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Understanding Alterations in Cell Nano-architecture during Early Carcinogenesis using Optical Microscopy

Posted on:2014-07-31Degree:Ph.DType:Dissertation
University:Northwestern UniversityCandidate:Damania, DhwanilFull Text:PDF
GTID:1454390005983447Subject:Engineering
Abstract/Summary:
Carcinogenesis is a complex multi-step process which eventually results in a malignant phenotype that often progresses into a fatal metastatic stage. There are several molecular changes (e.g. DNA methylation, activation of proto-oncogenes, loss of tumor-suppressor genes, histone acetylation) that occur in cells prior to the microscopically detectable morphological alterations. Hence, it is intuitive that these molecular changes should impact various biochemical, biophysical and transport processes within the cell and therefore its nanoscale morphology. Furthermore, recent studies have established that apparently `normal' cells (i.e., away from the actual tumor location) undergo similar genetic/epigenetic changes as the actual cancer cells, giving rise to the phenomenon of field carcinogenesis. Unfortunately, traditional microscopy or histopathology cannot resolve structures below 300 nm due to diffraction-limited resolution. Hence, we developed a novel optical imaging technique, partial wave spectroscopic (PWS) microscopy or optical nanocytology which quantifies the nanoscale refractive-index fluctuations (i.e. mass-density variations such as chromatin compaction) in an optically measured biomarker, disorder strength (Ld).;This dissertation proves the nanoscale sensitivity of PWS nanocytology and shows that increase in Ld parallels neoplastic potential of a cell by using standardized cell-lines and animal-models. Based on concept of field carcinogenesis, we employ PWS nanocytology in a multi-center clinical study on approximately 450 patients in four different cancer-types (colon, ovarian, thyroid and lung) and we illustrate that nanoscale disorder increase is a ubiquitous phenomenon across different organs. We further demonstrate the potential of PWS nanocytology in predicting risk for developing future neoplasia. Biologically, we prove that cytoskeletal organization in both nucleus and cytoplasm plays a crucial role in governing L d-differences. Moreover, we elucidate the role of chromatin architecture (specifically histone deacetylase2) in determining nanoscale nuclear disorder. Finally, we develop an image-analysis technique to extract native 3-dimensional-mass-density correlation function of biological cells (cheek cells) using scanning transmission electron microscopy (STEM) without staining or sectioning. This technique can be used in future to corroborate PWS results.;Overall, this work signifies the potential of PWS nanocytology in a clinical setting and establishes it as an important minimally-invasive tool for early cancer detection as well as for better biological understanding of a disease.
Keywords/Search Tags:PWS nanocytology, Carcinogenesis, Cell, Using, Optical, Microscopy
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