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Fast non-aqueous reversed-phase liquid chromatography separation of triacylglycerol regioisomers with isocratic mobile phase. Application to different oils and fats.
J Chromatogr B Analyt Technol Biomed Life Sci. 2017 Jan 15; 1041-1042:151-157.JC

Abstract

The distribution of fatty acid species at the sn-1/3 position or the sn-2 position of triacylglycerols (TAGs) in natural fats and oils affects their physical and nutritional properties. In fats and oils, determining the presence of one or two regioisomers and the identification of structure, where they do have one, as well as their separation, became a problem of fundamental importance to solve. A variety of instrumental technics has been proposed, such as MS, chromatography-MS or pure chromatography. A number of studies deal with the optimization of the separation, but very often, they are expensive in time. In the present study, in order to decrease the analysis time while maintaining good chromatographic separation, we tested different monomeric and polymeric stationary phases and different chromatographic conditions (mobile phase composition and analysis temperature) using Non-Aqueous Reversed Phase Liquid Chromatography (NARP-LC). It was demonstrated that mixed polymeric stationary bonded silica with accessible terminal hydroxyl groups leads to very good separation for the pairs of TAGs regioisomers constituted by two saturated and one unsaturated fatty acid (with double bond number: from 1 to 6). A Nucleodur C18 ISIS percolated by isocratic mobile phase (acetonitrile/2-propanol) at 18°C leads to their separations in less than 15min. The difference of retention times between two regioisomers XYX and XXY are large enough to confirm, as application, the presence of POP, SOP, SOS and PLP and no PPO, SPO, SSO and PPL in Theobroma cacao butter. In the same way, this study respectively shows the presence of SOS, SOP and no SSO, PSO in Butyrospermum parkii butter, POP, SOP, SOS and no PPO, PSO and SSO in Carapa oil and finally POP and no PPO in Pistacia Lentiscus oil.

Authors+Show Affiliations

Lip(Sys)², LETIAM, Univ. Paris-Sud, Université Paris-Saclay, IUT d'Orsay, Plateau de Moulon, F-91400, Orsay, France.Lip(Sys)², LETIAM, Univ. Paris-Sud, Université Paris-Saclay, IUT d'Orsay, Plateau de Moulon, F-91400, Orsay, France. Electronic address: sylvie.heron@u-psud.fr.Lip(Sys)², LETIAM, Univ. Paris-Sud, Université Paris-Saclay, IUT d'Orsay, Plateau de Moulon, F-91400, Orsay, France.Lip(Sys)², LETIAM, Univ. Paris-Sud, Université Paris-Saclay, IUT d'Orsay, Plateau de Moulon, F-91400, Orsay, France.

Pub Type(s)

Journal Article

Language

eng

PubMed ID

28039812

Citation

Tamba Sompila, Arnaud W G., et al. "Fast Non-aqueous Reversed-phase Liquid Chromatography Separation of Triacylglycerol Regioisomers With Isocratic Mobile Phase. Application to Different Oils and Fats." Journal of Chromatography. B, Analytical Technologies in the Biomedical and Life Sciences, vol. 1041-1042, 2017, pp. 151-157.
Tamba Sompila AW, Héron S, Hmida D, et al. Fast non-aqueous reversed-phase liquid chromatography separation of triacylglycerol regioisomers with isocratic mobile phase. Application to different oils and fats. J Chromatogr B Analyt Technol Biomed Life Sci. 2017;1041-1042:151-157.
Tamba Sompila, A. W., Héron, S., Hmida, D., & Tchapla, A. (2017). Fast non-aqueous reversed-phase liquid chromatography separation of triacylglycerol regioisomers with isocratic mobile phase. Application to different oils and fats. Journal of Chromatography. B, Analytical Technologies in the Biomedical and Life Sciences, 1041-1042, 151-157. https://doi.org/10.1016/j.jchromb.2016.12.030
Tamba Sompila AW, et al. Fast Non-aqueous Reversed-phase Liquid Chromatography Separation of Triacylglycerol Regioisomers With Isocratic Mobile Phase. Application to Different Oils and Fats. J Chromatogr B Analyt Technol Biomed Life Sci. 2017 Jan 15;1041-1042:151-157. PubMed PMID: 28039812.
* Article titles in AMA citation format should be in sentence-case
TY - JOUR T1 - Fast non-aqueous reversed-phase liquid chromatography separation of triacylglycerol regioisomers with isocratic mobile phase. Application to different oils and fats. AU - Tamba Sompila,Arnaud W G, AU - Héron,Sylvie, AU - Hmida,Dorra, AU - Tchapla,Alain, Y1 - 2016/12/21/ PY - 2016/11/10/received PY - 2016/12/10/revised PY - 2016/12/17/accepted PY - 2017/1/1/pubmed PY - 2017/3/10/medline PY - 2017/1/1/entrez KW - Non-Aqueous reversed phase HPLC KW - Regioisomers KW - Triacylglycerols KW - Triglycerides SP - 151 EP - 157 JF - Journal of chromatography. B, Analytical technologies in the biomedical and life sciences JO - J Chromatogr B Analyt Technol Biomed Life Sci VL - 1041-1042 N2 - The distribution of fatty acid species at the sn-1/3 position or the sn-2 position of triacylglycerols (TAGs) in natural fats and oils affects their physical and nutritional properties. In fats and oils, determining the presence of one or two regioisomers and the identification of structure, where they do have one, as well as their separation, became a problem of fundamental importance to solve. A variety of instrumental technics has been proposed, such as MS, chromatography-MS or pure chromatography. A number of studies deal with the optimization of the separation, but very often, they are expensive in time. In the present study, in order to decrease the analysis time while maintaining good chromatographic separation, we tested different monomeric and polymeric stationary phases and different chromatographic conditions (mobile phase composition and analysis temperature) using Non-Aqueous Reversed Phase Liquid Chromatography (NARP-LC). It was demonstrated that mixed polymeric stationary bonded silica with accessible terminal hydroxyl groups leads to very good separation for the pairs of TAGs regioisomers constituted by two saturated and one unsaturated fatty acid (with double bond number: from 1 to 6). A Nucleodur C18 ISIS percolated by isocratic mobile phase (acetonitrile/2-propanol) at 18°C leads to their separations in less than 15min. The difference of retention times between two regioisomers XYX and XXY are large enough to confirm, as application, the presence of POP, SOP, SOS and PLP and no PPO, SPO, SSO and PPL in Theobroma cacao butter. In the same way, this study respectively shows the presence of SOS, SOP and no SSO, PSO in Butyrospermum parkii butter, POP, SOP, SOS and no PPO, PSO and SSO in Carapa oil and finally POP and no PPO in Pistacia Lentiscus oil. SN - 1873-376X UR - https://www.unboundmedicine.com/medline/citation/28039812/Fast_non_aqueous_reversed_phase_liquid_chromatography_separation_of_triacylglycerol_regioisomers_with_isocratic_mobile_phase__Application_to_different_oils_and_fats_ DB - PRIME DP - Unbound Medicine ER -