A multicrosslinked network composite hydrogel scaffold based on DLP photocuring printing for nasal cartilage repair

Author:

Jia Wendan1,Liu Zixian12ORCID,Sun Lei12,Cao Yanyan13,Shen Zhizhong14,Li Meng15,An Yang6,Zhang Hulin1,Sang Shengbo12ORCID

Affiliation:

1. Shanxi Key Laboratory of Micro Nano Sensors & Artificial Intelligence Perception, College of Electronic Information and Optical Engineering Taiyuan University of Technology Taiyuan China

2. Key Lab of Advanced Transducers and Intelligent Control System of the Ministry of Education Taiyuan University of Technology Taiyuan China

3. College of Information Science and Engineering Hebei North University Zhangjiakou China

4. Shanxi Research Institute of 6D Artificial Intelligence Biomedical Science Taiyuan China

5. Shanxi‐Zheda Institute of Advanced Materials and Chemical Engineering Taiyuan China

6. Department of Plastic Surgery Peking University Third Hospital Beijing China

Abstract

AbstractNatural hydrogels are widely employed in tissue engineering and have excellent biodegradability and biocompatibility. Unfortunately, the utilization of such hydrogels in the field of three‐dimensional (3D) printing nasal cartilage is constrained by their subpar mechanical characteristics. In this study, we provide a multicrosslinked network hybrid ink made of photocurable gelatin, hyaluronic acid, and acrylamide (AM). The ink may be processed into intricate 3D hydrogel structures with good biocompatibility and high stiffness properties using 3D printing technology based on digital light processing (DLP), including intricate shapes resembling noses. By varying the AM content, the mechanical behavior and biocompatibility of the hydrogels can be adjusted. In comparison to the gelatin methacryloyl (GelMA)/hyaluronic acid methacryloyl (HAMA) hydrogel, adding AM considerably enhances the hydrogel's mechanical properties while also enhancing printing quality. Meanwhile, the biocompatibility of the multicrosslinked network hydrogels and the development of cartilage were assessed using neonatal Sprague–Dawley (SD) rat chondrocytes (CChons). Cells sown on the hydrogels considerably multiplied after 7 days of culture and kept up the expression of particular proteins. Together, our findings point to GelMA/HAMA/polyacrylamide (PAM) hydrogel as a potential material for nasal cartilage restoration. The photocuring multicrosslinked network ink composed of appropriate proportions of GelMA/HAMA/PAM is very suitable for DLP 3D printing and will play an important role in the construction of nasal cartilage, ear cartilage, articular cartilage, and other tissues and organs in the future. Notably, previous studies have not explored the application of 3D‐printed GelMA/HAMA/PAM hydrogels for nasal cartilage regeneration.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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