Hippe Hans-Joerg, Luedde Mark, Lutz Susanne, Koehler Henrike, Eschenhagen Thomas, Frey Norbert, Katus Hugo A, Wieland Thomas, Niroomand Feraydoon
Innere Medizin III-Kardiologie, Universität Heidelberg, Heidelberg, Germany.
Circ Res. 2007 Apr 27;100(8):1191-9. doi: 10.1161/01.RES.0000264058.28808.cc. Epub 2007 Mar 15.
Heterotrimeric G proteins are pivotal regulators of myocardial contractility. In addition to the receptor-induced GDP/GTP exchange, G protein alpha subunits can be activated by a phosphate transfer via a plasma membrane-associated complex of nucleoside diphosphate kinase B (NDPK B) and G protein betagamma-dimers (Gbetagamma). To investigate the physiological role of this phosphate transfer in cardiomyocytes, we generated a Gbeta1gamma2-dimer carrying a single amino acid exchange at the intermediately phosphorylated His-266 in the beta1 subunit (Gbeta1H266Lgamma2). Recombinantly expressed Gbeta1H266Lgamma2 were integrated into heterotrimeric G proteins in rat cardiomyocytes but were deficient in intermediate Gbeta phosphorylation. Compared with wild-type Gbeta1gamma2 (Gbeta1WTgamma2), overexpression of Gbeta1H266Lgamma2 suppressed basal cAMP formation up to 55%. A similar decrease in basal cAMP production occurred when the formation of NDPK B/Gbetagamma complexes was attenuated by siRNA-mediated NDPK B knockdown. In adult rat cardiomyocytes expressing Gbeta1H266Lgamma2, the basal contractility was suppressed by approximately 50% which correlated to similarly reduced basal cAMP levels and reduced Ser16-phosphorylation of phospholamban. In the presence of the beta-adrenoceptor agonist isoproterenol, the total cAMP formation and contractility were significantly lower in Gbeta1H266Lgamma2 than in Gbeta1WTgamma2 expressing cardiomyocytes. However, the relative isoproterenol-induced increased was not affected by Gbeta1H266Lgamma2. We conclude that the receptor-independent activation of G proteins via NDPK B/Gbetagamma complexes requires the intermediate phosphorylation of G protein beta subunits at His-266. Our results highlight the histidine kinase activity of NDPK B for Gbeta and demonstrate its contribution to the receptor-independent regulation of cAMP synthesis and contractility in intact cardiomyocytes.
异三聚体G蛋白是心肌收缩力的关键调节因子。除了受体诱导的GDP/GTP交换外,G蛋白α亚基还可以通过与质膜相关的核苷二磷酸激酶B(NDPK B)和G蛋白βγ二聚体(Gβγ)复合物进行磷酸转移而被激活。为了研究这种磷酸转移在心肌细胞中的生理作用,我们构建了一种在β1亚基中间磷酸化的His-266处携带单个氨基酸交换的Gβ1γ2二聚体(Gβ1H266Lγ2)。重组表达的Gβ1H266Lγ2被整合到大鼠心肌细胞的异三聚体G蛋白中,但中间Gβ磷酸化存在缺陷。与野生型Gβ1γ2(Gβ1WTγ2)相比,Gβ1H266Lγ2的过表达将基础cAMP形成抑制高达55%。当通过siRNA介导的NDPK B敲低减弱NDPK B/Gβγ复合物的形成时,基础cAMP产生也出现类似的下降。在表达Gβ1H266Lγ2的成年大鼠心肌细胞中,基础收缩力被抑制约50%,这与基础cAMP水平的类似降低以及受磷蛋白Ser16磷酸化的降低相关。在β肾上腺素能受体激动剂异丙肾上腺素存在的情况下,Gβ1H266Lγ2表达的心肌细胞中总cAMP形成和收缩力显著低于Gβ1WTγ2表达的心肌细胞。然而,异丙肾上腺素诱导的相对增加不受Gβ1H266Lγ2的影响。我们得出结论,通过NDPK B/Gβγ复合物对G蛋白的非受体依赖性激活需要G蛋白β亚基在His-266处的中间磷酸化。我们的结果突出了NDPK B对Gβ的组氨酸激酶活性,并证明了其对完整心肌细胞中cAMP合成和收缩力的非受体依赖性调节的贡献。