basic Research Program of China

National Natural Science Foundation of China

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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