Comparison study on hyaline cartilage versus fibrocartilage formation in a pig model by using 3D-bioprinted hydrogel and hybrid constructs

被引:0
|
作者
Sardroud, Hamed Alizadeh [1 ]
Rosa, Gustavo Dos Santos [2 ,3 ]
Dust, William [4 ]
Cham, Tat-Chuan [2 ]
Roy, Gwen [5 ]
Bater, Sarah [6 ]
Chicoine, Alan [2 ]
Honaramooz, Ali [2 ]
Chen, Xiongbiao [1 ,7 ]
Eames, B. Frank [1 ,8 ]
机构
[1] Univ Saskatchewan, Coll Engn, Div Biomed Engn, Saskatoon, SK, Canada
[2] Univ Saskatchewan, Western Coll Vet Med, Dept Vet Biomed Sci, Saskatoon, SK, Canada
[3] Sao Paulo State Univ UNESP, Sch Vet Med & Anim Sci, Dept Vet Surg & Anim Reprod, Regenerat Med Lab, Botucatu, Brazil
[4] Univ Saskatchewan, Royal Univ Hosp, Div Orthoped, Saskatoon, SK, Canada
[5] Univ Saskatchewan, Western Coll Vet Med, Dept Vet Pathol, Saskatoon, SK, Canada
[6] Univ Saskatchewan, Western Coll Vet Med, Dept Small Anim Clin Sci, Saskatoon, SK, Canada
[7] Univ Saskatchewan, Coll Engn, Dept Mech Engn, Saskatoon, SK, Canada
[8] Univ Saskatchewan, Dept Anat Physiol & Pharmacol, Saskatoon, SK, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
hydrogel; hybrid; hyaline cartilage; fibrocartilage; synchrotron imaging; in vivo; MICRO-COMPUTED TOMOGRAPHY; MESENCHYMAL STEM-CELLS; FULL-THICKNESS DEFECTS; ARTICULAR-CARTILAGE; MICROFRACTURE TECHNIQUE; IMAGING TECHNIQUES; REPAIR; BONE; SCAFFOLDS; LINE;
D O I
10.1088/1758-5090/ad88a6
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Cartilage tissue engineering (CTE) with the help of engineered constructs has shown promise for the regeneration of hyaline cartilage, where fibrocartilage may also be formed due to the biomechanical loading resulting from the host weight and movement. Previous studies have primarily reported on hyaline cartilage formation in vitro and/or in small animals, while leaving the fibrocartilage formation undiscovered. In this paper, we, at the first time, present a comparison study on hyaline cartilage versus fibrocartilage formation in a large animal model of pig by using two constructs (namely hydrogel and hybrid ones) engineered by means of three-dimensional (3D) bioprinting. Both hydrogel and hybrid constructs were printed from the bioink of alginate (2.5%) and ATDC5 cells (chondrogenic cells at a cell density of 5 x 10(6) cells ml(-1)), with the difference in that in the hybrid construct, there was a polycaprolactone (PCL) strand printed between every two bioink strands, which were strategically designed to shield the force imposed on the cells within the bioink strands. Both hydrogel and hybrid constructs were implanted into the chondral defects created in the articular cartilage of weight-bearing portions of pig stifle joints; the cartilage formation was examined at one- and three-months post-implantation, respectively, by means of Safranin O, Trichrome, immunofluorescent staining, and synchrotron radiation-based (SR) inline phase contrast imaging microcomputed tomography (inline-PCI-CT). Glycosaminoglycan (GAG) and collagen type II (Col II) secretion were used to evaluate the hyaline cartilage formation, while collagen type I (Col I) was used to indicate fibrocartilage given that Col I is low in hyaline cartilage but high in fibrocartilage. Our results revealed that cartilage formation was enhanced over time in both hydrogel and hybrid constructs; particularly, the hydrogel construct exhibited more cartilage formation at both one- and three-months post-implantation, while hybrid constructs tended to have less fibrocartilage formed in a long time period. Also, the result from the inline-PCI-CT revealed that the inline-PCI-CT was able to provide not only the information seen in other histology images, but also high-resolution details of biomaterials and regenerating cartilage. This would represent a significant advance toward the non-invasive assessment of cartilage formation regeneration within large animal models and eventually in human patients.
引用
收藏
页数:20
相关论文
共 50 条
  • [1] A comparison of different bioinks for 3D bioprinting of fibrocartilage and hyaline cartilage
    Daly, Andrew C.
    Critchley, Susan E.
    Rencsok, Emily M.
    Kelly, Daniel J.
    BIOFABRICATION, 2016, 8 (04)
  • [2] Stable hydrogel adhesion to polydimethylsiloxane enables cyclic mechanical stimulation of 3D-bioprinted smooth muscle constructs
    Xuan, Zongzhe
    Gurevich, Leonid
    Christiansen, Jesper de Claville
    Zachar, Vladimir
    Pennisi, Cristian Pablo
    BIOTECHNOLOGY AND BIOENGINEERING, 2023, 120 (11) : 3396 - 3408
  • [3] Applied Compressive Strain Governs Hyaline-like Cartilage versus Fibrocartilage-like ECM Produced within Hydrogel Constructs
    Sardroud, Hamed Alizadeh
    Chen, Xiongbiao
    Eames, B. Frank
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2023, 24 (08)
  • [4] The Impact of Temperature and the Duration of Freezing on a Hydrogel Used for a 3D-Bioprinted In Vitro Skin Model
    Sever, Maja
    Skrinjar, Dominik
    Maver, Tina
    Belak, Monika
    Zupanic, Franc
    Anzel, Ivan
    Zidaric, Tanja
    BIOMEDICINES, 2024, 12 (09)
  • [5] Development of 3D bioprinted corneal constructs using a biomimetic hydrogel
    Joshi, Vineet
    Singh, Vivek
    Chameettachal, Shibu
    Sahoo, Abhishek
    Prasad, Deeksha
    Singh, Vijay
    Ghosh, Anwesha
    Bokara, Kiran
    Pati, Falguni
    Basu, Sayan
    INVESTIGATIVE OPHTHALMOLOGY & VISUAL SCIENCE, 2023, 64 (08)
  • [6] PHOTOCURABLE GELLAN GUM-BASED BIOINK ENRICHED WITH MANUKA HONEY FOR 3D-BIOPRINTED ENGINEERED ARTICULAR CARTILAGE CONSTRUCTS
    Scalzone, Annachiara
    Cerqueni, Giorgia
    Mattioli-Belmonte, Monica
    Wang, Xiao Nong
    Dalgarno, Kenny
    Ferreira-Duarte, Ana Marina
    Gentile, Piergiorgio
    TISSUE ENGINEERING PART A, 2022, 28 : S269 - S269
  • [7] Bacterial nanocellulose-reinforced gelatin methacryloyl hydrogel enhances biomechanical property and glycosaminoglycan content of 3D-bioprinted cartilage
    Zeng, Jinshi
    Jia, Litao
    Wang, Di
    Chen, Zhuoqi
    Liu, Wenshuai
    Yang, Qinghua
    Liu, Xia
    Jiang, Haiyue
    INTERNATIONAL JOURNAL OF BIOPRINTING, 2023, 9 (01) : 131 - 143
  • [8] Remote-Controlled Gene Delivery in Coaxial 3D-Bioprinted Constructs using Ultrasound-Responsive Bioinks
    Lowrey, Mary K.
    Day, Holly
    Schilling, Kevin J.
    Huynh, Katherine T.
    Franca, Cristiane M.
    Schutt, Carolyn E.
    CELLULAR AND MOLECULAR BIOENGINEERING, 2024, 17 (05) : 401 - 421
  • [9] Combining Innovative Bioink and Low Cell Density for the Production of 3D-Bioprinted Cartilage Substitutes: A Pilot Study
    Henrionnet, Christel
    Pourchet, Lea
    Neybecker, Paul
    Messaoudi, Oceane
    Gillet, Pierre
    Loeuille, Damien
    Mainard, Didier
    Marquette, Christophe
    Pinzano, Astrid
    STEM CELLS INTERNATIONAL, 2020, 2020
  • [10] A computational model of cell viability and proliferation of extrusion-based 3D-bioprinted constructs during tissue maturation process
    Gironi, Patrizia
    Petraro, Ludovico
    Santoni, Silvia
    Dede, Luca
    Colosimo, Bianca Maria
    INTERNATIONAL JOURNAL OF BIOPRINTING, 2023, 9 (04)