BAY58-2667 Activates Different Soluble Guanylyl Cyclase Species by Distinct Mechanisms that Indicate Its Principal Target in Cells is the Heme-Free Soluble Guanylyl Cyclase-Heat Shock Protein 90 Complex.

IF 3.2 3区 医学 Q2 PHARMACOLOGY & PHARMACY
Molecular Pharmacology Pub Date : 2023-05-01 Epub Date: 2023-03-03 DOI:10.1124/molpharm.122.000624
Yue Dai, Dennis J Stuehr
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引用次数: 0

Abstract

Nitric oxide (NO)-unresponsive forms of soluble guanylyl cyclase (sGC) exist naturally and in disease can disable NO-sGC-cGMP signaling. Agonists like BAY58-2667 (BAY58) target these sGC forms, but their mechanisms of action in living cells are unclear. We studied rat lung fibroblast-6 cells and human airway smooth muscle cells that naturally express sGC and HEK293 cells that we transfected to express sGC and variants. Cells were cultured to build up different forms of sGC, and we used fluorescence and FRET-based measures to monitor BAY58-driven cGMP production and any protein partner exchange or heme loss events that may occur for each sGC species. We found that: (i) BAY58 activated cGMP production by the apo-sGCβ-Hsp90 species after a 5-8 minute delay that was associated with apo-sGCβ exchanging its Hsp90 partner with an sGCα subunit. (ii) In cells containing an artificially constructed heme-free sGC heterodimer, BAY58 initiated an immediate and three times faster cGMP production. However, this behavior was not observed in cells expressing native sGC under any condition. (iii) BAY58 activated cGMP production by ferric heme sGC only after a 30-minute delay, coincident with it initiating a delayed, slow ferric heme loss from sGCβ We conclude that the kinetics favor BAY58 activation of the apo-sGCβ-Hsp90 species over the ferric heme sGC species in living cells. The protein partner exchange events driven by BAY58 account for the initial delay in cGMP production and also limit the speed of subsequent cGMP production in the cells. Our findings clarify how agonists like BAY58 may activate sGC in health and disease. SIGNIFICANCE STATEMENT: A class of agonists can activate cyclic guanosine monophosphate (cGMP) synthesis by forms of soluble guanylyl cyclase (sGC) that do not respond to NO and accumulate in disease, but the mechanisms of action are unclear. This study clarifies what forms of sGC exist in living cells, which of these can be activated by the agonists, and the mechanisms and kinetics by which each form is activated. This information may help to hasten deployment of these agonists for pharmaceutical intervention and clinical therapy.

BAY58-2667通过不同的机制激活不同的可溶性关酰环化酶,表明其在细胞中的主要靶点是无血红素可溶性关酰环化酶-热休克蛋白90复合物。
一氧化氮(NO)-无应答形式的可溶性胍基环化酶(sGC)自然存在,在疾病中可以禁用NO-sGC- cgmp信号。BAY58-2667 (BAY58)等激动剂靶向这些sGC形式,但其在活细胞中的作用机制尚不清楚。我们研究了自然表达sGC的大鼠肺成纤维细胞-6细胞和人气道平滑肌细胞,以及转染表达sGC及其变体的HEK293细胞。培养细胞以构建不同形式的sGC,我们使用荧光和基于fret的方法来监测bay58驱动的cGMP产生以及每种sGC物种可能发生的任何蛋白质伴侣交换或血红素损失事件。我们发现:(i) BAY58激活了apo-sGCβ-Hsp90的cGMP生产,延迟5-8分钟,这与apo-sGCβ与sGCα亚基交换Hsp90伴侣有关。(ii)在含有人工构建的无血红素sGC异源二聚体的细胞中,BAY58立即启动了cGMP的生产,并且速度提高了三倍。然而,在任何条件下,在表达天然sGC的细胞中都没有观察到这种行为。(iii) BAY58仅在延迟30分钟后激活了铁血红素sGC的cGMP生产,这与它启动sGC的延迟,缓慢的铁血红素损失相一致。我们得出结论,在活细胞中,BAY58激活apo-sGCβ-Hsp90物种比激活铁血红素sGC物种更有利。BAY58驱动的蛋白质伴侣交换事件导致cGMP产生的初始延迟,也限制了细胞中后续cGMP产生的速度。我们的发现阐明了BAY58等激动剂如何在健康和疾病中激活sGC。意义声明:一类激动剂可以通过可溶性鸟苷环化酶(sGC)的形式激活环鸟苷单磷酸(cGMP)的合成,这种形式对NO没有反应并在疾病中积累,但其作用机制尚不清楚。本研究阐明了活细胞中存在哪些形式的sGC,哪些可以被激动剂激活,以及每种形式被激活的机制和动力学。这一信息可能有助于加速这些激动剂用于药物干预和临床治疗的部署。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Molecular Pharmacology
Molecular Pharmacology 医学-药学
CiteScore
7.20
自引率
2.80%
发文量
50
审稿时长
3-6 weeks
期刊介绍: Molecular Pharmacology publishes findings derived from the application of innovative structural biology, biochemistry, biophysics, physiology, genetics, and molecular biology to basic pharmacological problems that provide mechanistic insights that are broadly important for the fields of pharmacology and toxicology. Relevant topics include: Molecular Signaling / Mechanism of Drug Action Chemical Biology / Drug Discovery Structure of Drug-Receptor Complex Systems Analysis of Drug Action Drug Transport / Metabolism
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