Search for New Active Substances for the Development of Pharmaceuticals Using Supercritical Fluid Extraction

Kafarov, V.V. and Dorokhov, I.N., Sistemnyi analiz protsessov khimicheskoi tekhnologii: osnovy strategii (Systems Analysis of the Processes of Chemical Technology: Fundamentals of Strategy), Kafarov, V.V., Dorokhov, I.N., and Zhavoronkov, N.M., Eds., Moscow: Yurait, 2018, 2nd ed.

Google Scholar 

Gumerov, F.M., Sverkhkriticheskie flyuidnye tekhnologii. Ekonomicheskaya tselesoobraznost’. Monografiya (Supercritical Fluid Technologies. Economic Feasibility. Monograph), Kazan: Butlerovskoe Nasledie, 2019.

Zalepugin, D.Yu., Til’kunova, N.A., Chernyshova, I.V., and Polyakov, V.S., Development of technologies based on the use of supercritical fluids, Sverkhkrit. Flyuidy: Teor. Prakt., 2006, vol. 1, no. 1, pp. 27–51.

Google Scholar 

Zaharil, H.A., An investigation on the usage of different supercritical fluids in parabolic trough solar collector, Renewable Energy, 2021, vol. 168, pp. 676–691.

Article  CAS  Google Scholar 

Kas’yanov, G.I., Stas’eva, O.N., and Latin, N.N., Pre- and supercritical extraction: Advantages and disadvantages, Pishch. Prom-st., 2005, no. 1, pp. 36–39.

Zhang, J., Burrows, S., Gleason, C., Matthews, M.A., et al., Sterilizing Bacillus pumilus spores using supercritical carbon dioxide, J. Microbiol. Methods, 2006, vol. 66, no. 3, p. 479–485.

Article  CAS  PubMed  Google Scholar 

Zilfikarov, I.N., Chelombit’ko, V.A., and Aliev, A.M., Obrabotka lekarstvennogo rastitel’nogo syr’ya szhizhennymi gazami i sverkhkriticheskimi flyuidami (Processing of Medicinal Plant Raw Materials with Liquefied Gases and Supercritical Fluids), Chelombit’ko, V.A., Ed., Pyatigorsk, 2007.

Chemat, F., Rombaut, N., Meullemiestre, A., Turk, M., Perino, S., Fabiano-Tixier, A.S., and Abert-Vian, M., Review of green food processing techniques: Preservation, transformation, and extraction, Innovative Food Sci. Emerging Technol., 2017, vol. 41, pp. 357–377.

Article  CAS  Google Scholar 

Artem’ev, A.I., Supercritical extraction of biologically active substances from aralia, ginseng and multiphytoadaptogen, Cand. Sci. (Eng.) Dissertation, Moscow: Ross. Khim.-Tekhnol. Univ., 2022.

Kazeev, I.V., Development of methodological approaches to the standardization of complex phytoadaptogens, Doctoral (Pharm.) Dissertation, Moscow: MIREA, 2023.

Filonova, O.V., Lekar’, A.V., Borisenko, S.N., Vetrova, E.V., Maksimenko, E.V., Borisenko, N.I., and Minkin, V.I., Obtaining oleanolic acid and its derivatives by hydrolysis of Manchurian aralia aralosides in subcritical water, Sverkhkrit. Flyuidy: Teor. Prakt., 2015, vol. 10, no. 2, pp. 31–39.

Google Scholar 

Lee, S.M., Bae, B.S., Park, H.W., Ahn, N.G., Cho, B.G., Cho, Y.L., and Kwak, Y.S., Characterization of Korean Red Ginseng (Panax ginseng Meyer): history, preparation method, and chemical composition, J. Ginseng Res., 2015, vol. 39, no. 4, pp. 384–391.

Article  PubMed  PubMed Central  Google Scholar 

Baigalmaa, D. and Enkhjargal, D., Development of technology for obtaining dry extract from Tribulus terrestris L., Innovatsionnye tekhnologii v farmatsii (Innovative Technologies in Pharmacy), Irkutsk, 2017, pp. 166–168.

Google Scholar 

Comments (0)

No login
gif