Cargando…

Impact of genetic modulation of SULT1A enzymes on DNA adduct formation by aristolochic acids and 3-nitrobenzanthrone

Exposure to aristolochic acid (AA) causes aristolochic acid nephropathy (AAN) and Balkan endemic nephropathy (BEN). Conflicting results have been found for the role of human sulfotransferase 1A1 (SULT1A1) contributing to the metabolic activation of aristolochic acid I (AAI) in vitro. We evaluated th...

Descripción completa

Detalles Bibliográficos
Autores principales: Arlt, Volker M., Meinl, Walter, Florian, Simone, Nagy, Eszter, Barta, Frantisek, Thomann, Marlies, Mrizova, Iveta, Krais, Annette M., Liu, Maggie, Richards, Meirion, Mirza, Amin, Kopka, Klaus, Phillips, David H., Glatt, Hansruedi, Stiborova, Marie, Schmeiser, Heinz H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer Berlin Heidelberg 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5364269/
https://www.ncbi.nlm.nih.gov/pubmed/27557898
http://dx.doi.org/10.1007/s00204-016-1808-6
_version_ 1782517292767117312
author Arlt, Volker M.
Meinl, Walter
Florian, Simone
Nagy, Eszter
Barta, Frantisek
Thomann, Marlies
Mrizova, Iveta
Krais, Annette M.
Liu, Maggie
Richards, Meirion
Mirza, Amin
Kopka, Klaus
Phillips, David H.
Glatt, Hansruedi
Stiborova, Marie
Schmeiser, Heinz H.
author_facet Arlt, Volker M.
Meinl, Walter
Florian, Simone
Nagy, Eszter
Barta, Frantisek
Thomann, Marlies
Mrizova, Iveta
Krais, Annette M.
Liu, Maggie
Richards, Meirion
Mirza, Amin
Kopka, Klaus
Phillips, David H.
Glatt, Hansruedi
Stiborova, Marie
Schmeiser, Heinz H.
author_sort Arlt, Volker M.
collection PubMed
description Exposure to aristolochic acid (AA) causes aristolochic acid nephropathy (AAN) and Balkan endemic nephropathy (BEN). Conflicting results have been found for the role of human sulfotransferase 1A1 (SULT1A1) contributing to the metabolic activation of aristolochic acid I (AAI) in vitro. We evaluated the role of human SULT1A1 in AA bioactivation in vivo after treatment of transgenic mice carrying a functional human SULT1A1-SULT1A2 gene cluster (i.e. hSULT1A1/2 mice) and Sult1a1(−/−) mice with AAI and aristolochic acid II (AAII). Both compounds formed characteristic DNA adducts in the intact mouse and in cytosolic incubations in vitro. However, we did not find differences in AAI-/AAII-DNA adduct levels between hSULT1A1/2 and wild-type (WT) mice in all tissues analysed including kidney and liver despite strong enhancement of sulfotransferase activity in both kidney and liver of hSULT1A1/2 mice relative to WT, kidney and liver being major organs involved in AA metabolism. In contrast, DNA adduct formation was strongly increased in hSULT1A1/2 mice compared to WT after treatment with 3-nitrobenzanthrone (3-NBA), another carcinogenic aromatic nitro compound where human SULT1A1/2 is known to contribute to genotoxicity. We found no differences in AAI-/AAII-DNA adduct formation in Sult1a1(−/−) and WT mice in vivo. Using renal and hepatic cytosolic fractions of hSULT1A1/2, Sult1a1(−/−) and WT mice, we investigated AAI-DNA adduct formation in vitro but failed to find a contribution of human SULT1A1/2 or murine Sult1a1 to AAI bioactivation. Our results indicate that sulfo-conjugation catalysed by human SULT1A1 does not play a role in the activation pathways of AAI and AAII in vivo, but is important in 3-NBA bioactivation.
format Online
Article
Text
id pubmed-5364269
institution National Center for Biotechnology Information
language English
publishDate 2016
publisher Springer Berlin Heidelberg
record_format MEDLINE/PubMed
spelling pubmed-53642692017-04-07 Impact of genetic modulation of SULT1A enzymes on DNA adduct formation by aristolochic acids and 3-nitrobenzanthrone Arlt, Volker M. Meinl, Walter Florian, Simone Nagy, Eszter Barta, Frantisek Thomann, Marlies Mrizova, Iveta Krais, Annette M. Liu, Maggie Richards, Meirion Mirza, Amin Kopka, Klaus Phillips, David H. Glatt, Hansruedi Stiborova, Marie Schmeiser, Heinz H. Arch Toxicol Genotoxicity and Carcinogenicity Exposure to aristolochic acid (AA) causes aristolochic acid nephropathy (AAN) and Balkan endemic nephropathy (BEN). Conflicting results have been found for the role of human sulfotransferase 1A1 (SULT1A1) contributing to the metabolic activation of aristolochic acid I (AAI) in vitro. We evaluated the role of human SULT1A1 in AA bioactivation in vivo after treatment of transgenic mice carrying a functional human SULT1A1-SULT1A2 gene cluster (i.e. hSULT1A1/2 mice) and Sult1a1(−/−) mice with AAI and aristolochic acid II (AAII). Both compounds formed characteristic DNA adducts in the intact mouse and in cytosolic incubations in vitro. However, we did not find differences in AAI-/AAII-DNA adduct levels between hSULT1A1/2 and wild-type (WT) mice in all tissues analysed including kidney and liver despite strong enhancement of sulfotransferase activity in both kidney and liver of hSULT1A1/2 mice relative to WT, kidney and liver being major organs involved in AA metabolism. In contrast, DNA adduct formation was strongly increased in hSULT1A1/2 mice compared to WT after treatment with 3-nitrobenzanthrone (3-NBA), another carcinogenic aromatic nitro compound where human SULT1A1/2 is known to contribute to genotoxicity. We found no differences in AAI-/AAII-DNA adduct formation in Sult1a1(−/−) and WT mice in vivo. Using renal and hepatic cytosolic fractions of hSULT1A1/2, Sult1a1(−/−) and WT mice, we investigated AAI-DNA adduct formation in vitro but failed to find a contribution of human SULT1A1/2 or murine Sult1a1 to AAI bioactivation. Our results indicate that sulfo-conjugation catalysed by human SULT1A1 does not play a role in the activation pathways of AAI and AAII in vivo, but is important in 3-NBA bioactivation. Springer Berlin Heidelberg 2016-08-24 2017 /pmc/articles/PMC5364269/ /pubmed/27557898 http://dx.doi.org/10.1007/s00204-016-1808-6 Text en © The Author(s) 2016 Open AccessThis article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made.
spellingShingle Genotoxicity and Carcinogenicity
Arlt, Volker M.
Meinl, Walter
Florian, Simone
Nagy, Eszter
Barta, Frantisek
Thomann, Marlies
Mrizova, Iveta
Krais, Annette M.
Liu, Maggie
Richards, Meirion
Mirza, Amin
Kopka, Klaus
Phillips, David H.
Glatt, Hansruedi
Stiborova, Marie
Schmeiser, Heinz H.
Impact of genetic modulation of SULT1A enzymes on DNA adduct formation by aristolochic acids and 3-nitrobenzanthrone
title Impact of genetic modulation of SULT1A enzymes on DNA adduct formation by aristolochic acids and 3-nitrobenzanthrone
title_full Impact of genetic modulation of SULT1A enzymes on DNA adduct formation by aristolochic acids and 3-nitrobenzanthrone
title_fullStr Impact of genetic modulation of SULT1A enzymes on DNA adduct formation by aristolochic acids and 3-nitrobenzanthrone
title_full_unstemmed Impact of genetic modulation of SULT1A enzymes on DNA adduct formation by aristolochic acids and 3-nitrobenzanthrone
title_short Impact of genetic modulation of SULT1A enzymes on DNA adduct formation by aristolochic acids and 3-nitrobenzanthrone
title_sort impact of genetic modulation of sult1a enzymes on dna adduct formation by aristolochic acids and 3-nitrobenzanthrone
topic Genotoxicity and Carcinogenicity
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5364269/
https://www.ncbi.nlm.nih.gov/pubmed/27557898
http://dx.doi.org/10.1007/s00204-016-1808-6
work_keys_str_mv AT arltvolkerm impactofgeneticmodulationofsult1aenzymesondnaadductformationbyaristolochicacidsand3nitrobenzanthrone
AT meinlwalter impactofgeneticmodulationofsult1aenzymesondnaadductformationbyaristolochicacidsand3nitrobenzanthrone
AT floriansimone impactofgeneticmodulationofsult1aenzymesondnaadductformationbyaristolochicacidsand3nitrobenzanthrone
AT nagyeszter impactofgeneticmodulationofsult1aenzymesondnaadductformationbyaristolochicacidsand3nitrobenzanthrone
AT bartafrantisek impactofgeneticmodulationofsult1aenzymesondnaadductformationbyaristolochicacidsand3nitrobenzanthrone
AT thomannmarlies impactofgeneticmodulationofsult1aenzymesondnaadductformationbyaristolochicacidsand3nitrobenzanthrone
AT mrizovaiveta impactofgeneticmodulationofsult1aenzymesondnaadductformationbyaristolochicacidsand3nitrobenzanthrone
AT kraisannettem impactofgeneticmodulationofsult1aenzymesondnaadductformationbyaristolochicacidsand3nitrobenzanthrone
AT liumaggie impactofgeneticmodulationofsult1aenzymesondnaadductformationbyaristolochicacidsand3nitrobenzanthrone
AT richardsmeirion impactofgeneticmodulationofsult1aenzymesondnaadductformationbyaristolochicacidsand3nitrobenzanthrone
AT mirzaamin impactofgeneticmodulationofsult1aenzymesondnaadductformationbyaristolochicacidsand3nitrobenzanthrone
AT kopkaklaus impactofgeneticmodulationofsult1aenzymesondnaadductformationbyaristolochicacidsand3nitrobenzanthrone
AT phillipsdavidh impactofgeneticmodulationofsult1aenzymesondnaadductformationbyaristolochicacidsand3nitrobenzanthrone
AT glatthansruedi impactofgeneticmodulationofsult1aenzymesondnaadductformationbyaristolochicacidsand3nitrobenzanthrone
AT stiborovamarie impactofgeneticmodulationofsult1aenzymesondnaadductformationbyaristolochicacidsand3nitrobenzanthrone
AT schmeiserheinzh impactofgeneticmodulationofsult1aenzymesondnaadductformationbyaristolochicacidsand3nitrobenzanthrone