Lipophilic ester and amide derivatives of rosmarinic acid protect cells against H2O2-induced DNA damage and apoptosis: The potential role of intracellular accumulation and labile iron chelation
Phenolic acids represent abundant components contained in human diet. However, the negative charge in their carboxylic group limits their capacity to diffuse through biological membranes, thus hindering their access to cell interior. In order to promote the diffusion of rosmarinic acid through biolo...
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doaj-4a5ddb4b69c1450ea21749a9be5a0d8b2020-11-25T00:08:51ZengElsevierRedox Biology2213-23172018-05-0115C54855610.1016/j.redox.2018.01.014Lipophilic ester and amide derivatives of rosmarinic acid protect cells against H2O2-induced DNA damage and apoptosis: The potential role of intracellular accumulation and labile iron chelationParaskevi S. Gerogianni0Maria V. Chatziathanasiadou1Dimitrios A. Diamantis2Andreas G. Tzakos3Dimitrios Galaris4Laboratory of Biological Chemistry, School of Health Sciences, Faculty of Medicine, University of Ioannina, 45110 Ioannina, GreeceLaboratory of Organic Chemistry and Biochemistry, School of Natural Sciences, Department of Chemistry, University of Ioannina, 45110 Ioannina, GreeceLaboratory of Organic Chemistry and Biochemistry, School of Natural Sciences, Department of Chemistry, University of Ioannina, 45110 Ioannina, GreeceLaboratory of Organic Chemistry and Biochemistry, School of Natural Sciences, Department of Chemistry, University of Ioannina, 45110 Ioannina, GreeceLaboratory of Biological Chemistry, School of Health Sciences, Faculty of Medicine, University of Ioannina, 45110 Ioannina, GreecePhenolic acids represent abundant components contained in human diet. However, the negative charge in their carboxylic group limits their capacity to diffuse through biological membranes, thus hindering their access to cell interior. In order to promote the diffusion of rosmarinic acid through biological membranes, we synthesized several lipophilic ester- and amide-derivatives of this compound and evaluated their capacity to prevent H2O2-induced DNA damage and apoptosis in cultured human cells. Esterification of the carboxylic moiety with lipophilic groups strongly enhanced the capacity of rosmarinic acid to protect cells. On the other hand, the amide-derivatives were somewhat less effective but exerted less cytotoxicity at high concentrations. Cell uptake experiments, using ultra-high performance liquid chromatography coupled with tandem mass spectrometry (UHPLC-MS/MS), illustrated different levels of intracellular accumulation among the ester- and amide-derivatives, with the first being more effectively accumulated, probably due to their extensive hydrolysis inside the cells. In conclusion, these results highlight the hitherto unrecognized fundamental importance of derivatization of diet-derived phenolic acids to unveil their biological potential.http://www.sciencedirect.com/science/article/pii/S2213231718300260Cell apoptosisDNA damageLabile ironOxidative stressRosmarinic acid derivativesCell uptake |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Paraskevi S. Gerogianni Maria V. Chatziathanasiadou Dimitrios A. Diamantis Andreas G. Tzakos Dimitrios Galaris |
spellingShingle |
Paraskevi S. Gerogianni Maria V. Chatziathanasiadou Dimitrios A. Diamantis Andreas G. Tzakos Dimitrios Galaris Lipophilic ester and amide derivatives of rosmarinic acid protect cells against H2O2-induced DNA damage and apoptosis: The potential role of intracellular accumulation and labile iron chelation Redox Biology Cell apoptosis DNA damage Labile iron Oxidative stress Rosmarinic acid derivatives Cell uptake |
author_facet |
Paraskevi S. Gerogianni Maria V. Chatziathanasiadou Dimitrios A. Diamantis Andreas G. Tzakos Dimitrios Galaris |
author_sort |
Paraskevi S. Gerogianni |
title |
Lipophilic ester and amide derivatives of rosmarinic acid protect cells against H2O2-induced DNA damage and apoptosis: The potential role of intracellular accumulation and labile iron chelation |
title_short |
Lipophilic ester and amide derivatives of rosmarinic acid protect cells against H2O2-induced DNA damage and apoptosis: The potential role of intracellular accumulation and labile iron chelation |
title_full |
Lipophilic ester and amide derivatives of rosmarinic acid protect cells against H2O2-induced DNA damage and apoptosis: The potential role of intracellular accumulation and labile iron chelation |
title_fullStr |
Lipophilic ester and amide derivatives of rosmarinic acid protect cells against H2O2-induced DNA damage and apoptosis: The potential role of intracellular accumulation and labile iron chelation |
title_full_unstemmed |
Lipophilic ester and amide derivatives of rosmarinic acid protect cells against H2O2-induced DNA damage and apoptosis: The potential role of intracellular accumulation and labile iron chelation |
title_sort |
lipophilic ester and amide derivatives of rosmarinic acid protect cells against h2o2-induced dna damage and apoptosis: the potential role of intracellular accumulation and labile iron chelation |
publisher |
Elsevier |
series |
Redox Biology |
issn |
2213-2317 |
publishDate |
2018-05-01 |
description |
Phenolic acids represent abundant components contained in human diet. However, the negative charge in their carboxylic group limits their capacity to diffuse through biological membranes, thus hindering their access to cell interior. In order to promote the diffusion of rosmarinic acid through biological membranes, we synthesized several lipophilic ester- and amide-derivatives of this compound and evaluated their capacity to prevent H2O2-induced DNA damage and apoptosis in cultured human cells. Esterification of the carboxylic moiety with lipophilic groups strongly enhanced the capacity of rosmarinic acid to protect cells. On the other hand, the amide-derivatives were somewhat less effective but exerted less cytotoxicity at high concentrations. Cell uptake experiments, using ultra-high performance liquid chromatography coupled with tandem mass spectrometry (UHPLC-MS/MS), illustrated different levels of intracellular accumulation among the ester- and amide-derivatives, with the first being more effectively accumulated, probably due to their extensive hydrolysis inside the cells. In conclusion, these results highlight the hitherto unrecognized fundamental importance of derivatization of diet-derived phenolic acids to unveil their biological potential. |
topic |
Cell apoptosis DNA damage Labile iron Oxidative stress Rosmarinic acid derivatives Cell uptake |
url |
http://www.sciencedirect.com/science/article/pii/S2213231718300260 |
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