Biomedical Engineering Reference
In-Depth Information
144. Chan, J., Taylor, D. S., Lane, S. M., et al. 2008. Nondestructive identification
of individual leukemia cells by laser trapping Raman spectroscopy. Analytical
Chemistry 80(6), 2180-2187.
145. Khanmohammadi, M., Nasiri R., Ghasemi K., et al. 2007. Diagnosis of basal cell
carcinoma by infrared spectroscopy of whole blood samples applying soft inde-
pendent modeling class analogy. Journal of Cancer Research and Clinical Oncology
133, 1001-1010.
146. Pichardo-Molina, J. L., Frausto-Reyes, C., Barbosa-Garcia, O., et al. 2007. Raman
spectroscopy and multivariate analysis of serum samples from breast cancer
patients. Lasers in Medical Science 22, 229-236.
147. Huleihel, M., Karpasas, M., Talyshansky, M., Souprun, Y., Doubijanski, Y., and
Erukhimovitch, V. 2005. MALDI-TOF and FTIR microscopy analysis of blood
serum from diarrhea patients. Spectroscopy: An International Journal 19(2),
101-108.
148. Rehman, S., Movasaghi, Z., Darr, J. A., and Rehman, I. U. 2010. Fourier trans-
form infrared spectroscopic analysis of breast cancer tissues: Identifying differ-
ences between normal breast invasive ductal carcinoma, and ductal carcinoma
in situ of the breast; Applied Spectroscopy Reviews 45, 5, 355-368.
149. Rehman, S., Movasaghi, Z., Tucker, A. T., Joel, S., Darr, J. A., and Rehman, I. U.
2007. Raman spectroscopic analysis of breast cancer tissues: Identifying differ-
ences between normal breast invasive ductal carcinoma, and ductal carcinoma
in situ of the breast, Journal of Raman Spectroscopy , 38, 10, 1345-1351.
150. Gazi, E., Dwyer, J., Gardner, P., Ghanbari-Siakhani, A., Wde, A. P., Lockyer, N. P.,
Vickerman, J. C., Clarke, N. W., Shanks, J. H., Scott, L. J., Hart, C. A., Brown, M.,
2003. Applications of Fourier transform infrared microspectroscopy in studies
of benign prostate and prostate cancer: A pilot study. J. Pathol. 201, 99-108.
151. Paluszkiewicz, C., and Kwiatek, W. M., 2001. Analysis of human cancer prostate
tissues using FTIR microscopy and SXIXE techniques. J. Mol. Structures 565-566,
329-334.
152. Argov, S., Sahu, R. K., Bernshtain, E., Salam, A., Shohat, G., Zelig, U., and
Mordechai, S. 2004. Inflammatory bowel diseases as an intermediate stage
between normal and cancer: A FTIR-microspectroscopy approach. Biopolymers
75, 384-392.
153. Richter, T., Steiner, G., Abu-Id, M. H., Salzer, R., Gergmann, R., Rodig, H., and
Johannsen, B. 2002. Identification of tumour tissue by FTIR spectroscopy in
combination with positron emission tomography. Vibrational Spectroscopy 28,
103-110.
154. Rigas, B., Morgello, S., Goldman, I. S., and Wong, P. T. T. 1999. Human colorectal
cancers display abnormal Fourier-transform infrared spectra. Proc. Natl. Acad.
Sci. USA 87, 8140-8144.
155. Rigas, B., and Wong, P. T. T. 1992. Human colon adenocarcinoma cell lines dis-
play infrared spectroscopic features of malignant colon tissues. Cancer Res. 52,
84-88.
156. Pinzaru, S. C., Andronie, L. M., Domsa, I., et al. 2008. Bridging biomolecules
with nanoparticles: Surface-enhanced Raman scattering from colon carcinoma
and normal tissue. Journal of Raman Spectroscopy 39(3), 331-334.
157. Widjaja, E., Zheng, W., and Huang, Z. W. 2008. Classification of colonic tis-
sues using near-infrared Raman spectroscopy and support vector machines.
International Journal of Oncology 32(3), 653-662.
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