[1] . Structural and Functional Modification of Human Serum Albumin by Lipid Peroxidation By-Products(2005).
[2] Structure of serum-albumin. Adv. Protein Chem., 45, 153-203(1994).
[3] All about albumin. All About Albumin, 319-413(1995).
[4] J. R. Brown, “Structure of serum-albumin,” Abs. Papers Am. Chem. Soc.172(Sep3), 12 (1976).
[5] et alChemical, clinical, and immunological studies on the products of human plasma fractionation. I. The characterization of the protein fractions of human plasma. J. Clin. Invest., 23, 417-432(1944).
[6] et alInvestigation of protective effect of ethanol on the natural structure of protein with infrared spectroscopy. Spectrochim. Acta A-Mol. Biomol. Spectrosc., 271, 120935(2022).
[7] Biomolecular and bioanalytical applications of infrared spectroscopy — A review. Anal. Chim. Acta., 1133, 150-177(2020).
[8] et alNear-infrared spectroscopy for in-line monitoring of protein unfolding and its interactions with lyoprotectants during freeze-drying. Anal. Chem., 84, 947-955(2012).
[9] Modeling temperature-dependent protein structural transitions by combined near-IR and mid-IR spectroscopies and multivariate curve resolution. Anal. Chem., 75, 5592-5601(2003).
[10] et alInvestigation of water interaction with polymer matrices by near-infrared (NIR) spectroscopy. Molecules, 27, 5882(2022).
[11] et alDetermination of the immunoglobulin G precipitation end-point by an intelligent near-infrared spectroscopy system. J. Innov. Opt. Health Sci., 14, 2150007(2021).
[12] Investigating the structural change in protein aqueous solution using temperature-dependent near-infrared spectroscopy and continuous wavelet transform. Appl. Spectrosc., 71, 472-479(2017).
[13] et alUnderstanding the function of water during the gelation of globular proteins by temperature-dependent near infrared spectroscopy. Phys. Chem. Chem. Phys., 20, 20132-20140(2018).
[14] . Two-Dimensional Nuclear Magnetic Resonance in Liquids(1982).
[15] et alTwo-dimensional vibrational circular dichroism correlation spectroscopy: pH-induced spectral changes in L-alanine. J. Mol. Struct., 799, 226-238(2006).
[16] Visible-near infrared perturbation spectroscopy: Water in action seen as a source of information. 12th Int. Conf. Near-Infrared Spectroscopy, 607-612(2005).
[17] et alApplication of near-infrared spectroscopy to agriculture and food analysis. Guang Pu Xue Yu Guang Pu Fen Xi, 24, 447-450(2004).
[18] et alQuantification of potassium concentration with Vis/SWNIR spectroscopy in fresh lettuce. J. Innov. Opt. Health Sci., 13, 2050029(2020).
[19] Near-infrared spectroscopy applications in pharmaceutical analysis. Talanta, 72, 865-883(2007).
[20] et alMultivariety and multimanufacturer drug identification based on near-infrared spectroscopy and recurrent neural network. J. Innov. Opt. Health Sci., 15, 2250022(2022).
[21] et alRapid and simultaneous determination of moisture and berberine content in Coptidis Rhizoma and Phellodendri Chinensis Cortex by near-infrared spectroscopy and chemometrics. J. Innov. Opt. Health Sci., 13, 2050006(2020).
[22] et alAssessment of cerebral oxygenation response to hemodialysis using near-infrared spectroscopy (NIRS): Challenges and solutions. J. Innov. Opt. Health Sci., 14, 2150016(2021).
[23] et alNear-infrared spectroscopy as a promising tool in stroke: Current applications and future perspectives. J. Innov. Opt. Health Sci., 14, 2130006(2021).
[24] et alSpectra selection methods: A novel optimization way for treating dynamic spectra and in-line near infrared modelling. J. Innov. Opt. Health Sci., 13, 2050015(2020).
[25] et alMulti-manufacturer drug identification based on near infrared spectroscopy and deep transfer learning. J. Innov. Opt. Health Sci., 13, 2050016(2020).
[26] et alAquaphotomics approach for monitoring different steps of purification process in water treatment systems. Talanta, 206, 120253(2020).
[27] Development of calibration models for rapid determination of moisture content in rubber sheets using portable near-infrared spectrometers. J. Innov. Opt. Health Sci., 13, 2050009(2020).
[28] Correlation between chain architecture and hydration water structure in polysaccharides. Biomacromolecules, 17, 1198-1204(2016).
[29] et al. Near-Infrared Spectroscopy: Theory, Spectral Analysis, Instrumentation, and Applications(2021).
[30] Two-dimensional infrared spectroscopy and principle component analysis studies of the secondary structure and kinetics of hydrogen-deuterium exchange of human serum albumin. J. Phys. Chem. B, 105, 6251-6259(2001).
[31] et alInfrared spectroscopy of hydrogen-bonding interactions in neutral dimethylamine-methanol complexes. J. Phys. Chem. A, 123, 10109-10115(2019).
[32] A new possibility of the generalized two-dimensional correlation spectroscopy. 1. Sample-sample correlation spectroscopy. J. Phys. Chem. A, 104, 6380-6387(2000).
[33] et alPerturbation-correlation moving-window two-dimensional correlation spectroscopy. Appl. Spectrosc., 60, 398-406(2006).
[34] et alTwo-dimensional/attenuated total reflection infrared correlation spectroscopy studies on secondary structural changes in human serum albumin in aqueous solutions: pH-dependent structural changes in the secondary structures and in the hydrogen bondings of side chains. J. Phys. Chem. B, 105, 4763-4769(2001).
[35] ScienceDirect. All About Albumin: Biochemistry, Genetics, and Medical Applications(1996).
[36] Structure of serum albumin. Adv. Protein Chem., 45, 153-203(1994).
[37] et alCd-resolved secondary structure of bovine plasma-albumin in acid-induced isomerization. Int. J. Peptide Protein Res., 22, 333-340(1983).
[38] . Two-Dimensional Correlation Spectroscopy: Applications in Vibrational and Optical Spectroscopy(2005).
[39] Concatenated two-dimensional correlation analysis: A new possibility for generalized two-dimensional correlation spectroscopy and its application to the examination of process reversibility. Appl. Spectrosc., 64, 343-350(2010).
[40] . Practical Guide to Interpretive Near-Infrared Spectroscopy(2008).
[41] et alResearch on the structure of peanut allergen protein ara h1 based on aquaphotomics. Front. Nutr., 8, 696355(2021).
[42] Near-infrared spectroscopic method for investigating the hydration of a solute in aqueous solution. J. Phys. Chem., 74, 2990-2998(1970).
[43] et alAnalysis of hydration water around human serum albumin using near-infrared spectroscopy. Int. J. Biol. Macromol., 138, 927-932(2019).
[44] Aquaphotomics: dynamic spectroscopy of aqueous and biological systems describes peculiarities of water. J. Near Infrared Spectrosc., 17, 303-313(2009).
[45] et alWater confined in the local field of ions. Chem. Phys. Chem., 15, 4077-4086(2014).
[46] et alUse of near infrared hyperspectral imaging to identify water matrix co-ordinates in mushrooms (Agaricus bisporus) subjected to mechanical vibration. J. Near Infrared Spectrosc., 17, 363-371(2009).
[47] et alUnderstanding hyaluronic acid induced variation of water structure by near-infrared spectroscopy. Sci. Rep., 10, 1-8(2020).
[48] et alWater molecular system dynamics associated with amyloidogenic nucleation as revealed by real time near infrared spectroscopy and aquaphotomics. PLoS One, 9, e101997(2014).