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Updated: Aug 5, 2026

A Method for Screening and Validation of Resistant Mutations Against Kinase Inhibitors
Published on: December 7, 2014
The Conformational State of the BTK Substrate PLCγ Contributes to Ibrutinib Resistance
Raji E Joseph1, Jacques Lowe1, D Bruce Fulton2
1Roy J. Carver Department of Biochemistry, Biophysics and Molecular Biology, Iowa State University, Ames, IA 50011, USA.
Abstract:
Mutations in PLCγ, a substrate of the tyrosine kinase BTK, are often found in patients who develop resistance to the BTK inhibitor Ibrutinib. However, the mechanisms by which these PLCγ mutations cause Ibrutinib resistance are unclear. Under normal signaling conditions, BTK mediated phosphorylation of Y783 within the PLCγ cSH2-linker promotes the intramolecular association of this site with the adjacent cSH2 domain resulting in active PLCγ. Thus, the cSH2-linker region in the center of the regulatory gamma specific array (γSA) of PLCγ is a key feature controlling PLCγ activity. Even in the unphosphorylated state this linker exists in a conformational equilibrium between free and bound to the cSH2 domain. The position of this equilibrium is optimized within the properly regulated PLCγ enzyme but may be altered in the context of mutations. We therefore assessed the conformational status of four resistance associated mutations within the PLCγ γSA and find that they each alter the conformational equilibrium of the γSA leading to a shift toward active PLCγ. Interestingly, two distinct modes of mutation induced activation are revealed by this panel of Ibrutinib resistance mutations. These findings, along with the recently determined structure of fully autoinhibited PLCγ, provide new insight into the nature of the conformational change that occurs within the γSA regulatory region to affect PLCγ activation. Improving our mechanistic understanding of how B cell signaling escapes Ibrutinib treatment via mutations in PLCγ will aid in the development of strategies to counter drug resistance.
Insights
Mutations in Phospholipase C gamma (PLCγ) drive resistance to the BTK inhibitor Ibrutinib by altering enzyme conformation. Understanding these PLCγ mutations is key to overcoming drug resistance in B cell malignancies.
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- Mutations in Phospholipase C gamma (PLCγ), a Bruton's tyrosine kinase (BTK) substrate, are linked to Ibrutinib resistance.
- The precise mechanisms by which PLCγ mutations confer Ibrutinib resistance remain incompletely understood.
Purpose of the Study:
- To investigate the conformational changes in PLCγ associated with Ibrutinib resistance mutations.
- To elucidate how these conformational alterations lead to constitutive PLCγ activation and drug resistance.
Main Methods:
- Assessed the conformational status of four resistance-associated PLCγ mutations within the gamma specific array (γSA).
- Analyzed the impact of mutations on the conformational equilibrium of the PLCγ γSA.
- Integrated findings with the structural data of autoinhibited PLCγ.
Main Results:
- All four assessed PLCγ mutations altered the conformational equilibrium of the γSA.
- Mutations induced a shift towards an active conformation of PLCγ.
- Two distinct modes of mutation-induced activation were identified.
Conclusions:
- PLCγ mutations associated with Ibrutinib resistance promote enzyme activation through altered conformational dynamics.
- These findings provide novel mechanistic insights into B cell signaling escape from Ibrutinib treatment.
- Understanding these mechanisms is crucial for developing strategies to overcome drug resistance.
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