Enhancing disease resistance in poplar through modification of its natural defense pathway

Dmytro P. Yevtushenko1, Santosh Misra2
1Department of Biological Sciences, University of Lethbridge, Lethbridge, Canada
2Department of Biochemistry & Microbiology, Centre for Forest Biology, University of Victoria, Victoria, Canada

Tóm tắt

Từ khóa


Tài liệu tham khảo

Ali GS, Reddy ASN (2000) Inhibition of fungal and bacterial plant pathogens by synthetic peptides: in vitro growth inhibition, interaction between peptides and inhibition of disease progression. Mol Plant Microbe Interact 13:847–859

Allefs SJHM, Florack DEA, Hoogendoorn C, Stiekema WJ (1995) Erwinia soft rot resistance of potato cultivars transformed with a gene construct coding for antimicrobial peptide cecropin B is not altered. Am Potato J 72:437–445

Balatinecz JJ, Kretschmann DE (2001) Properties and utilization of poplar wood. In: Dickmann DI et al (eds) Poplar culture in North America. NRC Research Press, Ottawa, pp 277–290

Bent AF, Mackey D (2007) Elicitors, effectors, and R genes: the new paradigm and a lifetime supply of questions. Annu Rev Phytopathol 45:399–436

Burdsall HH Jr, Dorworth EB (1994) Preserving cultures of wood-decaying Basidiomycotina using sterile distilled water in cryovials. Mycologia 86(2):275–280

Callan BE, Leal I, Foord B, Dennis JJ, van Oosten C (2007) Septoria musiva isolated from cankered stems in hybrid poplar stool beds, Fraser Valley, British Columbia. Pac Northwest Fungi 2(7):1–9

Cavallarin L, Andreu D, San Segundo S (1998) Cecropin A-derived peptides are potent inhibitors of fungal plant pathogens. Mol Plant Microbe Interact 11:218–227

Feau N, Mottet M-J, Périnet P, Hamelin RC, Bernier L (2010) Recent advances related to poplar leaf spot and canker caused by Septoria musiva. Can J Plant Pathol 32(2):122–134

Florack D, Allefs S, Bollen R, Bosch D, Visser B, Stiekema W (1995) Expression of giant silkmoth cecropin B genes in tobacco. Transgenic Res 4:132–141

Gao A, Hakimi SM, Mittanck CA, Wu Y, Woerner BM, Stark DM, Shah DM, Liang J, Rommens CMT (2000) Fungal pathogen protection in potato by expression of a plant defensin peptide. Nat Biotechnol 18:1307–1310

Govrin EM, Levine A (2000) The hypersensitive response facilitates plant infection by the necrotrophic pathogen Botrytis cinerea. Curr Biol 10:751–757

Häggman H, Raybould A, Borem A et al (2013) Genetically engineered trees for plantation forests: key considerations for environmental risk assessment. Plant Biotechnol J 11(7):785–798

Hancock REW, Lehrer R (1998) Cationic peptides: a new source of antibiotics. Trends Biotechnol 16:82–88

Haney EF, Hancock REW (2013) Peptide design for antimicrobial and immunomodulatory applications. Biopolymers 100(6):572–583

Harfouche A, Meilan R, Kirst M, Morgante M, Boerjan W, Sabatti M, Scarascia Mugnozza G (2012) Accelerating the domestication of forest trees in a changing world. Trends Plant Sci 17:64–72

Hightower R, Baden C, Penzes E, Dunsmuir P (1994) The expression of cecropin peptide in transgenic tobacco does not confer resistance to Pseudomonas syringae pv. tabaci. Plant Cell Rep 13:295–299

Hollick JB, Gordon MP (1993) A poplar tree proteinase inhibitor-like gene promoter is responsive to wounding in transgenic tobacco. Plant Mol Biol 22:561–572

Hollick JB, Gordon MP (1995) Transgenic analysis of a hybrid poplar wound-inducible promoter reveals developmental patterns of expression similar to that of storage protein genes. Plant Physiol 109:73–85

Huang Y, Liu H, Jia Z, Fang Q, Luo K (2012) Combined expression of antimicrobial genes (Bbchit1 and LJAMP2) in transgenic poplar enhances resistance to fungal pathogens. Tree Physiol 32:1313–1320

Jacobi V, Plourde A, Charest PJ, Hamelin RC (2000) In vitro toxicity of natural and designed peptides to tree pathogens and pollen. Can J Bot 78:455–461

JrRS Zalesny, Wiese AH, Bauer EO, Riemenschneider DE (2006) Sapflow of hybrid poplar (Populus nigra L. × P. maximowiczii A. Henry ‘NM6’) during phytoremediation of landfill leachate. Biomass Bioenergy 30:784–793

Kao KN, Michayluk MR (1975) Nutritional requirements for growth of Vicia hajastana cells and protoplasts at a very low population density in liquid media. Planta 126:105–110

Labrecque M, Teodorescu TI (2005) Field performance and biomass production of 12 willow and poplar clones in short-rotation coppice in southern Quebec (Canada). Biomass Bioenergy 29:1–9

Larson PI, Isebrands JG (1971) The plastochron index as applied to developmental studies of cottonwood. Can J For Res 1:1–11

Liang H, Maynard CA, Allen RD, Powell WA (2001) Increased Septoria musiva resistance in transgenic hybrid poplar leaves expressing a wheat oxalate oxidase gene. Plant Mol Biol 45:619–629

Liang H, Catranis CM, Maynard CA, Powell WA (2002) Enhanced resistance to the poplar fungal pathogen, Septoria musiva, in hybrid poplar clones transformed with genes encoding antimicrobial peptides. Biotechnol Lett 24:383–389

Liang H, Staton M, Xu Y, Xu T, LeBoldus J (2014) Comparative expression analysis of resistant and susceptible Populus clones inoculated with Septoria musiva. Plant Sci 223:69–78

Lo MH, Abrahamson LP, White EH, Manion PD (1995) Early measures of basal area and canker disease predict growth potential of some hybrid poplar clones. Can J Res 25:1113–1118

Marcos JF, Muñoz A, Párez-Payá E, Misra S, López-García B (2008) Identification and rational design of novel antimicrobial peptides for plant protection. Annu Rev Phytopathol 46:273–301

Marmiroli MF, Pietrini E, Maestri M, Zacchini N, Marmiroli A, Massacci A (2011) Growth, physiological and molecular traits in Salicaceae trees investigated for phytoremediation of heavy metals and organics. Tree Physiol 31:1319–1334

Matzke MA, Matzke AJM (1995) How and why do plants inactivate homologous (trans)genes? Plant Physiol 107:679–685

McDonald B (2010) How can we achieve durable disease resistance in agricultural ecosystems? New Phytol 185:3–5

McPhee JB, Hancock RE (2005) Function and therapeutic potential of host defence peptides. J Pept Sci 11(11):677–687

Medgyesy P, Menczel L, Maliga P (1980) The use of cytoplasmic streptomycin resistance: chloroplast transfer from Nicotiana tabacum into Nicotiana sylvestris, and isolation of their somatic hybrids. Mol Gen Genet 179:693–698

Minocha SC (2000) Optimization of the expression of a transgene in plants. In: Mohan Jain S, Minocha SC (eds) Molecular biology of woody plants. Kluwer, Dordrecht, pp 1–30

Miranda M, Ralph SG, Mellway R, White R, Heath MC, Bohlmann J, Constable CP (2007) The transcriptional response of hybrid poplar (Populus trichocarpa × P. deltoides) to infection by Melampsora medusae leaf rust involves induction of flavonoid pathway genes leading to the accumulation of proanthocyanidins. Mol Plant Microbe Interact 20:816–831

Mookherjee N, Chow LNY, Hancock REW (2012) Immunomodulatory cationic peptide therapeutics: a new paradigm in infection and immunity. In: Rajasekaran K, Cary JW, Jaynes JM, Montesinos E (eds) Small wonders: peptides for disease control. ACS Symposium Series 1095, Oxford University Press, Washington, pp 1–19

Mor A, Amiche M, Nicolas P (1994) Structure, synthesis, and activity of dermaseptin b, a novel vertebrate defensive peptide from frog skin: relationship with adenoregulin. Biochemistry 33:6642–6650

Mundt CC (2014) Durable resistance: a key to sustainable management of pathogens and pests. Infect Genet Evol 27:446–455

Murashige T, Skoog F (1962) A revised medium for rapid growth and bioassays with tobacco tissue cultures. Physiol Plant 15:473–497

Nicolas P, Amri CEI (2009) The dermaseptin superfamily: a gene-based combinatorial library of antimicrobial peptides. Biomembranes (BBA) 1788(8):1537–1550

Noël A, Levasseur C, Le VQ, Séguin A (2005) Enhanced resistance to fungal pathogens in forest trees by genetic transformation of black spruce and hybrid poplar with a Trichoderma harzianum endochitinase gene. Physiol Mol Plant Pathol 67:92–99

Ostry ME, McRoberts RE, Ward KT, Resendez R (1988) Screening hybrid poplars in vitro for resistance to leaf spot caused by Septoria musiva. Plant Dis 72:497–499

Osusky M, Zhou G, Osuska L, Hancock RE, Kay WW, Misra S (2000) Transgenic plants expressing cationic peptide chimeras exhibit broad-spectrum resistance to phytopathogens. Nat Biotechnol 18:1162–1166

Osusky M, Osuska L, Kay WW, Misra S (2005) Genetic modification of potato against microbial diseases: in vitro and in planta activity of a dermaseptin B1 derivative, MsrA2. Theor Appl Genet 111:711–722

Park YG, Son SH (1992) In vitro shoot regeneration from leaf mesophyll protoplasts of hybrid poplar (Populus nigra × P. maximowiczii). Plant Cell Rep 11:2–6

Rajasekaran K, Cary JW, Chlan CA, Jaynes JM, Bhatnagar D (2012) Strategies for controlling plant diseases and mycotoxin contamination using antimicrobial synthetic peptides. In: Rajasekaran K, Cary JW, Jaynes JM, Montesinos E (eds) Small wonders: peptides for disease control. ACS Symposium Series 1095. Oxford University Press, Washington, pp 295–316

Roedl A (2010) Production and energetic utilization of wood from short rotation coppice—a life cycle assessment. Int J Life Cycle Assess 15:567–578

Rommens CM (2004) All-native DNA transformation: a new approach to plant genetic engineering. Trends Plant Sci 9 (9):457–464

Sambrook J, Fritsch EF, Maniatis T (1989) Molecular cloning: a laboratory manual, 2nd edn. Cold Spring Harbor Laboratory Press, Cold Spring Harbor

Schnetkamp PPM, Kaupp UB, Junge W (1981) Interfacial potentials at the disk membranes of isolated intact cattle rod outer segments as a function of the occupation state of the intradiskal cation-exchange binding sites. Biomembranes (BBA) 642(2):213–230

Stanosz JC, Stanosz GR (2002) A medium to enhance identification of Septoria musiva from poplar cankers. For Path 32:145–152

Strauss S, Ma C, Ault K, Klocko AL (2016) Lessons from two decades of field trials with genetically modified trees in the USA: biology and regulatory c compliance. In: Vettori C et al (eds) Biosafety of forest transgenic trees. Springer, Dordrecht, pp 101–124

Yevtushenko DP, Misra S (2007) Comparison of pathogen-induced expression and efficacy of two amphibian antimicrobial peptides, MsrA2 and temporin A, for engineering wide-spectrum disease resistance in tobacco. Plant Biotechnol J 5:720–734

Yevtushenko DP, Misra S (2010) Efficient method for Agrobacterium-mediated transformation of commercial hybrid poplar Populus nigra L. × P. maximowiczii A. Henry. Plant Cell Rep 29:211–221

Yevtushenko DP, Misra S (2012) Transgenic expression of antimicrobial peptides in plants: Strategies for enhanced disease resistance, improved productivity, and production of therapeutics. In: Rajasekaran K, Cary JW, Jaynes JM, Montesinos E (eds) Small wonders: peptides for disease control. ACS Symposium Series 1095. Oxford University Press, Washington, pp 445–458

Yevtushenko DP, SidorovVA Romero R, Kay WW, Misra S (2004) Wound-inducible promoter from poplar is responsive to fungal infection in transgenic potato. Plant Sci 167:715–724

Yevtushenko DP, Romero R, Forward BS, Hancock RE, Kay WW, Misra S (2005) Pathogen-induced expression of a cecropin A-melittin antimicrobial peptide gene confers antifungal resistance in transgenic tobacco. J Exp Bot 56:1685–1695

Yi JY, Seo HW, Yang MS, Robb EJ, Nazar RN, Lee SW (2004) Plant defense gene promoter enhances the reliability of shiva-1 gene-induced resistance to soft rot disease in potato. Planta 220:165–171

Zasloff M (2002) Antimicrobial peptides of multicellular organisms. Nature 415:389–395