A biocompatible pea protein isolate-derived bioink for 3D bioprinting and tissue engineering

被引:0
|
作者
Chen, Xin [1 ]
Zhou, Zheng [2 ]
Yang, Mengni [1 ]
Zhu, Shuai [1 ]
Zhu, Wenxiang [1 ]
Sun, Jingjing [2 ]
Yu, Mengyi [1 ]
He, Jiaqian [2 ]
Zuo, You [2 ]
Wang, Wenxin [3 ]
He, Ning [3 ]
Han, Xiaoxiao [3 ]
Liu, Hairong [1 ]
机构
[1] Hunan Univ, Coll Mat Sci & Engn, Changsha 410082, Peoples R China
[2] Hunan Univ, Coll Biol, Changsha 410082, Peoples R China
[3] Hunan Univ, Coll Mech & Vehicle Engn, Changsha 410082, Peoples R China
关键词
RELIABILITY; SCAFFOLDS; HYDROGEL;
D O I
10.1039/d4tb00781f
中图分类号
TB3 [工程材料学]; R318.08 [生物材料学];
学科分类号
0805 ; 080501 ; 080502 ;
摘要
Three-dimensional bioprinting is a potent biofabrication technique in tissue engineering but is limited by inadequate bioink availability. Plant-derived proteins are increasingly recognized as highly promising yet underutilized materials for biomedical product development and hold potential for use in bioink formulations. Herein, we report the development of a biocompatible plant protein bioink from pea protein isolate. Through pH shifting, ethanol precipitation, and lyophilization, the pea protein isolate (PPI) transformed from an insoluble to a soluble form. Next, it was modified with glycidyl methacrylate to obtain methacrylate-modified PPI (PPIGMA), which is photocurable and was used as the precursor of bioink. The mechanical and microstructural studies of the hydrogel containing 16% PPIGMA revealed a suitable compress modulus and a porous network with a pore size over 100 mu m, which can facilitate nutrient and waste transportation. The PPIGMA bioink exhibited good 3D bioprinting performance in creating complex patterns and good biocompatibility as plenty of viable cells were observed in the printed samples after 3 days of incubation in the cell culture medium. No immunogenicity of the PPIGMA bioink was identified as no inflammation was observed for 4 weeks after implantation in Sprague Dawley rats. Compared with methacrylate-modified gelatin, the PPIGMA bioink significantly enhanced cartilage regeneration in vitro and in vivo, suggesting that it can be used in tissue engineering applications. In summary, the PPIGMA bioink can be potentially used for tissue engineering applications. Herein, we present the development of a biocompatible plant protein bioink based on pea protein isolate and further explore its potential application in cartilage repair.
引用
收藏
页码:6716 / 6723
页数:8
相关论文
共 50 条
  • [1] 3D bioprinting of modified mannan bioink for tissue engineering
    Zhou, Zheng
    Huang, Yuting
    Liu, Hairong
    Zhao, Guoqun
    [J]. STAR PROTOCOLS, 2022, 3 (03):
  • [2] Engineering considerations in the design of tissue specific bioink for 3D bioprinting applications
    Tripathi, Shivi
    Dash, Madhusmita
    Chakraborty, Ruchira
    Lukman, Harri Junaedi
    Kumar, Prasoon
    Hassan, Shabir
    Mehboob, Hassan
    Singh, Harpreet
    Nanda, Himansu Sekhar
    [J]. Biomaterials Science, 13 (01): : 93 - 129
  • [3] Modified mannan for 3D bioprinting: a potential novel bioink for tissue engineering
    Huang, Yuting
    Zhou, Zheng
    Hu, Yingbing
    He, Ning
    Li, Jing
    Han, Xiaoxiao
    Zhao, Guoqun
    Liu, Hairong
    [J]. BIOMEDICAL MATERIALS, 2021, 16 (05)
  • [4] Cartilage Tissue Engineering by the 3D Bioprinting of iPS Cells in a Nanocellulose/Alginate Bioink
    Nguyen, Duong
    Hagg, Daniel A.
    Forsman, Alma
    Ekholm, Josefine
    Nimkingratana, Puwapong
    Brantsing, Camilla
    Kalogeropoulos, Theodoros
    Zaunz, Samantha
    Concaro, Sebastian
    Brittberg, Mats
    Lindahl, Anders
    Gatenholm, Paul
    Enejder, Annika
    Simonsson, Stina
    [J]. SCIENTIFIC REPORTS, 2017, 7
  • [5] Cartilage Tissue Engineering by the 3D Bioprinting of iPS Cells in a Nanocellulose/Alginate Bioink
    Duong Nguyen
    Daniel A. Hägg
    Alma Forsman
    Josefine Ekholm
    Puwapong Nimkingratana
    Camilla Brantsing
    Theodoros Kalogeropoulos
    Samantha Zaunz
    Sebastian Concaro
    Mats Brittberg
    Anders Lindahl
    Paul Gatenholm
    Annika Enejder
    Stina Simonsson
    [J]. Scientific Reports, 7
  • [6] ECM Based Bioink for Tissue Mimetic 3D Bioprinting
    Nam, Seung Yun
    Park, Sang-Hyug
    [J]. BIOMIMETIC MEDICAL MATERIALS: FROM NANOTECHNOLOGY TO 3D BIOPRINTING, 2018, 1064 : 335 - 353
  • [7] Nanoengineered Osteoinductive Bioink for 3D Bioprinting Bone Tissue
    Chimene, David
    Miller, Logan
    Cross, Lauren M.
    Jaiswal, Manish K.
    Singh, Irtisha
    Gaharwar, Akhilesh K.
    [J]. ACS APPLIED MATERIALS & INTERFACES, 2020, 12 (14) : 15976 - 15988
  • [8] 3D bioprinting by reinforced bioink based on photocurable interpenetrating networks for cartilage tissue engineering
    Shen, Jingjie
    Song, Wenjing
    Liu, Jia
    Peng, Xiaoyun
    Tan, Zhuhao
    Xu, Yingni
    Liu, Sa
    Ren, Li
    [J]. INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2024, 254
  • [9] Clay Minerals as Bioink Ingredients for 3D Printing and 3D Bioprinting: Application in Tissue Engineering and Regenerative Medicine
    Garcia-Villen, Fatima
    Ruiz-Alonso, Sandra
    Lafuente-Merchan, Markel
    Gallego, Idoia
    Sainz-Ramos, Myriam
    Saenz-del-Burgo, Laura
    Pedraz, Jose Luis
    [J]. PHARMACEUTICS, 2021, 13 (11)
  • [10] Novel Nanocellulose Alginate Bioink for 3D Bioprinting of Soft Tissue
    Gatenholm, P.
    Markstedt, K.
    Mantas, A.
    Tournier, I.
    Avila, H. Martinez
    Hagg, D.
    [J]. TISSUE ENGINEERING PART A, 2015, 21 : S13 - S13