Department of Medicinal Chemistry and Molecular Pharmacology (M.S.-V., M.P.H., A.A., E.C.D., V.J.W.), Purdue Institute of Drug Discovery (E.C.D., V.J.W.), Purdue University, West Lafayette, Indiana.
Department of Medicinal Chemistry and Molecular Pharmacology (M.S.-V., M.P.H., A.A., E.C.D., V.J.W.), Purdue Institute of Drug Discovery (E.C.D., V.J.W.), Purdue University, West Lafayette, Indiana
Mol Pharmacol. 2018 Sep;94(3):963-972. doi: 10.1124/mol.118.111849. Epub 2018 Jun 27.
Functional characterization of adenylyl cyclase (AC) isoforms has proven challenging in mammalian cells because of the endogenous expression of multiple AC isoforms and the high background cAMP levels induced by nonselective AC activators. To simplify the characterization of individual transmembrane AC (mAC) isoforms, we generated a human embryonic kidney cell line 293 (HEK293) with low cAMP levels by knocking out two highly expressed ACs, AC3 and AC6, using CRISPR/Cas9 technology. Stable HEK293 cell lines lacking either AC6 (HEK-ACΔ6) or both AC3 and AC6 (HEK-ACΔ3/6) were generated. Knockout was confirmed genetically and by comparing cAMP responses of the knockout cells to the parental cell line. HEK-ACΔ6 and HEK-ACΔ3/6 cells revealed an 85% and 95% reduction in the forskolin-stimulated cAMP response, respectively. Forskolin- and G-coupled receptor-induced activation was examined for the nine recombinant mAC isoforms in the HEK-ACΔ3/6 cells. Forskolin-mediated cAMP accumulation for AC1-6 and AC8 revealed 10- to 250-fold increases over the basal cAMP levels. All nine mAC isoforms, except AC8, also exhibited significantly higher cAMP levels than the control cells after G-coupled receptor activation. Isoform-specific AC regulation by protein kinases and Ca/calmodulin was also recapitulated in the knockout cells. Furthermore, the utility of the HEK-ACΔ3/6 cell line was demonstrated by characterizing the activity of novel AC1 forskolin binding-site mutants. Hence, we have developed a HEK293 cell line deficient of endogenous AC3 and AC6 with low cAMP background levels for studies of cAMP signaling and AC isoform regulation.
使用 CRISPR/Cas9 技术敲除两种高表达的腺苷酸环化酶 (AC),即 AC3 和 AC6,构建了内源性 cAMP 水平较低的人胚肾细胞系 293(HEK293),以简化单个跨膜 AC(mAC)同工型的特征分析。通过遗传和比较敲除细胞与亲本细胞系的 cAMP 反应,证实了敲除。HEK-ACΔ6 和 HEK-ACΔ3/6 细胞的 forskolin 刺激的 cAMP 反应分别降低了 85%和 95%。在 HEK-ACΔ3/6 细胞中,检测了九种重组 mAC 同工型的 forskolin 和 G 偶联受体诱导的激活。AC1-6 和 AC8 的 forskolin 介导的 cAMP 积累比基础 cAMP 水平增加了 10 到 250 倍。除了 AC8 之外,所有九种 mAC 同工型在 G 偶联受体激活后,其 cAMP 水平也明显高于对照细胞。蛋白激酶和 Ca/钙调蛋白对同工型特异性 AC 的调节也在敲除细胞中得到了重现。此外,通过对新型 AC1 forskolin 结合位点突变体的活性进行特征分析,证明了 HEK-ACΔ3/6 细胞系的实用性。因此,我们开发了一种内源性缺乏 AC3 和 AC6 的 HEK293 细胞系,其 cAMP 背景水平较低,可用于研究 cAMP 信号转导和 AC 同工型调节。