Weeks Kate L, Ranieri Antonella, Karaś Agnieszka, Bernardo Bianca C, Ashcroft Alexandra S, Molenaar Chris, McMullen Julie R, Avkiran Metin
Cardiovascular Division, King's College London British Heart Foundation Centre of Research Excellence, The Rayne Institute, St Thomas' Hospital, London, United Kingdom.
Baker Heart and Diabetes Institute, Melbourne, Australia.
J Am Heart Assoc. 2017 Mar 25;6(4):e004861. doi: 10.1161/JAHA.116.004861.
Class IIa histone deacetylase (HDAC) isoforms such as HDAC5 are critical signal-responsive repressors of maladaptive cardiomyocyte hypertrophy, through nuclear interactions with transcription factors including myocyte enhancer factor-2. β-Adrenoceptor (β-AR) stimulation, a signal of fundamental importance in regulating cardiac function, has been proposed to induce both phosphorylation-independent nuclear export and phosphorylation-dependent nuclear accumulation of cardiomyocyte HDAC5. The relative importance of phosphorylation at Ser259/Ser498 versus Ser279 in HDAC5 regulation is also controversial. We aimed to determine the impact of β-AR stimulation on the phosphorylation, localization, and function of cardiomyocyte HDAC5 and delineate underlying molecular mechanisms.
A novel 3-dimensional confocal microscopy method that objectively quantifies the whole-cell nuclear/cytoplasmic distribution of green fluorescent protein tagged HDAC5 revealed the β-AR agonist isoproterenol to induce β-AR-mediated and protein kinase A-dependent HDAC5 nuclear accumulation in adult rat cardiomyocytes, which was accompanied by dephosphorylation at Ser259/279/498. Mutation of Ser259/Ser498 to Ala promoted HDAC5 nuclear accumulation and myocyte enhancer factor-2 inhibition, whereas Ser279 ablation had no such effect and did not block isoproterenol-induced nuclear accumulation. Inhibition of the Ser/Thr phosphatase PP2A blocked isoproterenol-induced HDAC5 dephosphorylation. Co-immunoprecipitation revealed a specific interaction of HDAC5 with the PP2A targeting subunit B55α, as well as catalytic and scaffolding subunits, which increased >3-fold with isoproterenol. Knockdown of B55α in neonatal cardiomyocytes attenuated isoproterenol-induced HDAC5 dephosphorylation.
β-AR stimulation induces HDAC5 nuclear accumulation in cardiomyocytes by a mechanism that is protein kinase A-dependent but requires B55α-PP2A-mediated dephosphorylation of Ser259/Ser498 rather than protein kinase A-mediated phosphorylation of Ser279.
IIa类组蛋白去乙酰化酶(HDAC)亚型,如HDAC5,是适应性不良心肌细胞肥大的关键信号响应抑制因子,通过与包括心肌细胞增强因子2在内的转录因子进行核内相互作用发挥作用。β-肾上腺素能受体(β-AR)刺激是调节心脏功能的一个至关重要的信号,已被提出可诱导心肌细胞HDAC5发生磷酸化非依赖性核输出和磷酸化依赖性核蓄积。HDAC5调节过程中,丝氨酸259/丝氨酸498与丝氨酸279处磷酸化的相对重要性也存在争议。我们旨在确定β-AR刺激对心肌细胞HDAC5磷酸化、定位和功能的影响,并阐明潜在的分子机制。
一种新型的三维共聚焦显微镜方法可客观量化绿色荧光蛋白标记的HDAC5在全细胞中的核/质分布,结果显示β-AR激动剂异丙肾上腺素可诱导成年大鼠心肌细胞中β-AR介导的、蛋白激酶A依赖性的HDAC5核蓄积,同时伴有丝氨酸259/279/498的去磷酸化。将丝氨酸259/丝氨酸498突变为丙氨酸可促进HDAC5核蓄积及对心肌细胞增强因子2的抑制作用,而丝氨酸279缺失则无此效应,且不阻断异丙肾上腺素诱导的核蓄积。抑制丝氨酸/苏氨酸磷酸酶PP2A可阻断异丙肾上腺素诱导的HDAC5去磷酸化。免疫共沉淀显示HDAC5与PP2A靶向亚基B55α以及催化亚基和支架亚基存在特异性相互作用,异丙肾上腺素作用后这种相互作用增加了3倍以上。在新生心肌细胞中敲低B55α可减弱异丙肾上腺素诱导的HDAC5去磷酸化。
β-AR刺激通过一种蛋白激酶A依赖性机制诱导心肌细胞中HDAC5核蓄积,但该机制需要B55α-PP2A介导的丝氨酸259/丝氨酸498去磷酸化,而非蛋白激酶A介导的丝氨酸279磷酸化。