Journal of Innovative Optical Health Sciences, 2014, 7 (4): 1350060, Published Online: Jan. 10, 2019  

Quantification of glycated hemoglobin indicator HbA1c through near-infrared spectroscopy

Author Affiliations
Key Laboratory of Optoelectronic Information and Sensing Technologies of Guangdong Higher Educational Institutes Jinan University, Guangzhou 510632, P. R. China
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Tao Pan, Minmiao Li, Jiemei Chen, Haiyan Xue. Quantification of glycated hemoglobin indicator HbA1c through near-infrared spectroscopy[J]. Journal of Innovative Optical Health Sciences, 2014, 7(4): 1350060.

References

[1] O. S. Zhernovaya, V. V. Tuchin, I. V. Meglinski, "Monitoring of blood proteins glycation by refractive index and spectral measurements," Laser Phys. Lett. 6, 460–464 (2008).

[2] American Diabetes Association, "Standards of medical care for patients with diabetes mellitus," Diabetes Care 26, 33–50 (2003).

[3] R. Welle, W. Greten, B. Rietmann, S. Alley, G. Sinnaeve, P. Dardenne, "Near-infrared spectroscopy on chopper to measure maize forage quality parameters online," Crop Sci. 43, 1407–1413 (2003).

[4] J. Y. Chen, H. Zhang, R. Matsunaga, "Rapid determination of the main organic acid composition of raw Japanese apricot fruit juices using near-infrared spectroscopy," J. Agric. Food Chem. 54, 9652–9657 (2006).

[5] A. C. Sousa, M. M. L. M. Lucio, O. F. Bezerra, G. P. S. Marcone, A. F. C. Pereira, E. O. Dantas, W. D. Fragoso, M. C. U. Araujo, R. K. H. Galvao, "A method for determination of COD in a domestic wastewater treatment plant by using near-infrared reflectance spectrometry of seston," Anal. Chim. Acta 588, 231–236 (2007),

[6] K. H. Hazen, M. A. Arnold, G. W. Small, "Measurement of glucose and other analytes in undiluted human serum with near-infrared transmission spectroscopy," Anal. Chim. Acta 371, 255– 267 (1998).

[7] R. W. Bondi, B. Igne, J. K. Drennen, "Effect of experimental design on the prediction performance of calibration models based on near-infrared spectroscopy for pharmaceutical applications," Appl. Spectrosc. 66, 1442–1453 (2012).

[8] Y. Ozaki, "Near-infrared spectroscopy-its versatility in analytical chemistry," Anal. Sci. 28, 545–563 (2012).

[9] R. Kannan, A. J. Przekwas, "A near-infrared spectroscopy computational model for cerebral hemodynamics," Int. J. Numer. Methods Biomed. Eng. 28, 1093–1106 (2012).

[10] R. Kannan, A. J. Przekwas, "A computational model to detect and quantify a primary blast lung injury using near-infrared optical tomography," Int. J. Numer. Methods Biomed. Eng. 27, 13–28 (2011).

[11] V. N. Istvan, J. K. Karoly, M. J. Janos, G. éva, D. Gyula, "Application of near infrared spectroscopy to the determination of haemoglobin," Clin. Chem. Acta 264, 117–125 (1997).

[12] Y. Lee, S. Lee, J. Y. In, S. H. Chung, J. H. Yon, "Prediction of plasma hemoglobin concentration by near-infrared spectroscopy," J. Korean Med. Sci. 23, 674–677 (2008).

[13] X. Q. Shan, L. G. Chen, Y. Yuan, C. S. Liu, X. L. Zhang, Y. Sheng, F. Xu, "Quantitative analysis of hemoglobin content in polymeric nanoparticles as blood substitutes using Fourier transform infrared spectroscopy," J. Mater. Sci. 21, 241–249 (2010).

[14] J. H. Jiang, R. J. Berry, H. W. Siesler, Y. Ozaki, "Wavelength interval selection in multicomponent spectral analysis by moving window partial leastsquares regression with applications to mid-infrared and near-infrared spectroscopic data," Anal. Chem. 74, 3555–3565 (2002).

[15] Y. P. Du, Y. Z. Liang, J. H. Jiang, R. J. Berry, Y. Ozaki, "Spectral regions selection to improve prediction ability of PLS models by changeable size moving window partial least squares and searching combination moving window partial least squares," Anal. Chim. Acta 501, 183–191 (2004).

[16] H. Z. Chen, T. Pan, J. M. Chen, Q. P. Lu, "Waveband selection for NIR spectroscopy analysis of soil organic matter based on SG smoothing and MWPLS methods," Chemometr. Intell. Lab. Syst. 107, 139–146 (2011).

[17] H. Yin, T. Pan, P. L. Tian, Y. Han, X. C. Wei, Q. J. Zhang, J. Y. Fang, Q. Zhong, H. Feng, "The rapid quantitative analysis for the human blood hemoglobin applied through the FTIR/ATR spectrum," Chin. J. Spectroscopy Laboratory 26, 431–436 (2009).

[18] T. Pan, Z. H. Chen, J. M. Chen, Z. Y. Liu, "Nearinfrared spectroscopy with waveband selection stability for the determination of COD in sugar refinery wastewater," Anal. Methods 4, 1046–1052 (2012).

[19] T. Pan, Z. T. Wu, J. M. Chen, "Waveband optimization for near-infrared spectroscopic analysis of total nitrogen in soil," Chinese J. Anal. Chem. 40, 920–924 (2012).

[20] Z. Y. Liu, B. Liu, T. Pan, J. D. Yang, "Determination of amino acid nitrogen in tuber mustard using near-infrared spectroscopy with waveband selection stability," Spectrochim. Acta A 102, 269–274 (2013).

[21] J. Xie, T. Pan, J. M. Chen, H. Z. Chen, X. H. Ren, "Joint optimization of savitzky-Golay smoothing models and partial least squares factors for nearinfrared spectroscopic analysis of serum glucose," Chin. J. Anal. Chem. 38, 342–346 (2010).

[22] T. Pan, J. M. Liu, J. M. Chen, G. P. Zhang, Y. Zhao, "Rapid determination of preliminary thalassaemia screening indicators based on near-infrared spectroscopy with wavelength selection stability," Anal. Methods 5, 4355–4362 (2013).

Tao Pan, Minmiao Li, Jiemei Chen, Haiyan Xue. Quantification of glycated hemoglobin indicator HbA1c through near-infrared spectroscopy[J]. Journal of Innovative Optical Health Sciences, 2014, 7(4): 1350060.

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