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本文引用的文献

1
Circadian clock-mediated regulation of blood pressure.生物钟调节血压。
Free Radic Biol Med. 2018 May 1;119:108-114. doi: 10.1016/j.freeradbiomed.2017.11.024. Epub 2017 Dec 2.
2
Hypertension in Blacks: Unanswered Questions and Future Directions for the JHS (Jackson Heart Study).黑人高血压:杰克逊心脏研究未解决的问题及未来方向
Hypertension. 2017 May;69(5):761-769. doi: 10.1161/HYPERTENSIONAHA.117.09061. Epub 2017 Mar 20.
3
Renal Collectrin Protects against Salt-Sensitive Hypertension and Is Downregulated by Angiotensin II.肾集合管蛋白可预防盐敏感性高血压,并被血管紧张素II下调。
J Am Soc Nephrol. 2017 Jun;28(6):1826-1837. doi: 10.1681/ASN.2016060675. Epub 2017 Jan 6.
4
Transcriptional architecture of the mammalian circadian clock.哺乳动物昼夜节律钟的转录结构
Nat Rev Genet. 2017 Mar;18(3):164-179. doi: 10.1038/nrg.2016.150. Epub 2016 Dec 19.
5
Circadian rhythm of blood pressure and the renin-angiotensin system in the kidney.血压的昼夜节律与肾脏中的肾素-血管紧张素系统。
Hypertens Res. 2017 May;40(5):413-422. doi: 10.1038/hr.2016.166. Epub 2016 Dec 1.
6
Desoxycorticosterone pivalate-salt treatment leads to non-dipping hypertension in Per1 knockout mice.去氧皮质酮新戊酸酯盐治疗导致Per1基因敲除小鼠出现非勺型高血压。
Acta Physiol (Oxf). 2017 May;220(1):72-82. doi: 10.1111/apha.12804. Epub 2016 Oct 3.
7
Glucocorticoids Induce Nondipping Blood Pressure by Activating the Thiazide-Sensitive Cotransporter.糖皮质激素通过激活噻嗪类敏感共转运体诱导血压非勺型变化。
Hypertension. 2016 May;67(5):1029-37. doi: 10.1161/HYPERTENSIONAHA.115.06977. Epub 2016 Mar 7.
8
The Circadian Clock in the Regulation of Renal Rhythms.昼夜节律钟在肾脏节律调节中的作用
J Biol Rhythms. 2015 Dec;30(6):470-86. doi: 10.1177/0748730415610879. Epub 2015 Nov 2.
9
Transcriptional regulation of NHE3 and SGLT1 by the circadian clock protein Per1 in proximal tubule cells.近端小管细胞中昼夜节律蛋白Per1对NHE3和SGLT1的转录调控。
Am J Physiol Renal Physiol. 2015 Dec 1;309(11):F933-42. doi: 10.1152/ajprenal.00197.2014. Epub 2015 Sep 16.
10
Kelch-like 3/Cullin 3 ubiquitin ligase complex and WNK signaling in salt-sensitive hypertension and electrolyte disorder.Kelch 样 3/Cullin3 泛素连接酶复合物与 WNK 信号通路在盐敏感性高血压及电解质紊乱中的作用
Nephrol Dial Transplant. 2016 Sep;31(9):1417-24. doi: 10.1093/ndt/gfv259. Epub 2015 Jul 6.

男性小鼠中与 PER1 依赖性非杓型高血压相关的肾脏钠处理缺陷。

Renal Na-handling defect associated with PER1-dependent nondipping hypertension in male mice.

机构信息

Department of Medicine, University of Florida , Gainesville, Florida.

Department of Biochemistry and Molecular Biology, University of Florida , Gainesville, Florida.

出版信息

Am J Physiol Renal Physiol. 2018 Jun 1;314(6):F1138-F1144. doi: 10.1152/ajprenal.00546.2017. Epub 2018 Jan 10.

DOI:10.1152/ajprenal.00546.2017
PMID:29357420
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6335000/
Abstract

Many physiological functions have a circadian rhythm, including blood pressure (BP). BP is highest during the active phase, whereas during the rest period, BP dips 10-20%. Patients that do not experience this dip at night are termed "nondippers." Nondipping hypertension is associated with increased risk of cardiovascular disease. The mechanisms underlying nondipping hypertension are not understood. Without the circadian clock gene Per1, C57BL/6J mice develop nondipping hypertension on a high-salt diet plus mineralocorticoid treatment (HS/DOCP). Our laboratory has shown that PER1 regulates expression of several genes related to sodium (Na) transport in the kidney, including epithelial Na channel (ENaC) and Na chloride cotransporter (NCC). Urinary Na excretion also demonstrates a circadian pattern with a peak during active periods. We hypothesized that PER1 contributes to circadian regulation of BP via a renal Na-handling-dependent mechanism. Na-handling genes from the distal nephron were inappropriately regulated in KO mice on HS/DOCP. Additionally, the night/day ratio of Na urinary excretion by Per1 KO mice is decreased compared with WT (4 × vs. 7×, P < 0.001, n = 6 per group). Distal nephron-specific Per1 KO mice also show an inappropriate increase in expression of Na transporter genes αENaC and NCC. These results support the hypothesis that PER1 mediates control of circadian BP rhythms via the regulation of distal nephron Na transport genes. These findings have implications for the understanding of the etiology of nondipping hypertension and the subsequent development of novel therapies for this dangerous pathophysiological condition.

摘要

许多生理功能都具有昼夜节律,包括血压(BP)。BP 在活动期最高,而在休息期则下降 10-20%。夜间没有这种下降的患者被称为“非杓型”。非杓型高血压与心血管疾病风险增加有关。非杓型高血压的机制尚不清楚。没有昼夜节律基因 Per1,C57BL/6J 小鼠在高盐饮食加盐皮质激素治疗(HS/DOCP)下会发展为非杓型高血压。我们的实验室已经表明,PER1 调节肾脏中与钠(Na)转运相关的几种基因的表达,包括上皮钠通道(ENaC)和 Na 氯共转运体(NCC)。尿 Na 排泄也表现出昼夜节律模式,在活动期达到峰值。我们假设 PER1 通过肾脏 Na 处理依赖机制对 BP 的昼夜节律调节做出贡献。在 HS/DOCP 上,KO 小鼠的远曲小管 Na 处理基因的表达被不适当调节。此外,与 WT 相比,Per1 KO 小鼠的昼夜尿 Na 排泄比值降低(4×对 7×,P < 0.001,每组 n = 6)。远曲小管特异性 Per1 KO 小鼠的 Na 转运体基因αENaC 和 NCC 的表达也不适当增加。这些结果支持 PER1 通过调节远曲小管 Na 转运基因来介导昼夜 BP 节律控制的假设。这些发现对于理解非杓型高血压的病因以及随后为这种危险的病理生理状况开发新的治疗方法具有重要意义。