Biomedical Research Center, Qatar University, P.O. Box 2713, Doha, Qatar.
Biomedical Research Center, Qatar University, P.O. Box 2713, Doha, Qatar; Department of Biomedical Sciences, College of Health Sciences, QU Health, Qatar University, P.O. Box 2713, Doha, Qatar.
Nitric Oxide. 2024 Mar 1;144:47-57. doi: 10.1016/j.niox.2024.01.007. Epub 2024 Feb 1.
Heart failure (HF) is a multifactorial, heterogeneous systemic disease that is considered one of the leading causes of death and morbidity worldwide. It is well-known that endothelial dysfunction (ED) plays an important role in cardiac disease etiology. A reduction in the bioavailability of nitric oxide (NO) in the bloodstream leads to vasoconstriction and ED. Many studies indicated diminishment of peripheral arteries vasodilation that is mediated by the endothelium in the of patients with chronic HF. With the advancement of nanomedicine, nanotechnology can provide adequate solutions for delivering exogenous NO with the aid of nanoparticles (NPs) to treat ED. The properties of superparamagnetic iron oxide nanoparticles (SPIONs) enable both passive and active delivery of drugs. This prompted us to investigate the efficacy of our newly-developed hydrogel nanoparticles (NO-RPs) for the delivery and sustained release of NO gas to alleviate cardiac failure and inflammation in the heart failure zebrafish model. The hydrogel NO-RPs incorporate SPIONS and NO precursor. The sustainend release of NO in the NO-RPs (4200 s), overcomes the problem of the short half life of NO in vivo which is expected to ameliorate the reduced NO bioavailabilty, and its consequences in endothelial and cardiac dysfunction. Zebrafish embryos were used as the animal model in this study to determine the effect of SPIONs-loaded NO-RPs on the cardiovascular system. Cardiac failure was induced in 24hpf embryos by exposure to aristolochic acid (AA)(0.25, 0.5 μM) for 8 h, followed by the SPIONs-loaded NO-RPs (0.25, 0.5 mg/ml) for 48 h, experimental groups included: control group which is healthy non treated zebrafish embryos, AA injured zebrafish embryos (HF) model,and NO-RP treated HF zebrafish embryos. Survival rate was assessed at 72hpf. Cardiac function was also evaluated by analyzing cardiac parameters including heartbeat, major blood vessels primordial cardinal vein and dorsal aorta (PCV &DA) diameter, blood flow velocity in PCV & DA vessels, cardiac output, and PCV & DA shear stresses. All cardiac parameters were analyzed with the aid of MicroZebraLab blood flow analysis software from Viewpoint. In addition, we studied the molecular effects of the developed NO-RPs on the mRNA expression of selected pro-inflammatory markers: IL-6, and Cox-2. Our findings demonstrated that the NO-RPs improved the survival rate in the heart failure zebrafish model and reversed heart failure by enhancing blood flow perfusion in Zebrafish embryos, significantly. In addition, RT-PCR results showed that the NO-RPs significantly reduced the expression of pro-inflammatory markers (lL-6&COX-2) in the heart failure zebrafish model. Our study confirmed that the developed SPIONs-loaded NO-RPs are effective tool to alleviate cardiac failure and inflammation in the HF zebrafish model.
心力衰竭(HF)是一种多因素、异质的系统性疾病,被认为是全球范围内导致死亡和发病的主要原因之一。众所周知,内皮功能障碍(ED)在心脏疾病发病机制中起着重要作用。血液中一氧化氮(NO)的生物利用度降低会导致血管收缩和 ED。许多研究表明,慢性 HF 患者的外周动脉舒张功能减弱,这是由内皮介导的。随着纳米医学的发展,纳米技术可以通过纳米粒子(NPs)提供足够的解决方案来输送外源性 NO,以治疗 ED。超顺磁性氧化铁纳米粒子(SPIONs)的特性使其能够被动和主动地输送药物。这促使我们研究我们新开发的水凝胶纳米粒子(NO-RPs)在递送和持续释放 NO 气体以缓解心力衰竭斑马鱼模型中的心力衰竭和炎症方面的功效。水凝胶 NO-RPs 结合了 SPIONS 和 NO 前体。NO-RPs 中的 NO 持续释放(4200s)克服了 NO 在体内半衰期短的问题,预计将改善降低的 NO 生物利用度及其在内皮和心脏功能障碍中的后果。本研究采用斑马鱼胚胎作为动物模型,确定负载 SPIONs 的 NO-RPs 对心血管系统的影响。通过在 24hpf 胚胎中暴露于马兜铃酸(AA)(0.25、0.5μM)8 小时来诱导心力衰竭,随后用负载 SPIONs 的 NO-RPs(0.25、0.5mg/ml)处理 48 小时,实验组包括:对照组为健康未处理的斑马鱼胚胎,AA 损伤的斑马鱼胚胎(HF)模型和 NO-RP 处理的 HF 斑马鱼胚胎。在 72hpf 时评估存活率。通过分析心脏参数,包括心跳、主要血管原始心静脉和背主动脉(PCV 和 DA)直径、PCV 和 DA 血管中的血流速度、心输出量和 PCV 和 DA 切应力,也评估了心脏功能。所有心脏参数均由 Viewpoint 的 MicroZebraLab 血流分析软件进行分析。此外,我们研究了开发的 NO-RPs 对选定促炎标志物(IL-6 和 Cox-2)mRNA 表达的分子影响。我们的研究结果表明,NO-RPs 通过显著增强斑马鱼胚胎的血流灌注,显著提高了心力衰竭斑马鱼模型的存活率并逆转了心力衰竭。此外,RT-PCR 结果表明,NO-RPs 显著降低了心力衰竭斑马鱼模型中促炎标志物(IL-6 和 COX-2)的表达。我们的研究证实,开发的负载 SPIONs 的 NO-RPs 是缓解 HF 斑马鱼模型中心力衰竭和炎症的有效工具。