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本文引用的文献

1
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Hypertension. 2014 Oct;64(4):883-90. doi: 10.1161/HYPERTENSIONAHA.114.03550. Epub 2014 Jul 7.
2
Altered reactivity of resistance vasculature contributes to hypertension in elastin insufficiency.弹性蛋白缺陷导致的阻力血管反应性改变与高血压有关。
Am J Physiol Heart Circ Physiol. 2014 Mar 1;306(5):H654-66. doi: 10.1152/ajpheart.00601.2013. Epub 2014 Jan 10.
3
Identifying multiple causative genes at a single GWAS locus.在单个 GWAS 位点识别多个致病基因。
Genome Res. 2013 Dec;23(12):1996-2002. doi: 10.1101/gr.160283.113. Epub 2013 Sep 4.
4
Female-specific hypertension loci on rat chromosome 13.大鼠染色体 13 上的女性特异性高血压基因座。
Hypertension. 2013 Sep;62(3):557-63. doi: 10.1161/HYPERTENSIONAHA.113.01708. Epub 2013 Jul 1.
5
Molecular mechanisms of arterial stiffness: new insights.动脉僵硬度的分子机制:新见解
J Am Soc Hypertens. 2012 Nov-Dec;6(6):436-8. doi: 10.1016/j.jash.2012.10.004.
6
Aortic stiffness, blood pressure progression, and incident hypertension.主动脉僵硬度、血压进展与高血压事件。
JAMA. 2012 Sep 5;308(9):875-81. doi: 10.1001/2012.jama.10503.
7
Identification of hypertension susceptibility loci on rat chromosome 12.鉴定大鼠 12 号染色体上的高血压易感基因座。
Hypertension. 2012 Oct;60(4):942-8. doi: 10.1161/HYPERTENSIONAHA.112.198200. Epub 2012 Aug 6.
8
Vascular remodeling in hypertension: mechanisms and treatment.高血压中的血管重塑:机制与治疗
Hypertension. 2012 Feb;59(2):367-74. doi: 10.1161/HYPERTENSIONAHA.111.187021. Epub 2011 Dec 27.
9
Arterial stiffness identification of the human carotid artery using the stress-strain relationship in vivo.利用人体颈动脉的应力-应变关系进行动脉僵硬度识别。
Ultrasonics. 2012 Mar;52(3):402-11. doi: 10.1016/j.ultras.2011.09.006. Epub 2011 Sep 28.
10
Genetic variants in novel pathways influence blood pressure and cardiovascular disease risk.新途径中的遗传变异会影响血压和心血管疾病风险。
Nature. 2011 Sep 11;478(7367):103-9. doi: 10.1038/nature10405.

血管功能障碍先于与大鼠 12 号染色体上血压位点相关的高血压。

Vascular dysfunction precedes hypertension associated with a blood pressure locus on rat chromosome 12.

机构信息

Human and Molecular Genetics Center, Medical College of Wisconsin, Milwaukee, Wisconsin; Department of Physiology, Medical College of Wisconsin, Milwaukee, Wisconsin;

Department of Physiology, Medical College of Wisconsin, Milwaukee, Wisconsin;

出版信息

Am J Physiol Heart Circ Physiol. 2014 Oct 15;307(8):H1103-10. doi: 10.1152/ajpheart.00464.2014. Epub 2014 Aug 22.

DOI:10.1152/ajpheart.00464.2014
PMID:25320330
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4200336/
Abstract

We previously isolated a 6.1-Mb region of SS/Mcwi (Dahl salt-sensitive) rat chromosome 12 (13.4-19.5 Mb) that significantly elevated blood pressure (BP) (Δ+34 mmHg, P < 0.001) compared with the SS-12(BN) consomic control. In the present study, we examined the role of vascular dysfunction and remodeling in hypertension risk associated with the 6.1-Mb (13.4-19.5 Mb) locus on rat chromosome 12 by reducing dietary salt, which lowered BP levels so that there were no substantial differences in BP between strains. Consequently, any observed differences in the vasculature were considered BP-independent. We also reduced the candidate region from 6.1 Mb with 133 genes to 2 Mb with 23 genes by congenic mapping. Both the 2 Mb and 6.1 Mb congenic intervals were associated with hypercontractility and decreased elasticity of resistance vasculature prior to elevations of BP, suggesting that the vascular remodeling and dysfunction likely contribute to the pathogenesis of hypertension in these congenic models. Of the 23 genes within the narrowed congenic interval, 12 were differentially expressed between the resistance vasculature of the 2 Mb congenic and SS-12(BN) consomic strains. Among these, Grifin was consistently upregulated 2.7 ± 0.6-fold (P < 0.05) and 2.0 ± 0.3-fold (P < 0.01), and Chst12 was consistently downregulated -2.8 ± 0.3-fold (P < 0.01) and -4.4 ± 0.4-fold (P < 0.00001) in the 2 Mb congenic compared with SS-12(BN) consomic under normotensive and hypertensive conditions, respectively. A syntenic region on human chromosome 7 has also been associated with BP regulation, suggesting that identification of the genetic mechanism(s) underlying cardiovascular phenotypes in this congenic strain will likely be translated to a better understanding of human hypertension.

摘要

我们之前分离了 SS/Mcwi(达尔盐敏感)大鼠染色体 12 上的一个 6.1-Mb 区域(13.4-19.5 Mb),与 SS-12(BN)同基因系对照相比,该区域显著升高血压(BP)(Δ+34 mmHg,P < 0.001)。在本研究中,我们通过减少饮食盐来研究与大鼠染色体 12 上的 6.1-Mb(13.4-19.5 Mb)位点相关的高血压风险的血管功能障碍和重塑的作用,这降低了 BP 水平,以至于两种品系之间的 BP 没有实质性差异。因此,任何观察到的血管差异都被认为是与 BP 无关的。我们还通过同源基因映射将候选区域从 6.1 Mb 的 133 个基因缩小到 2 Mb 的 23 个基因。在血压升高之前,2 Mb 和 6.1 Mb 的同基因间隔段均与阻力血管的高收缩性和弹性降低有关,这表明血管重塑和功能障碍可能导致这些同基因模型中的高血压发病机制。在缩小的同基因间隔段内的 23 个基因中,12 个在 2 Mb 同基因和 SS-12(BN)同基因系的阻力血管之间差异表达。在这些基因中,Grifin 一直上调 2.7±0.6 倍(P<0.05)和 2.0±0.3 倍(P<0.01),而 Chst12 一直下调 2.8±0.3 倍(P<0.01)和 4.4±0.4 倍(P<0.00001)在正常血压和高血压条件下,与 SS-12(BN)同基因系相比,2 Mb 同基因中的表达。人类染色体 7 上的一个同源区域也与 BP 调节有关,这表明鉴定这个同基因系中心血管表型的遗传机制将有助于更好地理解人类高血压。