3D Bioprinting of Neurovascular Tissue Modeling with Collagen‐Based Low‐Viscosity Composites

Author:

Wang Sen123,Bai Luge123,Hu Xiaoxuan45,Yao Siqi123,Hao Zhiyan123,Zhou JiaJia123,Li Xiao123,Lu Haixia456,He Jiankang123,Wang Ling123ORCID,Li Dichen123

Affiliation:

1. State Key Laboratory for Manufacturing System Engineering Xi'an Jiaotong University Xi'an 710054 China

2. School of Mechanical Engineering Xi'an Jiaotong University Xi'an 710054 China

3. NMPA Key Laboratory for Research and Evaluation of Additive Manufacturing Medical Devices Xi'an 710054 China

4. Institute of Neurobiology School of Basic Medical Sciences Xi'an Jiaotong University Health Science Center Xi'an 710061 China

5. Key Laboratory of Ministry of Education for Environment and Genes Related to Diseases Xi'an Jiaotong University Health Science Center Xi'an 710061 China

6. Department of Human Anatomy & Histoembryology School of Basic Medical Sciences Xi'an Jiaotong University Health Science Center Xi'an 710061 China

Abstract

AbstractIn vitro neurovascular unit (NVU) models are valuable for investigating brain functions and developing drugs. However, it remains challenging to recapitulate the native architectural features and ultra‐soft extracellular matrix (ECM) properties of the natural NVU. Cell‐laden bioprinting is promising to prepare complex living tissues, but hard to balance the fidelity and cell growth. This study proposes a novel two‐stage methodology for biomanufacturing functional 3D neurovascular constructs in vitro with low modulus of ECM. At the shaping stage, a low‐viscosity alginate/collagen is printed through an embedded approach; at the culturing stage, the alginate is removed through targeted lysing. The low‐viscosity and rapid crosslinking properties provide a printing resolution of ≈10 µm, and the lysis processing can decrease the hydrogels’ modulus to ≈1 kPa and adjust the porosity of the microstructure, providing cells with an environment closing to the brain ECM. A 3D hollow coaxial neurovascular model is fabricated, in which the endothelial cells has expressed tight junction proteins and shown selective permeability, and the astrocytes outside of the endothelial layer are found to spread out with branches and directly interact with endothelial cells. The present study offers a promising modeling method for better understanding the NVU function and screening neuro‐drugs.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Publisher

Wiley

Subject

Pharmaceutical Science,Biomedical Engineering,Biomaterials

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