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Parallel beta-helix proteins required for accurate capsule polysaccharide synthesis and virulence in the yeast Cryptococcus neoformans.新型隐球菌中精确合成荚膜多糖和致病力所需的平行β-螺旋蛋白。
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2
Pbx proteins in Cryptococcus neoformans cell wall remodeling and capsule assembly.新型隐球菌细胞壁重塑和荚膜组装中的 PBX 蛋白
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3
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The capsule of the fungal pathogen Cryptococcus neoformans.新型隐球菌这种真菌病原体的荚膜。
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A Glucuronoxylomannan Epitope Exhibits Serotype-Specific Accessibility and Redistributes towards the Capsule Surface during Titanization of the Fungal Pathogen Cryptococcus neoformans.一种葡聚糖醛酸甘露聚糖表位在真菌病原体新型隐球菌的泰坦化过程中表现出血清型特异性可及性,并重新分布到荚膜表面。
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UDP-Glucuronic Acid Transport Is Required for Virulence of .UDP-葡萄糖醛酸转运对于 的毒力是必需的。
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Role for Golgi reassembly and stacking protein (GRASP) in polysaccharide secretion and fungal virulence.高尔基重组和堆积蛋白(GRASP)在多糖分泌和真菌毒力中的作用。
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Identification of QTLs Associated with Virulence Related Traits and Drug Resistance in Cryptococcus neoformans.新型隐球菌中与毒力相关性状及耐药性相关的数量性状基因座的鉴定
G3 (Bethesda). 2016 Sep 8;6(9):2745-59. doi: 10.1534/g3.116.029595.

本文引用的文献

1
Direct inhibition of T-cell responses by the Cryptococcus capsular polysaccharide glucuronoxylomannan.新型隐球菌荚膜多糖葡糖醛酸木聚糖对T细胞反应的直接抑制作用。
PLoS Pathog. 2006 Nov;2(11):e120. doi: 10.1371/journal.ppat.0020120.
2
A eukaryotic capsular polysaccharide is synthesized intracellularly and secreted via exocytosis.真核生物的荚膜多糖在细胞内合成并通过胞吐作用分泌。
Mol Biol Cell. 2006 Dec;17(12):5131-40. doi: 10.1091/mbc.e06-08-0701. Epub 2006 Oct 4.
3
Do major species concepts support one, two or more species within Cryptococcus neoformans?主要的物种概念是否支持新型隐球菌内存在一个、两个或更多物种?
FEMS Yeast Res. 2006 Jun;6(4):574-87. doi: 10.1111/j.1567-1364.2006.00088.x.
4
The physical properties of the capsular polysaccharides from Cryptococcus neoformans suggest features for capsule construction.新型隐球菌荚膜多糖的物理特性提示了荚膜构建的特征。
J Biol Chem. 2006 Jan 27;281(4):1868-75. doi: 10.1074/jbc.M509465200. Epub 2005 Nov 8.
5
Prevalence of clinical isolates of Cryptococcus gattii serotype C among patients with AIDS in Sub-Saharan Africa.撒哈拉以南非洲地区艾滋病患者中加氏隐球菌血清型C临床分离株的流行情况。
J Infect Dis. 2005 Sep 1;192(5):888-92. doi: 10.1086/432486. Epub 2005 Jul 26.
6
UGD1, encoding the Cryptococcus neoformans UDP-glucose dehydrogenase, is essential for growth at 37 degrees C and for capsule biosynthesis.UGD1编码新型隐球菌UDP-葡萄糖脱氢酶,对37摄氏度下的生长及荚膜生物合成至关重要。
Eukaryot Cell. 2004 Dec;3(6):1601-8. doi: 10.1128/EC.3.6.1601-1608.2004.
7
Cas3p belongs to a seven-member family of capsule structure designer proteins.Cas3p属于一个由七种蛋白质组成的荚膜结构设计蛋白家族。
Eukaryot Cell. 2004 Dec;3(6):1513-24. doi: 10.1128/EC.3.6.1513-1524.2004.
8
Suppressors of alpha(1,3)fucosylation identified by expression cloning in the LEC11B gain-of-function CHO mutant.通过在LEC11B功能获得性CHO突变体中进行表达克隆鉴定出的α(1,3)岩藻糖基化抑制剂。
Glycobiology. 2005 Mar;15(3):259-69. doi: 10.1093/glycob/cwi011. Epub 2004 Nov 3.
9
UDP-glucose dehydrogenase plays multiple roles in the biology of the pathogenic fungus Cryptococcus neoformans.尿苷二磷酸葡萄糖脱氢酶在致病性真菌新生隐球菌的生物学过程中发挥多种作用。
J Biol Chem. 2004 Dec 3;279(49):51669-76. doi: 10.1074/jbc.M408889200. Epub 2004 Sep 21.
10
Serotype distribution of Cryptococcus neoformans in patients in a tertiary care center in India.印度一家三级医疗中心患者中新型隐球菌的血清型分布。
Med Mycol. 2004 Apr;42(2):181-6. doi: 10.1080/13693780310001615376.

新型隐球菌中精确合成荚膜多糖和致病力所需的平行β-螺旋蛋白。

Parallel beta-helix proteins required for accurate capsule polysaccharide synthesis and virulence in the yeast Cryptococcus neoformans.

作者信息

Liu Oliver W, Kelly Mark J S, Chow Eric D, Madhani Hiten D

机构信息

Department of Biochemistry and Biophysics, University of California, San Francisco, CA 94158-2200, USA.

出版信息

Eukaryot Cell. 2007 Apr;6(4):630-40. doi: 10.1128/EC.00398-06. Epub 2007 Mar 2.

DOI:10.1128/EC.00398-06
PMID:17337638
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1865648/
Abstract

The principal capsular polysaccharide of the opportunistic fungal pathogen Cryptococcus neoformans consists of an alpha-1,3-linked mannose backbone decorated with a repeating pattern of glucuronyl and xylosyl side groups. This structure is critical for virulence, yet little is known about how the polymer, called glucuronoxylomannan (GXM), is faithfully synthesized and assembled. We have generated deletions in two genes encoding predicted parallel beta-helix repeat proteins, which we have designated PBX1 and PBX2. Deletion of either gene results in a dry-colony morphology, clumpy cells, and decreased capsule integrity. Two-dimensional nuclear magnetic resonance spectroscopy of purified GXM from the mutants indicated that both the wild-type GXM structure and novel, aberrant linkages were present. Carbohydrate composition and linkage analysis determined that these aberrant structures are correlated with the incorporation of terminal glucose residues that are not found in wild-type capsule polysaccharide. We conclude that Pbx1 and Pbx2 are required for the fidelity of GXM synthesis and may be involved in editing incorrectly added glucose residues. PBX1 and PBX2 knockout mutants showed severely attenuated virulence in a murine inhalation model of cryptococcosis. Unlike acapsular strains, these mutant strains induced delayed symptoms of cryptococcosis, though the infected animals eventually contained the infection and recovered.

摘要

机会性真菌病原体新生隐球菌的主要荚膜多糖由α-1,3-连接的甘露糖主链组成,其带有葡糖醛酸基和木糖基侧链的重复模式。这种结构对毒力至关重要,但对于这种称为葡糖醛酸木糖甘露聚糖(GXM)的聚合物如何被准确合成和组装却知之甚少。我们在两个编码预测的平行β-螺旋重复蛋白的基因中产生了缺失,我们将其命名为PBX1和PBX2。任一基因的缺失都会导致菌落干燥、细胞结块以及荚膜完整性降低。对来自突变体的纯化GXM进行二维核磁共振光谱分析表明,野生型GXM结构和新的异常连接都存在。碳水化合物组成和连接分析确定,这些异常结构与野生型荚膜多糖中未发现的末端葡萄糖残基的掺入有关。我们得出结论,Pbx1和Pbx2是GXM合成保真度所必需的,可能参与编辑错误添加的葡萄糖残基。PBX1和PBX2基因敲除突变体在隐球菌病的小鼠吸入模型中显示出严重减弱的毒力。与无荚膜菌株不同,这些突变菌株诱发隐球菌病的症状出现延迟,尽管受感染动物最终控制了感染并康复。