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Nitrate and nitrite concentrations in rabbit saliva Comparison with rat saliva.兔唾液中的硝酸盐和亚硝酸盐浓度与大鼠唾液的比较。
Environ Toxicol Pharmacol. 2007 Jan;23(1):132-4. doi: 10.1016/j.etap.2006.07.007. Epub 2006 Aug 4.
2
Postnatal expression of sialin in the mouse submandibular gland.鼠下颌下腺中涎苷酶的产后表达。
Arch Oral Biol. 2011 Nov;56(11):1333-8. doi: 10.1016/j.archoralbio.2011.04.019. Epub 2011 May 28.
3
Roles of dietary inorganic nitrate in cardiovascular health and disease.膳食无机硝酸盐在心血管健康和疾病中的作用。
Cardiovasc Res. 2011 Feb 15;89(3):525-32. doi: 10.1093/cvr/cvq325. Epub 2010 Oct 11.
4
Identification of a vesicular aspartate transporter.囊泡天冬氨酸转运体的鉴定。
Proc Natl Acad Sci U S A. 2008 Aug 19;105(33):11720-4. doi: 10.1073/pnas.0804015105. Epub 2008 Aug 11.
5
A single channel for nitrate uptake, nitrite export and nitrite uptake by Escherichia coli NarU and a role for NirC in nitrite export and uptake.大肠杆菌NarU介导的硝酸盐摄取、亚硝酸盐输出和亚硝酸盐摄取的单一通道以及NirC在亚硝酸盐输出和摄取中的作用。
Biochem J. 2009 Jan 1;417(1):297-304. doi: 10.1042/BJ20080746.
6
Functional characterization of the Arabidopsis thaliana nitrate transporter CHL1 in the yeast Hansenula polymorpha.拟南芥硝酸盐转运蛋白CHL1在多形汉逊酵母中的功能表征
Plant Mol Biol. 2008 Oct;68(3):215-24. doi: 10.1007/s11103-008-9363-z. Epub 2008 Jun 19.
7
A mammalian functional nitrate reductase that regulates nitrite and nitric oxide homeostasis.一种调节亚硝酸盐和一氧化氮体内平衡的哺乳动物功能性硝酸还原酶。
Nat Chem Biol. 2008 Jul;4(7):411-7. doi: 10.1038/nchembio.92. Epub 2008 May 30.
8
Tissue-specific mRNA expression profiles of human solute carrier transporter superfamilies.人类溶质载体转运蛋白超家族的组织特异性mRNA表达谱
Drug Metab Pharmacokinet. 2008;23(1):22-44. doi: 10.2133/dmpk.23.22.
9
The nitrate-nitrite-nitric oxide pathway in physiology and therapeutics.生理学与治疗学中的硝酸盐-亚硝酸盐-一氧化氮途径
Nat Rev Drug Discov. 2008 Feb;7(2):156-67. doi: 10.1038/nrd2466.
10
Effects of dietary nitrate on blood pressure.膳食硝酸盐对血压的影响。
N Engl J Med. 2007 Apr 12;356(15):1590; author reply 1590. doi: 10.1056/NEJMc070163.

唾液酸苷酶 (SLC17A5) 在质膜中作为硝酸盐转运体发挥作用。

Sialin (SLC17A5) functions as a nitrate transporter in the plasma membrane.

机构信息

Salivary Gland Disease Center and Beijing Key Laboratory of Tooth Regeneration and Function Reconstruction, Capital Medical University School of Stomatology, Beijing 100050, China.

出版信息

Proc Natl Acad Sci U S A. 2012 Aug 14;109(33):13434-9. doi: 10.1073/pnas.1116633109. Epub 2012 Jul 9.

DOI:10.1073/pnas.1116633109
PMID:22778404
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3421170/
Abstract

In vivo recycling of nitrate (NO(3)(-)) and nitrite (NO(2)(-)) is an important alternative pathway for the generation of nitric oxide (NO) and maintenance of systemic nitrate-nitrite-NO balance. More than 25% of the circulating NO(3)(-) is actively removed and secreted by salivary glands. Oral commensal bacteria convert salivary NO(3)(-) to NO(2)(-), which enters circulation and leads to NO generation. The transporters for NO(3)(-) in salivary glands have not yet been identified. Here we report that sialin (SLC17A5), mutations in which cause Salla disease and infantile sialic acid storage disorder (ISSD), functions as an electrogenic 2NO(3)(-)/H(+) cotransporter in the plasma membrane of salivary gland acinar cells. We have identified an extracellular pH-dependent anion current that is carried by NO(3)(-) or sialic acid (SA), but not by Br(-), and is accompanied by intracellular acidification. Both responses were reduced by knockdown of sialin expression and increased by the plasma membrane-targeted sialin mutant (L22A-L23A). Fibroblasts from patients with ISSD displayed reduced SA- and NO(3)(-)-induced currents compared with healthy controls. Furthermore, expression of disease-associated sialin mutants in fibroblasts and salivary gland cells suppressed the H(+)-dependent NO(3)(-) conductance. Importantly, adenovirus-dependent expression of the sialinH183R mutant in vivo in pig salivary glands decreased NO(3)(-) secretion in saliva after intake of a NO(3)(-)-rich diet. Taken together, these data demonstrate that sialin mediates nitrate influx into salivary gland and other cell types. We suggest that the 2NO(3)(-)/H(+) transport function of sialin in salivary glands can contribute significantly to clearance of serum nitrate, as well as nitrate recycling and physiological nitrite-NO homeostasis.

摘要

硝酸盐(NO3(-))和亚硝酸盐(NO2(-))的体内再循环是生成一氧化氮(NO)和维持全身硝酸盐-亚硝酸盐-NO 平衡的重要替代途径。超过 25%的循环 NO3(-)被唾液腺主动去除和分泌。口腔共生细菌将唾液中的 NO3(-)转化为 NO2(-),后者进入循环并导致 NO 生成。唾液腺中用于 NO3(-)的转运体尚未被鉴定。在这里,我们报告 SLC17A5(编码唾液酸转运蛋白 Sialin),其突变会导致 Salla 病和婴儿唾液酸贮积症(ISSD),作为唾液腺腺泡细胞质膜上的电驱动 2NO3(-)/H(+)共转运体发挥作用。我们已经鉴定出一种细胞外 pH 依赖性阴离子电流,该电流由 NO3(-)或唾液酸(SA)携带,但不能由 Br(-)携带,并且伴随着细胞内酸化。这两种反应均通过敲低 Sialin 表达而减少,并通过质膜靶向的 Sialin 突变体(L22A-L23A)增加。与健康对照组相比,ISSD 患者的成纤维细胞显示出减少的 SA 和 NO3(-)诱导电流。此外,在成纤维细胞和唾液腺细胞中表达与疾病相关的 Sialin 突变体抑制了 H(+)-依赖性 NO3(-)电导。重要的是,腺病毒依赖性表达体内猪唾液腺中的 SialinH183R 突变体,在用富含 NO3(-)的饮食喂养后,降低了唾液中的 NO3(-)分泌。总之,这些数据表明 Sialin 介导硝酸盐进入唾液腺和其他细胞类型。我们认为 Sialin 在唾液腺中的 2NO3(-)/H(+)转运功能可以显著有助于清除血清硝酸盐以及硝酸盐的再循环和生理亚硝酸盐-NO 稳态。