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1
Hydrogen peroxide excretion by oral streptococci and effect of lactoperoxidase-thiocyanate-hydrogen peroxide.口腔链球菌的过氧化氢排泄及乳过氧化物酶-硫氰酸盐-过氧化氢的作用
Infect Immun. 1983 Apr;40(1):70-80. doi: 10.1128/iai.40.1.70-80.1983.
2
Mixed continuous cultures of Streptococcus mutans with Streptococcus sanguis or with Streptococcus oralis as a model to study the ecological effects of the lactoperoxidase system.以变形链球菌与血链球菌或口腔链球菌的混合连续培养物作为模型,来研究乳过氧化物酶系统的生态效应。
Caries Res. 1993;27(1):26-30. doi: 10.1159/000261511.
3
Antibacterial activity of hydrogen peroxide and the lactoperoxidase-hydrogen peroxide-thiocyanate system against oral streptococci.过氧化氢及乳过氧化物酶-过氧化氢-硫氰酸盐体系对口腔链球菌的抗菌活性
Infect Immun. 1994 Feb;62(2):529-35. doi: 10.1128/iai.62.2.529-535.1994.
4
Lactoperoxidase binding to streptococci.乳过氧化物酶与链球菌的结合。
Infect Immun. 1979 Jul;25(1):304-9. doi: 10.1128/iai.25.1.304-309.1979.
5
The inhibition of streptococci by lactoperoxidase, thiocyanate and hydrogen peroxide. The effect of the inhibitory system on susceptible and resistant strains of group N streptococci.乳过氧化物酶、硫氰酸盐和过氧化氢对链球菌的抑制作用。抑制系统对N群链球菌敏感菌株和耐药菌株的影响。
Biochem J. 1966 Aug;100(2):373-81. doi: 10.1042/bj1000373.
6
Lactoperoxidase and thiocyanate protect bacteria from hydrogen peroxide.乳过氧化物酶和硫氰酸盐可保护细菌免受过氧化氢的侵害。
Infect Immun. 1982 Jan;35(1):20-4. doi: 10.1128/iai.35.1.20-24.1982.
7
Lactoperoxidase, peroxide, thiocyanate antimicrobial system: correlation of sulfhydryl oxidation with antimicrobial action.乳过氧化物酶、过氧化物、硫氰酸盐抗菌系统:巯基氧化与抗菌作用的相关性
Infect Immun. 1978 May;20(2):456-63. doi: 10.1128/iai.20.2.456-463.1978.
8
The inhibition of streptococci by lactoperoxidase, thiocyanate and hydrogen peroxide. The oxidation of thiocyanate and the nature of the inhibitory compound.乳过氧化物酶、硫氰酸盐和过氧化氢对链球菌的抑制作用。硫氰酸盐的氧化及抑制性化合物的性质。
Biochem J. 1966 Aug;100(2):382-8. doi: 10.1042/bj1000382.
9
Bactericidal effect of hydrogen peroxide is prevented by the lactoperoxidase-thiocyanate system under anaerobic conditions.在厌氧条件下,乳过氧化物酶-硫氰酸盐系统会抑制过氧化氢的杀菌作用。
Infect Immun. 1980 Sep;29(3):1190-2. doi: 10.1128/iai.29.3.1190-1192.1980.
10
Inhibition of Streptococcus mutans by the lactoperoxidase antimicrobial system.乳过氧化物酶抗菌系统对变形链球菌的抑制作用。
Infect Immun. 1983 Feb;39(2):767-78. doi: 10.1128/iai.39.2.767-778.1983.

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The therapeutic potential of thiocyanate and hypothiocyanous acid against pulmonary infections.硫氰酸盐和次硫氰酸对肺部感染的治疗潜力。
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The role of metals in hypothiocyanite resistance in .金属在……中对次硫氰酸盐抗性的作用。 (原文句子不完整,翻译可能不太准确,你可补充完整原文以便更精准翻译)
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Modified Lactoperoxidase System as a Promising Anticaries Agent: In Vitro Studies on Biofilms.改良乳过氧化物酶系统作为一种有前途的抗龋剂:生物膜的体外研究。
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Safety Assessment of the Modified Lactoperoxidase System-In Vitro Studies on Human Gingival Fibroblasts.改良乳过氧化物酶系统的安全性评估——体外人牙龈成纤维细胞研究。
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Hypothiocyanite and host-microbe interactions.次氮基三乙酸盐与宿主-微生物相互作用。
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A newly identified flavoprotein disulfide reductase Har protects Streptococcus pneumoniae against hypothiocyanous acid.一种新鉴定的黄素蛋白二硫键还原酶 Har 可保护肺炎链球菌免受硫氰酸。
J Biol Chem. 2022 Sep;298(9):102359. doi: 10.1016/j.jbc.2022.102359. Epub 2022 Aug 9.
8
RclA is a highly active hypothiocyanite reductase.RclA 是一种高活性的次碘酸盐还原酶。
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Silver Nanoparticles as an Effective Antimicrobial against Otitis Media Pathogens.银纳米颗粒作为一种对抗中耳炎病原体的有效抗菌剂。
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Oxidative Stress in the Protection and Injury of the Lacrimal Gland and the Ocular Surface: are There Perspectives for Therapeutics?氧化应激在泪腺和眼表的保护与损伤中的作用:是否存在治疗前景?
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本文引用的文献

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Protein measurement with the Folin phenol reagent.使用福林酚试剂进行蛋白质测定。
J Biol Chem. 1951 Nov;193(1):265-75.
2
The inhibitory action of saliva on the diphtheria bacillus: hydrogen peroxide, the inhibitory agent produced by salivary streptococci.唾液对白喉杆菌的抑制作用:过氧化氢,唾液链球菌产生的抑制因子。
J Infect Dis. 1951 Jan-Feb;88(1):81-5. doi: 10.1093/infdis/88.1.81.
3
Purification and properties of muscle phosphoglycerate kinase.肌肉磷酸甘油酸激酶的纯化及性质
Biochem J. 1961 Nov;81(2):405-11. doi: 10.1042/bj0810405.
4
The reduced diphosphopyridine nucleotide oxidase of Streptococcus faecalis: purification and properties.粪链球菌的还原二磷酸吡啶核苷酸氧化酶:纯化及性质
J Biol Chem. 1962 Aug;237:2647-51.
5
Peroxide and peroxidogenic bacteria in human saliva.人类唾液中的过氧化物及产过氧化物细菌。
J Bacteriol. 1957 Jun;73(6):727-35. doi: 10.1128/jb.73.6.727-735.1957.
6
Bactericidal effect of hydrogen peroxide is prevented by the lactoperoxidase-thiocyanate system under anaerobic conditions.在厌氧条件下,乳过氧化物酶-硫氰酸盐系统会抑制过氧化氢的杀菌作用。
Infect Immun. 1980 Sep;29(3):1190-2. doi: 10.1128/iai.29.3.1190-1192.1980.
7
Comparison of the effects of hydrogen peroxide and x-ray irradiation on toxicity, mutation, and DNA damage/repair in mammalian cells (V-79).过氧化氢与X射线辐射对哺乳动物细胞(V-79)毒性、突变及DNA损伤/修复影响的比较
Biochim Biophys Acta. 1981 Jun 26;654(1):135-41. doi: 10.1016/0005-2787(81)90146-5.
8
Lactoperoxidase-catalyzed inactivation of hexokinase.
Biochim Biophys Acta. 1981 Apr 14;658(2):238-47. doi: 10.1016/0005-2744(81)90294-1.
9
Kinetics of hypothiocyanite production during peroxidase-catalyzed oxidation of thiocyanate.过氧化物酶催化硫氰酸盐氧化过程中次硫氰酸盐生成的动力学
Biochim Biophys Acta. 1982 Jun 4;704(2):204-14. doi: 10.1016/0167-4838(82)90147-9.
10
Lactoperoxidase and thiocyanate protect bacteria from hydrogen peroxide.乳过氧化物酶和硫氰酸盐可保护细菌免受过氧化氢的侵害。
Infect Immun. 1982 Jan;35(1):20-4. doi: 10.1128/iai.35.1.20-24.1982.

口腔链球菌的过氧化氢排泄及乳过氧化物酶-硫氰酸盐-过氧化氢的作用

Hydrogen peroxide excretion by oral streptococci and effect of lactoperoxidase-thiocyanate-hydrogen peroxide.

作者信息

Carlsson J, Iwami Y, Yamada T

出版信息

Infect Immun. 1983 Apr;40(1):70-80. doi: 10.1128/iai.40.1.70-80.1983.

DOI:10.1128/iai.40.1.70-80.1983
PMID:6832837
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC264819/
Abstract

Approved type strains of Streptococcus sanguis, S. mitis, S. mutans, and S. salivarius were grown under aerobic and anaerobic conditions. The rate of hydrogen peroxide excretion, oxygen uptake, and acid production from glucose by washed-cell suspensions of these strains were studied, and the levels of enzymes in cell-free extracts which reduced oxygen, hydrogen peroxide, or hypothiocyanite (OSCN-) in the presence of NADH or NADPH were assayed. The effects of lactoperoxidase-thiocyanate-hydrogen peroxide on the rate of acid production and oxygen uptake by intact cells, the activity of glycolytic enzymes in cell-free extracts, and the levels of intracellular glycolytic intermediates were also studied. All strains consumed oxygen in the presence of glucose. S. sanguis, S. mitis, and anaerobically grown S. mutans excreted hydrogen peroxide. There was higher NADH oxidase and NADH peroxidase activity in aerobically grown cells than in anaerobically grown cells. NADPH oxidase activity was low in all species. Acid production, oxygen uptake, and, consequently, hydrogen peroxide excretion were inhibited in all the strains by lactoperoxidase-thiocyanate-hydrogen peroxide. S. sanguis and S. mitis had a higher capacity than S. mutans and S. salivarius to recover from this inhibition. Higher activity in the former strains of an NADH-OSCN oxidoreductase, which converted OSCN- into thiocyanate, explained this difference. The change in levels of intracellular glycolytic intermediates after inhibition of glycolysis by OSCN- and the actual activity of glycolytic enzymes in cell-free extracts in the presence of OSCN- indicated that the primary target of OSCN- in the glycolytic pathway was glyceraldehyde 3-phosphate dehydrogenase.

摘要

血链球菌、缓症链球菌、变形链球菌和唾液链球菌的标准菌株在需氧和厌氧条件下培养。研究了这些菌株的洗涤细胞悬液中过氧化氢排泄率、氧摄取率和葡萄糖产酸率,并测定了在NADH或NADPH存在下能还原氧、过氧化氢或次硫氰酸盐(OSCN-)的无细胞提取物中的酶水平。还研究了乳过氧化物酶-硫氰酸盐-过氧化氢对完整细胞产酸率和氧摄取率、无细胞提取物中糖酵解酶活性以及细胞内糖酵解中间产物水平的影响。所有菌株在葡萄糖存在下都消耗氧气。血链球菌、缓症链球菌和厌氧培养的变形链球菌分泌过氧化氢。需氧培养的细胞中NADH氧化酶和NADH过氧化物酶活性高于厌氧培养的细胞。所有菌种中NADPH氧化酶活性都很低。乳过氧化物酶-硫氰酸盐-过氧化氢抑制了所有菌株的产酸、氧摄取,因此也抑制了过氧化氢排泄。血链球菌和缓症链球菌比变形链球菌和唾液链球菌从这种抑制中恢复的能力更强。前一种菌株中NADH-OSCN氧化还原酶活性较高,该酶将OSCN-转化为硫氰酸盐,解释了这种差异。OSCN-抑制糖酵解后细胞内糖酵解中间产物水平的变化以及在OSCN-存在下无细胞提取物中糖酵解酶的实际活性表明,糖酵解途径中OSCN-的主要靶点是甘油醛-3-磷酸脱氢酶。