NRX-0492 degrades wild-type and C481 mutant BTK and demonstrates in vivo activity in CLL patient-derived xenografts

伊布替尼 布鲁顿酪氨酸激酶 慢性淋巴细胞白血病 断点群集区域 癌症研究 酪氨酸激酶 B细胞受体 生物 分子生物学 化学 信号转导 免疫学 B细胞 细胞生物学 白血病 生物化学 抗体 受体
作者
Deyi Zhang,Hailey M. Harris,Jonathan Chen,Jennifer Judy,Gabriella James,Aileen Kelly,Joel McIntosh,Austin Tenn-McClellan,Eileen Ambing,Ying Siow Tan,Hao Lu,Stefan Gajewski,Matthew C. Clifton,Stephanie Yung,Daniel Robbins,Mehdi Pirooznia,Sigrid S. Skånland,Erika M. Gaglione,Maissa Mhibik,Chingiz Underbayev
出处
期刊:Blood [Elsevier BV]
卷期号:141 (13): 1584-1596 被引量:23
标识
DOI:10.1182/blood.2022016934
摘要

Bruton tyrosine kinase (BTK) is essential for B-cell receptor (BCR) signaling, a driver of chronic lymphocytic leukemia (CLL). Covalent inhibitors bind C481 in the active site of BTK and have become a preferred CLL therapy. Disease progression on covalent BTK inhibitors is commonly associated with C481 mutations. Here, we investigated a targeted protein degrader, NRX-0492, that links a noncovalent BTK-binding domain to cereblon, an adaptor protein of the E3 ubiquitin ligase complex. NRX-0492 selectively catalyzes ubiquitylation and proteasomal degradation of BTK. In primary CLL cells, NRX-0492 induced rapid and sustained degradation of both wild-type and C481 mutant BTK at half maximal degradation concentration (DC50) of ≤0.2 nM and DC90 of ≤0.5 nM, respectively. Sustained degrader activity was maintained for at least 24 hours after washout and was equally observed in high-risk (deletion 17p) and standard-risk (deletion 13q only) CLL subtypes. In in vitro testing against treatment-naïve CLL samples, NRX-0492 was as effective as ibrutinib at inhibiting BCR-mediated signaling, transcriptional programs, and chemokine secretion. In patient-derived xenografts, orally administered NRX-0492 induced BTK degradation and inhibited activation and proliferation of CLL cells in blood and spleen and remained efficacious against primary C481S mutant CLL cells collected from a patient progressing on ibrutinib. Oral bioavailability, >90% degradation of BTK at subnanomolar concentrations, and sustained pharmacodynamic effects after drug clearance make this class of targeted protein degraders uniquely suitable for clinical translation, in particular as a strategy to overcome BTK inhibitor resistance. Clinical studies testing this approach have been initiated (NCT04830137, NCT05131022).
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