Analytica Chimica Acta, accepted, 07/07/2015. This is the accepted version without proofing
corrections. DOI: 10.1016/j.aca.2015.06.011
.
Page 16 of 26
[17]
K. Flora, J.D. Brennan, G.A. Baker, M.A. Doody, F.V. Bright, Unfolding of acrylodanlabeled human serum albumin probed by steady-state and time-resolved fluorescence methods,
Biophys. J., 75 (1998) 1084-1096.
[18]
R.K. Mitra, S.S. Sinha, S.K. Pal, Hydration in protein folding: Thermal unfolding/refolding of
human serum albumin, Langmuir, 23 (2007) 10224-10229.
[19]
I.M. Vlasova, A.M. Saletsky, Study of the Denaturation of Human Serum Albumin by
Sodium Dodecyl Sulfate Using the Intrinsic Fluorescence of Albumin, Journal of Applied
Spectroscopy, 76 (2009) 536-541.
[20]
G.A. Pico, Thermodynamic features of the thermal unfolding of human serum albumin,
International Journal of Biological Macromolecules, 20 (1997) 63-73.
[21]
R. Wetzel, M. Becker, J. Behlke, H. Billwitz, S. BöHm, B. Ebert, H. Hamann, J. Krumbiegel,
G. Lassmann, Temperature Behaviour of Human Serum Albumin, European Journal of Biochemistry,
104 (1980) 469-478.
[22]
I.M. Warner, G.D. Christian, E.R. Davidson, J.B. Callis, Analysis of Multicomponent
Fluorescence Data, Anal. Chem., 49 (1977) 564-573.
[23]
D. Patra, A.K. Mishra, Recent developments in multi-component synchronous fluorescence
scan analysis, Trac-Trends Anal. Chem., 21 (2002) 787-798.
[24]
P.W. Ryan, B. Li, M. Shanahan, K.J. Leister, A.G. Ryder, Prediction of Cell Culture Media
Performance Using Fluorescence Spectroscopy, Anal. Chem., 82 (2010) 1311-1317.
[25]
J. Bridgeman, M. Bieroza, A. Baker, The application of fluorescence spectroscopy to organic
matter characterisation in drinking water treatment, Rev. Environ. Sci. Bio-Technol., 10 (2011) 277290.
[26]
B. Li, P.W. Ryan, M. Shanahan, K.J. Leister, A.G. Ryder, Fluorescence EEM Spectroscopy
for Rapid Identification and Quality Evaluation of Cell Culture Media Components., Appl. Spectrosc.,
65 (2011) 1240-1249.
[27]
A. Calvet, B. Li, A.G. Ryder, A rapid fluorescence based method for the quantitative analysis
of cell culture media photo-degradation, Anal. Chim. Acta, 807 (2014) 111-119.
[28]
B. Li, M. Shanahan, A. Calvet, K.J. Leister, A.G. Ryder, Comprehensive, quantitative
bioprocess productivity monitoring using fluorescence EEM spectroscopy and chemometrics, Analyst,
139 (2014) 1661-1671.
[29]
E.A. Burstein, N.S. Vedenkin, M.N. Ivkova, Fluorescence and the Location of Tryptophan
Residues in Protein Molecules, Photochem. Photobiol., 18 (1973) 263-279.
[30]
N. Tayeh, T. Rungassamy, J.R. Albani, Fluorescence spectral resolution of tryptophan
residues in bovine and human serum albumins, J. Pharm. Biomed. Anal., 50 (2009) 107-116.
[31]
K.R. Grigoryan, Fluorescent Analysis of the Structural Changes of Human Serum Albumin
Induced by Low Temperatures in Water-Dimethyl Sulfoxide Solutions, Russ. J. Phys. Chem. A, 85
(2011) 317-320.
[32]
K.R. Grigoryan, H.A. Shilajyan, Intermolecular interactions in albumin-sulfoxide-water
systems at low temperatures, investigated by means of fluorescence quenching, Russ. J. Phys. Chem.
A, 87 (2013) 780-782.
[33]
J.M. Amigo, F. Marini, in: M. Federico (Ed.), Data Handling in Science and Technology,
Elsevier, 2013, p. 265-313.
[34]
J.H. Jiang, Y. Ozaki, Self-modeling curve resolution (SMCR): Principles, techniques, and
applications, Applied Spectroscopy Reviews, 37 (2002) 321-345.
[35]
M.C.G. Antunes, J. da Silva, Multivariate curve resolution analysis excitation-emission
matrices of fluorescence of humic substances, Anal. Chim. Acta, 546 (2005) 52-59.
corrections. DOI: 10.1016/j.aca.2015.06.011
.
Page 16 of 26
[17]
K. Flora, J.D. Brennan, G.A. Baker, M.A. Doody, F.V. Bright, Unfolding of acrylodanlabeled human serum albumin probed by steady-state and time-resolved fluorescence methods,
Biophys. J., 75 (1998) 1084-1096.
[18]
R.K. Mitra, S.S. Sinha, S.K. Pal, Hydration in protein folding: Thermal unfolding/refolding of
human serum albumin, Langmuir, 23 (2007) 10224-10229.
[19]
I.M. Vlasova, A.M. Saletsky, Study of the Denaturation of Human Serum Albumin by
Sodium Dodecyl Sulfate Using the Intrinsic Fluorescence of Albumin, Journal of Applied
Spectroscopy, 76 (2009) 536-541.
[20]
G.A. Pico, Thermodynamic features of the thermal unfolding of human serum albumin,
International Journal of Biological Macromolecules, 20 (1997) 63-73.
[21]
R. Wetzel, M. Becker, J. Behlke, H. Billwitz, S. BöHm, B. Ebert, H. Hamann, J. Krumbiegel,
G. Lassmann, Temperature Behaviour of Human Serum Albumin, European Journal of Biochemistry,
104 (1980) 469-478.
[22]
I.M. Warner, G.D. Christian, E.R. Davidson, J.B. Callis, Analysis of Multicomponent
Fluorescence Data, Anal. Chem., 49 (1977) 564-573.
[23]
D. Patra, A.K. Mishra, Recent developments in multi-component synchronous fluorescence
scan analysis, Trac-Trends Anal. Chem., 21 (2002) 787-798.
[24]
P.W. Ryan, B. Li, M. Shanahan, K.J. Leister, A.G. Ryder, Prediction of Cell Culture Media
Performance Using Fluorescence Spectroscopy, Anal. Chem., 82 (2010) 1311-1317.
[25]
J. Bridgeman, M. Bieroza, A. Baker, The application of fluorescence spectroscopy to organic
matter characterisation in drinking water treatment, Rev. Environ. Sci. Bio-Technol., 10 (2011) 277290.
[26]
B. Li, P.W. Ryan, M. Shanahan, K.J. Leister, A.G. Ryder, Fluorescence EEM Spectroscopy
for Rapid Identification and Quality Evaluation of Cell Culture Media Components., Appl. Spectrosc.,
65 (2011) 1240-1249.
[27]
A. Calvet, B. Li, A.G. Ryder, A rapid fluorescence based method for the quantitative analysis
of cell culture media photo-degradation, Anal. Chim. Acta, 807 (2014) 111-119.
[28]
B. Li, M. Shanahan, A. Calvet, K.J. Leister, A.G. Ryder, Comprehensive, quantitative
bioprocess productivity monitoring using fluorescence EEM spectroscopy and chemometrics, Analyst,
139 (2014) 1661-1671.
[29]
E.A. Burstein, N.S. Vedenkin, M.N. Ivkova, Fluorescence and the Location of Tryptophan
Residues in Protein Molecules, Photochem. Photobiol., 18 (1973) 263-279.
[30]
N. Tayeh, T. Rungassamy, J.R. Albani, Fluorescence spectral resolution of tryptophan
residues in bovine and human serum albumins, J. Pharm. Biomed. Anal., 50 (2009) 107-116.
[31]
K.R. Grigoryan, Fluorescent Analysis of the Structural Changes of Human Serum Albumin
Induced by Low Temperatures in Water-Dimethyl Sulfoxide Solutions, Russ. J. Phys. Chem. A, 85
(2011) 317-320.
[32]
K.R. Grigoryan, H.A. Shilajyan, Intermolecular interactions in albumin-sulfoxide-water
systems at low temperatures, investigated by means of fluorescence quenching, Russ. J. Phys. Chem.
A, 87 (2013) 780-782.
[33]
J.M. Amigo, F. Marini, in: M. Federico (Ed.), Data Handling in Science and Technology,
Elsevier, 2013, p. 265-313.
[34]
J.H. Jiang, Y. Ozaki, Self-modeling curve resolution (SMCR): Principles, techniques, and
applications, Applied Spectroscopy Reviews, 37 (2002) 321-345.
[35]
M.C.G. Antunes, J. da Silva, Multivariate curve resolution analysis excitation-emission
matrices of fluorescence of humic substances, Anal. Chim. Acta, 546 (2005) 52-59.
