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叶片微生物区系中植物与病原菌之间的分子大战。

Molecular battles between plant and pathogenic bacteria in the phyllosphere.

机构信息

Department of Biology, University of Texas at Arlington, Arlington, TX 76019, USA.

出版信息

Braz J Med Biol Res. 2010 Aug;43(8):698-704. doi: 10.1590/s0100-879x2010007500060. Epub 2010 Jul 2.


DOI:10.1590/s0100-879x2010007500060
PMID:20602017
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3041987/
Abstract

The phyllosphere, i.e., the aerial parts of the plant, provides one of the most important niches for microbial colonization. This niche supports the survival and, often, proliferation of microbes such as fungi and bacteria with diverse lifestyles including epiphytes, saprophytes, and pathogens. Although most microbes may complete the life cycle on the leaf surface, pathogens must enter the leaf and multiply aggressively in the leaf interior. Natural surface openings, such as stomata, are important entry sites for bacteria. Stomata are known for their vital role in water transpiration and gas exchange between the plant and the environment that is essential for plant growth. Recent studies have shown that stomata can also play an active role in limiting bacterial invasion of both human and plant pathogenic bacteria as part of the plant innate immune system. As counter-defense, plant pathogens such as Pseudomonas syringae pv tomato (Pst) DC3000 use the virulence factor coronatine to suppress stomate-based defense. A novel and crucial early battleground in host-pathogen interaction in the phyllosphere has been discovered with broad implications in the study of bacterial pathogenesis, host immunity, and molecular ecology of bacterial diseases.

摘要

叶片生境,即植物的气生部分,为微生物定殖提供了最重要的小生境之一。这个小生境支持着微生物(如真菌和细菌)的生存和繁殖,这些微生物具有多种生活方式,包括附生菌、腐生菌和病原菌。尽管大多数微生物可能在叶片表面完成生命周期,但病原菌必须进入叶片并在叶片内部迅速繁殖。自然表面开口,如气孔,是细菌进入的重要入口。气孔因其在植物与环境之间进行水蒸腾和气体交换方面的重要作用而闻名,这对植物生长至关重要。最近的研究表明,气孔还可以作为植物先天免疫系统的一部分,对人类和植物病原菌的细菌入侵起到积极的限制作用。作为反击,植物病原菌如丁香假单胞菌 pv 番茄(Pst)DC3000 使用毒性因子冠菌素来抑制基于气孔的防御。在叶片生境中的宿主-病原体相互作用中,一个新的、至关重要的早期战场被发现,这对细菌发病机制、宿主免疫和细菌疾病的分子生态学研究具有广泛的意义。

相似文献

[1]
Molecular battles between plant and pathogenic bacteria in the phyllosphere.

Braz J Med Biol Res. 2010-7-2

[2]
Pseudomonas syringae pv. tomato exploits light signals to optimize virulence and colonization of leaves.

Environ Microbiol. 2018-8-16

[3]
Role of stomata in plant innate immunity and foliar bacterial diseases.

Annu Rev Phytopathol. 2008

[4]
Closely related NAC transcription factors of tomato differentially regulate stomatal closure and reopening during pathogen attack.

Plant Cell. 2014-7

[5]
A genetic screen reveals Arabidopsis stomatal and/or apoplastic defenses against Pseudomonas syringae pv. tomato DC3000.

PLoS Pathog. 2011-10-6

[6]
Virulence systems of Pseudomonas syringae pv. tomato promote bacterial speck disease in tomato by targeting the jasmonate signaling pathway.

Plant J. 2003-11

[7]
CorR regulates multiple components of virulence in Pseudomonas syringae pv. tomato DC3000.

Mol Plant Microbe Interact. 2006-7

[8]
Pseudomonas syringae pv. tomato DC3000: a model pathogen for probing disease susceptibility and hormone signaling in plants.

Annu Rev Phytopathol. 2013-5-31

[9]
A prominent role of the flagellin receptor FLAGELLIN-SENSING2 in mediating stomatal response to Pseudomonas syringae pv tomato DC3000 in Arabidopsis.

Plant Physiol. 2010-5-10

[10]
Role of plant stomata in bacterial invasion.

Cell Microbiol. 2007-7

引用本文的文献

[1]
A Mitogen-Activated Protein Kinase Pathway Is Required for PMB05 to Enhance Disease Resistance to Bacterial Soft Rot in .

Plants (Basel). 2024-9-16

[2]
Response of microbial communities in the tobacco phyllosphere under the stress of validamycin.

Front Microbiol. 2024-1-18

[3]
Comparative genomics profiling revealed multi-stress responsive roles of the CC-NBS-LRR genes in three mango cultivars.

Front Plant Sci. 2023-10-30

[4]
Effect of disease severity on the structure and diversity of the phyllosphere microbial community in tobacco.

Front Microbiol. 2023-1-4

[5]
Hidden Tenants: Microbiota of the Rhizosphere and Phyllosphere of Trees in Mayan Forests and Homegardens.

Plants (Basel). 2022-11-15

[6]
Genomic Variations and Mutational Events Associated with Plant-Pathogen Interactions.

Biology (Basel). 2022-3-10

[7]
Impacts of global change on the phyllosphere microbiome.

New Phytol. 2022-6

[8]
Genome-Wide Identification and Analysis of CC-NBS-LRR Family in Response to Downy Mildew and Black Rot in Chinese Cabbage.

Int J Mol Sci. 2021-4-20

[9]
The Lifecycle of the Plant Immune System.

CRC Crit Rev Plant Sci. 2020

[10]
Secretory Peptides as Bullets: Effector Peptides from Pathogens against Antimicrobial Peptides from Soybean.

Int J Mol Sci. 2020-12-5

本文引用的文献

[1]
NINJA connects the co-repressor TOPLESS to jasmonate signalling.

Nature. 2010-4-1

[2]
The tricks learnt by human enteric pathogens from phytopathogens to persist within the plant environment.

Curr Opin Biotechnol. 2010-2-6

[3]
The Arabidopsis CORONATINE INSENSITIVE1 protein is a jasmonate receptor.

Plant Cell. 2009-8

[4]
The jasmonate pathway: the ligand, the receptor and the core signalling module.

Curr Opin Plant Biol. 2009-10

[5]
Internalization of Salmonella enterica in leaves is induced by light and involves chemotaxis and penetration through open stomata.

Appl Environ Microbiol. 2009-10

[6]
RIN4 functions with plasma membrane H+-ATPases to regulate stomatal apertures during pathogen attack.

PLoS Biol. 2009-6-30

[7]
Bacterial growth restriction during host resistance to Pseudomonas syringae is associated with leaf water loss and localized cessation of vascular activity in Arabidopsis thaliana.

Mol Plant Microbe Interact. 2009-7

[8]
Innate immunity in plants: an arms race between pattern recognition receptors in plants and effectors in microbial pathogens.

Science. 2009-5-8

[9]
The ZIM domain mediates homo- and heteromeric interactions between Arabidopsis JAZ proteins.

Plant J. 2009-7

[10]
A critical role for the TIFY motif in repression of jasmonate signaling by a stabilized splice variant of the JASMONATE ZIM-domain protein JAZ10 in Arabidopsis.

Plant Cell. 2009-1

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