Functional relevance of the multi-drug transporter abcg2 on teriflunomide therapy in an animal model of multiple sclerosis.
ATP Binding Cassette Transporter, Subfamily G, Member 2
/ physiology
Animals
Crotonates
/ pharmacology
Disease Models, Animal
Female
Humans
Hydroxybutyrates
Immunotherapy
/ methods
Male
Mice
Mice, Inbred C57BL
Mice, Knockout
Multiple Sclerosis
/ drug therapy
Nitriles
Rats
T-Lymphocytes
/ drug effects
Toluidines
/ pharmacology
Experimental autoimmune encephalomyelitis
Multiple sclerosis
Teriflunomide
abcg2
Journal
Journal of neuroinflammation
ISSN: 1742-2094
Titre abrégé: J Neuroinflammation
Pays: England
ID NLM: 101222974
Informations de publication
Date de publication:
08 Jan 2020
08 Jan 2020
Historique:
received:
14
06
2019
accepted:
16
12
2019
entrez:
10
1
2020
pubmed:
10
1
2020
medline:
11
11
2020
Statut:
epublish
Résumé
The multi-drug resistance transporter ABCG2, a member of the ATP-binding cassette (ABC) transporter family, mediates the efflux of different immunotherapeutics used in multiple sclerosis (MS), e.g., teriflunomide (teri), cladribine, and mitoxantrone, across cell membranes and organelles. Hence, the modulation of ABCG2 activity could have potential therapeutic implications in MS. In this study, we aimed at investigating the functional impact of abcg2 modulation on teri-induced effects in vitro and in vivo. T cells from C57BL/6 J wild-type (wt) and abcg2-knockout (KO) mice were treated with teri at different concentrations with/without specific abcg2-inhibitors (Ko143; Fumitremorgin C) and analyzed for intracellular teri concentration (HPLC; LS-MS/MS), T cell apoptosis (annexin V/PI), and proliferation (CSFE). Experimental autoimmune encephalomyelitis (EAE) was induced in C57BL/6J by active immunization with MOG In vitro, intracellular teri concentration in T cells was 2.5-fold higher in abcg2-KO mice than in wt mice. Teri-induced inhibition of T cell proliferation was two fold increased in abcg2-KO cells compared to wt cells. T cell apoptosis demonstrated analogous results with 3.1-fold increased apoptosis after pharmacological abcg2-inhibition in wt cells. abcg2-mRNA was differentially regulated during different phases of EAE within the central nervous system and peripheral organs. In vivo, at a dosage not efficacious in wt animals, teri treatment ameliorated clinical EAE in abcg2-KO mice which was accompanied by higher spinal cord tissue concentrations of teri. Functional relevance of abcg2 modulation on teri effects in vitro and in vivo warrants further investigation as a potential determinant of interindividual treatment response in MS, with potential implications for other immunotherapies.
Sections du résumé
BACKGROUND
BACKGROUND
The multi-drug resistance transporter ABCG2, a member of the ATP-binding cassette (ABC) transporter family, mediates the efflux of different immunotherapeutics used in multiple sclerosis (MS), e.g., teriflunomide (teri), cladribine, and mitoxantrone, across cell membranes and organelles. Hence, the modulation of ABCG2 activity could have potential therapeutic implications in MS. In this study, we aimed at investigating the functional impact of abcg2 modulation on teri-induced effects in vitro and in vivo.
METHODS
METHODS
T cells from C57BL/6 J wild-type (wt) and abcg2-knockout (KO) mice were treated with teri at different concentrations with/without specific abcg2-inhibitors (Ko143; Fumitremorgin C) and analyzed for intracellular teri concentration (HPLC; LS-MS/MS), T cell apoptosis (annexin V/PI), and proliferation (CSFE). Experimental autoimmune encephalomyelitis (EAE) was induced in C57BL/6J by active immunization with MOG
RESULTS
RESULTS
In vitro, intracellular teri concentration in T cells was 2.5-fold higher in abcg2-KO mice than in wt mice. Teri-induced inhibition of T cell proliferation was two fold increased in abcg2-KO cells compared to wt cells. T cell apoptosis demonstrated analogous results with 3.1-fold increased apoptosis after pharmacological abcg2-inhibition in wt cells. abcg2-mRNA was differentially regulated during different phases of EAE within the central nervous system and peripheral organs. In vivo, at a dosage not efficacious in wt animals, teri treatment ameliorated clinical EAE in abcg2-KO mice which was accompanied by higher spinal cord tissue concentrations of teri.
CONCLUSION
CONCLUSIONS
Functional relevance of abcg2 modulation on teri effects in vitro and in vivo warrants further investigation as a potential determinant of interindividual treatment response in MS, with potential implications for other immunotherapies.
Identifiants
pubmed: 31915017
doi: 10.1186/s12974-019-1677-z
pii: 10.1186/s12974-019-1677-z
pmc: PMC6951012
doi:
Substances chimiques
ATP Binding Cassette Transporter, Subfamily G, Member 2
0
Abcg2 protein, mouse
0
Crotonates
0
Hydroxybutyrates
0
Nitriles
0
Toluidines
0
teriflunomide
1C058IKG3B
Types de publication
Journal Article
Langues
eng
Sous-ensembles de citation
IM
Pagination
9Subventions
Organisme : Sanofi Genzyme
ID : GZ-2014-11130
Références
Stroke. 2012 Jun;43(6):1647-53
pubmed: 22426312
Nat Rev Neurol. 2019 Jan;15(1):53-58
pubmed: 30315270
Clin Pharmacokinet. 2019 Mar;58(3):283-297
pubmed: 29987837
Exp Anim. 2015;64(2):109-19
pubmed: 26176030
Ann Rheum Dis. 2009 Jul;68(7):1201-7
pubmed: 18397960
J Cereb Blood Flow Metab. 2012 Aug;32(8):1559-66
pubmed: 22472606
Mult Scler Int. 2017;2017:6198530
pubmed: 28804651
Nature. 2018 Nov;563(7731):426-430
pubmed: 30405239
Brain Res. 2015 Dec 2;1628(Pt B):298-316
pubmed: 26187753
Nat Rev Cancer. 2018 Jul;18(7):452-464
pubmed: 29643473
J Neuroinflammation. 2017 Mar 11;14(1):51
pubmed: 28284222
Sci Transl Med. 2019 May 1;11(490):null
pubmed: 31043571
Brain. 2009 Sep;132(Pt 9):2517-30
pubmed: 19605531
Brain Behav Immun. 2018 Oct;73:3-20
pubmed: 29920328
J Neuroinflammation. 2016 Sep 22;13(1):250
pubmed: 27658519
Nat Med. 2005 Feb;11(2):127-9
pubmed: 15685169
Expert Opin Drug Metab Toxicol. 2013 Aug;9(8):1025-35
pubmed: 23682862
Drug Metab Dispos. 2018 Dec;46(12):1886-1899
pubmed: 30266733
Nature. 1992 Apr 16;356(6370):607-9
pubmed: 1313950
J Neuroimmunol. 2015 Jan 15;278:277-9
pubmed: 25468777
Oncogene. 2003 Oct 20;22(47):7340-58
pubmed: 14576842
Biochem Pharmacol. 2015 Dec 1;98(3):484-92
pubmed: 26341389
Acta Neuropathol. 2019 Sep;138(3):443-456
pubmed: 31030237
Ther Adv Neurol Disord. 2017 Dec;10(12):381-396
pubmed: 29204190
Neuropsychopharmacology. 2009 Jan;34(1):55-73
pubmed: 18800062
J Neuroimmunol. 2013 Dec 15;265(1-2):82-90
pubmed: 24182769
Ther Drug Monit. 2016 Aug;38(4):471-82
pubmed: 27015245
Front Pharmacol. 2012 Apr 30;3:74
pubmed: 22557971