Multi-Tissue Integrated Tissue-Engineered Trachea Regeneration Based on 3D Printed Bioelastomer Scaffolds

被引:0
作者
Song, Xingqi [1 ]
Zhang, Peiling [1 ]
Luo, Bin [2 ]
Li, Ke [1 ]
Liu, Yu [1 ]
Wang, Sinan [1 ]
Wang, Qianyi [1 ]
Huang, Jinyi [1 ]
Qin, Xiaohong [2 ]
Zhang, Yixin [1 ]
Zhou, Guangdong [1 ]
Lei, Dong [1 ]
机构
[1] Shanghai Jiao Tong Univ, Shanghai 9th Peoples Hosp, Sch Med,Shanghai Key Lab Tissue Engn, Dept Plast & Reconstruct Surg,Dept Cardiol, Shanghai 200011, Peoples R China
[2] Donghua Univ, Coll Text, State Key Lab Modificat Chem Fibers & Polymer Mat, Shanghai 201620, Peoples R China
基金
中国国家自然科学基金;
关键词
3D printing; bioelastomer; cartilage; tissue engineering; trachea regeneration; BIOPRINTED ARTIFICIAL TRACHEA; EPITHELIAL-CELLS; IN-VITRO; REPLACEMENT; GRAFT;
D O I
10.1002/advs.202405420
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Functional segmental trachea reconstruction is a critical concern in thoracic surgery, and tissue-engineered trachea (TET) holds promise as a potential solution. However, current TET falls short in fully restoring physiological function due to the lack of the intricate multi-tissue structure found in natural trachea. In this research, a multi-tissue integrated tissue-engineered trachea (MI-TET) is successfully developed by orderly assembling various cells (chondrocytes, fibroblasts and epithelial cells) on 3D-printed PGS bioelastomer scaffolds. The MI-TET closely resembles the complex structures of natural trachea and achieves the integrated regeneration of four essential tracheal components: C-shaped cartilage ring, O-shaped vascularized fiber ring, axial fiber bundle, and airway epithelium. Overall, the MI-TET demonstrates highly similar multi-tissue structures and physiological functions to natural trachea, showing promise for future clinical advancements in functional TETs. This study introduces a novel Multi-tissue Integrated Tissue-Engineered Trachea (MI-TET) based on 3D printed bioelastomer scaffolds. Through 2D patterning and 3D assembling techniques, the researchers effectively organize several kinds of cells to create a well-structured TET. This TET included C-shaped cartilage rings, O-shaped vascularized fiber rings, axial fiber bundle, and airway epithelium, closely mimicking the architecture of natural trachea, which holds promising implications for clinical applications in the repair of segmental trachea defects. image
引用
收藏
页数:13
相关论文
共 50 条
[31]   3D Bioprinted Scaffolds for Tissue Repair and Regeneration [J].
Liu, Na ;
Zhang, Xiaopei ;
Guo, Qingxia ;
Wu, Tong ;
Wang, Yuanfei .
FRONTIERS IN MATERIALS, 2022, 9
[32]   3D Printed Magnetic Origami Scaffolds for Guided Tissue Assembly [J].
Daul, Brandon ;
Martin, Ryan ;
Glass, Phillip ;
Rad, Reza Moonesi ;
Joh, Richard Inho ;
Meng, Fanben ;
Joung, Daeha .
ADVANCED MATERIALS INTERFACES, 2025,
[33]   Cryogel scaffolds from patient-specific 3D-printed molds for personalized tissue-engineered bone regeneration in pediatric cleft-craniofacial defects [J].
Hixon, Katherine R. ;
Melvin, Alexa M. ;
Lin, Alexander Y. ;
Hall, Andrew F. ;
Sell, Scott A. .
JOURNAL OF BIOMATERIALS APPLICATIONS, 2017, 32 (05) :598-611
[34]   NEUROVASCULAR INTERACTIONS IN SKIN REGENERATION: FROM A COMPARTMENTALIZED MODEL TO A 3D TISSUE-ENGINEERED SKIN [J].
Rovini, Amandine ;
Bordes, Sylvie ;
Closs, Brigitte ;
Leng, Jacques ;
Berthod, Francois ;
Amedee, Joelle ;
Desmouliere, Alexis .
JOURNAL OF THE PERIPHERAL NERVOUS SYSTEM, 2022, 27 :S116-S117
[35]   3D tissue-engineered model of Ewing's sarcoma [J].
Lamhamedi-Cherradi, Salah-Eddine a ;
Santoro, Marco ;
Ramammoorthy, Vandhana ;
Menegaz, Brian A. ;
Bartholomeusz, Geoffrey ;
Iles, Lakesla R. ;
Amin, Hesham M. ;
Livingston, J. Andrew ;
Mikos, Antonios G. ;
Ludwig, Joseph A. .
ADVANCED DRUG DELIVERY REVIEWS, 2014, 79-80 :155-171
[36]   3D-printed scaffolds with calcified layer for osteochondral tissue engineering [J].
Li, Zhengyu ;
Jia, Shuaijun ;
Xiong, Zhuo ;
Long, Qianfa ;
Yan, Shaorong ;
Hao, Fu ;
Liu, Jian ;
Yuan, Zhi .
JOURNAL OF BIOSCIENCE AND BIOENGINEERING, 2018, 126 (03) :389-396
[37]   3D Bioprinting for Vascularized Tissue-Engineered Bone Fabrication [J].
Xing, Fei ;
Xiang, Zhou ;
Rommens, Pol Maria ;
Ritz, Ulrike .
MATERIALS, 2020, 13 (10)
[38]   Advances in 3D Bioprinting of Scaffolds for Dental Tissue Engineering and Regeneration [J].
Chen, Senyao ;
Sun, Jianwei ;
Wu, Wenzhi ;
Chen, Zhuo .
ADVANCED FUNCTIONAL MATERIALS, 2025,
[39]   Physico-biological evaluation of 3D printed dECM/TOCN/alginate hydrogel based scaffolds for cartilage tissue regeneration [J].
Shanto, Prayas Chakma ;
Park, Seongsu ;
Park, Myeongki ;
Lee, Byong-Taek .
BIOMATERIALS ADVANCES, 2023, 145
[40]   3D printing of tissue engineering scaffolds: a focus on vascular regeneration [J].
Pengju Wang ;
Yazhou Sun ;
Xiaoquan Shi ;
Huixing Shen ;
Haohao Ning ;
Haitao Liu .
Bio-Design and Manufacturing, 2021, 4 :344-378