溶葡萄球菌酶
骨髓炎
生物医学工程
排序酶A
植入
骨整合
化学
材料科学
脚手架
骨组织
多孔性
体内
生物材料
抗生素
清创术(牙科)
聚乙烯
松质骨
生物膜
牙科
骨愈合
重组DNA
组织工程
羟基磷灰石
作者
Inna Bulygina,Svetlana V. Zaitseva,Grishin Av,Polina Orlova,Anna V. Zhulina,Tatyana M. Grunina,A. G. Kudinova,M. S. Poponova,Natalya Vadimovna Strukova,Marya S. Generalova,Mikhail Krivozubov,Nikita V. Shestak,Sviatoslav A. Gusev,Galina V. Tyurina,A. I. Cheremnykh,Elizaveta V. Koudan,Fedor Senatov,В. Г. Лунин,A. V. Gromov,A. S. Karyagina
标识
DOI:10.1021/acsabm.5c01936
摘要
Staphylococcus aureus is one of the main causes of osteomyelitis. The problem of antibiotic resistance is particularly acute in osteomyelitis because, in most cases, S. aureus forms biofilms in which the antibiotic sensitivity of bacteria is significantly reduced, and more than 50% of osteomyelitis cases are associated with methicillin-resistant S. aureus (MRSA). One of the promising approaches for surgical treatment of osteomyelitis caused by S. aureus may be one-stage replacement of the affected fragment with a spongy scaffold that provides both a bactericidal effect, particularly in relation to antibiotic-resistant S. aureus, and osseointegration of the implant. This work describes the preparation and characterization of porous ultrahigh-molecular-weight polyethylene (UHMWPE) scaffolds with incorporated microparticles of the silicate ceramic diopside, carrying recombinant bone morphogenetic protein 2 (BMP-2) as an osteogenic component and lysostaphin as an antibacterial component effective against MRSA strains. The hybrid implant had an optimal pore size and kinetics of recombinant protein release and demonstrated bactericidal and high osteointegrative properties using an in vivo model with implantation of blocks of the material into a segmental defect of critical size (4 mm) complicated with S. aureus infection in mice. In terms of its physical parameters, porous UHMWPE/Diopside is as close to spongy bone tissue as possible compared to other polymeric materials while being bioinert and nonresorbable. The addition of BMP-2 led to a 5-fold increase in the volume of newly formed bone tissue (BV/TV), while the presence of S. aureus completely suppressed this effect. The presence of lysostaphin made it possible to overwhelm the infection, achieve regeneration parameters, and restore a normal load distribution on the limbs after 8 weeks. In combination with recombinant BMP-2 and lysostaphin, porous UHMWPE/Diopside can be considered a promising material for the replacement of extensive infected bone tissue defects, particularly in the nonload-bearing areas.
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