Department of Biology , Brandeis University , Waltham , Massachusetts 02454 , United States.
Interdisciplinary Institute for Neuroscience , CNRS, UMR5297 , F-33000 Bordeaux , France.
Biochemistry. 2019 Jun 18;58(24):2710-2714. doi: 10.1021/acs.biochem.9b00121. Epub 2019 Jun 4.
Nucleoside diphosphate kinases (Nmes or NDPKs) have been implicated in a multitude of cellular processes, including an important role in metastasis suppression, and several enzymatic activities have been assigned to the Nme family. Nevertheless, for many of these processes, it has not been possible to establish a strong connection between Nme enzymatic activity and the relevant biological function. We hypothesized that, in addition to its known enzymatic functions, members of the Nme family might also regulate signaling cascades by acting on key signal transducers. Accordingly, here we show that Nme1 directly interacts with the calcium/calmodulin-dependent kinase II (CaMKII). Using purified proteins, we monitored the phosphorylation of a number of CaMKII substrates and determined that at nanomolar levels Nme1 enhances the phosphorylation of T-type substrates; this modulation shifts to inhibition at low micromolar concentrations. Specifically, the autophosphorylation of CaMKII at Thr286 is completely inhibited by 2 μM Nme1, a feature that distinguishes Nme1 from other known endogenous CaMKII inhibitors. Importantly, CaMKII inhibition does not require phosphotransfer activity by Nme1 because the kinase-dead Nme1 H118F mutant is as effective as the wild-type form of the enzyme. Our results provide a novel molecular mechanism whereby Nme1 could modulate diverse cellular processes in a manner that is independent of its known enzymatic activities.
核苷二磷酸激酶(Nme 或 NDPKs)参与了多种细胞过程,包括在转移抑制中发挥重要作用,并且已经为 Nme 家族分配了几种酶活性。然而,对于许多这些过程,尚未能够在 Nme 酶活性和相关生物学功能之间建立牢固的联系。我们假设,除了其已知的酶功能外,Nme 家族的成员还可以通过作用于关键信号转导器来调节信号级联。因此,在这里我们表明 Nme1 可直接与钙/钙调蛋白依赖性激酶 II(CaMKII)相互作用。使用纯化的蛋白质,我们监测了许多 CaMKII 底物的磷酸化,并确定在纳摩尔水平下 Nme1 增强了 T 型底物的磷酸化;这种调节在低微摩尔浓度下转变为抑制。具体而言,CaMKII 在 Thr286 处的自磷酸化被 2 μM Nme1 完全抑制,这一特征将 Nme1 与其他已知的内源性 CaMKII 抑制剂区分开来。重要的是,CaMKII 抑制不需要 Nme1 的磷酸转移活性,因为激酶失活的 Nme1 H118F 突变体与酶的野生型形式一样有效。我们的结果提供了一种新的分子机制,通过该机制,Nme1 可以独立于其已知的酶活性以方式调节多种细胞过程。