Finer-Focused Partial Wave Spectroscopy (ff-PWS) and Detection of Cancer Stages From Human Tissue Samples
Dhruvil Solanki, Prakash Adhikari, Ishmael Apachigawo, Fatemah, Alharthi, Prabhakar Pradhan

TL;DR
This paper introduces a refined partial wave spectroscopy (PWS) technique that detects nanoscale structural changes in tissue samples, enabling early and accurate cancer stage diagnosis using commercially available tissue microarrays.
Contribution
The study develops a finer-focused PWS imaging method to quantify nanoscale tissue alterations, improving early cancer detection and staging accuracy.
Findings
Disorder strength increases with cancer stage.
Finer-focused PWS effectively detects nanoscale changes.
Potential for standardized early diagnosis.
Abstract
The progression of cancer is associated with different genetic and epigenetic events which result in nano to microscale structural alterations in cells/tissue. However, these structural alterations in the early stage of the disease remain undetectable by conventional microscopy due to the diffraction-limited resolution of ~200nm. With cancer being an epidemic worldwide, early and accurate detection methods are always in demand. In this sense, we developed a finer focusing mesoscopic physics-based partial wave spectroscopy (PWS) imaging and quantification technique, which can probe the precise scattering volume in cells/tissue to detect such structural alterations. Therefore, we employ the highly sensitive PWS technique to quantify the nanoscale refractive index fluctuations using commercially available paraffin embedded tissue microarrays (TMA) samples with the goal of the standardized…
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Taxonomy
TopicsSpectroscopy Techniques in Biomedical and Chemical Research · Optical Coherence Tomography Applications · Photoacoustic and Ultrasonic Imaging
