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尖孢镰孢菌植物细胞壁降解酶的基因组特征及木聚糖酶和多聚半乳糖醛酸酶的电子克隆分析

Genomic characterization of plant cell wall degrading enzymes and in silico analysis of xylanases and polygalacturonases of Fusarium virguliforme.

作者信息

Chang Hao-Xun, Yendrek Craig R, Caetano-Anolles Gustavo, Hartman Glen L

机构信息

Department of Crop Sciences, University of Illinois, Urbana, IL, 61801, USA.

Institute for Genomic Biology, Urbana, IL, 61801, USA.

出版信息

BMC Microbiol. 2016 Jul 12;16(1):147. doi: 10.1186/s12866-016-0761-0.

Abstract

BACKGROUND

Plant cell wall degrading enzymes (PCWDEs) are a subset of carbohydrate-active enzymes (CAZy) produced by plant pathogens to degrade plant cell walls. To counteract PCWDEs, plants release PCWDEs inhibitor proteins (PIPs) to reduce their impact. Several transgenic plants expressing exogenous PIPs that interact with fungal glycoside hydrolase (GH)11-type xylanases or GH28-type polygalacturonase (PG) have been shown to enhance disease resistance. However, many plant pathogenic Fusarium species were reported to escape PIPs inhibition. Fusarium virguliforme is a soilborne pathogen that causes soybean sudden death syndrome (SDS). Although the genome of F. virguliforme was sequenced, there were limited studies focused on the PCWDEs of F. virguliforme. Our goal was to understand the genomic CAZy structure of F. viguliforme, and determine if exogenous PIPs could be theoretically used in soybean to enhance resistance against F. virguliforme.

RESULTS

F. virguliforme produces diverse CAZy to degrade cellulose and pectin, similar to other necrotorphic and hemibiotrophic plant pathogenic fungi. However, some common CAZy of plant pathogenic fungi that catalyze hemicellulose, such as GH29, GH30, GH44, GH54, GH62, and GH67, were deficient in F. virguliforme. While the absence of these CAZy families might be complemented by other hemicellulases, F. virguliforme contained unique families including GH131, polysaccharide lyase (PL) 9, PL20, and PL22 that were not reported in other plant pathogenic fungi or oomycetes. Sequence analysis revealed two GH11 xylanases of F. virguliforme, FvXyn11A and FvXyn11B, have conserved residues that allow xylanase inhibitor protein I (XIP-I) binding. Structural modeling suggested that FvXyn11A and FvXyn11B could be blocked by XIP-I that serves as good candidate for developing transgenic soybeans. In contrast, one GH28 PG, FvPG2, contains an amino acid substitution that is potentially incompatible with the bean polygalacturonase-inhibitor protein II (PvPGIP2).

CONCLUSIONS

Identification and annotation of CAZy provided advanced understanding of genomic composition of PCWDEs in F. virguliforme. Sequence and structural analyses of FvXyn11A and FvXyn11B suggested both xylanases were conserved in residues that allow XIP-I inhibition, and expression of both xylanases were detected during soybean roots infection. We postulate that a transgenic soybean expressing wheat XIP-I may be useful for developing root rot resistance to F. virguliforme.

摘要

背景

植物细胞壁降解酶(PCWDEs)是植物病原体产生的碳水化合物活性酶(CAZy)的一个子集,用于降解植物细胞壁。为了对抗PCWDEs,植物会释放PCWDEs抑制蛋白(PIPs)以减轻其影响。已有研究表明,几种表达与真菌糖苷水解酶(GH)11型木聚糖酶或GH28型多聚半乳糖醛酸酶(PG)相互作用的外源PIPs的转基因植物,其抗病性得到了增强。然而,据报道,许多植物病原镰刀菌属物种能够逃避PIPs的抑制作用。尖孢镰刀菌是一种土传病原体,可引起大豆猝死综合征(SDS)。尽管尖孢镰刀菌的基因组已被测序,但针对该菌PCWDEs的研究却很有限。我们的目标是了解尖孢镰刀菌的基因组CAZy结构,并确定外源PIPs在理论上是否可用于大豆,以增强其对尖孢镰刀菌的抗性。

结果

与其他坏死性和半活体营养型植物病原真菌类似,尖孢镰刀菌产生多种CAZy来降解纤维素和果胶。然而,一些催化半纤维素的常见植物病原真菌CAZy,如GH29、GH30、GH44、GH54、GH62和GH67,在尖孢镰刀菌中却缺失。虽然这些CAZy家族的缺失可能由其他半纤维素酶来补充,但尖孢镰刀菌含有独特的家族,包括GH131、多糖裂解酶(PL)9、PL20和PL22,这些在其他植物病原真菌或卵菌中尚未见报道。序列分析显示,尖孢镰刀菌的两种GH11木聚糖酶FvXyn11A和FvXyn11B具有保守残基,能够与木聚糖酶抑制蛋白I(XIP-I)结合。结构建模表明,FvXyn11A和FvXyn11B可被XIP-I阻断,XIP-I是开发转基因大豆的良好候选对象。相比之下,一种GH28 PG,FvPG2,含有一个氨基酸取代,可能与菜豆多聚半乳糖醛酸酶抑制蛋白II(PvPGIP2)不兼容。

结论

CAZy的鉴定和注释为深入了解尖孢镰刀菌中PCWDEs的基因组组成提供了依据。FvXyn11A和FvXyn11B的序列和结构分析表明,这两种木聚糖酶在允许XIP-I抑制的残基上是保守的,并且在大豆根感染期间检测到了这两种木聚糖酶的表达。我们推测,表达小麦XIP-I的转基因大豆可能有助于培育对尖孢镰刀菌根腐病的抗性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/06ad/4941037/8a1cba9de3d4/12866_2016_761_Fig1_HTML.jpg

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