Dynamic composite hydrogels of gelatin methacryloyl (GelMA) with supramolecular fibers for tissue engineering applications

被引:0
|
作者
Chalard, Anais E. [1 ,2 ]
Porritt, Harrison [1 ,2 ]
Tang, Emily J. Lam Po [3 ]
Taberner, Andrew J. [3 ,4 ]
Winbo, Annika [5 ,6 ]
Ahmad, Amatul M. [5 ]
Fitremann, Juliette [7 ]
Malmstrom, Jenny [1 ,2 ]
机构
[1] Univ Auckland, Fac Engn, Dept Chem & Mat Engn, Auckland, New Zealand
[2] MacDiarmid Inst Adv Mat & Nanotechnol, Wellington, New Zealand
[3] Univ Auckland, Auckland Bioengn Inst ABI, Auckland, New Zealand
[4] Univ Auckland, Fac Engn, Dept Engn Sci & Biomed Engn, Auckland, New Zealand
[5] Univ Auckland, Dept Physiol, Auckland, New Zealand
[6] Univ Auckland, Manaaki Manawa Ctr Heart Res, Auckland, New Zealand
[7] Univ Toulouse III Paul Sabatier, Univ Toulouse, Lab Softmat, CNRS,UMR 5623, Toulouse, France
来源
BIOMATERIALS ADVANCES | 2024年 / 163卷
关键词
Biomaterial; Composite hydrogel; Supramolecular fibers; Galactonamide; GelMA; Mechanical characterization; Cardiac fibroblasts; MECHANICAL-PROPERTIES; ELASTIC PROPERTIES; IN-VITRO; NETWORK; SCAFFOLDS; DESIGN; LIGHT; MODEL; SOFT;
D O I
10.1016/j.bioadv.2024.213957
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
In the field of tissue engineering, there is a growing need for biomaterials with structural properties that replicate the native characteristics of the extracellular matrix (ECM). It is important to include fibrous structures into ECM mimics, especially when constructing scar models. Additionally, including a dynamic aspect to cell-laden biomaterials is particularly interesting, since native ECM is constantly reshaped by cells. Composite hydrogels are developed to bring different combinations of structures and properties to a scaffold by using different types and sources of materials. In this work, we aimed to combine gelatin methacryloyl (GelMA) with biocompatible supramolecular fibers made of a small self-assembling sugar-derived molecule ( N-heptyl-D-galactonamide, GalC7). The GalC7 fibers were directly grown in the GelMA through a thermal process, and it was shown that the presence of the fibrous network increased the Young 's modulus of GelMA. Due to the non-covalent interactions that govern the self-assembly, these fibers were observed to dissolve over time, leading to a dynamic softening of the composite gels. Cardiac fibroblast cells were successfully encapsulated into composite gels for 7 days, showing excellent biocompatibility and fibroblasts extending in an elongated morphology, most likely in the channels left by the fibers after their degradation. These novel composite hydrogels present unique properties and could be used as tools to study biological processes such as fibrosis, vascularization and invasion.
引用
收藏
页数:15
相关论文
共 50 条
  • [1] Applications of Gelatin Methacryloyl (GelMA) Hydrogels in Microfluidic Technique-Assisted Tissue Engineering
    Liu, Taotao
    Weng, Wenxian
    Zhang, Yuzhuo
    Sun, Xiaoting
    Yang, Huazhe
    MOLECULES, 2020, 25 (22):
  • [2] Synthesis, properties, and biomedical applications of gelatin methacryloyl (GelMA) hydrogels
    Yue, Kan
    Trujillo-de Santiago, Grissel
    Moises Alvarez, Mario
    Tamayol, Ali
    Annabi, Nasim
    Khademhosseini, Ali
    BIOMATERIALS, 2015, 73 : 254 - 271
  • [3] Synthesis and Properties of Gelatin Methacryloyl (GelMA) Hydrogels and Their Recent Applications in Load-Bearing Tissue
    Sun, Mingyue
    Sun, Xiaoting
    Wang, Ziyuan
    Guo, Shuyu
    Yu, Guangjiao
    Yang, Huazhe
    POLYMERS, 2018, 10 (11)
  • [4] Interpenetrating network gelatin methacryloyl (GelMA) and pectin-g-PCL hydrogels with tunable properties for tissue engineering
    Fares, Mohammad M.
    Sani, Ehsan Shirzaei
    Portillo Lara, Roberto
    Oliveira, Rhayza B.
    Khademhosseini, Ali
    Annabi, Nasim
    BIOMATERIALS SCIENCE, 2018, 6 (11) : 2938 - 2950
  • [5] Recent trends in gelatin methacryloyl nanocomposite hydrogels for tissue engineering
    Sakr, Mahmoud A.
    Sakthivel, Kabilan
    Hossain, Towsif
    Shin, Su Ryon
    Siddiqua, Sumi
    Kim, Jaehwan
    Kim, Keekyoung
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2022, 110 (03) : 708 - 724
  • [6] Engineering the viscoelasticity of gelatin methacryloyl (GelMA) hydrogels via small ?dynamic bridges? to regulate BMSC behaviors for osteochondral regeneration
    Liu, Changjiang
    Yu, Qifan
    Yuan, Zhangqin
    Guo, Qianping
    Liao, Xiting
    Han, Feng
    Feng, Tao
    Liu, Guoping
    Zhao, Runze
    Zhu, Zhuang
    Mao, Haijiao
    Zhu, Caihong
    Li, Bin
    BIOACTIVE MATERIALS, 2023, 25 : 445 - 459
  • [7] Gelatin Methacryloyl (GelMA) Nanocomposite Hydrogels Embedding Bioactive Naringin Liposomes
    Elkhoury, Kamil
    Sanchez-Gonzalez, Laura
    Lavrador, Pedro
    Almeida, Rui
    Gaspar, Vitor
    Kahn, Cyril
    Cleymand, Franck
    Arab-Tehrany, Elmira
    Mano, Joao F.
    POLYMERS, 2020, 12 (12) : 1 - 16
  • [8] Stem Cell Mechanosensation on Gelatin Methacryloyl (GelMA) Stiffness Gradient Hydrogels
    Claire Kim
    Jennifer L. Young
    Andrew W. Holle
    Kwanghee Jeong
    Luke G. Major
    Ji Hoon Jeong
    Zachary M. Aman
    Dong-Wook Han
    Yongsung Hwang
    Joachim P. Spatz
    Yu Suk Choi
    Annals of Biomedical Engineering, 2020, 48 : 893 - 902
  • [9] Stem Cell Mechanosensation on Gelatin Methacryloyl (GelMA) Stiffness Gradient Hydrogels
    Kim, Claire
    Young, Jennifer L.
    Holle, Andrew W.
    Jeong, Kwanghee
    Major, Luke G.
    Jeong, Ji Hoon
    Aman, Zachary M.
    Han, Dong-Wook
    Hwang, Yongsung
    Spatz, Joachim P.
    Choi, Yu Suk
    ANNALS OF BIOMEDICAL ENGINEERING, 2020, 48 (02) : 893 - 902
  • [10] Biomedical applications of gelatin methacryloyl hydrogels
    Piao Y.
    You H.
    Xu T.
    Bei H.-P.
    Piwko I.Z.
    Kwan Y.Y.
    Zhao X.
    Engineered Regeneration, 2021, 2 : 47 - 56