RESUMEN
Cardiac fibrosis is a pathological scarring process that impairs cardiac function. N-acetyltransferase 10 (Nat10) is recently identified as the key enzyme for the N4-acetylcytidine (ac4C) modification of mRNAs. In this study, we investigated the role of Nat10 in cardiac fibrosis following myocardial infarction (MI) and the related mechanisms. MI was induced in mice by ligation of the left anterior descending coronary artery; cardiac function was assessed with echocardiography. We showed that both the mRNA and protein expression levels of Nat10 were significantly increased in the infarct zone and border zone 4 weeks post-MI, and the expression of Nat10 in cardiac fibroblasts was significantly higher compared with that in cardiomyocytes after MI. Fibroblast-specific overexpression of Nat10 promoted collagen deposition and induced cardiac systolic dysfunction post-MI in mice. Conversely, fibroblast-specific knockout of Nat10 markedly relieved cardiac function impairment and extracellular matrix remodeling following MI. We then conducted ac4C-RNA binding protein immunoprecipitation-sequencing (RIP-seq) in cardiac fibroblasts transfected with Nat10 siRNA, and revealed that angiomotin-like 1 (Amotl1), an upstream regulator of the Hippo signaling pathway, was the target gene of Nat10. We demonstrated that Nat10-mediated ac4C modification of Amotl1 increased its mRNA stability and translation in neonatal cardiac fibroblasts, thereby increasing the interaction of Amotl1 with yes-associated protein 1 (Yap) and facilitating Yap translocation into the nucleus. Intriguingly, silencing of Amotl1 or Yap, as well as treatment with verteporfin, a selective and potent Yap inhibitor, attenuated the Nat10 overexpression-induced proliferation of cardiac fibroblasts and prevented their differentiation into myofibroblasts in vitro. In conclusion, this study highlights Nat10 as a crucial regulator of myocardial fibrosis following MI injury through ac4C modification of upstream activators within the Hippo/Yap signaling pathway.
Asunto(s)
Fibrosis , Ratones Endogámicos C57BL , Infarto del Miocardio , Animales , Infarto del Miocardio/metabolismo , Infarto del Miocardio/patología , Ratones , Masculino , Proteínas Señalizadoras YAP/metabolismo , Fibroblastos/metabolismo , Citidina/análogos & derivados , Citidina/farmacología , Ratones Noqueados , Proteínas de la Membrana/metabolismo , Proteínas de la Membrana/genética , Acetiltransferasa E N-Terminal/metabolismo , Vía de Señalización Hippo , Miocitos Cardíacos/metabolismo , Miocitos Cardíacos/patología , Células Cultivadas , Transducción de Señal , Acetiltransferasas N-Terminal/metabolismo , Miocardio/patología , Miocardio/metabolismo , Proteínas Adaptadoras Transductoras de Señales/metabolismoRESUMEN
The neonatal heart possesses the ability to proliferate and the capacity to regenerate after injury; however, the mechanisms underlying these processes are not fully understood. Melatonin has been shown to protect the heart against myocardial injury through mitigating oxidative stress, reducing apoptosis, inhibiting mitochondrial fission, etc. In this study, we investigated whether melatonin regulated cardiomyocyte proliferation and promoted cardiac repair in mice with myocardial infarction (MI), which was induced by ligation of the left anterior descending coronary artery. We showed that melatonin administration significantly improved the cardiac functions accompanied by markedly enhanced cardiomyocyte proliferation in MI mice. In neonatal mouse cardiomyocytes, treatment with melatonin (1 µM) greatly suppressed miR-143-3p levels. Silencing of miR-143-3p stimulated cardiomyocytes to re-enter the cell cycle. On the contrary, overexpression of miR-143-3p inhibited the mitosis of cardiomyocytes and abrogated cardiomyocyte mitosis induced by exposure to melatonin. Moreover, Yap and Ctnnd1 were identified as the target genes of miR-143-3p. In cardiomyocytes, inhibition of miR-143-3p increased the protein expression of Yap and Ctnnd1. Melatonin treatment also enhanced Yap and Ctnnd1 protein levels. Furthermore, Yap siRNA and Ctnnd1 siRNA attenuated melatonin-induced cell cycle re-entry of cardiomyocytes. We showed that the effect of melatonin on cardiomyocyte proliferation and cardiac regeneration was impeded by the melatonin receptor inhibitor luzindole. Silencing miR-143-3p abrogated the inhibition of luzindole on cardiomyocyte proliferation. In addition, both MT1 and MT2 siRNA could cancel the beneficial effects of melatonin on cardiomyocyte proliferation. Collectively, the results suggest that melatonin induces cardiomyocyte proliferation and heart regeneration after MI by regulating the miR-143-3p/Yap/Ctnnd1 signaling pathway, providing a new therapeutic strategy for cardiac regeneration.
Asunto(s)
Proliferación Celular/efectos de los fármacos , Melatonina/uso terapéutico , Infarto del Miocardio/tratamiento farmacológico , Miocitos Cardíacos/metabolismo , Transducción de Señal/efectos de los fármacos , Proteínas Adaptadoras Transductoras de Señales/metabolismo , Animales , Animales Recién Nacidos , Cateninas/metabolismo , Ciclo Celular/efectos de los fármacos , Células Cultivadas , Corazón/efectos de los fármacos , Ratones Endogámicos C57BL , MicroARNs/metabolismo , Infarto del Miocardio/metabolismo , Miocardio/metabolismo , Receptor de Melatonina MT1/metabolismo , Receptor de Melatonina MT2/metabolismo , Regeneración/efectos de los fármacos , Proteínas Señalizadoras YAP , Catenina deltaRESUMEN
This Letter presents a single-layer, dual-frequency unit for generating orbital angular momentum (OAM) in the microwave range. The unit cell consists of a square frame and two concentric rings with branches. The developed units can produce multifunctional OAM with required OAM mode, beam number, and direction. To demonstrate this versatility, three reflectarrays operating at dual frequencies are designed, and one is fabricated and measured to validate the design. The reflectarray has the following advantages: high gain (15.4dBi at 10 GHz, 20.3dBi at 20 GHz), high aperture efficiency (13.53% at 10 GHz, 10.33% at 20 GHz), low divergence angle (7.5°at 10 GHz, 6° at 20 GHz), small size, and compactness in the form of a single-layer structure. The designed multifunctional reflectarray has potential applications in remote sensing, point-to-point communication, satellite communications, and others.