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Spectrally Guided Mohs Surgery

2018年8月15日 更新者:Seton Healthcare Family
Freshly excised or freshly frozen tissue for Raman analysis will be obtained from a dermatology practice affiliated with UMCB. In the course of the routine removal of benign or malignant tumors in the office, skin cancer surgeons routinely check frozen sections to ensure adequate margins are obtained. Consent will be obtained from patients to provide freshly excised or freshly frozen leftover tissue obtained during Mohs surgery to be discarded after histological diagnosis. Freshly excised tissue will be measured at the time of excision before processing, while the freshly frozen tissue samples will be stored in a freezer at the Mohs clinic and transferred to the UT- Austin campus for spectroscopic analysis.

研究概览

地位

完全的

条件

详细说明

The current standard-of-care in the identification of skin cancer is visual inspection followed by biopsy and histopathology of suspicious skin sites. Since a physician is required to perform this biopsy, there is often a delay in diagnosis, resulting in deeper, more aggressive tumors and increased mortality from malignant melanoma (MM). Therefore, a non-invasive method to inspect these lesions would be of great clinical importance.

An initial prototype of a noninvasive diagnostic device was developed based on optical spectroscopy and completed a clinical study in 76 patients that demonstrated high diagnostic accuracy for the detection of skin cancer (IRB # CR-10-004). This initial prototype consisted of two separate devices and probes: one to collect Raman spectra (RS) and the other to collect diffuse reflectance and laser induced fluorescence spectra (DRS+LIFS). type, but a combination of modalities gave the best diagnostic performance for all types of skin cancer.

The addition of Raman spectroscopy improved diagnostic performance for both melanoma and non-melanoma skin cancer. However, the operation of the integrated systems was still conducted via two optical fiber probes (the first one for fluorescence and reflectance spectroscopy, the second one for Raman spectroscopy). The need to take measurements of the same lesion using two probes increased acquisition time, and the possible sampling site error. Recently, a device was developed that combined fiber optic probe that is capable for spectral acquisition of Raman, white light reflectance and laser induced fluorescence spectroscopy. Using this probe, acquisition time and sampling site error should be reduced. There is no significant difference in terms of performance between the previous two probes and the new probe.

Models have been developed to analyze reflectance and fluorescence spectroscopy data. In order to interpret Raman spectroscopy data in physiologically relevant parameters, a biophysical model needs to be developed. Similar models have been developed by other research groups for other types of tissue.

This study proposes to use the new technique of biophysical modeling to analyze our Raman spectra. At the core of the technique is the measurement of a set of "basis spectra" which are fit to the data using ordinary least-squares. Recently, biophysical models have been developed for atherosclerosis and breast cancer with very impressive diagnostic results, achieving 94% sensitivity and 96% specificity for breast cancer and 94% accuracy for atherosclerosis disease classification.

Raman microspectrometry will be used to measure basis spectra from various skin constituents. In this technique, Raman spectra are measured from freshly frozen tissue samples that are sliced into thin sections as is done in histology. A microscope system is used to focus the excitation laser beam to a small spot of approximately 2 mm in diameter on the sample, and a Raman spectrometer measures the emitted Raman spectrum. In this way, Raman spectra of individual microscopic tissue components can be isolated. These individual component spectra will be determined for keratin, cell nuclei, collagen, cytoplasm, melanin, water, sebaceous glands, etc.

研究类型

观察性的

注册 (实际的)

24

参与标准

研究人员寻找符合特定描述的人,称为资格标准。这些标准的一些例子是一个人的一般健康状况或先前的治疗。

资格标准

适合学习的年龄

18年 至 99年 (成人、年长者)

接受健康志愿者

有资格学习的性别

全部

取样方法

非概率样本

研究人群

All patients undergoing treatment for SCC or BCC in local Mohs surgery clinic

描述

Inclusion Criteria:

  • All individuals over 18 undergoing Mohs surgery for treatment of BCC or SCC

Exclusion Criteria:

  • Under 18 years old, not undergoing Mohs surgery for treatment of BCC or SCC

学习计划

本节提供研究计划的详细信息,包括研究的设计方式和研究的衡量标准。

研究是如何设计的?

设计细节

  • 观测模型:其他
  • 时间观点:预期

队列和干预

团体/队列
干预/治疗
Mohs Surgery Patients
Adult patients undergoing Mohs surgery for treatment of BCC or SCC
optical measurement of excised tissue

研究衡量的是什么?

主要结果指标

结果测量
措施说明
大体时间
Sensitivity and specificity of spectroscopic device
大体时间:1 year
comparison of spectroscopic data to frozen section pathology used in Mohs surgery
1 year

合作者和调查者

在这里您可以找到参与这项研究的人员和组织。

研究记录日期

这些日期跟踪向 ClinicalTrials.gov 提交研究记录和摘要结果的进度。研究记录和报告的结果由国家医学图书馆 (NLM) 审查,以确保它们在发布到公共网站之前符合特定的质量控制标准。

研究主要日期

学习开始 (实际的)

2016年11月1日

初级完成 (实际的)

2016年12月1日

研究完成 (实际的)

2018年7月1日

研究注册日期

首次提交

2017年4月24日

首先提交符合 QC 标准的

2017年5月4日

首次发布 (实际的)

2017年5月9日

研究记录更新

最后更新发布 (实际的)

2018年8月16日

上次提交的符合 QC 标准的更新

2018年8月15日

最后验证

2018年4月1日

更多信息

与本研究相关的术语

其他研究编号

  • CR-15-117

计划个人参与者数据 (IPD)

计划共享个人参与者数据 (IPD)?

药物和器械信息、研究文件

研究美国 FDA 监管的药品

研究美国 FDA 监管的设备产品

此信息直接从 clinicaltrials.gov 网站检索,没有任何更改。如果您有任何更改、删除或更新研究详细信息的请求,请联系 register@clinicaltrials.gov. clinicaltrials.gov 上实施更改,我们的网站上也会自动更新.

Multimodal Spectroscopy的临床试验

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