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本文引用的文献

1
Virulence of Candida parapsilosis, Candida orthopsilosis, and Candida metapsilosis in reconstituted human tissue models.近平滑念珠菌、正平滑念珠菌和间平滑念珠菌在重组人体组织模型中的毒力。
Fungal Genet Biol. 2007 Dec;44(12):1336-41. doi: 10.1016/j.fgb.2007.02.002. Epub 2007 Feb 21.
2
Candida parapsilosis infection in very low birthweight infants.极低出生体重儿的近平滑念珠菌感染
Arch Dis Child Fetal Neonatal Ed. 2007 Mar;92(2):F127-9. doi: 10.1136/fnn.2006.097758.
3
Clinical and microbiological aspects of candidemia due to Candida parapsilosis in Brazilian tertiary care hospitals.巴西三级护理医院中近平滑念珠菌所致念珠菌血症的临床和微生物学特征
Med Mycol. 2006 May;44(3):261-6. doi: 10.1080/13693780500421476.
4
Changing incidence of Candida bloodstream infections among NICU patients in the United States: 1995-2004.1995 - 2004年美国新生儿重症监护病房(NICU)患者念珠菌血流感染发病率的变化情况
Pediatrics. 2006 May;117(5):1680-7. doi: 10.1542/peds.2005-1996.
5
Comparison of proteinase, lipase and alpha-glucosidase activities from the clinical isolates of Candida species.念珠菌临床分离株中蛋白酶、脂肪酶和α-葡萄糖苷酶活性的比较。
Jpn J Infect Dis. 2006 Apr;59(2):73-6.
6
[Multicenter study of fungemia due to yeasts in Argentina].[阿根廷酵母菌所致真菌血症的多中心研究]
Rev Argent Microbiol. 2005 Oct-Dec;37(4):189-95.
7
Susceptibility of Cryptococcus neoformans biofilms to antifungal agents in vitro.新型隐球菌生物膜在体外对抗真菌药物的敏感性
Antimicrob Agents Chemother. 2006 Mar;50(3):1021-33. doi: 10.1128/AAC.50.3.1021-1033.2006.
8
Differences in biofilm production by three genotypes of Candida parapsilosis from clinical sources.来自临床样本的三种副念珠菌基因型在生物膜形成方面的差异。
Med Mycol. 2005 Nov;43(7):657-61. doi: 10.1080/13693780500294915.
9
Hydrolytic enzymes as virulence factors of Candida albicans.水解酶作为白色念珠菌的毒力因子
Mycoses. 2005 Nov;48(6):365-77. doi: 10.1111/j.1439-0507.2005.01165.x.
10
A secreted lipase of Fusarium graminearum is a virulence factor required for infection of cereals.禾谷镰刀菌的一种分泌型脂肪酶是侵染谷物所需的一种致病因子。
Plant J. 2005 May;42(3):364-75. doi: 10.1111/j.1365-313X.2005.02377.x.

近平滑念珠菌的靶向基因缺失证明了分泌型脂肪酶在毒力中的作用。

Targeted gene deletion in Candida parapsilosis demonstrates the role of secreted lipase in virulence.

作者信息

Gácser Attila, Trofa David, Schäfer Wilhelm, Nosanchuk Joshua D

机构信息

Department of Medicine, Division of Infectious Diseases, Albert Einstein College of Medicine, Yeshiva University, New York, New York, USA.

出版信息

J Clin Invest. 2007 Oct;117(10):3049-58. doi: 10.1172/JCI32294.

DOI:10.1172/JCI32294
PMID:17853941
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1974868/
Abstract

Candida parapsilosis is a major cause of human disease, yet little is known about the pathogen's virulence. We have developed an efficient gene deletion system for C. parapsilosis based on the repeated use of the dominant nourseothricin resistance marker (caSAT1) and its subsequent deletion by FLP-mediated, site-specific recombination. Using this technique, we deleted the lipase locus in the C. parapsilosis genome consisting of adjacent genes CpLIP1 and CpLIP2. Additionally we reconstructed the CpLIP2 gene, which restored lipase activity. Lipolytic activity was absent in the null mutants, whereas the WT, heterozygous, and reconstructed mutants showed similar lipase production. Biofilm formation was inhibited with lipase-negative mutants and their growth was significantly reduced in lipid-rich media. The knockout mutants were more efficiently ingested and killed by J774.16 and RAW 264.7 macrophage-like cells. Additionally, the lipase-negative mutants were significantly less virulent in infection models that involve inoculation of reconstituted human oral epithelium or murine intraperitoneal challenge. These studies represent what we believe to be the first targeted disruption of a gene in C. parapsilosis and show that C. parapsilosis-secreted lipase is involved in disease pathogenesis. This efficient system for targeted gene deletion holds great promise for rapidly enhancing our knowledge of the biology and virulence of this increasingly common invasive fungal pathogen.

摘要

近平滑念珠菌是人类疾病的主要病因,但对该病原体的毒力了解甚少。我们基于显性制霉菌素抗性标记(caSAT1)的重复使用及其随后通过FLP介导的位点特异性重组进行删除,开发了一种针对近平滑念珠菌的高效基因删除系统。利用该技术,我们删除了近平滑念珠菌基因组中由相邻基因CpLIP1和CpLIP2组成的脂肪酶基因座。此外,我们重建了CpLIP2基因,该基因恢复了脂肪酶活性。在缺失突变体中不存在脂解活性,而野生型、杂合型和重建突变体显示出相似的脂肪酶产生。脂肪酶阴性突变体抑制了生物膜形成,并且它们在富含脂质的培养基中的生长显著降低。敲除突变体被J774.16和RAW 264.7巨噬细胞样细胞更有效地摄取和杀死。此外,在涉及接种重组人口腔上皮或小鼠腹腔攻击的感染模型中,脂肪酶阴性突变体的毒力显著降低。这些研究代表了我们认为首次对近平滑念珠菌基因进行的靶向破坏,并表明近平滑念珠菌分泌的脂肪酶参与疾病发病机制。这种高效的靶向基因删除系统对于迅速增强我们对这种日益常见的侵袭性真菌病原体的生物学和毒力的了解具有巨大潜力。