[1]朱苏迪,魏晓博,闫 凛,等.具有抗菌性能骨组织修复材料研究进展[J].陕西医学杂志,2023,52(6):768-770,774.[doi:DOI:10.3969/j.issn.1000-7377.2023.06.029]
 ZHU Sudi,WEI Xiaobo,YAN Lin,et al.Research progress of bone tissue repair materials with antibacterial properties[J].,2023,52(6):768-770,774.[doi:DOI:10.3969/j.issn.1000-7377.2023.06.029]
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具有抗菌性能骨组织修复材料研究进展
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《陕西医学杂志》[ISSN:1000-7377/CN:61-1281/TN]

卷:
52
期数:
2023年6期
页码:
768-770,774
栏目:
综 述
出版日期:
2023-06-05

文章信息/Info

Title:
Research progress of bone tissue repair materials with antibacterial properties
作者:
朱苏迪魏晓博闫 凛樊晓霞李宝莉
(延安大学医学院,陕西 延安 716000)
Author(s):
ZHU SudiWEI XiaoboYAN LinFAN XiaoxiaLI Baoli
(Medical College,Yan'an University,Yan'an 716000,China)
关键词:
骨组织修复材料 复合无机抗菌剂 复合有机抗菌剂 仿生纳米结构表面抗菌剂 生物相容性
Keywords:
Bone tissue repair materials Composite inorganic antibacterial agent Composite organic antibacterial agent Biomimetic nano-structure surface antibacterial agent Biocompatibility
分类号:
R 318.08
DOI:
DOI:10.3969/j.issn.1000-7377.2023.06.029
文献标志码:
A
摘要:
开放性骨折、关节炎(OA)和骨质疏松(OP)等疾病所导致的骨缺损修复术后抗感染已成为临床治疗上的一个难题。骨科围手术期大量应用抗生素易导致细菌耐药并加重患者的经济负担,因此开发非抗生素途径的抗菌骨修复材料是国内外众多科学家的追求与愿景。目前,非负载抗生素的骨修复材料主要有复合无机抗菌剂、复合有机抗菌剂和仿生纳米结构表面抗菌剂三类。现从抗菌作用、生物相容性和各自优缺点对上述三类骨修复材料进行综述,以期为开发新型具有抗菌和成骨作用的多功能骨修复材料提供新思路。
Abstract:
It has become a difficult problem in clinical treatment to prevent infection after the repair of bone defects caused by open fractures,osteoarthritis(OA)and osteoporosis(OP).A large number of antibiotics used in perioperative period of orthopedics can easily lead to bacterial resistance and increase the economic burden of patients.Therefore,the development of non-antibiotic antimicrobial bone repair materials is the pursuit and vision of many scientists at home and abroad.At present,the main bone repair materials that are not loaded with antibiotics include composite inorganic antibacterial agents,composite organic antibacterial agents and biomimetic nano-structure surface antibacterial agents.The above three types of bone repair materials have been reviewed mainly in terms of antibacterial effects,biocompatibility and their respective advantages and disadvantages to provide new ideas for the development of new multi-functional bone repair materials with antibacterial and osteogenic effects.

参考文献/References:

[1] Morgenstern M,Kühl R,Eckardt H,et al.Diagnostic challenges and future perspectives in fracture-related infection[J].Injury,2018,49:s83-s90.
[2] 李少华,张铁山,邢克炎,等.骨科植入物手术医院内获得性感染相关因素研究[J].医药论坛杂志,2021,42(17):98-101.
[3] Wilcock CJ,Stafford GP,Miller CA,et al.Preparation and antibacterial properties of silver-doped nanoscale hydroxyapatite pastes for bone repair and augmentation[J].J Biomed Nanotechnol,2017,13(9):1168-1176.
[4] Huang Q,Ouyang Z,Tan Y,et al.Activating macrophages for enhanced osteogenic and bactericidal performance by Cu ion release from micro/nano-topographical coating on a titanium substrate[J].Acta Biomater,2019,100:415-426.
[5] Kazimierczak P,Golus J,Kolmas J,et al.Noncytotoxic zinc-doped nanohydroxyapatite-based bone scaffolds with strong bactericidal,bacteriostatic,and antibiofilm activity[J].Biomater Adv,2022,139:213011.
[6] Andrés NC,Sieben JM,Baldini M,et al.Electroactive Mg2+-hydroxyapatite nanostructured networks against drug-resistant bone infection strains[J].ACS Appl Mater Interfaces,2018,10(23):19534-19544.
[7] Li S,He Y,Li J,et al.Titanium scaffold loaded with strontium and copper double-doped hydroxyapatite can inhibit bacterial growth and enhance osteogenesis[J].J Biomater Appl,2022,37(2):195-203.
[8] Deliormanll AM.Synthesis and characterization of cerium- and gallium-containing borate bioactive glass scaffolds for bone tissue engineering[J].J Mater Sci Mater Med,2015,26(2):67.
[9] Zhao R,Shi L,Gu L,et al.Evaluation of bioactive glass scaffolds incorporating SrO or ZnO for bone repair:In vitro bioactivity and antibacterial activity[J].J Appl Biomater Funct Mater,2021,19:22808000211040910.
[10] Wang F,Wang X,Xie E,et al.Simultaneous incorporation of gallium oxide and tantalum microparticles into micro-arc oxidation coating of titanium possessing antibacterial effect and stimulating cellular response[J].Biomater Adv,2022,135:212736.
[11] Wiedmer D,Cui C,Weber F,et al.Antibacterial surface coating for bone scaffolds based on the dark catalytic effect of titanium dioxide[J].ACS Appl Mater Interfaces,2018,10(42):35784-35793.
[12] Kagami K,Abe Y,Shinonaga Y,et al.Antibacterial and antifungal activities of PMMAs implanted fluorine and/or silver ions by plasma-based ion implantation with argon[J].Materials(Basel),2020,13(20):4525.
[13] Teng W,Zhang Z,Wang Y,et al.Iodine immobilized metal-organic framework for NIR-triggered antibacterial therapy on orthopedic implants[J].Small,2021,17(35):e2102315.
[14] Hou J,Tamura Y,Lu HY,et al.An in vitro evaluation of selenium nanoparticles on osteoblastic differentiation and antimicrobial properties against porphyromonas gingivalis[J].Nanomaterials(Basel),2022,12(11):1850.
[15] Tian L,Zhang Z,Tian B,et al.Study on antibacterial properties and cytocompatibility of EPL coated 3D printed PCL/HA composite scaffolds[J].RSC Advances,2020,10(8):4805-4816.
[16] Unalan I,Fuggerer T,Slavik B,et al.Antibacterial and antioxidant activity of cinnamon essential oil-laden 45S5 bioactive glass/soy protein composite scaffolds for the treatment of bone infections and oxidative stress[J].Mater Sci Eng C Mater Biol Appl,2021,128:112320.
[17] Li H,Gao C,Tang L,et al.Lysozyme(Lys),tannic acid(TA),and graphene oxide(GO)thin coating for antibacterial and enhanced osteogenesis[J].ACS Appl Bio Mater,2020,3(1):673-684.
[18] Honda M,Matsumoto M,Aizawa M.Potential application of protamine for antimicrobial biomaterials in bone tissue engineering[J].Int J Mol Sci,2020,21(12):4368.
[19] 吴 志,庞 敏,陈 森,等.重楼皂苷I对大鼠原代成骨细胞增殖的影响及机制研究[J].陕西医学杂志,2018,47(12):1515-1517,1521.
[20] 袁佳莹,佟智颖,赵家义,等.巴戟天临床应用研究进展[J].陕西中医,2022,43(6):807-810.
[21] 徐 翀,申利民,苑文杰.当归多糖通过Wnt/β-catenin信号通路抑制骨关节炎软骨细胞氧化应激损伤与炎症反应[J].陕西中医,2022,43(6):700-703,770.
[22] 王海斌,王 颖,田 昕,等.番石榴叶提取物对抵抗素诱导的人膝关节软骨细胞炎症的缓解作用及机制研究[J].陕西医学杂志,2022,51(12):1497-1500.
[23] Sun Y,Zhao YQ,Zeng Q,et al.Dual-functional implants with antibacterial and osteointegration-promoting performances[J].ACS Appl Mater Interfaces,2019,11(40):36449-36457.
[24] Pant J,Sundaram J,Goudie MJ,et al.Antibacterial 3D bone scaffolds for tissue engineering application[J].J Biomed Mater Res B Appl Biomater,2019,107(4):1068-1078.
[25] Zhang Z,Wang Y,Teng W,et al.An orthobiologics-free strategy for synergistic photocatalytic antibacterial and osseointegration[J].Biomaterials,2021,274:120853.
[26] Bhadra CM,Truong VK,Pham VT,et al.Antibacterial titanium nano-patterned arrays inspired by dragonfly wings[J].Sci Rep,2015,5:16817.
[27] Ye J,Deng J,Chen Y,et al.Cicada and catkin inspired dual biomimetic antibacterial structure for the surface modification of implant material[J].Biomater Sci,2019,7(7):2826-2832.

备注/Memo

备注/Memo:
基金项目:陕西省自然科学基金资助项目(2022JM-547)
更新日期/Last Update: 2023-06-05