Literature DB >> 28062735

Ability of Bruton's Tyrosine Kinase Inhibitors to Sequester Y551 and Prevent Phosphorylation Determines Potency for Inhibition of Fc Receptor but not B-Cell Receptor Signaling.

Andrew T Bender1, Anna Gardberg2, Albertina Pereira2, Theresa Johnson2, Yin Wu2, Roland Grenningloh2, Jared Head2, Federica Morandi2, Philipp Haselmayer2, Lesley Liu-Bujalski2.   

Abstract

Bruton's tyrosine kinase (Btk) is expressed in a variety of hematopoietic cells. Btk has been demonstrated to regulate signaling downstream of the B-cell receptor (BCR), Fc receptors (FcRs), and toll-like receptors. It has become an attractive drug target because its inhibition may provide significant efficacy by simultaneously blocking multiple disease mechanisms. Consequently, a large number of Btk inhibitors have been developed. These compounds have diverse binding modes, and both reversible and irreversible inhibitors have been developed. Reported herein, we have tested nine Btk inhibitors and characterized on a molecular level how their interactions with Btk define their ability to block different signaling pathways. By solving the crystal structures of Btk inhibitors bound to the enzyme, we discovered that the compounds can be classified by their ability to trigger sequestration of Btk residue Y551. In cells, we found that sequestration of Y551 renders it inaccessible for phosphorylation. The ability to sequester Y551 was an important determinant of potency against FcεR signaling as Y551 sequestering compounds were more potent for inhibiting basophils and mast cells. This result was true for the inhibition of FcγR signaling as well. In contrast, Y551 sequestration was less a factor in determining potency against BCR signaling. We also found that Btk activity is regulated differentially in basophils and B cells. These results elucidate important determinants for Btk inhibitor potency against different signaling pathways and provide insight for designing new compounds with a broader inhibitory profile that will likely result in greater efficacy.
Copyright © 2017 by The American Society for Pharmacology and Experimental Therapeutics.

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Year:  2017        PMID: 28062735     DOI: 10.1124/mol.116.107037

Source DB:  PubMed          Journal:  Mol Pharmacol        ISSN: 0026-895X            Impact factor:   4.436


  18 in total

1.  The BTK Inhibitor ARQ 531 Targets Ibrutinib-Resistant CLL and Richter Transformation.

Authors:  Sean D Reiff; Rose Mantel; Lisa L Smith; J T Greene; Elizabeth M Muhowski; Catherine A Fabian; Virginia M Goettl; Minh Tran; Bonnie K Harrington; Kerry A Rogers; Farrukh T Awan; Kami Maddocks; Leslie Andritsos; Amy M Lehman; Deepa Sampath; Rosa Lapalombella; Sudharshan Eathiraj; Giovanni Abbadessa; Brian Schwartz; Amy J Johnson; John C Byrd; Jennifer A Woyach
Journal:  Cancer Discov       Date:  2018-08-09       Impact factor: 39.397

2.  eModel-BDB: a database of comparative structure models of drug-target interactions from the Binding Database.

Authors:  Misagh Naderi; Rajiv Gandhi Govindaraj; Michal Brylinski
Journal:  Gigascience       Date:  2018-08-01       Impact factor: 6.524

Review 3.  Ibrutinib in the Treatment of Solid Tumors: Current State of Knowledge and Future Directions.

Authors:  Katarzyna Szklener; Adam Michalski; Klaudia Żak; Michał Piwoński; Sławomir Mańdziuk
Journal:  Cells       Date:  2022-04-14       Impact factor: 7.666

Review 4.  Impact of the Protein Data Bank on antineoplastic approvals.

Authors:  John D Westbrook; Rose Soskind; Brian P Hudson; Stephen K Burley
Journal:  Drug Discov Today       Date:  2020-02-14       Impact factor: 7.851

5.  BTK gatekeeper residue variation combined with cysteine 481 substitution causes super-resistance to irreversible inhibitors acalabrutinib, ibrutinib and zanubrutinib.

Authors:  H Yesid Estupiñán; Qing Wang; Anna Berglöf; Gerard C P Schaafsma; Yuye Shi; Litao Zhou; Dara K Mohammad; Liang Yu; Mauno Vihinen; Rula Zain; C I Edvard Smith
Journal:  Leukemia       Date:  2021-02-01       Impact factor: 11.528

6.  Snapshots and ensembles of BTK and cIAP1 protein degrader ternary complexes.

Authors:  James Schiemer; Reto Horst; Yilin Meng; Justin I Montgomery; Yingrong Xu; Xidong Feng; Kris Borzilleri; Daniel P Uccello; Carolyn Leverett; Stephen Brown; Ye Che; Matthew F Brown; Matthew M Hayward; Adam M Gilbert; Mark C Noe; Matthew F Calabrese
Journal:  Nat Chem Biol       Date:  2020-11-16       Impact factor: 15.040

Review 7.  Bruton's Tyrosine Kinase Targeting in Multiple Myeloma.

Authors:  Max Von Suskil; Kazi Nasrin Sultana; Weam Othman Elbezanti; Omar S Al-Odat; Robert Chitren; Amit K Tiwari; Kishore B Challagundla; Sandeep Kumar Srivastava; Subash C Jonnalagadda; Tulin Budak-Alpdogan; Manoj K Pandey
Journal:  Int J Mol Sci       Date:  2021-05-27       Impact factor: 5.923

Review 8.  Reining in BTK: Interdomain Interactions and Their Importance in the Regulatory Control of BTK.

Authors:  Lauren E Kueffer; Raji E Joseph; Amy H Andreotti
Journal:  Front Cell Dev Biol       Date:  2021-06-23

Review 9.  The Src module: an ancient scaffold in the evolution of cytoplasmic tyrosine kinases.

Authors:  Neel H Shah; Jeanine F Amacher; Laura M Nocka; John Kuriyan
Journal:  Crit Rev Biochem Mol Biol       Date:  2018-09-05       Impact factor: 8.250

10.  Next-generation Bruton's tyrosine kinase inhibitor BIIB091 selectively and potently inhibits B cell and Fc receptor signaling and downstream functions in B cells and myeloid cells.

Authors:  Eris Bame; Hao Tang; Jeremy C Burns; Million Arefayene; Klaus Michelsen; Bin Ma; Isaac Marx; Robin Prince; Allie M Roach; Urjana Poreci; Douglas Donaldson; Patrick Cullen; Fergal Casey; Jing Zhu; Thomas M Carlile; Dipen Sangurdekar; Baohong Zhang; Patrick Trapa; Joseph Santoro; Param Muragan; Alex Pellerin; Stephen Rubino; Davide Gianni; Bekim Bajrami; Xiaomei Peng; Alex Coppell; Katherine Riester; Shibeshih Belachew; Devangi Mehta; Mike Palte; Brian T Hopkins; Matthew Scaramozza; Nathalie Franchimont; Michael Mingueneau
Journal:  Clin Transl Immunology       Date:  2021-06-14
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