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"Gossen, Bruce D."
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Heteroconium chaetospira Induces Resistance to Clubroot via Upregulation of Host Genes Involved in Jasmonic Acid, Ethylene, and Auxin Biosynthesis
2014
An endophytic fungus, Heteroconium chaetospira isolate BC2HB1 (Hc), suppressed clubroot (Plasmodiophora brassicae -Pb) on canola in growth-cabinet trials. Confocal microscopy demonstrated that Hc penetrated canola roots and colonized cortical tissues. Based on qPCR analysis, the amount of Hc DNA found in canola roots at 14 days after treatment was negatively correlated (r = 0.92, P<0.001) with the severity of clubroot at 5 weeks after treatment at a low (2×10(5) spores pot(-1)) but not high (2×10(5) spores pot(-1)) dose of pathogen inoculum. Transcript levels of nine B. napus (Bn) genes in roots treated with Hc plus Pb, Pb alone and a nontreated control were analyzed using qPCR supplemented with biochemical analysis for the activity of phenylalanine ammonia lyases (PAL). These genes encode enzymes involved in several biosynthetic pathways related potentially to plant defence. Hc plus Pb increased the activity of PAL but not that of the other two genes (BnCCR and BnOPCL) involved also in phenylpropanoid biosynthesis, relative to Pb inoculation alone. In contrast, expression of several genes involved in the jasmonic acid (BnOPR2), ethylene (BnACO), auxin (BnAAO1), and PR-2 protein (BnPR-2) biosynthesis were upregulated by 63, 48, 3, and 3 fold, respectively, by Hc plus Pb over Pb alone. This indicates that these genes may be involved in inducing resistance in canola by Hc against clubroot. The upregulation of BnAAO1 appears to be related to both pathogenesis of clubroot and induced defence mechanisms in canola roots. This is the first report on regulation of specific host genes involved in induced plant resistance by a non-mycorrhizal endophyte.
Journal Article
Genotyping-by-sequencing reveals three QTL for clubroot resistance to six pathotypes of Plasmodiophora brassicae in Brassica rapa
by
Gossen, Bruce D.
,
Peng, Gary
,
Strelkov, Stephen E.
in
631/208/721
,
631/449/711
,
Brassica rapa
2017
Clubroot, caused by
Plasmodiophora brassicae
, is an important disease of Brassica crops worldwide. F
1
progeny from the
Brassica rapa
lines T19 (resistant) × ACDC (susceptible) were backcrossed with ACDC, then self-pollinated to produce BC
1
S
1
lines, From genotyping-by-sequencing (GBS) of the parental lines and BC
1
plants, about 1.32 M sequences from T19 were aligned into the reference genome of
B
.
rapa
with 0.4-fold coverage, and 1.77 M sequences with 0.5-fold coverage in ACDC. The number of aligned short reads per plant in the BC
1
ranged from 0.07 to 1.41 M sequences with 0.1-fold coverage. A total of 1584 high quality SNP loci were obtained, distributed on 10 chromosomes. A single co-localized QTL, designated as
Rcr4
on chromosome A03, conferred resistance to pathotypes 2, 3, 5, 6 and 8. The peak was at SNP locus A03_23710236, where LOD values were 30.3 to 38.8, with phenotypic variation explained (PVE) of 85–95%. Two QTLs for resistance to a novel
P
.
brassicae
pathotype 5x, designated
Rcr8
on chromosome A02 and
Rcr9
on A08, were detected with 15.0 LOD and 15.8 LOD, and PVE of 36% and 39%, respectively. Bulked segregant analysis was performed to examine TIR-NBS-LRR proteins in the regions harboring the QTL.
Journal Article
Characterization of a virulence factor in Plasmodiophora brassicae, with molecular markers for identification
by
Sedaghatkish, Afsaneh
,
Gossen, Bruce D.
,
McDonald, Mary Ruth
in
Analysis
,
Biology and Life Sciences
,
Brassica
2023
Symptom severity on differential host lines is currently used to characterize and identify pathotypes of Plasmodiophora brassicae , which is an obligate, soil-borne chromist pathogen that causes clubroot disease on canola ( Brassica napus ) and other brassica crops. This process is slow, variable and resource intensive; development of molecular markers could make identification of important pathotypes faster and more consistent for deployment of cultivars with pathotype-specific resistance. In the current study, a variant of gene 9171 was identified in the whole-genome sequences of only the highly virulent pathotypes of P . brassicae from around the world, including the new cohort of virulent pathotypes in Canada; its presence was confirmed using three KASP marker pairs. The gene was not present in the initial cohort of pathotypes identified in Canada. The putative structure, domains, and gene ontogeny of the protein product of gene 9171 were assessed using on-line software resources. Structural analysis of the putative protein produced by gene 9171 indicated that it was localized in the cytosol, and likely involved in cellular processes and catalytic activity. Identification of gene 9171 represents a potentially useful step toward molecular identification of the pathotypes of P . brassicae .
Journal Article
Whole-genome DNA similarity and population structure of Plasmodiophora brassicae strains from Canada
by
Sedaghatkish, Afsaneh
,
Gossen, Bruce D.
,
Torkamaneh, Davoud
in
Animal Genetics and Genomics
,
Balancing selection
,
Biodiversity
2019
Background
Clubroot is an important disease of brassica crops world-wide. The causal agent,
Plasmodiophora brassicae,
has been present in Canada for over a century but was first identified on canola (
Brassica napus
) in Alberta, Canada in 2003. Genetic resistance to clubroot in an adapted canola cultivar has been available since 2009, but resistance breakdown was detected in 2013 and new pathotypes are increasing rapidly. Information on genetic similarity among pathogen populations across Canada could be useful in estimating the genetic variation in pathogen populations, predicting the effect of subsequent selection pressure on changes in the pathogen population over time, and even in identifying the origin of the initial pathogen introduction to canola in Alberta.
Results
The genomic sequences of 43 strains (34 field collections, 9 single-spore isolates) of
P. brassicae
from Canada, the United States, and China clustered into five clades based on SNP similarity. The strains from Canada separated into four clades, with two containing mostly strains from the Prairies (provinces of Alberta, Saskatchewan, and Manitoba) and two that were mostly from the rest of Canada or the USA. Several strains from China formed a separate clade. More than one pathotype and host were present in all four Canadian clades. The initial pathotypes from canola on the Prairies clustered separately from the pathotypes on canola that could overcome resistance to the initial pathotypes. Similarly, at one site in central Canada where resistance had broken down, about half of the genes differed (based on SNPs) between strains before and after the breakdown.
Conclusion
Clustering based on genome-wide DNA sequencing demonstrated that the initial pathotypes on canola on the Prairies clustered separately from the new virulent pathotypes on the Prairies. Analysis indicated that these ‘new’ pathotypes were likely present in the pathogen population at very low frequency, maintained through balancing selection, and increased rapidly in response to selection from repeated exposure to host resistance.
Journal Article
A contamination-reduced genome of Plasmodiophora brassicae with comprehensive functional annotation
2026
Plasmodiophora brassicae
causes clubroot disease in brassica crops worldwide but cannot be cultured outside its host, complicating its genome sequencing. Previous efforts relied on infected plant tissues and subtracting host DNA, which left microbial contamination and reduced the accuracy of the genome sequence. Single-cell genome sequencing (SCS) offers a promising solution by isolating individual cells free of host of microbial DNA and improving assembly accuracy. We applied a single-cell genome sequencing approach to ~ 4,000 protoplasts isolated from a highly virulent
P. brassicae
pathotype 5X population collected in Canada. The
de novo
assembly yielded a 23.3 Mb genome containing 8,758 predicted genes. Functional annotation using InterProScan identified 176,410 total domain hits, representing 6,809 distinct domain annotations and covering nearly all predicted genes, a substantial improvement compared to earlier annotations that covered only 34–57% of genes. We also identified 22 genes associated with virulence-related domains. A comparison with the previous reference genome revealed the
de novo
assembly of single cells was ~ 8% smaller, suggesting the removal of 1.9 Mb of contaminant sequences. This study demonstrates the value of SCS for overcoming contamination challenges in obligate, soil-borne pathogens, and establishes a framework to apply similar approaches to other non-culturable microbes.
Journal Article
Identification of Two Major QTLs in Brassica napus Lines With Introgressed Clubroot Resistance From Turnip Cultivar ECD01
2022
Plasmodiophora brassicae causes clubroot disease in brassica crops worldwide. Brassica rapa , a progenitor of Brassica napus (canola), possesses important sources for resistance to clubroot. A doubled haploid (DH) population consisting of 84 DH lines were developed from a Backcross2 (BC 2 ) plant through an interspecific cross of B. rapa turnip cv. ECD01 (resistant, R) with canola line DH16516 (susceptible, S) and then backcrossed with DH16516 as the recurrent parent. The DH lines and their parental lines were tested for resistance to four major pathotypes (3A, 3D, 3H, and 5X) of P. brassicae identified from canola. The R:S segregation ratio for pathotype 3A was 1:3, and 3:1 for pathotypes 3D, 3H, and 5X. From genotyping by sequencing (GBS), a total of 355.3 M short reads were obtained from the 84 DH lines, ranging from 0.81 to 11.67 M sequences per line. The short reads were aligned into the A-genome of B. napus “Darmor- bzh ” version 4.1 with a total of 260 non-redundant single-nucleotide polymorphism (SNP) sites. Two quantitative trait loci (QTLs), Rcr10 ECD01 and Rcr9 ECD01 , were detected for the pathotypes in chromosomes A03 and A08, respectively. Rcr10 ECD01 and Rcr9 ECD01 were responsible for resistance to 3A, 3D, and 3H, while only one QTL, Rcr9 ECD01 , was responsible for resistance to pathotype 5X. The logarithm of the odds (LOD) values, phenotypic variation explained (PVE), additive (Add) values, and confidence interval (CI) from the estimated QTL position varied with QTL, with a range of 5.2–12.2 for LOD, 16.2–43.3% for PVE, 14.3–25.4 for Add, and 1.5–12.0 cM for CI. The presence of the QTLs on the chromosomes was confirmed through the identification of the percentage of polymorphic variants using bulked-segregant analysis. There was one gene encoding a disease resistance protein and 24 genes encoding proteins with function related to plant defense response in the Rcr10 ECD01 target region. In the Rcr9 ECD01 region, two genes encoded disease resistance proteins and 10 genes encoded with defense-related function. The target regions for Rcr10 ECD01 and Rcr9 ECD01 in B. napus were homologous to the 11.0–16.0 Mb interval of chromosome A03 and the 12.0–14.5 Mb interval of A08 in B. rapa “Chiifu” reference genome, respectively.
Journal Article
Comparative transcriptome analysis of canola carrying a single vs stacked resistance genes against clubroot
2024
Pyramiding resistance genes may expand the efficacy and scope of a canola variety against clubroot ( Plasmodiophora brassicae ), a serious threat to canola production in western Canada. However, the mechanism(s) of multigenic resistance, especially the potential interaction among clubroot resistance (CR) genes, are not well understood. In this study, transcriptome was compared over three canola ( Brassica napus L.) inbred/hybrid lines carrying a single CR gene in chromosome A03 ( CRa M , Line 16) or A08 ( Crr1 rutb , Line 20), and both genes ( CRa M + Crr1 rutb , Line 15) inoculated with a field population (L-G2) of P. brassicae pathotype X, a new variant found in western Canada recently. The line16 was susceptible, while lines 15 and 20 were partially resistant. Functional annotation identified differential expression of genes (DEGs) involved in biosynthetic processes responsive to stress and regulation of cellular process; The Venn diagram showed that the partially resistant lines 15 and 20 shared 1,896 differentially expressed genes relative to the susceptible line 16, and many of these DEGs are involved in defense responses, activation of innate immunity, hormone biosynthesis and programmed cell death. The transcription of genes involved in Pathogen-Associated Molecular Pattern (PAMP)-Triggered and Effector-Triggered Immunity (PTI and ETI) was particularly up-regulated, and the transcription level was higher in line 15 ( CRa M + Crr1 rutb ) than in line 20 ( Crr1 rutb only) for most of the DEGs. These results indicated that the partial resistance to the pathotype X was likely conferred by the CR gene Crr1 rutb for both lines 15 and 20 that functioned via the activation of both PTI and ETI signaling pathways. Additionally, these two CR genes might have synergistic effects against the pathotype X, based on the higher transcription levels of defense-related DEGs expressed by inoculated line 15, highlighting the benefit of gene stacking for improved canola resistance as opposed to a single CR gene alone.
Journal Article
Analysis of genome-wide variants through bulked segregant RNA sequencing reveals a major gene for resistance to Plasmodiophora brassicae in Brassica oleracea
2018
Two cabbage (
Brassica oleracea
) cultivars ‘Tekila’ and ‘Kilaherb’ were identified as resistant to several pathotypes of
Plasmodiophora brassicae
. In this study, we identified a clubroot resistance gene (
Rcr7
) in ‘Tekila’ for resistance to pathotype 3 of
P. brassicae
from a segregating population derived from ‘Tekila’ crossed with the susceptible line T010000DH3. Genetic mapping was performed by identifying the percentage of polymorphic variants (PPV), a new method proposed in this study, through bulked segregant RNA sequencing. Chromosome C7 carried the highest PPV (42%) compared to the 30–34% in the remaining chromosomes. A peak with PPV (56–73%) was found within the physical interval 41–44 Mb, which indicated that
Rcr7
might be located in this region. Kompetitive Allele-Specific PCR was used to confirm the association of
Rcr7
with SNPs in the region.
Rcr7
was flanked by two SNP markers and co-segregated with three SNP markers in the segregating population of 465 plants. Seven genes encoding TIR-NBS-LRR disease resistance proteins were identified in the target region, but only two genes,
Bo7g108760
and
Bo7g109000
, were expressed. Resistance to pathotype 5X was also mapped to the same region as
Rcr7
.
B. oleracea
lines including ‘Kilaherb’ were tested with five SNP markers for
Rcr7
and for resistance to pathotype 3; 11 of 25 lines were resistant, but ‘Kilaherb’ was the only line that carried the SNP alleles associated with
Rcr7
. The presence of
Rcr7
in ‘Kilaherb’ for resistance to both pathotypes 3 and 5X was confirmed through linkage analysis.
Journal Article
Clubroot resistance gene Rcr6 in Brassica nigra resides in a genomic region homologous to chromosome A08 in B. rapa
2019
Background
Clubroot, caused by
Plasmodiophora brassicae
Woronin, is a very important disease of
Brassica
species. Management of clubroot relies heavily on genetic resistance. In a cross of
Brassica nigra
lines PI 219576 (highly resistant, R) × CR2748 (highly susceptible, S) to clubroot, all F
1
plants were resistant to clubroot. There was a 1:1 ratio of R:S in the BC
1
and 3R:1S in the F
2
, which indicated that a single dominant gene controlled clubroot resistance in PI 219576. This gene was designated
Rcr6
. Mapping of
Rcr6
was performed using genome sequencing information from A-genome of
B. rapa
and B-genome of
B. nigra
though bulked segregant RNA sequencing (BSR-Seq) and further mapping with Kompetitive Allele Specific PCR (KASP) analysis.
Results
Reads of R and S bulks from BSR-Seq were initially aligned onto
B. rapa
(A-genome;
B. nigra
has the B-genome) where
Rcr6
was associated with chromosome A08. KASP analysis showed that
Rcr6
was flanked by SNP markers homologous to the region of 14.8–15.4 Mb of chromosome A08. There were 190 genes annotated in this region, with five genes (
Bra010552
,
Bra010588
,
Bra010589
,
Bra010590
and
Bra010663
) identified as encoding the toll-interleukin-1 receptor / nucleotide-binding site / leucine-rich-repeat (TIR-NBS-LRR; TNL) class of proteins. The reads from BSR-Seq were then aligned into a draft B-genome of
B. nigra
, where
Rcr6
was mapped on chromosome B3. KASP analysis indicated that
Rcr6
was located on chromosome B3 in a 0.5 Mb region from 6.1–6.6 Mb. Only one TNL gene homologous to the
B. rapa
gene
Bra010663
was identified in the target region. This gene is a likely candidate for
Rcr6
. Subsequent analysis of the
Rcr6
equivalent region based on a published
B. nigra
genome was performed. This gene is located into chromosome B7 of the published B-genome, homologous to
BniB015819
.
Conclusion
Rcr6
was the first gene identified and mapped in the B-genome of
Brassica
species. It resides in a genomic region homologous to chromosome A08 of A-genome. Based on this finding, it could possibly integrate into A08 of
B. napus
using marker assisted selection with SNP markers tightly linked to
Rcr6
developed in this study.
Journal Article
Identification of Genome-Wide Variants and Discovery of Variants Associated with Brassica rapa Clubroot Resistance Gene Rcr1 through Bulked Segregant RNA Sequencing
2016
Clubroot, caused by Plasmodiophora brassicae, is an important disease on Brassica species worldwide. A clubroot resistance gene, Rcr1, with efficacy against pathotype 3 of P. brassicae, was previously mapped to chromosome A03 of B. rapa in pak choy cultivar \"Flower Nabana\". In the current study, resistance to pathotypes 2, 5 and 6 was shown to be associated with Rcr1 region on chromosome A03. Bulked segregant RNA sequencing was performed and short read sequences were assembled into 10 chromosomes of the B. rapa reference genome v1.5. For the resistant (R) bulks, a total of 351.8 million (M) sequences, 30,836.5 million bases (Mb) in length, produced 120-fold coverage of the reference genome. For the susceptible (S) bulks, 322.9 M sequences, 28,216.6 Mb in length, produced 109-fold coverage. In total, 776.2 K single nucleotide polymorphisms (SNPs) and 122.2 K insertion / deletion (InDels) in R bulks and 762.8 K SNPs and 118.7 K InDels in S bulks were identified; each chromosome had about 87% SNPs and 13% InDels, with 78% monomorphic and 22% polymorphic variants between the R and S bulks. Polymorphic variants on each chromosome were usually below 23%, but made up 34% of the variants on chromosome A03. There were 35 genes annotated in the Rcr1 target region and variants were identified in 21 genes. The numbers of poly variants differed significantly among the genes. Four out of them encode Toll-Interleukin-1 receptor / nucleotide-binding site / leucine-rich-repeat proteins; Bra019409 and Bra019410 harbored the higher numbers of polymorphic variants, which indicates that they are more likely candidates of Rcr1. Fourteen SNP markers in the target region were genotyped using the Kompetitive Allele Specific PCR method and were confirmed to associate with Rcr1. Selected SNP markers were analyzed with 26 recombinants obtained from a segregating population consisting of 1587 plants, indicating that they were completely linked to Rcr1. Nine SNP markers were used for marker-assisted introgression of Rcr1 into B. napus canola from B. rapa, with 100% accuracy in this study.
Journal Article