Back

Comparative genomics reveals shared accessory regions between members of two Fusarium species complexes virulent on garden pea

Pokhrel, A.; Haridas, S.; Calhoun, S.; Kuo, A.; Lipzen, A.; Riley, R.; LaButti, K.; Pangilinan, J.; Andreopoulos, B.; He, G.; Yan, M.; Barry, K.; Ma, L.-J.; Geiser, D. M.; Freitag, M.; Grigoriev, I. V.; Coleman, J.

2026-07-03 genomics
10.64898/2026.06.29.735274 bioRxiv
Show abstract

The contribution of accessory or conditionally dispensable chromosomes to host-specific virulence was first demonstrated in members of the Fusarium solani species complex (FSSC) that are pathogens of garden pea, Pisum sativum L. The phenomenon has since been shown to exist in many fungal plant pathogens, including the closely related F. oxysporum species complex (FOSC). Genome analysis of members of the FSSC and FOSC pathogenic on pea revealed a diverse size range of the accessory genome of these fungi. Despite the ~65 million years of diverging time, regions on a chromosome known to carry host-specific virulence factors for pea, including the cytochrome P450 pisatin demethylase (PDA) and other pea pathogenicity (PEP) genes, were present in all genomes of these pea pathogens. Genes directly involved in virulence on pea - PEP2, PDA, and PEP5- were the most frequently clustered together. Transcriptome analysis of fungal mycelia treated with the pea phytoalexin pisatin, identified 1,155 differentially expressed genes where many were involved in cellular stress responses. As wilt pathogens that invade host xylem, members of the FOSC encode more putative effectors, when compared to those in the FSSC, and several FOSC effectors were identified to confer race specificity. The conservation of part of the accessory genomes across two evolutionarily diverged species complexes suggests a common origin. Horizontal transfer of accessory chromosomes containing genetic loci involved in pathogenesis for garden pea offers a parsimonious explanation of the polyphyletic origin of host specificity.

Matching journals

The top 8 journals account for 50% of the predicted probability mass.

1
Molecular Plant Pathology
25 papers in training set
Top 0.1%
14.8%
2
mBio
833 papers in training set
Top 2%
7.8%
3
New Phytologist
346 papers in training set
Top 1%
7.8%
4
Molecular Plant-Microbe Interactions®
57 papers in training set
Top 0.2%
5.5%
5
G3: Genes, Genomes, Genetics
252 papers in training set
Top 1.0%
4.8%
6
GENETICS
483 papers in training set
Top 1%
4.0%
7
Molecular Biology and Evolution
542 papers in training set
Top 2%
3.5%
8
Nature Communications
5641 papers in training set
Top 34%
3.4%
50% of probability mass above
9
Genome Biology and Evolution
338 papers in training set
Top 1%
3.2%
10
BMC Genomics
406 papers in training set
Top 2%
3.2%
11
Scientific Reports
3612 papers in training set
Top 36%
3.1%
12
G3: Genes|Genomes|Genetics
35 papers in training set
Top 0.1%
2.6%
13
PLOS Genetics
862 papers in training set
Top 5%
2.4%
14
Proceedings of the National Academy of Sciences
2444 papers in training set
Top 22%
2.4%
15
The ISME Journal
228 papers in training set
Top 2%
1.9%
16
PLOS Pathogens
820 papers in training set
Top 6%
1.7%
17
Frontiers in Fungal Biology
10 papers in training set
Top 0.1%
1.7%
18
The Plant Cell
161 papers in training set
Top 2%
1.7%
19
BMC Biology
265 papers in training set
Top 2%
1.5%
20
Frontiers in Microbiology
427 papers in training set
Top 6%
1.3%
21
Communications Biology
993 papers in training set
Top 22%
1.1%
22
The Plant Journal
215 papers in training set
Top 3%
1.1%
23
Microbial Genomics
225 papers in training set
Top 2%
1.0%
24
Journal of Fungi
32 papers in training set
Top 0.6%
0.8%
25
Environmental Microbiology
133 papers in training set
Top 3%
0.8%
26
PLOS ONE
5266 papers in training set
Top 65%
0.6%
27
Phytopathology®
31 papers in training set
Top 0.6%
0.6%
28
FEMS Microbiology Ecology
54 papers in training set
Top 1%
0.6%
29
Nature Microbiology
155 papers in training set
Top 4%
0.6%
30
Peer Community Journal
281 papers in training set
Top 6%
0.6%