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Extrahepatic metabolism of ibrutinib.

Johannes J M Rood ,
Amer Jamalpoor ,
Stephanie van Hoppe ,
Matthijs J van Haren ,
Roeland E Wasmann ,
Manoe J Janssen ,
Alfred H Schinkel ,
Rosalinde Masereeuw ,
Jos H Beijnen ,
Rolf W Sparidans

Abstract

Ibrutinib is a first-in-class Bruton's kinase inhibitor used in the treatment of multiple lymphomas. In addition to CYP3A4-mediated metabolism, glutathione conjugation can be observed. Subsequently, metabolism of the conjugates and finally their excretion in feces and urine occurs. These metabolites, however, can reach substantial concentrations in human subjects, especially when CYP3A4 is inhibited. Ibrutinib has unexplained nephrotoxicity and high metabolite concentrations are also found in kidneys of Cyp3a knockout mice. Here, a mechanism is proposed where the intermediate cysteine metabolite is bioactivated. The metabolism of ibrutinib through this glutathione cycle was confirmed in cultured human renal proximal tubule cells. Ibrutinib-mediated toxicity was enhanced in-vitro by inhibitors of breast cancer resistance protein (BCRP), P-glycoprotein (P-gp) and multidrug resistance protein (MRP). This was a result of accumulating cysteine metabolite levels due to efflux inhibition. Finally, through inhibition of downstream metabolism, it was shown now that direct conjugation was responsible for cysteine metabolite toxicity.

More about this publication

Investigational new drugs

Volume 39
Issue nr. 1
Pages 1-14
Publication date 01-02-2021

Full text links

Publisher website (DOI) 10.1007/s10637-020-00970-x
Europe PubMed Central 32623551
Pubmed 32623551

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