Cyclin D-CDK4 Disulfide Bond Attenuates Pulmonary Vascular Cell Proliferation

被引:6
|
作者
Knight, Hannah [1 ]
Abis, Giancarlo [3 ]
Kaur, Manpreet [1 ]
Green, Hannah L. H. [1 ]
Krasemann, Susanne [4 ]
Hartmann, Kristin [4 ]
Lynham, Steven [2 ]
Clark, James [1 ]
Zhao, Lan [5 ]
Ruppert, Clemens [6 ]
Weiss, Astrid [7 ,8 ]
Schermuly, Ralph T. [7 ,8 ]
Eaton, Philip [9 ]
Rudyk, Olena [1 ]
机构
[1] Kings Coll London, British Heart Fdn Ctr Res Excellence, Sch Cardiovasc & Metab Med & Sci, London, England
[2] Kings Coll London, Ctr Excellence Mass Spectrometry, Prote Core Facil, London SE1 7EH, England
[3] UCL, Inst Struct & Mol Biol, Div Biosci, London, England
[4] Univ Med Ctr Hamburg Eppendorf, Inst Neuropathol, Hamburg, Germany
[5] Imperial Coll London, Natl Heart & Lung Inst, Fac Med, London, England
[6] Justus Liebig Univ Giessen, Univ Giessen & Marburg Lung Ctr, Giessen Biobank, Giessen, Germany
[7] Justus Liebig Univ Giessen, Dept Internal Med, Giessen, Germany
[8] German Ctr Lung Res DZL, Munich, Germany
[9] Queen Mary Univ, William Harvey Res Inst, Barts & London Sch Med & Dent, London, England
关键词
cell cycle; cell proliferation; hypertension; pulmonary; myocytes; smooth muscle; oxidation-reduction; ARTERIAL-HYPERTENSION; REDOX REGULATION; HYPOXIA; GROWTH; SUBSTITUTION; SUPEROXIDE; MECHANISMS; RESPONSES; RECEPTOR; SMOOTH;
D O I
10.1161/CIRCRESAHA.122.321836
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
BACKGROUND: Pulmonary hypertension (PH) is a chronic vascular disease characterized, among other abnormalities, by hyperproliferative smooth muscle cells and a perturbed cellular redox and metabolic balance. Oxidants induce cell cycle arrest to halt proliferation; however, little is known about the redox-regulated effector proteins that mediate these processes. Here, we report a novel kinase-inhibitory disulfide bond in cyclin D-CDK4 (cyclin-dependent kinase 4) and investigate its role in cell proliferation and PH.METHODS: Oxidative modifications of cyclin D-CDK4 were detected in human pulmonary arterial smooth muscle cells and human pulmonary arterial endothelial cells. Site-directed mutagenesis, tandem mass-spectrometry, cell-based experiments, in vitro kinase activity assays, in silico structural modeling, and a novel redox-dead constitutive knock-in mouse were utilized to investigate the nature and definitively establish the importance of CDK4 cysteine modification in pulmonary vascular cell proliferation. Furthermore, the cyclin D-CDK4 oxidation was assessed in vivo in the pulmonary arteries and isolated human pulmonary arterial smooth muscle cells of patients with pulmonary arterial hypertension and in 3 preclinical models of PH.RESULTS: Cyclin D-CDK4 forms a reversible oxidant-induced heterodimeric disulfide dimer between C7/8 and C135, respectively, in cells in vitro and in pulmonary arteries in vivo to inhibit cyclin D-CDK4 kinase activity, decrease Rb (retinoblastoma) protein phosphorylation, and induce cell cycle arrest. Mutation of CDK4 C135 causes a kinase-impaired phenotype, which decreases cell proliferation rate and alleviates disease phenotype in an experimental mouse PH model, suggesting this cysteine is indispensable for cyclin D-CDK4 kinase activity. Pulmonary arteries and human pulmonary arterial smooth muscle cells from patients with pulmonary arterial hypertension display a decreased level of CDK4 disulfide, consistent with CDK4 being hyperactive in human pulmonary arterial hypertension. Furthermore, auranofin treatment, which induces the cyclin D-CDK4 disulfide, attenuates disease severity in experimental PH models by mitigating pulmonary vascular remodeling.CONCLUSIONS: A novel disulfide bond in cyclin D-CDK4 acts as a rapid switch to inhibit kinase activity and halt cell proliferation. This oxidative modification forms at a critical cysteine residue, which is unique to CDK4, offering the potential for the design of a selective covalent inhibitor predicted to be beneficial in PH.
引用
收藏
页码:966 / 988
页数:23
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