248
B. Czarnik-Matusewicz and Y.M. Jung
112. Shashilov v, Xu m, Ermolenkov vv, Fredriksen L, Lednev IK (2007) Probing a Fibrillation Nucleus directly by deep ultraviolet Raman Spectroscopy. J Am Chem Soc
129(22):6972–6973
113. Lednev IK, Xu m, Shashilov v (2009) ultraviolet Raman spectroscopy is uniquely suitable
for studying amyloid diseases. Curr Sci 97(2):180–185
114. oladepo SA, Xiong K, hong Z, Asher SA, handen J, Lednev IK (2012) uv Resonance Raman Investigations of Peptide and Protein Structure and dynamics. Chem Rev
112(5):2604–2628
115. Wang g, geng L (2005) Statistical and generalized two-dimensional Correlation Spectroscopy of multiple Ionization States. Fluorescence of Neurotransmitter Serotonin. Anal
Chem 77(1):20–29
116. Fukuma h, Nakashima K, ozaki Y, Noda I (2006) two-dimensional fluorescence correlation spectroscopy Iv: Resolution of fluorescence of tryptophan residues in alcohol dehydrogenase and lysozyme. Spectrochim Acta A 65(3–4):517–522
117. Wang g, gao Y, geng mL (2006) generalized two-dimensional heterocorrelation analysis
of spectrally resolved and temporally resolved fluorescence of the 8-Anilino-1-naphthalenesulfonate-Apomyoglobin complex with ph perturbation. J Phys Chem B 110(16):8506–
8512
118. Chen C, Xiang B, Yu L, Wang t, Zhao B (2008) the application of two-dimensional fluorescence correlation spectroscopy on the interaction between bovine serum albumin and
paeonolum in the presence of Fe(III). Spectrosc Lett 41(8):385–392
119. ozaki Y, Noda I (2000) two-dimensional vibrational correlation spectroscopy in biomedical sciences. In: meyers RA (ed) Encyclopedia of analytical chemistry. John Wiley & Sons,
pp 322–340
120. ozaki Y, murayama K, Wu Y, Czarnik-matusewicz B (2003) two-dimensional infrared
correlation spectroscopy studies on secondary structures and hydrogen bondings of side
chains of proteins. Spectroscopy 17(2–3):79–100
121. Arrondo JLR, Iloro I, garcia-Pacios m, goñi Fm (2006) two-dimensional infrared correlation spectroscopy. In: Arrondo JLR, Alonso A (eds). Advanced techniques in biophysics.
Springer Series in Biophysics volume 10, pp 73–88
122. Ozaki Y, Šašic S (2006) Two-dimensional correlation spectroscopy of biological and polymeric materials. In: Braiman m, gregoriou vg (ed) vibrational spectroscopy of biological
and polymeric materials. CRC Press, taylor & Francis group, pp 163–214
123. vigano C, manciu L, Buyse F, goormaghtigh E, Ruysschaert Jm (2001) Attenuated total
reflection IR spectroscopy as a tool to investigate the structure, orientation and tertiary
structure changes in peptides and membrane proteins. Pept Sci 55(5):373–380
124. goormaghtigh E (2009) FtIR data processing and analysis tools. In: Barth h, haris PI
(eds) Biological and biomedical infrared spectroscopy. Advances in Biomedical Spectroscopy, vol 2. IoS Press, pp 104–128
125. goormaghtigh E, Raussens v, Ruysschaert Jm (1999) Attenuated total refection infrared
spectroscopy of proteins and lipids in biological membranes. Biochim Biophys Acta, Rev
Biomembr 1422(2):105–185
126. goormaghtigh E, Cabiaux v, Ruysschaert Jm (1994) determination of soluble and membrane protein structure by Fourier transform infrared spectroscopy. III. Secondary structures.
In: hilderson hJ, Ralston gB (eds) Physicochemical methods in the study of biomembranes. Subcellular Biochemistry, vol 23. Springer, pp 405–450
127. Invernizzi g, Papaleo E, Sabate R, ventura S (2012) Protein aggregation: mechanisms and
functional consequences. Int J Biochem Cell Biol 44(9):1541–1554
128. oberg KA, Fink AL (1998) A new attenuated total reflectance Fourier transform infrared
spectroscopy method for the study of proteins in solution. Anal Biochem 256(1):92–106
129. goormaghtigh E, Cabiaux v, Ruysschaert Jm (1994) determination of soluble and membrane protein structure by Fourier transform infrared spectroscopy. II. Experimental aspects,
side chain structure, and h/d exchange. In: hilderson hJ, Ralston gB (eds) Physicoche-
B. Czarnik-Matusewicz and Y.M. Jung
112. Shashilov v, Xu m, Ermolenkov vv, Fredriksen L, Lednev IK (2007) Probing a Fibrillation Nucleus directly by deep ultraviolet Raman Spectroscopy. J Am Chem Soc
129(22):6972–6973
113. Lednev IK, Xu m, Shashilov v (2009) ultraviolet Raman spectroscopy is uniquely suitable
for studying amyloid diseases. Curr Sci 97(2):180–185
114. oladepo SA, Xiong K, hong Z, Asher SA, handen J, Lednev IK (2012) uv Resonance Raman Investigations of Peptide and Protein Structure and dynamics. Chem Rev
112(5):2604–2628
115. Wang g, geng L (2005) Statistical and generalized two-dimensional Correlation Spectroscopy of multiple Ionization States. Fluorescence of Neurotransmitter Serotonin. Anal
Chem 77(1):20–29
116. Fukuma h, Nakashima K, ozaki Y, Noda I (2006) two-dimensional fluorescence correlation spectroscopy Iv: Resolution of fluorescence of tryptophan residues in alcohol dehydrogenase and lysozyme. Spectrochim Acta A 65(3–4):517–522
117. Wang g, gao Y, geng mL (2006) generalized two-dimensional heterocorrelation analysis
of spectrally resolved and temporally resolved fluorescence of the 8-Anilino-1-naphthalenesulfonate-Apomyoglobin complex with ph perturbation. J Phys Chem B 110(16):8506–
8512
118. Chen C, Xiang B, Yu L, Wang t, Zhao B (2008) the application of two-dimensional fluorescence correlation spectroscopy on the interaction between bovine serum albumin and
paeonolum in the presence of Fe(III). Spectrosc Lett 41(8):385–392
119. ozaki Y, Noda I (2000) two-dimensional vibrational correlation spectroscopy in biomedical sciences. In: meyers RA (ed) Encyclopedia of analytical chemistry. John Wiley & Sons,
pp 322–340
120. ozaki Y, murayama K, Wu Y, Czarnik-matusewicz B (2003) two-dimensional infrared
correlation spectroscopy studies on secondary structures and hydrogen bondings of side
chains of proteins. Spectroscopy 17(2–3):79–100
121. Arrondo JLR, Iloro I, garcia-Pacios m, goñi Fm (2006) two-dimensional infrared correlation spectroscopy. In: Arrondo JLR, Alonso A (eds). Advanced techniques in biophysics.
Springer Series in Biophysics volume 10, pp 73–88
122. Ozaki Y, Šašic S (2006) Two-dimensional correlation spectroscopy of biological and polymeric materials. In: Braiman m, gregoriou vg (ed) vibrational spectroscopy of biological
and polymeric materials. CRC Press, taylor & Francis group, pp 163–214
123. vigano C, manciu L, Buyse F, goormaghtigh E, Ruysschaert Jm (2001) Attenuated total
reflection IR spectroscopy as a tool to investigate the structure, orientation and tertiary
structure changes in peptides and membrane proteins. Pept Sci 55(5):373–380
124. goormaghtigh E (2009) FtIR data processing and analysis tools. In: Barth h, haris PI
(eds) Biological and biomedical infrared spectroscopy. Advances in Biomedical Spectroscopy, vol 2. IoS Press, pp 104–128
125. goormaghtigh E, Raussens v, Ruysschaert Jm (1999) Attenuated total refection infrared
spectroscopy of proteins and lipids in biological membranes. Biochim Biophys Acta, Rev
Biomembr 1422(2):105–185
126. goormaghtigh E, Cabiaux v, Ruysschaert Jm (1994) determination of soluble and membrane protein structure by Fourier transform infrared spectroscopy. III. Secondary structures.
In: hilderson hJ, Ralston gB (eds) Physicochemical methods in the study of biomembranes. Subcellular Biochemistry, vol 23. Springer, pp 405–450
127. Invernizzi g, Papaleo E, Sabate R, ventura S (2012) Protein aggregation: mechanisms and
functional consequences. Int J Biochem Cell Biol 44(9):1541–1554
128. oberg KA, Fink AL (1998) A new attenuated total reflectance Fourier transform infrared
spectroscopy method for the study of proteins in solution. Anal Biochem 256(1):92–106
129. goormaghtigh E, Cabiaux v, Ruysschaert Jm (1994) determination of soluble and membrane protein structure by Fourier transform infrared spectroscopy. II. Experimental aspects,
side chain structure, and h/d exchange. In: hilderson hJ, Ralston gB (eds) Physicoche-
