Echo-guided soft tissue harvesting: A novel approach identifying tissue thickness, density, vascularisation and a safe harvesting zone in the palatal region.

Leonardo Mancini, Lorenzo Tavelli, Shayan Barootchi, Ronald E Jung, Daniel S Thoma
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Abstract

Purpose: To utilise high-frequency ultrasound echo intensity as a method for identifying a safe harvesting zone and assessing tissue thickness, density and vascularisation in the palatal region for soft tissue harvesting.

Materials and methods: Four consecutive patients requiring soft tissue augmentation were recruited. Optical scans were taken and imported into design software, where customised guides were developed based on the patient's palatal anatomy and the harvesting zone. The guides were tailored to fit the shape of the ultrasound probe. They were 3D printed and allowed for a standardised examination of the palate, the identification of a safe harvesting zone and the evaluation of tissue thickness, quality and vascularisation using high-frequency ultrasound. Following these steps and using an echo-harvesting guide, a de-epithelialised free gingival graft was obtained, ensuring preservation of the main vascular flow while avoiding fatty or glandular tissues.

Results: In all four cases, high-frequency ultrasound scans were successfully obtained and the mean measured soft tissue thickness increased from 3.2 mm (anterior) to 6.0 mm (posterior), with a mean transversal increase from 0.9 to 6.0 mm. Ultrasound imaging revealed a layer of hypoechogenic fatty/glandular tissue located 3 to 4 mm beneath the epithelial layer. Using colour Doppler analysis, the vascular flow was identified and mapped to help design a safe harvesting zone. The tissue density, evaluated using a grayscale analysis, showed hypoechogenicity corresponding to fatty/glandular tissues and areas with blood vessels, whereas dense connective tissue appeared isoechoic. This differentiation allowed for precise localisation of the safe harvesting zone, an optimal zone for connective tissue harvesting, while ensuring that regions with higher fat/glandular content and/or large vascular structures were avoided.

Conclusion: The echo-guided harvesting approach is a promising technique for soft tissue palatal harvesting, enabling clinicians to identify a standardised safe zone away from major blood vessels when assessing tissue quality and quantity. This approach enhances surgical precision and control, and facilitates preoperative planning for alternative treatments when graft size or tissue quality or quantity are inadequate due to proximity to the greater palatine artery. It is crucial to note that a learning curve is required to interpret the obtained images accurately and integrate this tool into daily clinical practice.

回声引导软组织收获:一种识别组织厚度、密度、血管化和腭区安全收获区的新方法。
目的:利用高频超声回波强度作为识别安全采收区和评估腭区软组织采收的组织厚度、密度和血管化的方法。材料和方法:连续招募4例需要软组织增强术的患者。光学扫描被输入到设计软件中,在设计软件中,根据患者的腭解剖结构和收获区域开发定制指南。导板是根据超声探头的形状量身定做的。它们是3D打印的,允许对上颚进行标准化检查,确定安全收获区,并使用高频超声评估组织厚度、质量和血管化。遵循这些步骤并使用回声采集指南,获得了去上皮的游离牙龈移植物,确保了主要血管流动的保存,同时避免了脂肪或腺体组织。结果:所有4例患者均成功获得高频超声扫描,平均测量软组织厚度从3.2 mm(前)增加到6.0 mm(后),平均横向厚度从0.9 mm增加到6.0 mm。超声成像显示一层低回声脂肪/腺组织位于上皮以下3至4毫米。利用彩色多普勒分析,确定了血管流动并绘制了地图,以帮助设计安全采收区。组织密度,用灰度分析评估,显示低回声对应于脂肪/腺体组织和血管区域,而致密结缔组织出现等回声。这种分化允许精确定位安全收获区,这是结缔组织收获的最佳区域,同时确保避免脂肪/腺体含量较高和/或大血管结构的区域。结论:超声引导下的腭软组织采集方法是一种很有前途的技术,使临床医生在评估组织质量和数量时能够确定远离大血管的标准化安全区域。这种方法提高了手术的精度和控制,并且当移植物的大小或组织质量或数量由于靠近腭大动脉而不足时,便于术前计划替代治疗。重要的是要注意,需要一个学习曲线来准确地解释所获得的图像,并将该工具整合到日常临床实践中。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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