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本文引用的文献

1
Production of extracellular matrices during development of infection structures by the downy mildew Peronospora parasitica.寄生霜霉在侵染结构发育过程中细胞外基质的产生。
New Phytol. 2001 Jan;149(1):83-93. doi: 10.1046/j.1469-8137.2001.00002.x.
2
Dynamics of fungal colonization in a new medical mycology laboratory.真菌定殖的动力学在一个新的医学真菌学实验室。
J Mycol Med. 2012 Mar;22(1):14-20. doi: 10.1016/j.mycmed.2011.11.001. Epub 2011 Dec 28.
3
Fleming's penicillin producing strain is not Penicillium chrysogenum but P. rubens.弗莱明的青霉素产生菌株不是产黄青霉,而是红青霉。
IMA Fungus. 2011 Jun;2(1):87-95. doi: 10.5598/imafungus.2011.02.01.12. Epub 2011 Jun 7.
4
[Effect Of Water Substrate Activity And Relative Air Humidity On Penicillium Chrysogenum Thom, Aspergillus Repens (Corda) Sacc., Trichoderma Viride Pers., Isolated From Dwelling Premises].[水基质活性和相对空气湿度对从住宅中分离出的产黄青霉、绳状曲霉、绿色木霉的影响]
Mikrobiologiia. 2011 May-Jun;80(3):372-9.
5
Associations between fungal species and water-damaged building materials.真菌物种与水损坏建筑材料之间的关联。
Appl Environ Microbiol. 2011 Jun;77(12):4180-8. doi: 10.1128/AEM.02513-10. Epub 2011 Apr 29.
6
Imaging hydrated microbial extracellular polymers: comparative analysis by electron microscopy.成像水合微生物细胞外聚合物:电子显微镜比较分析。
Appl Environ Microbiol. 2011 Feb;77(4):1254-62. doi: 10.1128/AEM.02001-10. Epub 2010 Dec 17.
7
Impact of water activity of diverse media on spore germination of Aspergillus and Penicillium species.不同介质水活度对曲霉属和青霉属孢子萌发的影响。
Int J Food Microbiol. 2010 Aug 15;142(1-2):273-6. doi: 10.1016/j.ijfoodmicro.2010.06.031. Epub 2010 Jul 29.
8
Can we use indoor fungi as bioindicators of indoor air quality? Historical perspectives and open questions.我们能否将室内真菌用作室内空气质量的生物指示剂?历史视角与未决问题。
Sci Total Environ. 2010 Sep 15;408(20):4285-95. doi: 10.1016/j.scitotenv.2010.07.005. Epub 2010 Jul 23.
9
In vivo biofilm composition of Aspergillus fumigatus.烟曲霉体内生物膜的组成。
Cell Microbiol. 2010 Mar;12(3):405-10. doi: 10.1111/j.1462-5822.2009.01409.x. Epub 2009 Nov 4.
10
Significance of the physiological state of fungal spores.真菌孢子生理状态的意义。
Int J Food Microbiol. 2009 Aug 31;134(1-2):16-20. doi: 10.1016/j.ijfoodmicro.2009.02.005. Epub 2009 Feb 12.

在石膏上青霉属菌(Penicillium rubens)产生细胞外基质作为各向同性生长阶段。

Production of an extracellular matrix as an isotropic growth phase of Penicillium rubens on gypsum.

机构信息

Eindhoven University of Technology, Department of Applied Physics, Eindhoven, The Netherlands.

出版信息

Appl Environ Microbiol. 2012 Oct;78(19):6930-7. doi: 10.1128/AEM.01506-12. Epub 2012 Jul 27.

DOI:10.1128/AEM.01506-12
PMID:22843536
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3457502/
Abstract

Indoor mold represents an important environmental concern, but a fundamental knowledge of fungal growth stages is needed to limit indoor fungal proliferation on finishing materials used in buildings. The present study focused on the succession of germination stages of the common indoor fungus Penicillium rubens on a gypsum substrate. This substrate is used as a model system representing porous materials that are widely used in indoor environments. Imaging with cryo-scanning electron microscopy showed that the formation of an extracellular matrix (ECM) is a phase of the isotropic growth of P. rubens that is uniquely related to germinating conidia. Furthermore, the ECM is observed only when a dry-state inoculation of the surface is applied, i.e., applying conidia directly from a 7-day-old colony, mimicking airborne contamination of the surface. When inoculation is done by spraying an aqueous conidial suspension, no ECM is observed. Moreover, it is concluded that the formation of an ECM requires active processes in the fungal cell. The porosity of the substrate proved that the ECM substance has high-viscosity characteristics. The present results stress that studies of indoor fungal growth should consider the method of inoculation, knowing that the common aqueous suspension may obscure specific stages in the initial phases of germination.

摘要

室内霉菌是一个重要的环境问题,但是为了限制建筑用装修材料中真菌的室内过度繁殖,需要了解真菌生长阶段的基础知识。本研究集中于常见室内真菌青霉在石膏基质上的发芽阶段的演替。该基质被用作代表广泛应用于室内环境的多孔材料的模型系统。冷冻扫描电子显微镜成像显示,细胞外基质(ECM)的形成是青霉各向同性生长的一个阶段,这与发芽的分生孢子有独特的关系。此外,仅当表面进行干燥状态接种时,即直接从 7 天龄的菌落接种分生孢子时,才会观察到 ECM,这模拟了表面的空气传播污染。当通过喷洒水性分生孢子悬浮液进行接种时,不会观察到 ECM。此外,还得出结论,形成 ECM 需要真菌细胞中的活跃过程。基质的多孔性证明 ECM 物质具有高粘度特性。本研究结果强调,室内真菌生长的研究应考虑接种方法,因为普通水性悬浮液可能会掩盖发芽初始阶段的特定阶段。