Roy J. Carver Department of Biochemistry, Biophysics and Molecular Biology, Iowa State University, Ames, IA 50011.
Department of Chemistry and Chemical Biology, Northeastern University, Boston, MA 02115.
Proc Natl Acad Sci U S A. 2019 Oct 22;116(43):21539-21544. doi: 10.1073/pnas.1907566116. Epub 2019 Oct 7.
The pleckstrin homology (PH) domain is well known for its phospholipid targeting function. The PH-TEC homology (PHTH) domain within the TEC family of tyrosine kinases is also a crucial component of the autoinhibitory apparatus. The autoinhibitory surface on the PHTH domain has been previously defined, and biochemical investigations have shown that PHTH-mediated inhibition is mutually exclusive with phosphatidylinositol binding. Here we use hydrogen/deuterium exchange mass spectrometry, nuclear magnetic resonance (NMR), and evolutionary sequence comparisons to map where and how the PHTH domain affects the Bruton's tyrosine kinase (BTK) domain. The data map a PHTH-binding site on the activation loop face of the kinase C lobe, suggesting that the PHTH domain masks the activation loop and the substrate-docking site. Moreover, localized NMR spectral changes are observed for non-surface-exposed residues in the active site and on the distal side of the kinase domain. These data suggest that the association of PHTH induces allosteric conformational shifts in regions of the kinase domain that are critical for catalysis. Through statistical comparisons of diverse tyrosine kinase sequences, we identify residues unique to BTK that coincide with the experimentally determined PHTH-binding surface on the kinase domain. Our data provide a more complete picture of the autoinhibitory conformation adopted by full-length TEC kinases, creating opportunities to target the regulatory domains to control the function of these kinases in a biological setting.
PH 结构域以其对磷脂的靶向功能而闻名。TEC 家族酪氨酸激酶中的 PH-TEC 同源(PHTH)结构域也是自身抑制装置的关键组成部分。先前已经定义了 PHTH 结构域的自身抑制表面,生化研究表明,PHTH 介导的抑制与磷脂酰肌醇结合是相互排斥的。在这里,我们使用氘代/氚代交换质谱、核磁共振(NMR)和进化序列比较来绘制 PHTH 结构域如何以及在何处影响 Bruton 酪氨酸激酶(BTK)结构域。数据绘制了激酶 C 结构域的激活环面上的 PHTH 结合位点,表明 PHTH 结构域掩盖了激活环和底物结合位点。此外,在活性位点和激酶结构域的远端侧观察到非表面暴露残基的局部 NMR 光谱变化。这些数据表明,PHTH 的缔合诱导了激酶结构域中对催化至关重要的区域的变构构象变化。通过对不同酪氨酸激酶序列的统计比较,我们确定了 BTK 特有的残基,这些残基与激酶结构域上实验确定的 PHTH 结合表面一致。我们的数据提供了完整的全长 TEC 激酶自身抑制构象图,为靶向调节域以控制这些激酶在生物学环境中的功能创造了机会。