4.7 Article

Rapid brain structure and tumour margin detection on whole frozen tissue sections by fast multiphotometric mid-infrared scanning

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SCIENTIFIC REPORTS
卷 11, 期 1, 页码 -

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NATURE PORTFOLIO
DOI: 10.1038/s41598-021-90777-4

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资金

  1. German Ministry of Economic and Energy (BMWi), through the Federation of Industrial Research Association (AiF Project GmbH) [ZF4168604TS8, ZF4560205TS8]
  2. Deutsche Forschungsgemeinschaft (DFG) [410981386]
  3. Novanta Europe GmbH
  4. Karl-Volker-Stiftung (KVS) Mannheim University of Applied Science
  5. Baden-Wurttemberg Ministry of Science, Research and Culture
  6. Center for Mass Spectrometry and Optical Spectroscopy (CeMOS)

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Frozen section analysis is a commonly used method for tissue examination, especially in tumor detection. This research introduces a fast spectroscopic measurement device and workflow that significantly improves the speed and accuracy of frozen tissue section analysis, allowing for rapid visualization of tissue structures and tumor margins based on their lipid and protein molecular vibrations.
Frozen section analysis is a frequently used method for examination of tissue samples, especially for tumour detection. In the majority of cases, the aim is to identify characteristic tissue morphologies or tumour margins. Depending on the type of tissue, a high number of misdiagnoses are associated with this process. In this work, a fast spectroscopic measurement device and workflow was developed that significantly improves the speed of whole frozen tissue section analyses and provides sufficient information to visualize tissue structures and tumour margins, dependent on their lipid and protein molecular vibrations. That optical and non-destructive method is based on selected wavenumbers in the mid-infrared (MIR) range. We present a measuring system that substantially outperforms a commercially available Fourier Transform Infrared (FT-IR) Imaging system, since it enables acquisition of reduced spectral information at a scan field of 1 cm(2) in 3 s, with a spatial resolution of 20 mu m. This allows fast visualization of segmented structure areas with little computational effort. For the first time, this multiphotometric MIR system is applied to biomedical tissue sections. We are referencing our novel MIR scanner on cryopreserved murine sagittal and coronal brain sections, especially focusing on the hippocampus, and show its usability for rapid identification of primary hepatocellular carcinoma (HCC) in mouse liver.

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