Chemistry Reference
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255 Nebel, c. Ozone. In Kirk-Othmer Encyclopaedia of Chemical Technology , Vol.
16, 3rd ed., Anonymous, ed. John Wiley & Sons, New york, 1988, pp. 683-713.
256 Karpel, N., Leitner, V., Berger, P., and Legube, B. Oxidation of amino groups by
hydroxyl radicals in relation to the oxidation degree of the α-carbon. Environ.
Sci. Technol. 2002, 36 , 3083-3089.
257 Spraggins, J.M., Lloyd, J.A., Johnston, M.V., Laskin, J., and Ridge, D.P. Fragmenta-
tion mechanisms of oxidized peptides elucidated by SID, RRKM modeling, and
molecular dynamics. J. Am. Soc. Mass Spectrom. 2009, 20 , 1579-1592.
258 Havel, H.A. Derivative near-ultraviolet absorption techniques for investigating
protein structure. In Spectroscopic Methods for Determining Protein Structure in
Solution , H.A. Havel, ed. Wiley-VcH, New york, 1996, chapter 4.
259 Kim, H.I., Kim, H., Shin, y.S., Beegle, L.W., Jang, S.S., Neidholdt, E.L., goddard,
W.A., Heath, J.R., Kanik, I., and Beauchamp, J.L. Interfacial reactions of ozone
with surfactant protein B in a model lung surfactant system. J. Am. Chem. Soc.
2010, 132 , 2254-2263.
260 Kim, H.I., Kim, H., Shin, y.S., Beegle, L.W., goddard, W.A., Heath, J.R., Kanik,
I., and Beauchamp, J.L. Time resolved studies of interfacial reactions of ozone
with pulmonary phospholipid surfactants using field induced droplet ionization
mass spectrometry. J. Phys. Chem. B 2010, 114 , 9496-9503.
261 xu, g. and chance, M.R. Hydroxyl radical-mediated modification of proteins as
probes for structural proteomics. Chem. Rev. 2007, 107 , 3514-3543.
262 Buxton, g.V. An overview of the radiation chemistry of liquids. In Radiation
Chemistry: From Basics to Applications in Material and Life Science , M. Spotheim-
Maurizot, M. Mostafavi, and T.D. Jacquline, eds. EDP Sciences, L'Editeur, France,
2008, pp. 3-16.
263 Emmi, S.S. and Takacs, E. Water remediation by the electron beam treatment. In
Radiation Chemistry: from Basics to Applications in Material and Life Sciences ,
M. Spotheim-Maurizot, M. Mostafavi, and T.D. Jacquline, eds. EDP Sciences, L'
Editeur, France, 2008, pp. 79-95.
264 Shcherbakova, I., Mitra, S., Beer, R.H., and Brenowitz, M. Fast Fenton footprint-
ing: a laboratory-based method for the time-resolved analysis of DNA, RNA and
proteins. Nucleic Acids Res. 2006, 34 , document no. e48.
265 Watson, c., Janik, I., Zhuang, T., charvátová, O., Woods, R.J., and Sharp, J.S. Pulsed
electron beam water radiolysis for submicrosecond hydroxyl radical protein foot-
printing. Anal. Chem. 2009, 81 , 2496-2505.
266 Aye, T.T., Low, T.y., and Sze, S.K. Nanosecond laser-induced photochemical oxi-
dation method for protein surface mapping with mass spectrometry. Anal. Chem.
2005, 77 , 5814-5822.
267 Maleknia, S.D., Ralston, c.y., Brenowitz, M.D., Downard, K.M., and chance,
M.R. Determination of macromolecular folding and structure by synchrotron
x-ray radiolysis techniques. Anal. Biochem. 2001, 289 , 103-115.
268 cooper, R. The history and development of radiation chemistry. Aust. J. Chem.
2011, 64 , 864-868.
269 Roth, O. and LaVerne, J.A. Effect of pH on H 2 O 2 production in the radiolysis of
water. J. Phys. Chem. A 2011, 115 , 700-708.
270 Rogers, F.M.A. Radiation Chemistry: Principles and Applications . VcH, New
york, 1987.
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