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Research paper | Open Access

Genome assembly of the plant pathogen Plasmodiophora brassicae reveals novel secreted proteins contributing to the infection of Brassica rapa

Peirong Lia,b,c,dSirui Lve,fZhijun Zhange,fTongbing Sua,b,c,dWeihong Wanga,b,c,dXiaoyun Xina,b,c,dXiuyun Zhaoa,b,c,dXiaoman Lia,b,c,dDeshuang Zhanga,b,c,dYangjun Yua,b,c,dTao Maa,b,c,dGuodong LiugFenglan Zhanga,b,c,d( )Shuancang Yua,b,c,d( )
Beijing Vegetable Research Center (BVRC), Beijing Academy of Agriculture and Forestry Sciences (BAAFS), Beijing 100097, China
State Key Laboratory of Vegetable Biobreeding, Beijing Vegetable Research Center, Beijing Academy of Agriculture and Forestry Science, Beijing 100097, China
Key Laboratory of Biology and Genetic Improvement of Horticultural Crops (North China), Ministry of Agriculture, Beijing 100097, China
Beijing Key Laboratory of Vegetable Germplasm Improvement, Beijing 100097, China
State Key Laboratory of Crop Biology, Shandong Agricultural University, Tai'an, Shandong 271018, China
College of Horticulture Science and Engineering, Shandong Agricultural University, Tai'an, Shandong 271018, China
Agricultural Comprehensive Service Center of Guide Sub-district Office of Changqing District, Jinan, Shandong 250300, China

Peer review under responsibility of Chinese Society of Horticultural Science (CSHS) and Institute of Vegetables and Flowers (IVF), Chinese Academy of Agricultural Sciences (CAAS)

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Abstract

The soil-resident pathogen, Plasmodiophora brassicae, infects cruciferous crops, causing obligate parasitic clubroot disease and posing a significant threat to the Brassica vegetable industry in China. To learn more about its pathogenesis, we reported a Nanopore sequencing-derived 25.3 Mb high-quality genome sequence of P. brassicae pathotype 4 strain (P.b 4). Comparing the P.b 4 genome with that of the published P. brassicae e3 genome (P.b e3) identified single nucleotide polymorphisms, structural variations, and small insertions and deletions. We then carried out RNA-sequencing of root samples from a clubroot-susceptible line at 5, 14, and 28 days after inoculation (DAI), and classified genes into five categories based on their expression patterns. Interestingly, 158 genes were highly expressed at 14 DAI, which were enriched in budding cell isotropic bud growth, ascospore wall assembly, spore wall assembly, spore wall biogenesis, and ascospore wall biogenesis. Subsequently, we bioinformatically predicted 555 secreted effector candidates, among which only 125 were expressed during infection and had amino acid lengths less than 400. The putative effector Pb010018, which was highly expressed at 14 DAI, was validated to have a signal peptide using a yeast secretion system. Luciferase activity and co-immunoprecipitation assays demonstrated that Pb010018 interacts with serine hydroxymethyltransferase BrSHMT1, and expression analysis showed that SHMT1 was upregulated in both Arabidopsis and B. rapa during infection. Furthermore, after infection, the Arabidopsis shmt1 mutant (atshmt1) showed reduced severity of clubroot disease, together with downregulated expression of Pb010018. Our results offer new insights into plant–pathogen interaction mechanisms, and provide the possibility for improving Brassica resistance to clubroot disease.

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Horticultural Plant Journal
Pages 1125-1139

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Cite this article:
Li P, Lv S, Zhang Z, et al. Genome assembly of the plant pathogen Plasmodiophora brassicae reveals novel secreted proteins contributing to the infection of Brassica rapa. Horticultural Plant Journal, 2025, 11(3): 1125-1139. https://doi.org/10.1016/j.hpj.2023.09.001

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Received: 18 May 2023
Accepted: 27 September 2023
Published: 27 October 2023
© 2023 Chinese Society for Horticultural Science (CSHS) and Institute of Vegetables and Flowers (IVF), Chinese Academy of Agricultural Sciences (CAAS).

This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).