Bioinspired Protein/Peptide Loaded 3D Printed PLGA Scaffold Promotes Bone Regeneration

被引:15
作者
Song, Xiaoliang [1 ]
Li, Xianxian [2 ]
Wang, Fengyu [3 ]
Wang, Li [3 ]
Lv, Li [3 ]
Xie, Qing [3 ]
Zhang, Xu [3 ]
Shao, Xinzhong [3 ]
机构
[1] Hebei Med Univ, Dept Hand Surg, Shijiazhuang, Peoples R China
[2] Changzhi Med Coll, Dept Hematol Oncol, Heji Hosp, Changzhi, Peoples R China
[3] Third Hosp Hebei Med Univ, Dept Hand Surg, Shijiazhuang, Peoples R China
来源
FRONTIERS IN BIOENGINEERING AND BIOTECHNOLOGY | 2022年 / 10卷
关键词
PLGA scaffold; 3D printing; protein; peptide decoration; bio-inspired; bone defect; AMORPHOUS CALCIUM-PHOSPHATE; SURFACE MODIFICATION; STEM-CELLS; HYDROXYAPATITE; FABRICATION; DIFFERENTIATION; NANOFIBERS; IMPLANTS; BEHAVIOR; PEPTIDE;
D O I
10.3389/fbioe.2022.832727
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Background: This study was aimed to investigate the effect of three dimensional (3D)printed poly lactide-co-glycolide (PLGA) scaffolds combined with Gly-Phe-Hyp-Gly-Arg (GFOGER) and bone morphogenetic protein 9 (BMP-9) on the repair of large bone defects.Methods: 3D printing method was used to produce PLGA scaffolds, and the sample was viewed by both optical microscopy and SEM, XRD analysis, water absorption and compressive strength analysis, etc. The rabbits were divided into six groups randomly and bone defect models were constructed (6 mm in diameter and 9 mm in depth): control group (n = 2), sham group (n = 4), model group (n = 4) and model + scaffold group (n = 4 rabbits for each group, 0%,2% and 4%). The rabbits were sacrificed at the 4th and 12th weeks after surgery, and the samples were collected for quantitative analysis of new bone mineral density by micro-CT, histopathological observation, immunohistochemistry and Western blot to detect the protein expression of osteoblast-related genes.Results: This scaffold presented acceptable mechanical properties and slower degradation rates. After surface modification with GFOGER peptide and BMP-9, the scaffold demonstrated enhanced new bone mineral deposition and density over the course of a 12 week in vivo study. Histological analysis and WB confirmed that this scaffold up-regulated the expression of Runx7, OCN, COL-1 and SP7, contributing to the noted uniform trabeculae formation and new bone regeneration.Conclusions: The application of this strategy in the manufacture of composite scaffolds provided extensive guidance for the application of bone tissue engineering.
引用
收藏
页数:12
相关论文
共 50 条
  • [31] 3D Printed Bioactive PLGA Dermal Scaffold for Burn Wound Treatment
    Teo, Yew Chin
    Abbas, Asyraf
    Park, Eun Ju
    Barbut, Clara
    Guo, Jiayi
    Goh, Denise
    Yeong, Joe Poh Sheng
    Mok, Wan Loong James
    Teo, Peili
    ACS MATERIALS AU, 2023, 3 (03): : 265 - 272
  • [32] Evaluation and optimization of physical, mechanical, and biological characteristics of 3D printed Whitlockite/calcium silicate composite scaffold for bone tissue regeneration using response surface methodology
    Thangavel, Mahendran
    Elsen, S. Renold
    BIOMEDICAL MATERIALS, 2025, 20 (02)
  • [33] 3D printed polycaprolactone/gelatin/ordered mesoporous calcium magnesium silicate nanocomposite scaffold for bone tissue regeneration
    Mirzavandi, Zahra
    Poursamar, Seyed Ali
    Amiri, Farshad
    Bigham, Ashkan
    Rafienia, Mohammad
    JOURNAL OF MATERIALS SCIENCE-MATERIALS IN MEDICINE, 2024, 35 (01)
  • [34] A hierarchical scaffold with a highly pore-interconnective 3D printed PLGA/n-HA framework and an extracellular matrix like gelatin network filler for bone regeneration
    Dou, Yichen
    Huang, Jinhui
    Xia, Xue
    Wei, Jiawei
    Zou, Qin
    Zuo, Yi
    Li, Jidong
    Li, Yubao
    JOURNAL OF MATERIALS CHEMISTRY B, 2021, 9 (22) : 4488 - 4501
  • [35] 3D printed porous PLA/nHA composite scaffolds with enhanced osteogenesis and osteoconductivity in vivo for bone regeneration
    Chen, Xibao
    Gao, Chunxia
    Jiang, Jiawei
    Wu, Yaping
    Zhu, Peizhi
    Chen, Gang
    BIOMEDICAL MATERIALS, 2019, 14 (06)
  • [36] Liposome-Encapsulated Curcumin-Loaded 3D Printed Scaffold for Bone Tissue Engineering
    Sarkar, Naboneeta
    Bose, Susmita
    ACS APPLIED MATERIALS & INTERFACES, 2019, 11 (19) : 17184 - 17192
  • [37] Bioprinting on 3D Printed Titanium Scaffolds for Periodontal Ligament Regeneration
    Lee, Ui-Lyong
    Yun, Seokhwan
    Cao, Hua-Lian
    Ahn, Geunseon
    Shim, Jin-Hyung
    Woo, Su-Heon
    Choung, Pill-Hoon
    CELLS, 2021, 10 (06)
  • [38] Characterization of 3D printed biodegradable piezoelectric scaffolds for bone regeneration
    Karanth, Divakar
    Puleo, David
    Dawson, Dolph
    Holliday, L. S.
    Sharab, Lina
    CLINICAL AND EXPERIMENTAL DENTAL RESEARCH, 2023, 9 (02): : 398 - 408
  • [39] Development of a novel Cissus quadrangularis extract loaded sodium alginate/chitosan based 3D printed scaffold for regeneration of cancellous alveolar bone
    Padhihary, Samapti
    Pramanik, Krishna
    JOURNAL OF DRUG DELIVERY SCIENCE AND TECHNOLOGY, 2025, 104
  • [40] 3D-Printed Polycaprolactone/Hydroxyapatite Bionic Scaffold for Bone Regeneration
    Wang, Feng-Ze
    Liu, Shuo
    Gao, Min
    Yu, Yao
    Zhang, Wen-Bo
    Li, Hui
    Peng, Xin
    POLYMERS, 2025, 17 (07)