Role of non-macrophage cell-derived HMGB1 in oxaliplatin-induced peripheral neuropathy and its prevention by the thrombin/thrombomodulin system in rodents: negative impact of anticoagulants.


Journal

Journal of neuroinflammation
ISSN: 1742-2094
Titre abrégé: J Neuroinflammation
Pays: England
ID NLM: 101222974

Informations de publication

Date de publication:
30 Oct 2019
Historique:
received: 09 03 2019
accepted: 10 09 2019
entrez: 1 11 2019
pubmed: 2 11 2019
medline: 31 3 2020
Statut: epublish

Résumé

Macrophage-derived high mobility group box 1 (HMGB1), a damage-associated molecular pattern (DAMP) protein, plays a key role in the development of chemotherapy-induced peripheral neuropathy (CIPN) caused by paclitaxel in rodents. Endothelial thrombomodulin (TM) promotes thrombin-induced degradation of HMGB1, and TMα, a recombinant human soluble TM, abolishes peripheral HMGB1-induced allodynia in mice. We thus examined whether HMGB1, particularly derived from macrophages, contributes to oxaliplatin-induced neuropathy in mice and analyzed the anti-neuropathic activity of the TM/thrombin system. CIPN models were created by the administration of oxaliplatin in mice and rats, and the nociceptive threshold was assessed by von Frey test or paw pressure test. Macrophage-like RAW264.7 cells were stimulated with oxaliplatin in vitro. Proteins were detected and/or quantified by Western blotting, immunostaining, or enzyme-linked immunosorbent assay. Intraperitoneal administration of an anti-HMGB1-neutralizing antibody (AB) at 1 mg/kg prevented the oxaliplatin-induced allodynia in mice and rats. Antagonists of Toll-like receptor (TLR) 4, receptor for advanced glycation end products (RAGE) and CXCR4 among the HMGB1-targeted pro-nociceptive receptors, also mimicked the anti-neuropathic activity of AB in mice. Macrophage accumulation in the sciatic nerve was observed in mice treated with paclitaxel, but not oxaliplatin, and neither macrophage depletion nor inhibitors of macrophage activation affected oxaliplatin-induced allodynia. Oxaliplatin was 10- to 100-fold less potent than paclitaxel in releasing HMGB1 from macrophage-like RAW264.7 cells. Like AB, TMα at 10 mg/kg prevented the oxaliplatin-induced allodynia in mice as well as rats, an effect abolished by argatroban at 10 mg/kg, a thrombin inhibitor. The anti-neuropathic activity of TMα in oxaliplatin-treated mice was suppressed by oral anticoagulants such as warfarin at 1 mg/kg, dabigatran at 75 mg/kg, and rivaroxaban at 10 mg/kg, but not antiplatelet agents such as aspirin at 50 mg/kg and clopidogrel at 10 mg/kg. Repeated administration of the anticoagulants gradually developed neuropathic allodynia and elevated plasma HMGB1 levels in mice treated with a subeffective dose of oxaliplatin. Our data thus suggests a causative role of HMGB1 derived from non-macrophage cells in oxaliplatin-induced peripheral neuropathy and a thrombin-dependent anti-neuropathic activity of exogenous TMα and, most probably, endogenous TM.

Sections du résumé

BACKGROUND BACKGROUND
Macrophage-derived high mobility group box 1 (HMGB1), a damage-associated molecular pattern (DAMP) protein, plays a key role in the development of chemotherapy-induced peripheral neuropathy (CIPN) caused by paclitaxel in rodents. Endothelial thrombomodulin (TM) promotes thrombin-induced degradation of HMGB1, and TMα, a recombinant human soluble TM, abolishes peripheral HMGB1-induced allodynia in mice. We thus examined whether HMGB1, particularly derived from macrophages, contributes to oxaliplatin-induced neuropathy in mice and analyzed the anti-neuropathic activity of the TM/thrombin system.
METHODS METHODS
CIPN models were created by the administration of oxaliplatin in mice and rats, and the nociceptive threshold was assessed by von Frey test or paw pressure test. Macrophage-like RAW264.7 cells were stimulated with oxaliplatin in vitro. Proteins were detected and/or quantified by Western blotting, immunostaining, or enzyme-linked immunosorbent assay.
RESULTS RESULTS
Intraperitoneal administration of an anti-HMGB1-neutralizing antibody (AB) at 1 mg/kg prevented the oxaliplatin-induced allodynia in mice and rats. Antagonists of Toll-like receptor (TLR) 4, receptor for advanced glycation end products (RAGE) and CXCR4 among the HMGB1-targeted pro-nociceptive receptors, also mimicked the anti-neuropathic activity of AB in mice. Macrophage accumulation in the sciatic nerve was observed in mice treated with paclitaxel, but not oxaliplatin, and neither macrophage depletion nor inhibitors of macrophage activation affected oxaliplatin-induced allodynia. Oxaliplatin was 10- to 100-fold less potent than paclitaxel in releasing HMGB1 from macrophage-like RAW264.7 cells. Like AB, TMα at 10 mg/kg prevented the oxaliplatin-induced allodynia in mice as well as rats, an effect abolished by argatroban at 10 mg/kg, a thrombin inhibitor. The anti-neuropathic activity of TMα in oxaliplatin-treated mice was suppressed by oral anticoagulants such as warfarin at 1 mg/kg, dabigatran at 75 mg/kg, and rivaroxaban at 10 mg/kg, but not antiplatelet agents such as aspirin at 50 mg/kg and clopidogrel at 10 mg/kg. Repeated administration of the anticoagulants gradually developed neuropathic allodynia and elevated plasma HMGB1 levels in mice treated with a subeffective dose of oxaliplatin.
CONCLUSIONS CONCLUSIONS
Our data thus suggests a causative role of HMGB1 derived from non-macrophage cells in oxaliplatin-induced peripheral neuropathy and a thrombin-dependent anti-neuropathic activity of exogenous TMα and, most probably, endogenous TM.

Identifiants

pubmed: 31666085
doi: 10.1186/s12974-019-1581-6
pii: 10.1186/s12974-019-1581-6
pmc: PMC6822350
doi:

Substances chimiques

Anticoagulants 0
Antineoplastic Agents 0
HMGB1 Protein 0
HMGB1 protein, mouse 0
THBD protein, mouse 0
Thrombomodulin 0
Oxaliplatin 04ZR38536J
Thrombin EC 3.4.21.5

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

199

Subventions

Organisme : Japan Society for the Promotion of Science
ID : 17K09046
Organisme : Japan Agency for Medical Research and Development (JP)
ID : No. H27 seeds B-8-1

Références

J Neuroimmune Pharmacol. 2017 Dec;12(4):693-707
pubmed: 28755135
J Pharmacol Sci. 2014;125(3):292-9
pubmed: 24990115
Arterioscler Thromb Vasc Biol. 2013 Oct;33(10):2366-73
pubmed: 23950139
Sci Rep. 2017 Jul 20;7(1):5947
pubmed: 28729624
Pain. 2016 Aug;157(8):1655-65
pubmed: 27023424
Brain Res. 1979 Apr 6;165(1):105-18
pubmed: 371755
Arterioscler Thromb Vasc Biol. 2008 Oct;28(10):1825-30
pubmed: 18599803
Toxicology. 2016 Jul 15;365:48-58
pubmed: 27474498
Thromb Res. 2013 Sep;132(3):392-7
pubmed: 23954259
Br J Pharmacol. 2013 Nov;170(6):1233-41
pubmed: 24004409
Br J Anaesth. 2017 Oct 1;119(4):737-749
pubmed: 29121279
Brain Behav Immun. 2014 Aug;40:155-65
pubmed: 24681252
Expert Opin Ther Targets. 2016;20(2):151-8
pubmed: 26558419
Sci Rep. 2016 Jun 17;6:28340
pubmed: 27311356
J Neurosci Methods. 1994 Jul;53(1):55-63
pubmed: 7990513
Expert Opin Pharmacother. 2018 Feb;19(2):113-121
pubmed: 29219629
FASEB J. 2007 Dec;21(14):3904-16
pubmed: 17628015
J Thromb Haemost. 2016 Mar;14(3):596-605
pubmed: 26712119
Neuroscience. 2012 Feb 17;203:194-206
pubmed: 22200546
Cell Rep. 2016 Oct 18;17(4):1128-1140
pubmed: 27760316
Oncotarget. 2017 Dec 27;9(5):5614-5626
pubmed: 29464022
Nat Commun. 2016 Sep 15;7:12840
pubmed: 27628562
Neuroscience. 2011 Aug 11;188:148-56
pubmed: 21596106
Biochem Biophys Res Commun. 2018 Jan 1;495(1):634-638
pubmed: 29146186
Trends Immunol. 2012 Dec;33(12):633-40
pubmed: 23116548
Stroke. 2012 Dec;43(12):3352-7
pubmed: 23117725
J Pain. 2016 Jul;17(7):775-86
pubmed: 26979998
PLoS One. 2017 Jan 26;12(1):e0170814
pubmed: 28125674
J Pharmacol Sci. 2016 Feb;130(2):139-42
pubmed: 26883456
Curr Neurol Neurosci Rep. 2017 Jun;17(6):47
pubmed: 28421360
Neuropharmacology. 2018 Oct;141:201-213
pubmed: 30179591
Pain. 2014 Sep;155(9):1802-13
pubmed: 24954167
Clin Exp Immunol. 2014 Feb;175(2):285-95
pubmed: 24117111
Mol Pain. 2012 Jul 28;8:55
pubmed: 22839205
Expert Opin Ther Targets. 2018 Mar;22(3):263-277
pubmed: 29447008
J Neuroimmune Pharmacol. 2018 Jun;13(2):179-188
pubmed: 29196860
Front Physiol. 2017 Nov 01;8:878
pubmed: 29163216
Food Chem Toxicol. 2011 Dec;49(12):3018-24
pubmed: 22005257
Prog Mol Biol Transl Sci. 2015;131:251-79
pubmed: 25744676
Neuropharmacology. 2014 Apr;79:432-43
pubmed: 24361454

Auteurs

Maho Tsubota (M)

Laboratory of Pharmacology and Pathophysiology, Faculty of Pharmacy, Kindai University (formerly known as Kinki University), 3-4-1 Kowakae, Higashi-osaka, 577-8502, Japan.

Ryotaro Fukuda (R)

Laboratory of Pharmacology and Pathophysiology, Faculty of Pharmacy, Kindai University (formerly known as Kinki University), 3-4-1 Kowakae, Higashi-osaka, 577-8502, Japan.

Yusuke Hayashi (Y)

Laboratory of Pharmacology and Pathophysiology, Faculty of Pharmacy, Kindai University (formerly known as Kinki University), 3-4-1 Kowakae, Higashi-osaka, 577-8502, Japan.

Takaya Miyazaki (T)

Laboratory of Pharmacology and Pathophysiology, Faculty of Pharmacy, Kindai University (formerly known as Kinki University), 3-4-1 Kowakae, Higashi-osaka, 577-8502, Japan.

Shin Ueda (S)

Laboratory of Pharmacology and Pathophysiology, Faculty of Pharmacy, Kindai University (formerly known as Kinki University), 3-4-1 Kowakae, Higashi-osaka, 577-8502, Japan.

Rika Yamashita (R)

Laboratory of Pharmacology and Pathophysiology, Faculty of Pharmacy, Kindai University (formerly known as Kinki University), 3-4-1 Kowakae, Higashi-osaka, 577-8502, Japan.

Nene Koike (N)

Laboratory of Pharmacology and Pathophysiology, Faculty of Pharmacy, Kindai University (formerly known as Kinki University), 3-4-1 Kowakae, Higashi-osaka, 577-8502, Japan.

Fumiko Sekiguchi (F)

Laboratory of Pharmacology and Pathophysiology, Faculty of Pharmacy, Kindai University (formerly known as Kinki University), 3-4-1 Kowakae, Higashi-osaka, 577-8502, Japan.

Hidenori Wake (H)

Department of Pharmacology, Okayama University Graduate School of Medicine, Okayama, 700-8558, Japan.

Shuji Wakatsuki (S)

Department of Peripheral Nervous System Research, National Institute of Neuroscience, National Center of Neurology and Psychiatry, Kodaira, Tokyo, 187-8502, Japan.

Yuka Ujiie (Y)

Department of Peripheral Nervous System Research, National Institute of Neuroscience, National Center of Neurology and Psychiatry, Kodaira, Tokyo, 187-8502, Japan.

Toshiyuki Araki (T)

Department of Peripheral Nervous System Research, National Institute of Neuroscience, National Center of Neurology and Psychiatry, Kodaira, Tokyo, 187-8502, Japan.

Masahiro Nishibori (M)

Department of Pharmacology, Okayama University Graduate School of Medicine, Okayama, 700-8558, Japan.

Atsufumi Kawabata (A)

Laboratory of Pharmacology and Pathophysiology, Faculty of Pharmacy, Kindai University (formerly known as Kinki University), 3-4-1 Kowakae, Higashi-osaka, 577-8502, Japan. kawabata@phar.kindai.ac.jp.

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Classifications MeSH