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本文引用的文献

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Kidney pericytes: roles in regeneration and fibrosis.肾周细胞:在再生和纤维化中的作用
Semin Nephrol. 2014 Jul;34(4):374-83. doi: 10.1016/j.semnephrol.2014.06.004. Epub 2014 Jun 13.
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Endothelial HIF-2 mediates protection and recovery from ischemic kidney injury.内皮细胞 HIF-2 介导对缺血性肾损伤的保护和恢复。
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Abnormal erythropoiesis and the pathophysiology of chronic anemia.异常红细胞生成与慢性贫血的病理生理学
Blood Rev. 2014 Mar;28(2):49-66. doi: 10.1016/j.blre.2014.01.002. Epub 2014 Jan 23.
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Role of hypoxia in progressive chronic kidney disease and implications for therapy.缺氧在慢性肾脏病进展中的作用及其治疗意义。
Curr Opin Nephrol Hypertens. 2014 Mar;23(2):161-8. doi: 10.1097/01.mnh.0000441049.98664.6c.
5
Cross-talk between hypoxia and insulin signaling through Phd3 regulates hepatic glucose and lipid metabolism and ameliorates diabetes.通过 Phd3 实现的低氧与胰岛素信号转导的串扰调节肝脏的糖和脂代谢,并改善糖尿病。
Nat Med. 2013 Oct;19(10):1325-30. doi: 10.1038/nm.3294. Epub 2013 Sep 15.
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Plasticity of renal erythropoietin-producing cells governs fibrosis.肾脏促红细胞生成素产生细胞的可塑性决定纤维化。
J Am Soc Nephrol. 2013 Oct;24(10):1599-616. doi: 10.1681/ASN.2013010030. Epub 2013 Jul 5.
7
Origin and function of myofibroblasts in kidney fibrosis.肌成纤维细胞在肾纤维化中的起源和功能。
Nat Med. 2013 Aug;19(8):1047-53. doi: 10.1038/nm.3218. Epub 2013 Jun 30.
8
A mouse model of adult-onset anaemia due to erythropoietin deficiency.一种因促红细胞生成素缺乏导致的成年发病型贫血的小鼠模型。
Nat Commun. 2013;4:1950. doi: 10.1038/ncomms2950.
9
Oxygen sensing and hypoxia signalling pathways in animals: the implications of physiology for cancer.动物的氧感应和缺氧信号通路:生理学对癌症的影响。
J Physiol. 2013 Apr 15;591(8):2027-42. doi: 10.1113/jphysiol.2013.251470. Epub 2013 Feb 11.
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Hypoxia-inducible factor signaling in the development of kidney fibrosis.缺氧诱导因子信号通路在肾纤维化发展中的作用
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通过激活缺氧信号恢复肾肌成纤维细胞中的促红细胞生成素合成。

Erythropoietin Synthesis in Renal Myofibroblasts Is Restored by Activation of Hypoxia Signaling.

作者信息

Souma Tomokazu, Nezu Masahiro, Nakano Daisuke, Yamazaki Shun, Hirano Ikuo, Sekine Hiroki, Dan Takashi, Takeda Kotaro, Fong Guo-Hua, Nishiyama Akira, Ito Sadayoshi, Miyata Toshio, Yamamoto Masayuki, Suzuki Norio

机构信息

Department of Medical Biochemistry, Division of Interdisciplinary Medical Science, Division of Nephrology, Endocrinology, and Vascular Medicine, and.

Department of Pharmacology, Kagawa University, Kagawa, Japan; and.

出版信息

J Am Soc Nephrol. 2016 Feb;27(2):428-38. doi: 10.1681/ASN.2014121184. Epub 2015 Jun 8.

DOI:10.1681/ASN.2014121184
PMID:26054543
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4731118/
Abstract

Erythropoietin (Epo) is produced by renal Epo-producing cells (REPs) in a hypoxia-inducible manner. The conversion of REPs into myofibroblasts and coincident loss of Epo-producing ability are the major cause of renal fibrosis and anemia. However, the hypoxic response of these transformed myofibroblasts remains unclear. Here, we used complementary in vivo transgenic and live imaging approaches to better understand the importance of hypoxia signaling in Epo production. Live imaging of REPs in transgenic mice expressing green fluorescent protein from a modified Epo-gene locus revealed that healthy REPs tightly associated with endothelium by wrapping processes around capillaries. However, this association was hampered in states of renal injury-induced inflammation previously shown to correlate with the transition to myofibroblast-transformed renal Epo-producing cells (MF-REPs). Furthermore, activation of hypoxia-inducible factors (HIFs) by genetic inactivation of HIF-prolyl hydroxylases (PHD1, PHD2, and PHD3) selectively in Epo-producing cells reactivated Epo production in MF-REPs. Loss of PHD2 in REPs restored Epo-gene expression in injured kidneys but caused polycythemia. Notably, combined deletions of PHD1 and PHD3 prevented loss of Epo expression without provoking polycythemia. Mice with PHD-deficient REPs also showed resistance to LPS-induced Epo repression in kidneys, suggesting that augmented HIF signaling counterbalances inflammatory stimuli in regulation of Epo production. Thus, augmentation of HIF signaling may be an attractive therapeutic strategy for treating renal anemia by reactivating Epo synthesis in MF-REPs.

摘要

促红细胞生成素(Epo)由肾脏促红细胞生成素产生细胞(REPs)以缺氧诱导的方式产生。REPs向肌成纤维细胞的转化以及随之而来的促红细胞生成能力的丧失是肾纤维化和贫血的主要原因。然而,这些转化的肌成纤维细胞的缺氧反应仍不清楚。在这里,我们使用互补的体内转基因和活体成像方法,以更好地了解缺氧信号在促红细胞生成中的重要性。对来自修饰的促红细胞生成素基因位点表达绿色荧光蛋白的转基因小鼠中的REPs进行活体成像显示,健康的REPs通过围绕毛细血管缠绕过程与内皮紧密相关。然而,这种关联在先前显示与向肌成纤维细胞转化的肾促红细胞生成细胞(MF-REPs)转变相关的肾损伤诱导的炎症状态中受到阻碍。此外,通过在促红细胞生成细胞中选择性地对缺氧诱导因子(HIFs)的脯氨酰羟化酶(PHD1、PHD2和PHD3)进行基因失活来激活HIFs,可重新激活MF-REPs中的促红细胞生成。REPs中PHD2的缺失恢复了受损肾脏中促红细胞生成素基因的表达,但导致了红细胞增多症。值得注意的是,PHD1和PHD3的联合缺失可防止促红细胞生成素表达的丧失,而不会引发红细胞增多症。具有PHD缺陷的REPs的小鼠在肾脏中也表现出对脂多糖诱导的促红细胞生成素抑制的抗性,这表明增强的HIF信号在促红细胞生成的调节中可抵消炎症刺激。因此,增强HIF信号可能是通过重新激活MF-REPs中的促红细胞生成素来治疗肾性贫血的一种有吸引力的治疗策略。