Vascularization strategies for human skin tissue engineering via 3D bioprinting

被引:2
|
作者
Shukla, Arvind Kumar [1 ]
Lee, Dongjun [2 ]
Yoon, Sik [3 ,4 ]
Ahn, Minjun [5 ]
Kim, Byoung Soo [1 ,5 ]
机构
[1] Pusan Natl Univ, Sch Biomed Convergence Engn, Yangsan, South Korea
[2] Pusan Natl Univ, Coll Med, Dept Convergence Med, Yangsan, South Korea
[3] Pusan Natl Univ, Dept Anat & Convergence Med Sci, Coll Med, Yangsan, South Korea
[4] Pusan Natl Univ, Coll Med, Immune Reconstitut Res Ctr Med Res Inst, Yangsan, South Korea
[5] Pusan Natl Univ, Med Res Inst, Yangsan, South Korea
基金
新加坡国家研究基金会;
关键词
Vascularization; Angiogenesis; Human skin; Biofabrication; 3D bioprinting; Regenerative medicine; MESENCHYMAL STEM-CELLS; IN-VITRO RECONSTRUCTION; FULL-THICKNESS BURNS; ENDOTHELIAL-CELLS; EXTRACELLULAR-MATRIX; DERMAL EQUIVALENT; WOUND DRESSINGS; ANGIOGENESIS; CONSTRUCTS; SCAFFOLDS;
D O I
10.36922/ijb.1727
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
The skin is composed of many cells that are organized into different layers and connected by dense and complex vascular networks. This creates a dynamic microenvironment in which cells interact within the matrix. Significant advancements have been made in this field over the past decade, and various strategies have been developed for accelerating and enhancing skin regeneration. The primary challenge for successful skin grafts is the integration of the functional vasculature, which can supply essential nutrients and oxygen to cell -laden structures and damaged native tissues. An inadequate vascular network can lead to ischemia, which can cause slow wound healing-particularly in the case of chronic skin conditions. Therefore, blood vessel formation remains one of the most significant obstacles that skin tissue engineering must overcome to create vascularized skin tissue substitutes with specific living cells. Technological advances can augment effective vascularization. The three-dimensional (3D) bioprinting platform is a promising technology that allows precise deposition of living cells and bioactive materials. The application of this technology to skin tissue engineering can provide solutions for augmenting pre-vascularization in engineered in vitro skin models and in vivo skin substitutes. This review presents the significance of skin vascularization in in vitro modeling and in vivo wound healing. Various strategies and related applications involving 3D bioprinting technology are introduced for the biofabrication of enhanced vascularized skin in vitro and in vivo , followed by a discussion of their limitations and future research directions.
引用
收藏
页码:86 / 115
页数:30
相关论文
共 50 条
  • [21] 3D bioprinting in tissue engineering and regenerative medicine
    Gupta, Sharda
    Bit, Arindam
    CELL AND TISSUE BANKING, 2022, 23 (02) : 199 - 212
  • [22] 3D Bioprinting in Skeletal Muscle Tissue Engineering
    Ostrovidov, Serge
    Salehi, Sahar
    Costantini, Marco
    Suthiwanich, Kasinan
    Ebrahimi, Majid
    Sadeghian, Ramin Banan
    Fujie, Toshinori
    Shi, Xuetao
    Cannata, Stefano
    Gargioli, Cesare
    Tamayol, Ali
    Dokmeci, Mehmet Remzi
    Orive, Gorka
    Swieszkowski, Wojciech
    Khademhosseini, Ali
    SMALL, 2019, 15 (24)
  • [23] Advances in 3D Bioprinting for Neural Tissue Engineering
    Lee, Se-Jun
    Esworthy, Timothy
    Stake, Seth
    Miao, Shida
    Zuo, Yi Y.
    Harris, Brent T.
    Zhang, Lijie Grace
    ADVANCED BIOSYSTEMS, 2018, 2 (04)
  • [24] 3D bioprinting in tissue engineering and regenerative medicine
    Sharda Gupta
    Arindam Bit
    Cell and Tissue Banking, 2022, 23 : 199 - 212
  • [25] 3D bioprinting in regenerative medicine and tissue engineering
    Fricain, Jean-Christophe
    De Olivera, Hugo
    Devillard, Raphael
    Kalisky, Jerome
    Remy, Murielle
    Keriquel, Virginie
    Le Nihounen, Damien
    Gremare, Agathe
    Guduric, Vera
    Plaud, Alexis
    L'Heureux, Nicolas
    Amedee, Joelle
    Catros, Sylvain
    M S-MEDECINE SCIENCES, 2017, 33 (01): : 52 - 59
  • [26] 3D Bioprinting for Cartilage and Osteochondral Tissue Engineering
    Daly, Andrew C.
    Freeman, Fiona E.
    Gonzalez-Fernandez, Tomas
    Critchley, Susan E.
    Nulty, Jessica
    Kelly, Daniel J.
    ADVANCED HEALTHCARE MATERIALS, 2017, 6 (22)
  • [27] 3D Bioprinting Strategies for Melatonin-Loaded Polymers in Bone Tissue Engineering
    Aykora, Damla
    Oral, Ayhan
    Aydeger, Cemre
    Uzun, Metehan
    MACROMOLECULAR MATERIALS AND ENGINEERING, 2025, 310 (01)
  • [28] 3D BIOPRINTING PCLSCAFFOLDS FOR TISSUE ENGINEERING APPLICATIONS
    Park, K.
    Hwang, I
    Lee, H.
    Park, J.
    Park, S.
    JOURNAL OF SEXUAL MEDICINE, 2015, 12 : 32 - 32
  • [29] Current developments in 3D bioprinting for tissue engineering
    Cornelissen, Dirk-Jan
    Faulkner-Jones, Alan
    Shu, Wenmiao
    CURRENT OPINION IN BIOMEDICAL ENGINEERING, 2017, 2 : 76 - 82
  • [30] 3D bioprinting via an in situ crosslinking technique towards engineering cartilage tissue
    Jonathan H. Galarraga
    Mi Y. Kwon
    Jason A. Burdick
    Scientific Reports, 9