UWA Dental School, University of Western Australia, M512, 17 Monash Avenue, Nedlands, WA 6009, Australia.
Clinical Dentistry, Restorative Division, Faculty of Dentistry, International Medical University Kuala Lumpur, 126, Jalan Jalil Perkasa 19, Bukit Jalil, 57000 Bukit Jalil, Wilayah Persekutuan Kuala Lumpur, Malaysia.
Dent Mater. 2019 Jul;35(7):979-989. doi: 10.1016/j.dental.2019.04.001. Epub 2019 Apr 16.
This study introduced the potential and proof-of-concept of high intensity focused ultrasound (HIFU) technology for dentin-surface treatment for resin-dentin bonding without acid-aided demineralization. This new strategy could provide a way to enhance interface-integrity and bond-durability by changing the nature of dentin-substrate; bonded-interface structure and properties; and minimizing denuded-collagen exposure.
The interaction between HIFU waves and dentin-surface in terms of structural, mechanical and chemical variations were investigated by SEM, TEM, AFM, nano-indentation and Raman-analysis. The bonding between HIFU-treated dentin and two-step, etch-and-rinse, adhesive was preliminary explored by characterizing dentin-bound proteases activities, resin-dentin interfacial morphology and bond-durability with HIFU exposure at different time-points of 60, 90 and 120 s compared to conventional acid-etching technique.
With the increase in HIFU exposure-time from 60-to-120 s, HIFU waves were able to remove the smear-layer, expose dentinal-tubules and creating textured/rough dentin surface. In addition, dentin surfaces showed a pattern of interlocking ribbon-like minerals-coated collagen-fibrils protruding from the underlaying amorphous dentin-background with HIFU exposure for 90 s and 120 s. This characteristic pattern of dentin-surface showing inorganic-minerals associated/aligned with collagen-fibrils, with 90-to-120 s HIFU-treatment, was confirmed by the Raman-analysis. HIFU-treated specimens showed higher nano-indentation properties and lower concentrations of active MMP-2 and Cathepsin-K compared to the acid-etched specimens. The resin-dentin bonded interface revealed the partial/complete absence of the characteristic hybrid-layer formed with conventional etch-and-rinse bonding strategy. Additionally, resin-infiltration and resin-tags formation were enhanced with the increase in HIFU exposure-time to 120 s. Although, all groups showed significant decrease in bond-strength after 12 months compared to 24 h storage in artificial saliva, groups exposed to HIFU for 90 s and 120 s showed significantly higher μTBS compared to the control acid-etched group.
The implementation of HIFU-technology for dental hard-tissues treatment could be of potential significance in adhesive/restorative dentistry owing to its ability of controlled, selective and localised combined tissue alteration/ablation effects.
本研究介绍了高强度聚焦超声(HIFU)技术在不进行酸辅助脱矿化的情况下处理牙本质表面以实现树脂-牙本质粘结的潜力和概念验证。这种新策略可以通过改变牙本质基质的性质、粘结界面的结构和性质以及最小化裸露胶原的暴露来提供增强界面完整性和粘结耐久性的方法。
通过 SEM、TEM、AFM、纳米压痕和拉曼分析研究了 HIFU 波与牙本质表面在结构、机械和化学变化方面的相互作用。通过表征 HIFU 处理后的牙本质与两步法、蚀刻-冲洗、胶粘剂之间的粘结,初步探讨了 HIFU 处理后的牙本质与两步法、蚀刻-冲洗、胶粘剂之间的粘结,通过比较 60、90 和 120 s 时 HIFU 暴露与传统酸蚀刻技术的牙本质结合蛋白酶活性、树脂-牙本质界面形态和粘结耐久性,初步探讨了 HIFU 处理后的牙本质与两步法、蚀刻-冲洗、胶粘剂之间的粘结。
随着 HIFU 暴露时间从 60 秒增加到 120 秒,HIFU 波能够去除玷污层,暴露牙本质小管,并在牙本质表面产生纹理/粗糙的牙本质表面。此外,HIFU 暴露 90 秒和 120 秒后,牙本质表面呈现出一种交错的带状矿物质覆盖胶原纤维的模式,这些胶原纤维从下面的无定形牙本质背景中突出。通过拉曼分析证实,HIFU 处理后的标本具有与胶原纤维相关/对齐的无机矿物质特征模式,HIFU 处理 90 秒和 120 秒后具有这种特征模式。与酸蚀刻标本相比,HIFU 处理的标本具有更高的纳米压痕性能和更低浓度的活性 MMP-2 和组织蛋白酶 K。树脂-牙本质粘结界面显示出与传统蚀刻-冲洗粘结策略形成的特征混合层的部分/完全缺失。此外,随着 HIFU 暴露时间增加到 120 秒,树脂的渗透和树脂标记的形成得到增强。尽管与在人工唾液中储存 24 小时相比,所有组在 12 个月后显示出明显降低的粘结强度,但与对照组酸蚀组相比,暴露于 HIFU 90 秒和 120 秒的组显示出明显更高的 μTBS。
由于高强度聚焦超声(HIFU)技术具有可控、选择性和局部联合组织改变/消融效果,因此其在牙科硬组织治疗中的应用可能具有潜在意义。