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本文引用的文献

1
Metabolic Interactions between Bacteria and Fungi in Commensal Oral Biofilms.共生口腔生物膜中细菌与真菌之间的代谢相互作用
J Fungi (Basel). 2017 Jul 14;3(3):40. doi: 10.3390/jof3030040.
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Diagnosis and management of oral candidosis.口腔念珠菌病的诊断与管理
Br Dent J. 2017 Nov 10;223(9):675-681. doi: 10.1038/sj.bdj.2017.886.
3
Fungal mitochondrial oxygen consumption induces the growth of strict anaerobic bacteria.真菌线粒体耗氧会诱导严格厌氧菌的生长。
Fungal Genet Biol. 2017 Dec;109:1-6. doi: 10.1016/j.fgb.2017.10.001. Epub 2017 Oct 5.
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and : the effect on wound closure .以及:对伤口愈合的影响。
J Oral Microbiol. 2017 Jun 14;9(1):1328266. doi: 10.1080/20002297.2017.1328266. eCollection 2017.
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The oral fungal mycobiome: characteristics and relation to periodontitis in a pilot study.口腔真菌微生物群:一项初步研究中的特征及其与牙周炎的关系
BMC Microbiol. 2017 Jul 12;17(1):157. doi: 10.1186/s12866-017-1064-9.
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Investigations of the prevalence and virulence of Candida albicans in periodontal and endodontic lesions in diabetic and normoglycemic patients.糖尿病患者和血糖正常患者牙周及牙髓病变中白色念珠菌的患病率和毒力研究。
J Appl Oral Sci. 2017 May-Jun;25(3):274-281. doi: 10.1590/1678-7757-2016-0432.
7
Theoretical insights into the protonation states of active site cysteine and citrullination mechanism of Porphyromonas gingivalis peptidylarginine deiminase.牙龈卟啉单胞菌肽基精氨酸脱亚氨酶活性位点半胱氨酸的质子化状态及瓜氨酸化机制的理论见解。
Proteins. 2017 Aug;85(8):1518-1528. doi: 10.1002/prot.25313. Epub 2017 May 25.
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Identification of proteins involved in the adhesionof Candida species to different medical devices.鉴定参与念珠菌属与不同医疗器械黏附的蛋白质。
Microb Pathog. 2017 Jun;107:293-303. doi: 10.1016/j.micpath.2017.04.009. Epub 2017 Apr 7.
9
alters the bacterial microbiome of early oral biofilms.改变早期口腔生物膜的细菌微生物群。
J Oral Microbiol. 2017 Jan 23;9(1):1270613. doi: 10.1080/20002297.2016.1270613. eCollection 2017.
10
Normal Oral Flora and the Oral Ecosystem.正常口腔菌群与口腔生态系统
Dent Clin North Am. 2017 Apr;61(2):199-215. doi: 10.1016/j.cden.2016.11.002.

牙周致病菌牙龈卟啉单胞菌和条件致病真菌白念珠菌形成双菌生物膜的过程中,细菌肽基精氨酸脱亚氨酶的活性非常重要。

The activity of bacterial peptidylarginine deiminase is important during formation of dual-species biofilm by periodontal pathogen Porphyromonas gingivalis and opportunistic fungus Candida albicans.

机构信息

Department of Comparative Biochemistry and Bioanalytics, Faculty of Biochemistry, Biophysics and Biotechnology, Jagiellonian University in Krakow, 30-387 Krakow, Poland.

Department of Analytical Biochemistry, Faculty of Biochemistry, Biophysics and Biotechnology, Jagiellonian University in Krakow, 30-387 Krakow, Poland.

出版信息

Pathog Dis. 2018 Jun 1;76(4). doi: 10.1093/femspd/fty033.

DOI:10.1093/femspd/fty033
PMID:29668945
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6251568/
Abstract

Porphyromonas gingivalis, an anaerobic Gram-negative bacterium critically involved in the development of human periodontitis, belongs to the late colonizers of the oral cavity. The success of this pathogen in the host colonization and infection results from the presence of several virulence factors, including extracellular peptidylarginine deiminase (PPAD), an enzyme that converts protein arginine residues to citrullines. A common opportunistic fungal pathogen of humans, Candida albicans, is also frequently identified among microorganisms that reside at subgingival sites. The aim of the current work was to verify if protein citrullination can influence the formation of mixed biofilms by both microorganisms under hypoxic and normoxic conditions. Quantitative estimations of the bacterial adhesion to fungal cells demonstrated the importance of PPAD activity in this process, since the level of binding of P. gingivalis mutant strain deprived of PPAD was significantly lower than that observed for the wild-type strain. These results were consistent with mass spectrometric detection of the citrullination of selected surface-exposed C. albicans proteins. Furthermore, a viability of P. gingivalis cells under normoxia increased in the presence of fungal biofilm compared with the bacteria that formed single-species biofilm. These findings suggest a possible protection of these strict anaerobes under unfavorable aerobic conditions by C. albicans during mixed biofilm formation.

摘要

牙龈卟啉单胞菌是一种与人类牙周炎发展密切相关的厌氧革兰氏阴性菌,属于口腔晚期定植菌。这种病原体在宿主定植和感染中的成功归因于其存在多种毒力因子,包括细胞外肽基精氨酸脱亚氨酶(PPAD),这是一种将蛋白质精氨酸残基转化为瓜氨酸的酶。白色念珠菌是一种常见的人类机会性真菌病原体,也经常在龈下部位存在的微生物中被发现。本研究旨在验证在缺氧和常氧条件下,蛋白质瓜氨酸化是否会影响这两种微生物形成混合生物膜。定量估计细菌对真菌细胞的粘附表明 PPAD 活性在这个过程中的重要性,因为缺乏 PPAD 的牙龈卟啉单胞菌突变株的结合水平明显低于野生型菌株。这些结果与对选定的表面暴露的白色念珠菌蛋白的瓜氨酸化的质谱检测结果一致。此外,与形成单一物种生物膜的细菌相比,在真菌生物膜存在下,常氧条件下牙龈卟啉单胞菌细胞的活力增加。这些发现表明,在混合生物膜形成过程中,白色念珠菌可能会在不利的需氧条件下为这些严格厌氧菌提供保护。