Department of Tumor Biology, Biomedical Research Center, Institute of Virology, Slovak Academy of Sciences, Dubravska cesta 9, 84505 Bratislava, Slovakia.
Department of Rickettsiology, Biomedical Research Center, Institute of Virology, Slovak Academy of Sciences, Dubravska cesta 9, 84505 Bratislava, Slovakia.
Int J Mol Sci. 2020 Nov 12;21(22):8545. doi: 10.3390/ijms21228545.
Human carbonic anhydrase IX (CAIX), a unique member of the α carbonic anhydrase family, is a transmembrane glycoprotein with high enzymatic activity by which CAIX contributes to tumorigenesis through pH regulation. Due to its aberrant expression, CAIX is considered to be a marker of tumor hypoxia and a poor prognostic factor of several human cancers. Hypoxia-activated catalytic function of CAIX is dependent on posttranslational modification of its short intracellular domain. In this work, we have identified that -terminal Ala459 residue, which is common across CAIX of various species as well as additional transmembrane isoforms, plays an important role in CAIX activation and in pH regulation. Moreover, structure prediction I-TASSER analysis revealed involvement of Ala459 in potential ligand binding. Using tandem mass spectrometry, Protein-L-isoaspartyl methyltransferase (PIMT) was identified as a novel interacting partner, further confirmed by an in vitro pulldown assay and an in situ proximity ligation assay. Indeed, suppression of PIMT led to increased alkalinization of culture media of C33a cells constitutively expressing CAIX in hypoxia. We suggest that binding of PIMT represents a novel intracellular signal required for enzymatic activity of CAIX with a potential unidentified downstream function.
人碳酸酐酶 IX(CAIX)是α碳酸酐酶家族中的一个独特成员,是一种跨膜糖蛋白,具有很高的酶活性,通过这种活性,CAIX 通过调节 pH 值促进肿瘤发生。由于其异常表达,CAIX 被认为是肿瘤缺氧的标志物和几种人类癌症的预后不良因素。CAIX 的缺氧激活催化功能依赖于其短细胞内结构域的翻译后修饰。在这项工作中,我们已经确定了末端 Ala459 残基在各种物种的 CAIX 以及其他跨膜同工型中是共同的,在 CAIX 的激活和 pH 值调节中起着重要作用。此外,结构预测 I-TASSER 分析表明 Ala459 参与潜在的配体结合。使用串联质谱法,鉴定了蛋白-L-异天冬氨酸甲基转移酶(PIMT)作为一种新的相互作用伙伴,通过体外下拉测定和原位邻近连接测定进一步证实了这一点。事实上,抑制 PIMT 导致在缺氧条件下持续表达 CAIX 的 C33a 细胞培养基碱化增加。我们认为,PIMT 的结合代表了 CAIX 酶活性所必需的新的细胞内信号,可能具有未识别的下游功能。