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High-definition Fourier Transform Infrared FT-IR Spectroscopic Imaging of Human Tissue Sections towards Improving Pathology
Published on: January 21, 2015
Monitoring breast cancer treatment using a Fourier transform infrared spectroscopy-based computational model
J Depciuch1, E Kaznowska2, S Golowski3
1Institute of Nuclear Physics Polish Academy of Sciences, PL-31342 Krakow, Poland.
Abstract:
Breast cancer affects one in four women, therefore, the search for new diagnostic technologies and therapeutic approaches is of critical importance. This involves the development of diagnostic tools to facilitate the detection of cancer cells, which is useful for assessing the efficacy of cancer therapies. One of the major challenges for chemotherapy is the lack of tools to monitor efficacy during the course of treatment. Vibrational spectroscopy appears to be a promising tool for such a purpose, as it yields Fourier transformation infrared (FTIR) spectra which can be used to provide information on the chemical composition of the tissue. Previous research by our group has demonstrated significant differences between the infrared spectra of healthy, cancerous and post-chemotherapy breast tissue. Furthermore, the results obtained for three extreme patient cases revealed that the infrared spectra of post-chemotherapy breast tissue closely resembles that of healthy breast tissue when chemotherapy is effective (i.e., a good therapeutic response is achieved), or that of cancerous breast tissue when chemotherapy is ineffective. In the current study, we compared the infrared spectra of healthy, cancerous and post-chemotherapy breast tissue. Characteristic parameters were designated for the obtained spectra, spreading the function of absorbance using the Kramers-Kronig transformation and the best fit procedure to obtain Lorentz functions, which represent components of the bands. The Lorentz function parameters were used to develop a physics-based computational model to verify the efficacy of a given chemotherapy protocol in a given case. The results obtained using this model reflected the actual patient data retrieved from medical records (health improvement or no improvement). Therefore, we propose this model as a useful tool for monitoring the efficacy of chemotherapy in patients with breast cancer.
Insights
Fourier transform infrared (FTIR) spectroscopy and a novel computational model can monitor breast cancer chemotherapy efficacy. This tool distinguishes between effective and ineffective treatments by analyzing spectral changes in breast tissue.
Area of Science:
- Biomedical Engineering
- Medical Physics
- Oncology
Background:
- Breast cancer impacts many women, necessitating advanced diagnostic and therapeutic monitoring tools.
- Current chemotherapy lacks effective methods for real-time efficacy assessment during treatment.
- Vibrational spectroscopy, specifically FTIR, offers insights into tissue chemical composition.
Purpose of the Study:
- To develop and validate a physics-based computational model for monitoring breast cancer chemotherapy efficacy.
- To utilize Fourier transform infrared (FTIR) spectroscopy to analyze spectral differences in breast tissues.
- To correlate spectral data with patient outcomes to assess treatment effectiveness.
Main Methods:
- Collected and analyzed FTIR spectra from healthy, cancerous, and post-chemotherapy breast tissues.
- Applied Kramers-Kronig transformation and Lorentz function fitting to extract characteristic spectral parameters.
- Developed a physics-based computational model using Lorentz function parameters to predict chemotherapy efficacy.
Main Results:
- Significant spectral differences were observed between healthy, cancerous, and post-chemotherapy tissues.
- Post-chemotherapy spectra mirrored healthy tissue spectra with effective treatment and cancerous tissue spectra with ineffective treatment.
- The computational model accurately reflected actual patient treatment outcomes from medical records.
Conclusions:
- The developed computational model, based on FTIR spectral analysis, shows promise for monitoring breast cancer chemotherapy efficacy.
- This approach provides a non-invasive method to assess treatment response, aiding clinical decision-making.
- The model's ability to correlate spectral data with patient outcomes highlights its potential as a valuable clinical tool.

