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Fibulin-4 is essential for maintaining arterial wall integrity in conduit but not muscular arteries

机译:Fibulin-4对于维持导管中的动脉壁完整性至关重要但对于维持肌肉动脉而言则不可或缺

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摘要

Homozygous or compound heterozygous mutations in fibulin-4 (FBLN4) lead to autosomal recessive cutis laxa type 1B (ARCL1B), a multisystem disorder characterized by significant cardiovascular abnormalities, including abnormal elastin assembly, arterial tortuosity, and aortic aneurysms. We sought to determine the consequences of a human disease–causing mutation in FBLN4 (E57K) on the cardiovascular system and vascular elastic fibers in a mouse model of ARCL1B. Fbln4E57K/E57K mice were hypertensive and developed arterial elongation, tortuosity, and ascending aortic aneurysms. Smooth muscle cell organization within the arterial wall of large conducting vessels was abnormal, and elastic fibers were fragmented and had a moth-eaten appearance. In contrast, vessel wall structure and elastic fiber integrity were normal in resistance/muscular arteries (renal, mesenteric, and saphenous). Elastin cross-linking and total elastin content were unchanged in large or small arteries, whereas elastic fiber architecture was abnormal in large vessels. While the E57K mutation did not affect Fbln4 mRNA levels, FBLN4 protein was lower in the ascending aorta of mutant animals compared to wild-type arteries but equivalent in mesenteric arteries. We found a differential role of FBLN4 in elastic fiber assembly, where it functions mainly in large conduit arteries. These results suggest that elastin assembly has different requirements depending on vessel type. Normal levels of elastin cross-links in mutant tissue call into question FBLN4’s suggested role in mediating lysyl oxidase–elastin interactions. Future studies investigating tissue-specific elastic fiber assembly may lead to novel therapeutic interventions for ARCL1B and other disorders of elastic fiber assembly.
机译:fibulin-4(FBLN4)中的纯合子或复合杂合子突变会导致常染色体隐性角质松弛1B型(ARCL1B),这是一种多系统疾病,其特征是明显的心血管异常,包括异常的弹性蛋白组装,动脉曲折和主动脉瘤。我们试图确定在ARCL1B小鼠模型中,人类疾病导致FBLN4(E57K)突变对心血管系统和血管弹性纤维的后果。 Fbln4 E57K / E57K 小鼠为高血压,并出现动脉伸长,曲折和升主动脉瘤。大传导性血管的动脉壁内的平滑肌细胞组织异常,弹性纤维断裂并被蛀虫侵害。相反,阻力/肌肉动脉(肾,肠系膜和隐性)的血管壁结构和弹性纤维完整性正常。弹性蛋白交联和总弹性蛋白含量在大小动脉中均未改变,而弹性纤维结构在大血管中则异常。虽然E57K突变不影响Fbln4 mRNA水平,但与野生型动脉相比,突变动物升主动脉中的FBLN4蛋白较低,而在肠系膜动脉中则相同。我们发现FBLN4在弹性纤维组件中的作用不同,它主要在大型导管动脉中起作用。这些结果表明,弹性蛋白组装根据血管类型具有不同的要求。突变组织中弹性蛋白交联的正常水平使人们质疑FBLN4在介导赖氨酰氧化酶与弹性蛋白相互作用中的作用。未来研究组织特异性弹性纤维组件的研究可能会导致针对ARCL1B和其他弹性纤维组件疾病的新型治疗干预措施。

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