Heterogenous hydrogel mimicking the osteochondral ECM applied to tissue regeneration

被引:26
|
作者
Chen, Zhuoxin [1 ]
Xiao, Hong [2 ]
Zhang, Hongbo [1 ]
Xin, Qiangwei [1 ]
Zhang, Haochen [1 ]
Liu, Haixin [3 ]
Wu, Mingzhen [1 ]
Zuo, Liangrui [1 ]
Luo, Jun [1 ]
Guo, Qiang [4 ]
Ding, Chunmei [1 ,5 ]
Tan, Hong [1 ]
Li, Jianshu [1 ,4 ,6 ]
机构
[1] Sichuan Univ, Coll Polymer Sci & Engn, State Key Lab Polymer Mat Engn, Chengdu 610065, Peoples R China
[2] Sichuan Univ, West China Hosp, Dept Pain Management, 37 GuoXue Xiang, Chengdu 610041, Peoples R China
[3] Peoples Hosp Deyang City, Dept Orthoped, 173 Taishan North Rd, Deyang 618000, Peoples R China
[4] Sichuan Univ, West China Hosp Stomatol, State Key Lab Oral Dis, Chengdu 610041, Peoples R China
[5] Tech Inst Phys & Chem, CAS Key Lab Bioinspired Mat & Interfacial Sci, Beijing 100190, Peoples R China
[6] Sichuan Univ, Med X Ctr Mat, Chengdu 610041, Peoples R China
基金
中国国家自然科学基金;
关键词
MESENCHYMAL STROMAL CELLS; CURRENT STRATEGIES; SCAFFOLDS; REPAIR; DIFFERENTIATION; CARTILAGE; GRADIENT; COLLAGEN; POLYMERIZATION; STIMULATION;
D O I
10.1039/d1tb00518a
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
Inspired by the intricate extracellular matrix (ECM) of natural cartilage and subchondral bone, a heterogenous bilayer hydrogel scaffold is fabricated. Gelatin methacrylate (GelMA) and acryloyl glucosamine (AGA) serve as the main components in the upper layer, mimicking the chondral ECM. Meanwhile, vinylphosphonic acid (VPA) as a non-collagen protein analogue is incorporated into the bottom layer to induce the in situ biomineralization of calcium phosphate. The two heterogenous layers are effectively sutured together by the inter-diffusion between the upper and bottom layer hydrogels, together with chelation between the calcium ions and alginate added to separate layers. The interfacial bonding between the two different layers was thoroughly investigated via rheological measurements. The incorporation of AGA promotes chondrocytes to produce collagen type II and glycosaminoglycans and upregulates the expression of chondrogenesis-related genes. In addition, the minerals induced by VPA facilitate the osteogenesis of bone marrow mesenchymal stem cells (BMSCs). In vivo evaluation confirms the biocompatibility of the scaffold with minor inflammation and confirms the best repair ability of the bilayer hydrogel. This cell-free, cost-effective and efficient hydrogel shows great potential for osteochondral repair and inspires the design of other tissue-engineering scaffolds.
引用
收藏
页码:8646 / 8658
页数:13
相关论文
共 50 条
  • [41] A gradient four-layered gelatin methacrylate/agarose construct as an injectable scaffold for mimicking osteochondral tissue
    Mokhtarzade, Ali
    Imani, Rana
    Shokrollahi, Parvin
    JOURNAL OF MATERIALS SCIENCE, 2023, 58 (13) : 5735 - 5755
  • [42] Bioactive hydrogel-based scaffolds for the regeneration of dental pulp tissue
    Samiei, Mohammad
    Fathi, Marziyeh
    Barar, Jaleh
    Fathi, Nazanin
    Amiryaghoubi, Nazanin
    Omidi, Yadollah
    JOURNAL OF DRUG DELIVERY SCIENCE AND TECHNOLOGY, 2021, 64
  • [43] Enhancing Osteochondral Tissue Regeneration of Gellan Gum by Incorporating Gallus gallus var Domesticus-Derived Demineralized Bone Particle
    Thangavelu, Muthukumar
    Kim, David
    Jeong, Young Woon
    Lee, Wonchan
    Jung, Jun Jae
    Song, Jeong Eun
    Reis, Rui L.
    Khang, Gilson
    BIOMIMICKED BIOMATERIALS: ADVANCES IN TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2020, 1250 : 79 - 93
  • [44] A biphasic, demineralized, and Decellularized allograft bone-hydrogel scaffold with a cell-based BMP-7 delivery system for osteochondral defect regeneration
    Sun, Jiachen
    Lyu, Jingtong
    Xing, Fei
    Chen, Ran
    Duan, Xin
    Xiang, Zhou
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2020, 108 (09) : 1909 - 1921
  • [45] Cell-Free Bilayered Porous Scaffolds for Osteochondral Regeneration Fabricated by Continuous 3D-Printing Using Nascent Physical Hydrogel as Ink
    Gao, Jingming
    Ding, Xiaoquan
    Yu, Xiaoye
    Chen, Xiaobin
    Zhang, Xingyu
    Cui, Shuquan
    Shi, Jiayue
    Chen, Jun
    Yu, Lin
    Chen, Shiyi
    Ding, Jiandong
    ADVANCED HEALTHCARE MATERIALS, 2021, 10 (03)
  • [46] Cytomodulin-10 modified GelMA hydrogel with kartogenin for in-situ osteochondral regeneration
    Liu, Guoping
    Guo, Qianping
    Liu, Changjiang
    Bai, Jianzhong
    Wang, Huan
    Li, Jiaying
    Liu, Dachuan
    Yu, Qifan
    Shi, Jinhui
    Liu, Chengyuan
    Zhu, Caihong
    Li, Bin
    Zhang, Hongtao
    ACTA BIOMATERIALIA, 2023, 169 : 317 - 333
  • [47] Comparative Analysis of Somatic Stem Cells With Emphasis on Osteochondral Tissue Regeneration
    Bohac, Martin
    Ivanisova, Dana
    Strecanska, Magdalena
    Sekelova, Tatiana
    Fereje, Blanka N. I. K. O.
    Smolinska, Veronika
    Novakova, Zuzana Varchulova
    Kuniakova, Marcela
    Cehakova, Michaela
    Culenova, Martina
    Bernatova, Sona
    Mazreku, Merita
    Bevizova, Katarina
    Nicodemou, Andreas
    Zamborsky, Radoslav
    Danisovic, Lubos
    PHYSIOLOGICAL RESEARCH, 2023, 72 : S299 - S307
  • [48] Osteochondral tissue engineering approaches for articular cartilage and subchondral bone regeneration
    Panseri, Silvia
    Russo, Alessandro
    Cunha, Carla
    Bondi, Alice
    Di Martino, Alessandro
    Patella, Silvia
    Kon, Elizaveta
    KNEE SURGERY SPORTS TRAUMATOLOGY ARTHROSCOPY, 2012, 20 (06) : 1182 - 1191
  • [49] Effects of osteochondral defect size on cartilage regeneration using a double-network hydrogel
    Higa, Kotaro
    Kitamura, Nobuto
    Goto, Keiko
    Kurokawa, Takayuki
    Gong, Jian Ping
    Kanaya, Fuminori
    Yasuda, Kazunori
    BMC MUSCULOSKELETAL DISORDERS, 2017, 18
  • [50] Magnetically Actuated Microscaffold with Controllable Magnetization and Morphology for Regeneration of Osteochondral Tissue
    Lee, Junhyeok
    Song, Hyeong-Woo
    Nguyen, Kim Tien
    Kim, Seokjae
    Nan, Minghui
    Park, Jong-Oh
    Go, Gwangjun
    Choi, Eunpyo
    MICROMACHINES, 2023, 14 (02)