The Effect and Mechanism of Collagen Membranes Loaded With Fibrinogen on the Healing of Femur Fractures in Rats
1.Department of Orthopaedics,Nanjing Drum Tower Hospital Clinical College of Nanjing University of Chinese Medicine
2.Department of Orthopaedics,Nanjing Drum Tower Hospital Clinical College of Jiangsu University
3.Department of Orthopaedics,Nanjing Drum Tower Hospital,the Affiliated Hospital of Nanjing University Medical School
Abstract:Objective〓 To investigate the effect and mechanism of the collagen membrane loaded with fibrinogen on healing of femoral fractures in rats.Methods〓The rat femur fracture models were randomly divided into three groups:control group,collagen membrane group,and fibrinogen-loaded collagen membrane group.At 8 weeks post-surgery,the affected femurs of the rats were analyzed using Micro-CT scanning to assess callus formation.Primary bone marrow mesenchymal stem cells (BMSC) were divided into osteogenic control group,fibrinogen+osteogenic induction group,fibrinogen + PNU-74654 + osteogenic induction group.BCIP/NBT staining was used to detect the level of alkaline phosphatases(ALP) in BMSC.Wsetern blot was used to detect the protein expression of osteogenic markers,collagen Ⅰ(COL-1),ALP,Runt-related transcription factor 2(RUNX2),and β-Catenin.Results〓 The Micro-CT analysis revealed that at 2 months post-surgery,the fibrinogen-loaded collagen membrane group exhibited significantly higher levels of callus formation compared to the control group.ALP staining and Western blot results further indicated that fibrinogen promotes osteogenesis by upregulating the expression of osteogenic markers through the activation of the Wnt/β-Catenin signaling pathway.However,when PNU-74654 (a Wnt/β-Catenin inhibitor) was utilized,the expression of osteogenic markers was significantly reduced (P<0.05).Conclusion〓 The fibrinogen-loaded collagen membrane can accelerate femur fracture healing in rats,and fibrinogen accomplishes this by promoting osteogenic differentiation of bone marrow mesenchymal stem cells (BMSCs) via the activation of the Wnt/β-Catenin signaling pathway.
杨平,雷智杰,于江林,邱旭升,陈一心,戚晓阳. 负载纤维蛋白原的胶原膜对大鼠股骨骨折愈合的作用及机制研究[J]. 实用骨科杂志, 2024, 30(6): 514-.
Yang Ping,Lei Zhijie,Yu Jianglin,Qiu Xusheng,Chen Yixin,Qi Xiaoyang. The Effect and Mechanism of Collagen Membranes Loaded With Fibrinogen on the Healing of Femur Fractures in Rats. sygkzz, 2024, 30(6): 514-.
[1]戚晓阳,邱旭升,陈一心,等.大段骨缺损的治疗进展[J].实用骨科杂志,2017,23(8):715-719.
[2]Elhawary H,Baradaran A,Abi-Rafeh J,et al.Bone healing and inflammation:Principles of fracture and repair[J].Semin Plast Surg,2021,35(3):198-203.
[3]Schleusser S,Song J,Stang FH,et al.Blood flow in the scaphoid is improved by focused extracorporeal shock wave therapy[J].Clin Orthop Relat Res,2020,478(1):127-135.
[4]Einhorn TA,Gerstenfeld LC.Fracture healing:Mechanisms and interventions[J].Nat Rev Rheumatol,2015,11(1):45-54.
[5]Mu Y,Du Z,Gao W,et al.The effect of a bionic bone ionic environment on osteogenesis,osteoimmunology,and in situ bone tissue engineering[J].Biomaterials,2023(304):122410.
[6]Liu J,Bao X,Huang J,et al.TMEM135 maintains the equilibrium of osteogenesis and adipogenesis by regulating mitochondrial dynamics[J].Metabolism,2024(152):155767.
[7]Kidwai F,Edwards J,Zou L,et al.Fibrinogen induces RUNX2 activity and osteogenic development from human pluripotent stem cells[J].Stem Cells,2016,34(8):2079-2089.
[8]Yuasa M,Mignemi NA,Nyman JS,et al.Fibrinolysis is essential for fracture repair and prevention of heterotopic ossification[J].J Clin Invest,2015,125(9):3723.
[9]Almeida AR,Bessa-Gonalves M,Vasconcelos DM,et al.Osteoclasts degrade fibrinogen scaffolds and induce mesenchymal stem/stromal osteogenic differentiation[J].J Biomed Mater Res A,2020,108(4):851-862.
[10]Linsley C,Wu B,Tawil B.The effect of fibrinogen,collagen type I,and fibronectin on mesenchymal stem cell growth and differentiation into osteoblasts[J].Tissue Eng Part A,2013,19(11-12):1416-1423.
[11]Kim BS,Kim HJ,Choi JG,et al.The effects of fibrinogen concentration on fibrin/atelocollagen composite gel:An in vitro and in vivo study in rabbit calvarial bone defect[J].Clin Oral Implants Res,2015,26(11):1302-1308.
[12]Park KH,Kim H,Moon S,et al.Bone morphogenic protein-2 (BMP-2) loaded nanoparticles mixed with human mesenchymal stem cell in fibrin hydrogel for bone tissue engineering[J].J Biosci Bioeng,2009,108(6):530-537.
[13]Hayashi C,Hasegawa U,Saita Y,et al.Osteoblastic bone formation is induced by using nanogel-crosslinking hydrogel as novel scaffold for bone growth factor[J].J Cell Physiol,2009,220(1):1-7.
[14]Maciel J,Oliveira MI,Colton E,et al.Adsorbed fibrinogen enhances production of bone-and angiogenic-related factors by monocytes/macrophages[J].Tissue Eng Part A,2014,20(1-2):250-263.
[15]Pomini KT,Buchaim DV,Bighetti ACC,et al.Tissue bioengineering with fibrin scaffolds and deproteinized bone matrix associated or not with the transoperative laser photobiomodulation protocol[J].Molecules,2023,28(1):407.
[16]Snyder TN,Madhavan K,Intrator M,et al.A fibrin/hyaluronic acid hydrogel for the delivery of mesenchymal stem cells and potential for articular cartilage repair[J].J Biol Eng,2014(8):10.
[17]钟思扬,廖晴,周星宇,等.骨微环境对组织工程骨再生过程的影响[J].中国组织工程研究,2024,28(15):2452-2460.
[18]Liu Z,Tang Y,Kang T,et al.Synergistic effect of HA and BMP-2 mimicking peptide on the bioactivity of HA/PMMA bone cement[J].Colloids Surf B Biointerfaces,2015(131):39-46.
[19]孙上雯,陈汉帮,胡姝颖,等.负载γ-Fe2O3的壳聚糖多孔海绵对大鼠骨髓间质干细胞增殖和成骨分化的影响[J].南京医科大学学报(自然科学版),2023,43(3):326-333.
[20]Yamanaka JS,Oliveira AC,Bastos AR,et al.Collagen membrane from bovine pericardium for treatment of long bone defect[J].J Biomed Mater Res B Appl Biomater,2023,111(2):261-270.
[21]Hennigs JK,Baumann HJ,Lüneburg N,et al.Fibrinogen plasma concentration is an independent marker of haemodynamic impairment in chronic thromboembolic pulmonary hypertension[J].Sci Rep,2014(4):4808.
[22]Zilch H,Wolff R.Fibrinkleber und knochenneubildung[J].Z Orthop Ihre Grenzgeb,1987,125(2):214-218.
[23]Xiao Y,Xie X,Chen Z,et al.Advances in the roles of ATF4 in osteoporosis[J].Biomed Pharmacother,2023(169):115864.
[24]Wu D,Piao L,Wang G.Tescalcin modulates bone marrow-derived mesenchymal stem cells osteogenic differentiation via the Wnt/β-catenin signaling pathway[J].Environ Toxicol,2024,39(3):1836-1846.
[25]Liu M,Tan J,Li S,et al.Psoralen synergies with zinc implants to promote bone repair by regulating ZIP4 in rats with bone defect[J].Biomater Res,2023(27):129.
[26]Pan S,Yin Z,Shi C,et al.Multifunctional injectable hydrogel microparticles loaded with miR-29a abundant BMSCs derived exosomes enhanced bone regeneration by regulating osteogenesis and angiogenesis[J].Small,2024,20(16):E2306721.
[27]Kim S,Bedigrew K,Guda T,et al.Novel osteoinductive photo-cross-linkable chitosan-lactide-fibrinogen hydrogels enhance bone regeneration in critical size segmental bone defects[J].Acta Biomater,2014,10(12):5021-5033.
[28]Kim BS,Lee J.Enhanced bone healing by improved fibrin-clot formation via fibrinogen adsorption on biphasic calcium phosphate granules[J].Clin Oral Implants Res,2015,26(10):1203-1210.