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Biology subjects

Schaeffner, I. K.

Publications and source records attributed to Schaeffner, I. K..

3 recordsLinked to original sources

Overcoming EGFR resistance by monovalent and bident inhibitors targeting Cys775

Covalent targeting of EGFR cysteine 797 by osimertinib is one of the most successful breakthroughs in targeted therapy, fundamentally transforming the treatment landscape for non-small cell lung cancer (NSCLC) patients. However, resistance driven by mutation of C797 remains a major clinical challenge. Developing novel covalent strategies beyond C797 targeting presents a compelling opportunity for next-generation EGFR inhibitors. We first demonstrated that cysteine 775, located deep within the ATP-binding pocket, is accessible by a rationally designed covalent molecule ZNL-3, which as the first-in-class covalent cysteine 775 inhibitor exhibited strong efficacy in osimertinib-resistant mouse models. To further enhance resilience to resistance-causing mutations, we developed a dual-warhead, bident compound--YNW-1--which covalently targets both cysteine 775 and 797 simultaneously. YNW-1 is the first intramolecular lock to exhibit balanced reactive efficiency on both cysteines, rendering single-site mutations ineffective to confer resistance. The discovery of ZNL-3 and YNW-1 represents significant advancements in EGFR-targeted drug development, and further optimization toward clinical translation is a worthwhile strategy. SIGNIFICANCE: This study establishes the therapeutic potential of an EGFR covalent inhibitor through unprecedented targeting of cysteine 775 and provides the first demonstration that dual cysteine engagement offers superior efficacy over conventional covalent inhibitors by delaying resistance.

cancer biology↗

Structure of the CABIT2 domain of THEMIS reveals a novel protein fold with an inserted SH3-like domain

Maturation of thymocytes into T cells is critical for proper function of the adaptive immune system. During this developmental process, thymocytes undergo a highly-regulated selection process regulated by the signaling characteristics of the T cell receptor (TCR) pathway. Thymocyte-Expressed Molecule Involved in Selection (THEMIS) is an essential protein for T cell development. THEMIS regulates phosphatases downstream of the T cell receptor to ensure signaling thresholds are met during selection. Important features of THEMIS are its two uncharacterized CABIT (Cysteine-containing All-Beta In THEMIS) domains, which are intriguing because they have been proposed to participate in important protein-protein interactions (PPIs) that modulate immunological signals. Here, we report the 2.9 [A] crystal structure of the THEMIS CABIT2 domain determined via heavy atom phasing. The structure revealed a novel protein domain fold comprised mainly of {beta}-sheets with two distinct subdomains. This domain appears to have a different C-terminal boundary than predicted or found in previously used experimental constructs. Inclusion of the proline rich segment enables GRB2 to bind CABIT2. Isolated CABIT2 domain is unable to bind or modulate the function of SHP1 phosphatase. This structure will provide the foundation for future structure-function studies of CABIT domains and THEMIS.

biochemistry↗

Structural analysis of the macrocyclic inhibitor BI-4020 binding to EGFR kinase

A novel macrocyclic inhibitor of mutant EGFR (BI-4020) has shown promise in pre-clinical studies of T790M and C797S drug-resistant non-small cell lung cancer. To better understand the molecular basis for BI-4020 selectivity and potency, we have carried out biochemical activity assays and structural analysis with X-ray crystallography. Biochemical potencies agree with previous studies indicating that BI-4020 is uniquely potent against drug-resistant L858R/T790M and L858R/T790M/C797S variants. Structures show that BI-4020 is likely rendered selective due to interactions with the kinase domain hinge region as well as T790M, akin to Osimertinib. Additionally, BI-4020 is also rendered more potent due to its constrained macrocycle geometry as well as additional H-bonds to conserved K745 and T845 residues in both active and inactive conformations. These findings taken together show how this novel macrocyclic inhibitor is both highly potent and selective for mutant EGFR in a reversible mechanism and motivate structure-inspired approaches to developing targeted therapies in medicinal oncology.

pharmacology and toxicology↗