Department of Medicine, Division of Cardiology, University of Alberta, Edmonton T6G 2S2, AB, Canada.
Circ Res. 2013 Jun 7;112(12):1542-56. doi: 10.1161/CIRCRESAHA.111.300299. Epub 2013 Apr 3.
The classic phagocyte nicotinamide adenine dinucleotide phosphate oxidase (gp91(phox) or Nox2) is expressed in the heart. Nox2 activation requires membrane translocation of the p47(phox) subunit and is linked to heart failure. We hypothesized that loss of p47(phox) subunit will result in decreased reactive oxygen species production and resistance to heart failure.
To define the role of p47(phox) in pressure overload-induced biomechanical stress.
Eight-week-old male p47(phox) null (p47(phox) knockout [KO]), Nox2 null (Nox2KO), and wild-type mice were subjected to transverse aortic constriction-induced pressure overload. Contrary to our hypothesis, p47(phox)KO mice showed markedly worsened systolic dysfunction in response to pressure overload at 5 and 9 weeks after transverse aortic constriction compared with wild-type-transverse aortic constriction mice. We found that biomechanical stress upregulated N-cadherin and β-catenin in p47(phox)KO hearts but disrupted the actin filament cytoskeleton and reduced phosphorylation of focal adhesion kinase. p47(phox) interacts with cytosolic cortactin by coimmunoprecipitation and double immunofluorescence staining in murine and human hearts and translocated to the membrane on biomechanical stress where cortactin interacted with N-cadherin, resulting in adaptive cytoskeletal remodeling. However, p47(phox)KO hearts showed impaired interaction of cortactin with N-cadherin, resulting in loss of biomechanical stress-induced actin polymerization and cytoskeletal remodeling. In contrast, Nox2 does not interact with cortactin, and Nox2-deficient hearts were protected from pressure overload-induced adverse myocardial and intracellular cytoskeletal remodeling.
We showed a novel role of p47(phox) subunit beyond and independent of nicotinamide adenine dinucleotide phosphate oxidase activity as a regulator of cortactin and adaptive cytoskeletal remodeling, leading to a paradoxically enhanced susceptibility to biomechanical stress and heart failure.
经典的吞噬细胞烟酰胺腺嘌呤二核苷酸磷酸氧化酶(gp91(phox)或 Nox2)在心脏中表达。Nox2 的激活需要 p47(phox)亚基的膜易位,与心力衰竭有关。我们假设 p47(phox)亚基的缺失会导致活性氧物质产生减少,并抵抗心力衰竭。
确定 p47(phox)在压力超负荷诱导的生物力学应激中的作用。
8 周龄雄性 p47(phox)缺失(p47(phox)敲除[KO])、Nox2 缺失(Nox2KO)和野生型小鼠接受了主动脉缩窄诱导的压力超负荷。与我们的假设相反,p47(phox)KO 小鼠在主动脉缩窄后 5 周和 9 周时对压力超负荷的反应表现出明显的收缩功能障碍。我们发现,生物力学应激上调了 p47(phox)KO 心脏中的 N-钙黏蛋白和β-连环蛋白,但破坏了肌动蛋白丝细胞骨架并减少了粘着斑激酶的磷酸化。p47(phox)通过共免疫沉淀和在鼠和人心肌中的双免疫荧光染色与细胞质中的桩蛋白相互作用,并在生物力学应激时向膜易位,在那里桩蛋白与 N-钙黏蛋白相互作用,导致适应性细胞骨架重塑。然而,p47(phox)KO 心脏显示出桩蛋白与 N-钙黏蛋白相互作用受损,导致生物力学应激诱导的肌动蛋白聚合和细胞骨架重塑丧失。相比之下,Nox2 不与桩蛋白相互作用,Nox2 缺失的心脏免受压力超负荷诱导的心肌和细胞内细胞骨架重塑的不良影响。
我们展示了 p47(phox)亚基的一个新作用,超越并独立于烟酰胺腺嘌呤二核苷酸磷酸氧化酶活性,作为桩蛋白和适应性细胞骨架重塑的调节剂,导致对生物力学应激和心力衰竭的易感性增强。