Evolution of Disease Defense Genes and Their Regulators in Plants
Abstract
:1. Introduction
2. Three Layers of Defense Mechanisms to Biotic Stresses in Plants
2.1. The First Layer of Defense: Defense Genes in PTI
2.2. The Second Layer of Defense: The Defense Genes in ETI
2.3. The Third Layer of Defense: Cross-Kingdom/Organism RNA Interference
3. The Regulation of Disease Resistance Genes by Small RNAs
3.1. The First Layer of Defense Regulation: miRNAs Involved in the PTI Pathway
3.2. The Second Layer of Defense Regulation: The Defense Signal Small RNAs in ETI
4. The Evolution of Defense Genes
4.1. The Evolution of Defense Gene in PTI
4.2. The Evolution of Defense Gene in ETI
5. The Evolution of microRNAs in the Defense Pathway
5.1. The Evolution of miRNAs in PTI
5.2. The Evolution of miRNAs in ETI
6. The Strategies of Defense Pathogens in plants
6.1. The First Strategy: Utilize the Disease Resistance Genes by a Molecular Switch
6.2. The Second Strategy: Host-Induced Gene Silencing (HIGS)
6.3. The Third Strategy: Spray-Induced Gene Silencing (SIGS)
7. Conclusions
Author Contributions
Acknowledgments
Conflicts of Interest
References
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Species | Nb Chr. | Size (Mbp) | Nb Gene | R-Genes | |||
---|---|---|---|---|---|---|---|
Nb R-Genes | (%) 1 | Nb MiRNA Targets | (%) 2 | ||||
Monocots | |||||||
Oryza sativa (rice) | 12 | 372 | 41,046 | 1196 | 2.91 | 144 | 12.04 |
Sorghum bicolor | 10 | 659 | 34,008 | 625 | 1.84 | 109 | 17.44 |
Zea mays (maize) | 10 | 2365 | 32,540 | 673 | 2.07 | 0 | 0 |
Brachypodium distachyon | 5 | 271 | 25,504 | 537 | 2.11 | 149 | 27.75 |
Eudicots | |||||||
Arabidopsis thaliana | 5 | 119 | 33,198 | 503 | 1.52 | 81 | 16.1 |
Populus trichocarpa | 19 | 294 | 30,260 | 446 | 1.47 | 382 | 85.65 |
Carica papaya | 9 | 234 | 19,205 | 228 | 1.19 | 0 | 0 |
Glycine max | 20 | 949 | 46,164 | 1171 | 2.54 | 290 | 24.77 |
Malusxdomestica (apple) | 17 | 742 | 58,979 | 2052 | 3.48 | 256 | 12.48 |
Plant Species | Disease | Pathogens | Avirus Genes | Types of Pathogens | Genes | Types | GenBank Locus |
---|---|---|---|---|---|---|---|
Arabidopsis thaliana | White rust of crucifers | Albugo candida | Oomycetes | RAC1 | TNL | AY522496 | |
Cucumber Mosaic Virus | Cucumber mosaic virus | Virus | RCY1 | CNL | AB087829 | ||
Bacterial Blight | Pseudomonas syringae/Xanthomonas oryzae | avrRpm1; avrRpt2; avrPphB; N; avrRps4 | Bacterium | RPM1; Rps2; RPS5; SSI4; Rps4 | CNL; CNL; CNL; TNL; TNL | NM_111584; NM_118742; NM_101094; AY179750; NM_123893 | |
Downy mildew of cucurbits | Pseudoperonospora cubensis | Oomycetes | RPP13/RPP8; RPP1/RPP4; RPP5 | CNL/CNL; TNL/TNL; TNL | NM_114520/NM_123713; NM_114316/NM_117790; NM_117798 | ||
Bacterial wilt of potato | Ralstonia solanacearum | Bacterium | RRS1 | TNL | NM_001085246 | ||
Turnip crinkle virus | Turnip crinkle virus | Virus | HRT | CNL | NM_128190 | ||
Aegilops tauschii | Cereal cyst nematode | Heterodera avenae | Nematode | Cre1 | CNL | AY124651 | |
Capsicum chacoense | Bacterial spot of tomato | Xanthomonas campestris | AvrBs2 | Bacterium | Bs2 | CNL | AF202179 |
Capsicum chinense | Pepper mild mottle virus | Pepper mild mottle virus | Virus | L3 | CNL | BAJ33559 | |
Cucumis melo | Fusarium Wilt | Fusarium oxysporum | Fungal | FOM-2 | CNL | DQ287965 | |
Melon aphid disease | Aphis gossypii | insect | VAT | CNL | AGH33848 | ||
zucchini yellow mosaic virus | zucchini yellow mosaic virus | Virus | FOM1 | TNL | AIU36098 | ||
Glycine max | Soybean mosaic virus | soybean mosaic virus | Virus | KR1 | TNL | AF327903 | |
Helianthus annuus | Downy mildew of sunflower | Plasmopara halstedii | Oomycetes | Pl8 | CNL | AY490793 | |
Hordeum vulgare | Powdery mildew (barley) | Blumeria graminis | Fungal | MLA10/MLA1/MLA13 | CNL | AY266445; GU245961; AF523683 | |
Lactuca sativa | Downy mildew of lettuce | Bremia lactucae | Avr3 | Oomycetes | Dm3 (RGC2B) | CNL | AH007213 |
Linum usitatissimum | Flax rust | Melampsora lini | Fungal | P2/L6/M; L,L1-L11; P,P1-4 | TNL; TNL; TNL | AF310960/U27081/U73916; AAD25974/AAK28806 | |
Nicotiana glutinosa | Tobacco Mosaic Virus | Tobacco mosaic virus | Virus | N | TNL | U15605 | |
Oryza sativa | Rice blast disease | Magnaporthe grisea | Avr-Pita | Fungal | Pi-ta/PIB | CNL | AY196754 |
Bacterial Blight | Pseudomonas syringae/Xanthomonas oryzae | Bacterium | XA1 | CNL | AB002266 | ||
Rice blast disease | Magnaporthe oryzae | Fungal | RGA5 | CNL | EU883792 | ||
Oryza sativa Indica Group | Rice blast disease | Magnaporthe grisea | Fungal | Pi36/Pi9/Pi2 | CNL | DQ900896/DQ285630/DQ352453 | |
Oryza sativa Japonica Group | Rice blast disease | Magnaporthe grisea | Fungal | Piz-t/Pikm1-TS/Pikm2-TS/Pid3/Pi5-1/Pi5-2/Pit/Pikp-2 | CNL | DQ352040/AB462324/AB462325/FJ773286/EU869185/EU869186/AB379816/HM035360 | |
Rice blast disease | Magnaporthe oryzae | Fungal | Pia; Pi37; Rpr1 | CNL; CNL; CNL | AB604626; DQ923494; AC119670 | ||
Solanum acaule | Latent mosaic of potato/Beet cyst nematode | Potato virus X/Heterodera schachtii | Virus/Nematode | Rx2 | CNL | AJ249448 | |
Solanum bulbocastanum | Late Blight of tomato | Phytophthora infestans | Oomycete | Rpi-blb1/Rpi-blb2; RB | CNL; CNL | AY336128; DQ122125; AY426259 | |
Solanum demissum | Late Blight of tomato | Phytophthora infestans | Oomycete | R1 | CNL | AF447489 | |
Solanum lycopersicum | Bacterial spot of tomato | Xanthomonas campestris | Hax4/AvrBs4 | Bacterium | Bs4 | TNL | AY438027 |
Yellow potato cyst nematode | Yellow potato cyst nematode | Nematode | Hero | CNL | AJ457052 | ||
root-knot nematode | Meloidogyne incognita | Nematode | Mi1.2 | CNL | AF039682 | ||
Tomato Spotted Wilt | Tomato spotted wilt virus | Virus | Sw-5 | CNL | AY007366 | ||
Tobacco Mosaic Virus | Tobacco mosaic virus | MP | Virus | Tm-2a/Tm-2 | CNL | F536201/AF536200 | |
Solanum pimpinellifolium | Bacterial Speck of tomato | Pseudomonas syringae | AvrPto/AvrPtoB | Bacterium | Prf | CNL | AF220602 |
Late blight | Phytophthora infestans | Oomycete | Ph-3 | CNL | KJ563933 | ||
Solanum tuberosum | Yellow potato cyst nematode | Globodera | Nematode | Gpa2 | CNL | AF195939 | |
Late Blight of potato | Phytophthora infestans | Nematode | Gro1.4 | TNL | AY196151 | ||
Latent mosaic of potato/Beet cyst nematode | Potato virus X/Heterodera schachtii | Virus | Rx | CNL | AJ011801 | ||
Solanum tuberosum subsp andigena | Potato virus Y | Potato virus Y | Virus | RY-1 | TNL | AJ300266 | |
Triticum aestivum | Brown wheat rust of potato | Puccinia triticina | Fungal | Lr10/Lr21/Lr1 | CNL | AY270157/FJ876280/EF439840 | |
powdery mildew | Blumeria graminis f. sp. Tritici | Fungal | Pm3 | CNL | AY325736 | ||
stem rust | Puccinia graminis f. sp. Tritici | Fungal | Sr33 | CNL | KF031303 | ||
Nematode disease | Heterodera avenae | Nematode | Cre3 | CNL | AF052641 | ||
Yellow rust | Puccinia striiformis Westend. f.sp. Tritici | Fungal | Yr10 | CNL | AF149114 | ||
Triticum monococcum subsp. Monococcum | stem rust | Puccinia graminis f. sp. Tritici | Fungal | Sr35 | CNL | AGP75918 | |
Zea mays | Common rust of maize | Puccinia sorghi | Fungal | Rp1-D | CNL | AF107293 |
Plant miRNAs | Immunity Response | Targets in Plants or Pathogens | Positive (+)/Negative (−) Regulator | Pathogens | |
---|---|---|---|---|---|
Classification | Pathogen/Plant | ||||
miR393 | PTI | F-box auxin receptors | Positive | Bacteria | Pseudomonas syringae/Arabidopsis |
miR160a | PTI | auxin response factors16 | Positive | Bacteria | Pseudomonas syringae/Arabidopsis |
miR319 | PTI | TCP21 | Negative | Virus | Rice ragged stunt virus (RRSV)/RICE |
miR773 | PTI | METHYLTRANSFERASE 2 | Negative | Bacteria; Fungul | Pseudomonas syringae/Arabidopsis; Plectosphaerella cucumerina/Arabidopsis |
miR169 | PTI | NFYA | Negative | Bacteria; Fungul | Magnaporthe oryzae/RICE |
miR396 | PTI | GRF | Negative | Fungul | Plectosphaerella cucumerina/Arabidopsis |
miR156 | PTI | MdWRKYN1 | Negative | Fungul | Alternaria alternaria/APPLE |
miR395 | PTI | MdWRKY26 | Negative | Fungul | Alternaria alternaria/APPLE |
miR5272 | PTI | MKK6 | Negative | Fungul | Fusarium oxysporum/COTTON |
MIR398 | PTI | CSD2 | Negative | Bacteria | Pseudomonas syringae/Arabidopsis |
miR164 | PTI | NAC | Negative | Fungul | Magnaporthe oryzae/RICE |
miR393* | ETI | MEMB12 (Membrin 12) | Positive | Bacteria | Pseudomonas syringae/Arabidopsis |
miR444 | ETI | MADS | Positive | Virus | Rice stripe virus (RSV)/RICE |
miR171 | ETI | OsSCL6-Iia/b/c | Positive | Virus | Rice stripe virus (RSV)/RICE |
miR863-3p | ETI | ARLPK1&ARLPK2 | Positive | Bacteria | Pseudomonas syringae/Arabidopsis |
miR863-3p | ETI | SERRATE | Negative | Bacteria | Pseudomonas syringae/Arabidopsis |
MIR9863 | ETI | NBS-LRR | Negative | Fungul | Blumeria graminis/Barley |
MIR482 | ETI | NBS-LRR | Negative | Fungul | Fusarium oxysporum/Tomato |
MIR5300 | ETI | NBS-LRR | Negative | Fungul | Fusarium oxysporum/Tomato |
miR1510 | ETI | NBS-LRR | Negative | Fungul | Phytophthora sojae/Soybean |
miR6019 | ETI | NBS-LRR | Negative | Virus | Tobacco mosaic virus/Tobacco |
miR6020 | ETI | NBS-LRR | Negative | Virus | Tobacco mosaic virus/Tobacco |
miR1885 | ETI | NBS-LRR | Negative | Virus | Turnip mosaic virus/Brassica |
miR472 | ETI | NBS-LRR | Negative | Bacteria | Pseudomonas syringae/Arabidopsis |
miR166 | CKRI | Clp-1 1 | Positive | Fungul | Verticillium dahliae/Cotton |
miR159 | CKRI | HiC-15 1 | Positive | Fungul | Verticillium dahliae/Cotton |
TAS1c-siR483 | CKRI | Bc-Vps51&Bc-DCTN1 1 | Positive | Fungul | Botrytis cinerea /Arabidopsis |
TAS2-siR453 | CKRI | BC1T_08464 1 | Positive | Fungul | Botrytis cinerea /Arabidopsis |
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Zhang, R.; Zheng, F.; Wei, S.; Zhang, S.; Li, G.; Cao, P.; Zhao, S. Evolution of Disease Defense Genes and Their Regulators in Plants. Int. J. Mol. Sci. 2019, 20, 335. https://doi.org/10.3390/ijms20020335
Zhang R, Zheng F, Wei S, Zhang S, Li G, Cao P, Zhao S. Evolution of Disease Defense Genes and Their Regulators in Plants. International Journal of Molecular Sciences. 2019; 20(2):335. https://doi.org/10.3390/ijms20020335
Chicago/Turabian StyleZhang, Rongzhi, Fengya Zheng, Shugen Wei, Shujuan Zhang, Genying Li, Peijian Cao, and Shancen Zhao. 2019. "Evolution of Disease Defense Genes and Their Regulators in Plants" International Journal of Molecular Sciences 20, no. 2: 335. https://doi.org/10.3390/ijms20020335
APA StyleZhang, R., Zheng, F., Wei, S., Zhang, S., Li, G., Cao, P., & Zhao, S. (2019). Evolution of Disease Defense Genes and Their Regulators in Plants. International Journal of Molecular Sciences, 20(2), 335. https://doi.org/10.3390/ijms20020335