Innovative 3D bioprinting approaches for advancing brain science and medicine: a literature review

被引:1
|
作者
Xu, Bocheng [1 ]
Franca, Rodrigo [1 ,2 ]
机构
[1] Univ Manitoba, Price Fac Engn, Dept Biomed Engn, Winnipeg, MB R3E 0W2, Canada
[2] Univ Manitoba, Rady Fac Hlth Sci, Dent Biomat Res Lab, Winnipeg, MB R3E 0W2, Canada
来源
关键词
3D bioprinting; tissue engineering; bioinks; biocompatible materials; brain neuroscience applications; neural tissue engineering; disease modeling; STEM-CELLS; TISSUE; HYDROGELS; FABRICATION; ORGANOIDS; IMPACT; BIOINK;
D O I
10.1088/2057-1976/ad795c
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
The rapid advancements in 3D printing technology have revolutionized the field of tissue engineering, particularly in the development of neural tissues for the treatment of nervous system diseases. Brain neural tissue, composed of neurons and glial cells, plays a crucial role in the functioning of the brain, spinal cord, and peripheral nervous system by transmitting nerve impulses and processing information. By leveraging 3D bioprinting and bioinks, researchers can create intricate neural scaffolds that facilitate the proliferation and differentiation of nerve cells, thereby promoting the repair and regeneration of damaged neural tissues. This technology allows for the precise spatial arrangement of various cell types and scaffold materials, enabling the construction of complex neural tissue models that closely mimic the natural architecture of the brain. Human-induced pluripotent stem cells (hiPSCs) have emerged as a groundbreaking tool in neuroscience research and the potential treatment of neurological diseases. These cells can differentiate into diverse cell types within the nervous system, including neurons, astrocytes, microglia, oligodendrocytes, and Schwann cells, providing a versatile platform for studying neural networks, neurodevelopment, and neurodegenerative disorders. The use of hiPSCs also opens new avenues for personalized medicine, allowing researchers to model diseases and develop targeted therapies based on individual patient profiles. Despite the promise of direct hiPSC injections for therapeutic purposes, challenges such as poor localization and limited integration have led to the exploration of biomaterial scaffolds as supportive platforms for cell delivery and tissue regeneration. This paper reviews the integration of 3D bioprinting technologies and bioink materials in neuroscience applications, offering a unique platform to create complex brain and tissue architectures that mimic the mechanical, architectural, and biochemical properties of native tissues. These advancements provide robust tools for modelling, repair, and drug screening applications. The review highlights current research, identifies research gaps, and offers recommendations for future studies on 3D bioprinting in neuroscience. The investigation demonstrates the significant potential of 3D bioprinting to fabricate brain-like tissue constructs, which holds great promise for regenerative medicine and drug testing models. This approach offers new avenues for studying brain diseases and potential treatments.
引用
收藏
页数:15
相关论文
共 50 条
  • [21] 3D bioprinting and its innovative approach for biomedical applications
    Tripathi, Swikriti
    Mandal, Subham Shekhar
    Bauri, Sudepta
    Maiti, Pralay
    MEDCOMM, 2023, 4 (01):
  • [22] Responsive biomaterials for 3D bioprinting: A review
    Fu, Zhouquan
    Ouyang, Liliang
    Xu, Runze
    Yang, Yang
    Sun, Wei
    MATERIALS TODAY, 2022, 52 : 112 - 132
  • [23] 3D bioprinting: Advancing the future of food production layer by layer
    Chandimali, Nisansala
    Bak, Seon-Gyeong
    Park, Eun Hyun
    Cheong, Sun Hee
    Park, Sang-Ik
    Lee, Seung-Jae
    FOOD CHEMISTRY, 2025, 471
  • [24] Review on Additives in Hydrogels for 3D Bioprinting of Regenerative Medicine: From Mechanism to Methodology
    Fang, Wenzhuo
    Yang, Ming
    Liu, Meng
    Jin, Yangwang
    Wang, Yuhui
    Yang, Ranxing
    Wang, Ying
    Zhang, Kaile
    Fu, Qiang
    PHARMACEUTICS, 2023, 15 (06)
  • [25] 3D in vitro models of skeletal muscle: innovative approaches for animal science
    Dessauge, Frederic
    Schleder, Cindy
    Perruchot, Marie-Helene
    Rouger, Karl
    INRAE PRODUCTIONS ANIMALES, 2023, 36 (02):
  • [26] 3D Bioprinting Techniques and Bioinks for Periodontal Tissues Regeneration-A Literature Review
    Almeida, Nataly Domingues
    Carneiro, Camila Alves
    de Marco, Andrea Carvalho
    Porto, Vinicius Carvalho
    Franca, Rodrigo
    BIOMIMETICS, 2024, 9 (08)
  • [27] Biomimetic 3D bioprinting approaches to engineer the tumor microenvironment
    Bini, Fabiano
    D'Alessandro, Salvatore
    Agarwal, Tarun
    Marciano, Daniele
    Duchi, Serena
    Lucarelli, Enrico
    Ruocco, Giancarlo
    Marinozzi, Franco
    Cidonio, Gianluca
    INTERNATIONAL JOURNAL OF BIOPRINTING, 2023, 9 (06) : 373 - 390
  • [28] Bioprinting Approaches to Engineering Vascularized 3D Cardiac Tissues
    Puluca, Nazan
    Lee, Soah
    Doppler, Stefanie
    Muensterer, Andrea
    Dressen, Martina
    Krane, Markus
    Wu, Sean M.
    CURRENT CARDIOLOGY REPORTS, 2019, 21 (09)
  • [29] 3D bioprinting approaches for spinal cord injury repair
    Jiu, Jingwei
    Liu, Haifeng
    Li, Dijun
    Li, Jiarong
    Liu, Lu
    Yang, Wenjie
    Yan, Lei
    Li, Songyan
    Zhang, Jing
    Li, Xiaoke
    Li, Jiao Jiao
    Wang, Bin
    BIOFABRICATION, 2024, 16 (03)
  • [30] Bioprinting Approaches to Engineering Vascularized 3D Cardiac Tissues
    Nazan Puluca
    Soah Lee
    Stefanie Doppler
    Andrea Münsterer
    Martina Dreßen
    Markus Krane
    Sean M. Wu
    Current Cardiology Reports, 2019, 21