McCarthy Colleen, Camci-Unal Gulden
Department of Chemical Engineering, University of Massachusetts Lowell, One University Avenue, Lowell, MA 01854, USA.
Department of Surgery, University of Massachusetts Medical School, 55 Lake Avenue North, Worcester, MA 01605, USA.
Micromachines (Basel). 2021 Nov 30;12(12):1488. doi: 10.3390/mi12121488.
As explained by Wolff's law and the mechanostat hypothesis, mechanical stimulation can be used to promote bone formation. Low intensity pulsed ultrasound (LIPUS) is a source of mechanical stimulation that can activate the integrin/phosphatidylinositol 3-OH kinase/Akt pathway and upregulate osteogenic proteins through the production of cyclooxygenase-2 (COX-2) and prostaglandin E (PGE). This paper analyzes the results of in vitro and in vivo studies that have evaluated the effects of LIPUS on cell behavior within three-dimensional (3D) titanium, ceramic, and hydrogel scaffolds. We focus specifically on cell morphology and attachment, cell proliferation and viability, osteogenic differentiation, mineralization, bone volume, and osseointegration. As shown by upregulated levels of alkaline phosphatase and osteocalcin, increased mineral deposition, improved cell ingrowth, greater scaffold pore occupancy by bone tissue, and superior vascularization, LIPUS generally has a positive effect and promotes bone formation within engineered scaffolds. Additionally, LIPUS can have synergistic effects by producing the piezoelectric effect and enhancing the benefits of 3D hydrogel encapsulation, growth factor delivery, and scaffold modification. Additional research should be conducted to optimize the ultrasound parameters and evaluate the effects of LIPUS with other types of scaffold materials and cell types.
正如沃尔夫定律和机械应力稳态假说所解释的那样,机械刺激可用于促进骨形成。低强度脉冲超声(LIPUS)是一种机械刺激源,它可以激活整合素/磷脂酰肌醇3-羟基激酶/Akt信号通路,并通过产生环氧化酶-2(COX-2)和前列腺素E(PGE)来上调成骨蛋白。本文分析了体外和体内研究的结果,这些研究评估了LIPUS对三维(3D)钛、陶瓷和水凝胶支架内细胞行为的影响。我们特别关注细胞形态和附着、细胞增殖和活力、成骨分化、矿化、骨体积和骨整合。如碱性磷酸酶和骨钙素水平上调、矿物质沉积增加、细胞向内生长改善、骨组织对支架孔隙的占据增加以及血管化增强所示,LIPUS通常具有积极作用,并能促进工程支架内的骨形成。此外,LIPUS可通过产生压电效应以及增强3D水凝胶封装、生长因子递送和支架修饰的益处而产生协同效应。应开展更多研究以优化超声参数,并评估LIPUS与其他类型支架材料和细胞类型的相互作用。