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整合蛋白质组学揭示核 PDE3A2 作为心肌细胞肥大的调节剂。

Integrated Proteomics Unveils Nuclear PDE3A2 as a Regulator of Cardiac Myocyte Hypertrophy.

机构信息

Department of Physiology, Anatomy and Genetics (G.S., K.S., D.K., A.Z., M.F., Y.-C.C., N.C.S., A.K., J.H., K.C.P., M.Z.), University of Oxford, United Kingdom.

Biomolecular Mass Spectrometry and Proteomics, Utrecht Institute for Pharmaceutical Sciences and Bijvoet Center for Biomolecular Research, Utrecht University, the Netherlands (D.K., A.S., A.J.R.H.).

出版信息

Circ Res. 2023 Mar 31;132(7):828-848. doi: 10.1161/CIRCRESAHA.122.321448. Epub 2023 Mar 8.

Abstract

BACKGROUND

Signaling by cAMP is organized in multiple distinct subcellular nanodomains regulated by cAMP-hydrolyzing PDEs (phosphodiesterases). Cardiac β-adrenergic signaling has served as the prototypical system to elucidate cAMP compartmentalization. Although studies in cardiac myocytes have provided an understanding of the location and properties of a handful of cAMP subcellular compartments, an overall view of the cellular landscape of cAMP nanodomains is missing.

METHODS

Here, we combined an integrated phosphoproteomics approach that takes advantage of the unique role that individual PDEs play in the control of local cAMP, with network analysis to identify previously unrecognized cAMP nanodomains associated with β-adrenergic stimulation. We then validated the composition and function of one of these nanodomains using biochemical, pharmacological, and genetic approaches and cardiac myocytes from both rodents and humans.

RESULTS

We demonstrate the validity of the integrated phosphoproteomic strategy to pinpoint the location and provide critical cues to determine the function of previously unknown cAMP nanodomains. We characterize in detail one such compartment and demonstrate that the PDE3A2 isoform operates in a nuclear nanodomain that involves SMAD4 (SMAD family member 4) and HDAC-1 (histone deacetylase 1). Inhibition of PDE3 results in increased HDAC-1 phosphorylation, leading to inhibition of its deacetylase activity, derepression of gene transcription, and cardiac myocyte hypertrophic growth.

CONCLUSIONS

We developed a strategy for detailed mapping of subcellular PDE-specific cAMP nanodomains. Our findings reveal a mechanism that explains the negative long-term clinical outcome observed in patients with heart failure treated with PDE3 inhibitors.

摘要

背景

cAMP 的信号转导是由 cAMP 水解酶(磷酸二酯酶,PDEs)在多个不同的亚细胞纳米区室中组织的。心脏 β-肾上腺素能信号转导一直是阐明 cAMP 区室化的典型系统。尽管在心肌细胞中的研究提供了对少数 cAMP 亚细胞区室的位置和性质的理解,但仍然缺乏对 cAMP 纳米区室细胞景观的整体认识。

方法

在这里,我们结合了一种综合磷酸蛋白质组学方法,该方法利用了单个 PDE 在控制局部 cAMP 中的独特作用,以及网络分析,以识别与β-肾上腺素刺激相关的以前未被识别的 cAMP 纳米区室。然后,我们使用生化、药理学和遗传学方法以及来自啮齿动物和人类的心肌细胞,验证了其中一个纳米区室的组成和功能。

结果

我们证明了综合磷酸蛋白质组学策略的有效性,该策略可以精确定位位置并提供关键线索来确定以前未知的 cAMP 纳米区室的功能。我们详细描述了这样一个区室,并证明 PDE3A2 同工型在涉及 SMAD4(SMAD 家族成员 4)和 HDAC-1(组蛋白去乙酰化酶 1)的核纳米区室中发挥作用。PDE3 的抑制导致 HDAC-1 磷酸化增加,从而抑制其去乙酰化酶活性,抑制基因转录,导致心肌细胞肥大生长。

结论

我们开发了一种详细绘制亚细胞 PDE 特异性 cAMP 纳米区室的策略。我们的发现揭示了一种机制,该机制解释了心力衰竭患者接受 PDE3 抑制剂治疗时观察到的负面长期临床结果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4a1f/10045983/bebdb20ba61b/res-132-828-g001.jpg

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