1. Пушкарева А.Е. Методы математического моделирования в оптике биоткани. Учебное пособие. СПб: СПбГУ ИТМО, 2008, 103 с. EDN: https://elibrary.ru/ZBCFWT

2. Bridge T.P., Fell A.F., Wardman R.H. Perspectives in derivative spectroscopy, Part 1-Theoretical principles. JSDS, 1987, vol. 103, no 1, pp.17-27, doi:https://doi.org/10.1111/j.1478-4408.1987.tb01081.x.

3. O'Haver, Thomas C. and T.H. Begley. Signal-to-noise ratio in higher order derivative spectrometry. Analytical Chemistry, 1981, vol. 53, pp. 1876-1878, doi:https://doi.org/10.1021/AC00235A036.

4. Sahini K., Nalini Dr.C.N. A review on derivative spectroscopy and its benefits in drug analysis. IJCRT, 2020, vol. 8, iss. 12, ISSN: 2320-2882.

5. Howard M., Workman Jr. Derivatives in Spectroscopy. Part II - The True Derivative. Spectroscopy, 2003, vol. 18, no. 9, p. 25.

6. Костюк А.И., Котова Д.А., Демидович А.Д. и др. Изменение ключевых параметров метаболизма липидов в тканях мозга крыс при перманентной ишемии. Вестник РГМУ, 2019, 1, с. 50-57. DOI: https://doi.org/10.24075/vrgmu.2019.008; EDN: https://elibrary.ru/PTJPMY

7. Ohkawa H., Ohishi N., Yagi K. Assay for lipid peroxides in animal tissues by thiobarbituric acid reaction. Anal. Biochem., 1979, vol. 95, no. 2, pp. 351-358.

8. Moselhy H.F., Reid R.G., Yousef S., Boyle S.P. A specific, accurate, and sensitive measure of total plasma malondialdehyde by HPLC. J. Lipid Res., 2013, vol. 54, pp. 852-858.

9. Domijan A.-M., Ralic J., Brkanac S.R., Rumora L., Zanic-Grubisic T. Quantification of malondialdehyde by HPLC-FL - application to various biological samples. Biomedical Chromatography, 2015, vol. 29, iss. 1, pp. 41-46.

10. Gulbahar O., Aricioglu A., Akmansu M., and Turkozer Z. Effects of Radiation on Protein Oxidation and Lipid Peroxidation in the Brain Tissue. Transplantation Proceedings, 2009, vol. 41, pp. 4394-4396.

11. Savitzky A., Golay M.J.E. Smoothing and differentiation of data by simplified least-squares procedures. Analytical Chemistry, 1964, vol. 36, no. 8, pp. 1627-1639.

12. Smith P.K., Krohn O.H., Hermanson G.T., Mallia A.K., Gartner F.H., Provenzano D., Fujimoto E.K., Goeke N.M., Olson B.J., Klenk D.C. Measurement of protein using bicinchoninic acid. Anal. Biochem., 1985, vol. 150, no. 1, pp. 76-85.

13. Zelzer S., Oberreither R., Bernecker C., Stelzer I., Truschnig-Wilders M., Fauler G. Measurement of total and free malondialdehyde by gas-chromatography mass spectrometry-comparison with high-performance liquid chromatography methology. Free Radic Res., 2013, vol. 47, no. 8, pp. 651-656, doi:https://doi.org/10.3109/10715762.2013.812205.

14. Ran Y., Wang R., Gao Q., Jia Q., Hasan M., Awan M.U., Tang B., Zhou R., Dong Y., Wang X., Li Q., Ma H., Deng Y., Qing H. Dragon's blood and its extracts attenuate radiation-induced oxidative stress in mice. J Radiat Res., 2014, vol. 55, no. 4, pp. 699-706.

15. Tsikas D., Rothmann S., Schneider J.Y., Suchy M.-T., Trettin A., Modun D., Stuke N., Maassen N., Frolich J.C. Development, validation and biomedical applications of stable-isotope dilution GC–MS and GC–MS/MS techniques for circulating malondialdehyde (MDA) after pentafluorobenzyl bromide derivatization: MDA as a biomarker of oxidative stress and its relation to 15(S)-8-iso-prostaglandin F2α and nitric oxide (NO). Journal of Chromatography B, 2016, vol. 1019, pp. 95-111.