Interaction of a <i>Myrothecium verrucaria</i> Mycelial Preparation and a Glyphosate Product for Controlling Redvine (<i>Brunnichia ovata</i>) and Trumpet Creeper (<i>Campsis radicans</i>) — Oak Academic Publishing
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Interaction of a <i>Myrothecium verrucaria</i> Mycelial Preparation and a Glyphosate Product for Controlling Redvine (<i>Brunnichia ovata</i>) and Trumpet Creeper (<i>Campsis radicans</i>)
USDA-ARS, Biological Control of Pests Research Unit, Stoneville, MS, USA
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USDA-ARS, Crop Production and Systems Research Unit, Stoneville, MS, USA
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USDA-ARS, Crop Production and Systems Research Unit, Stoneville, MS, USA
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USDA-ARS, Biological Control of Pests Research Unit, Stoneville, MS, USA
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USDA-ARS, Biological Control of Pests Research Unit, Stoneville, MS, USA
1 USDA-ARS, Biological Control of Pests Research Unit, Stoneville, MS, USA
2 USDA-ARS, Crop Production and Systems Research Unit, Stoneville, MS, USA
3 USDA-ARS, Crop Production and Systems Research Unit, Stoneville, MS, USA
4 USDA-ARS, Biological Control of Pests Research Unit, Stoneville, MS, USA
5 USDA-ARS, Biological Control of Pests Research Unit, Stoneville, MS, USA
A mycelial formulation of the bioherbicidal fungus Myrothecium verrucaria (Alb. & Schwein.) Ditmar: Fr. (MV) was tested alone and in combination with a commercially available glyphosate [ N -( phosphonomethyl )glycine] (GLY) product for controlling the invasive vines, redvine [ Brunnichia ovata (Walt.) Shinners], and trumpet creeper [ Campsis radicans (L.) Seem. ex Bureau] in field experiments conducted near Stoneville, MS. Several application timing regimens were evaluated (Fall, Spring, Fall + Spring, and Spring + Fall). We found that a Fall + Spring application of MV + GLY controlled redvine and trumpet creeper by 95%, 12 days after the second treatment, through a synergistic interaction of the fungus and glyphosate. Disease symptomatology was characterized by rapid necrosis of leaf and stem tissues, with mortality occurring within 72 h. Neither glyphosate alone, nor MV alone, effectively controlled either weed species under any application timing regimen. No visual disease or herbicide damage occurred on glypho sate-resistant soybean plants in the treated test plots. These results suggest that some formulations of glyphosate, mixed with the bioherbicide MV, can effectively control redvine and trumpet creeper, two of the most troublesome weeds in the row crops of the Mississippi Delta region in the mid-southern U.S.
Elmore, C.D. (1984) Perennial Vines in the Delta of Mississippi. In: Mississippi Agricultural & Forestry Experiment Station Bulletin 927, Mississippi State University, Mississippi State, 9.
Duke, S.O. (2018) The History and Current Status of Glyphosate. Pest Management Science, 74, 1027-1034. https://doi.org/10.1002/ps.4652
Chachalis, D. and Reddy, K.N. (2000) Factors Affecting Campsis radicans Seed Germination and Seedling Emergence. Weed Science, 48, 212-216. https://doi.org/10.1614/0043-1745(2000)048[0212:FACRSG]2.0.CO;2
Chachalis, D., Reddy, K.N. and Elmore, C.D. (2001) Characterization of Leaf Surface, Wax Composition, and Control of Redvine and Trumpet Creeper with Glyphosate. Weed Science, 49, 156-163. https://doi.org/10.1614/0043-1745(2001)049[0156:COLSWC]2.0.CO;2
Reddy, K.N. and Chachalis, D. (2004) Redvine (Brunnichia ovata) and Trumpet creeper (Campsis radicans) Management in Glufosinate- and Glyphosate-Resistant Soybean. Weed Technology, 18, 1058-1064. https://doi.org/10.1614/WT-03-234R1
Hoagland, R.E. (1990) Microbes and Microbial Products as Herbicides. American Chemical Society Symposium Series No. 439. ACS Books, Washington DC. https://doi.org/10.1021/bk-1990-0439
TeBeest, D.O. (1991) Microbial Control of Weeds. Chapman and Hall, New York. https://doi.org/10.1007/978-1-4615-9680-6
Rosskopf, E. (1999) Use of Plant Pathogens in Weed Control. In: Handbook of Weed Control, Academic Press, New York, 891-911. https://doi.org/10.1016/B978-012257305-7/50082-5
Charudattan, R. (2001) Biological Control of Weeds by Means of Plant Pathogens: Significance for Integrated Weed Management in Modern Agro-Ecology. BioControl, 46, 229-260. https://doi.org/10.1023/A:1011477531101
Charudattan, R. (2005) Ecological, Practical, and Political Inputs into Selection of Weed Targets: What Makes a Good Biological Control Target? Biological Control, 35, 183-196. https://doi.org/10.1016/j.biocontrol.2005.07.009
Weaver, M.A., Lyn, M.E., Boyette, C.D. and Hoagland, R.E. (2007) Bioherbicides for Weed Control. In: Upadhyaya, M.K. and Blackshaw, R.E., Eds., Non-Chemical Weed Management, CAB International, New York, 93-110. https://doi.org/10.1079/9781845932909.0093
Glare, T., Caradus, J., Gelemter, W., Jackson, T., Keyhani, N., Kohl, J., Marrone, P., Morin, L. and Stewart, A. (2012) Have Biopesticides Come of Age? Trends in Biotechnology, 30, 250-258. https://doi.org/10.1016/j.tibtech.2012.01.003
Boyetchko, S.M., Rosskopf, E.N., Caesar, A.J. and Charudattan, R. (2002) Biological Weed Control with Pathogens: Search for Candidates to Applications. In: Khachatourians, G.G. and Arora, D.K., Eds., Applied Mycology and Biotechnology, Volume 2, Elsevier, Amsterdam, 239-274. https://doi.org/10.1016/S1874-5334(02)80013-2
Hoagland, R.E. (2001) Microbial Allelochemicals and Pathogens as Bioherbicidal Agents. Weed Technology, 15, 835-857. https://doi.org/10.1614/0890-037X(2001)015[0835:MAAPAB]2.0.CO;2
Boyetchko, S. and Peng, G. (2004) Challenges and Strategies for Development of Mycoherbicides. In: Arora, D.K., Ed., Fungal Biotechnology in Agricultural, Food, and Environmental Applications, Marcel Dekker, New York, 11-121. https://doi.org/10.1201/9780203913369.ch10
Hallett, S.G. (2005) Where Are the Bioherbicides? Weed Science, 53, 404-415. https://doi.org/10.1614/WS-04-157R2
Duke, S.O., Scheffler, B.E., Boyette, C.D. and Dayan, F.E. (2015) Biotechnology in Weed Control. In: Kirk-Othmer, Ed., Encyclopedia of Chemical Technology, John Wiley & Sons, Inc., New York, 1-25. https://doi.org/10.1002/0471238961.herbduke.a01.pub2
Hoagland, R.E. and Boyette, C.D. (2016) Controlling Herbicide-Susceptible, -Tolerant and -Resistant Weeds with Microbial Bioherbicides. Outlooks on Pest Management, 27, 256-266. https://doi.org/10.1564/v27_dec_04
Walker, H.L. and Tilley, A.M. (1997) Myrothecium verrucaria from Sicklepod (Senna obtusifolia) as a Potential Mycoherbicide Agent. Biological Control, 10, 104-112. https://doi.org/10.1006/bcon.1997.0559
Boyette, C.D., Hoagland, R.E. and Stetina, K.C. (2014) Biological Control of the Weed Hemp Sesbania (Sesbania exaltata) in Rice (Oryza sativa) by the Fungus Myrothecium verrucaria. Agronomy, 4, 74-89. https://doi.org/10.3390/agronomy4010074
Boyette, C.D., Walker, H.L. and Abbas, H.K. (2001) Control of Kudzu with a Fungal Pathogen Derived from Myrothecium verrucaria. U.S. Patent No. 6,274,534.
Boyette, C.D., Walker, H.L. and Abbas, H.K. (2002) Biological Control of Kudzu (Pueraria lobata) with an Isolate of Myrothecium verrucaria. Biocontrol Science and Technology, 11, 75-82. https://doi.org/10.1080/09583150120093031
Hoagland, R.E., Weaver, M.A. and Boyette, C.D. (2007) Myrothecium verrucaria: Bioherbicide, and Strategies to Reduce Its Non-Target Risks. Allelopathy Journal, 19, 179-192.
Weaver, M.A., Boyette, C.D. and Hoagland, R.E. (2012) Bioherbicidal Activity from Washed Spores of Myrothecium verrucaria. World Journal of Microbiology and Biotechnology, 28, 1941-1946. https://doi.org/10.1007/s11274-011-0996-8
Weaver, M.A., Boyette, C.D, and Hoagland, R.E. (2016) Rapid Kudzu Eradication and Switchgrass Establishment through Herbicide, Bioherbicide and Integrated Programs. Biocontrol Science and Technology, 26, 640-650. https://doi.org/10.1080/09583157.2016.1141175
Boyette, C.D., Reddy, K.N. and Hoagland, R.E. (2006) Glyphosate and Bioherbicide Interaction for Controlling Kudzu (Pueraria lobata), Redvine (Brunnichia ovata), and Trumpet Creeper (Campsis radicans). Biocontrol Science and Technology, 16, 1067-1077. https://doi.org/10.1080/09583150600828742
Boyette, C.D., Hoagland, R.E., Weaver, M.A. and Reddy, K.N. (2008a) Redvine (Brunnichia ovata) and Trumpetcreeper (Campsis radicans) Controlled under Field Conditions by a Synergistic Interaction of the Bioherbicide Myrothecium verrucaria and Glyphosate. Weed Biology and Management, 8, 39-45. https://doi.org/10.1111/j.1445-6664.2007.00272.x
Mortimer, P.H., Campbell, J., DiMenna, M. and White, E.P. (1971) Experimental Myrotheciotoxicosis and Poisoning in Ruminants by Verrucarin A and Roridin A. Research in Veterinary Science, 12, 508-515. https://doi.org/10.1016/S0034-5288(18)34104-3
Jarvis, B.B., Pavanasasivam, G. and Bean, G.A. (1985) Mycotoxin Production from Myrothecium Species. In: Lacey, J., Ed., Trichothecenes and Other Mycotoxins, J. Wiley, New York, 221-231.
Abbas, H.K., Johnson, B.B., Shier, W.T., Tak, H., Jarvis, B.B. and Boyette, C.D. (2002) Phytotoxicity and Mammalian Toxicity of Macrocyclic Trichothecene Mycotoxins from Myrothecium verrucaria. Phytochemistry, 59, 309-313. https://doi.org/10.1016/S0031-9422(01)00464-2
Hoagland, R.E., Boyette, C., Douglas, Weaver, Mark, A. and Abbas, H.K. (2007) Bioherbicides: Research and Risks. Toxin Reviews, 26, 313-342. https://doi.org/10.1080/15569540701603991
Boyette, C.D., Weaver, M.A., Hoagland, R.E. and Stetina, K.C. (2008) Submerged Culture of a Mycelial Formulation of a Bioherbicidal Strain of Myrothecium verrucaria with Mitigated Mycotoxin Production. World Journal of Microbiology and Biotechnology, 24, 2721-2726. https://doi.org/10.1007/s11274-008-9759-6
Boyette, C.D. and Hoagland, R.E. (2007) Evaluation of the Bioherbicide Myrothecium verrucaria for Weed Control in Tomato (Lycopersicon esculentum). Biocontrol Science and Technology, 17, 171-178. https://doi.org/10.1080/09583150600937451
Hoagland, R.E., McCallister, T.S., Boyette, C.D., Weaver, M.A. and Beecham, R.V. (2011) Effects of Myrothecium verrucaria on Morning-Glory (Ipomoea) Species. Allelopathy Journal, 27, 151-162.
Hoagland, R.E., Teaster, N.D. and Boyette, C.D. (2013) Bioherbicidal Effects of Myrothecium verrucaria on Glyphosate-Resistant and -Susceptible Palmer Amaranth Biotypes. Allelopathy Journal, 31, 367-376.
Hoagland, R.E., Boyette, C.D. Jordan, R.H. and Stetina, K.C. (2018) Interaction of the Bioherbicide Myrothecium verrucaria with Technical-Grade Glyphosate on Glyphosate-Susceptible and -Resistant Palmer Amaranth. American Journal of Plant Sciences, 9, 2306-2319. https://doi.org/10.4236/ajps.2018.911167
Steele, R.G.D., Torrey, J.H. and Dickeys, D.A. (1997) Multiple Comparisons. In: Principles and Procedures of Statistics: A Biometrical Approach, McGraw Hill, New York, 666 p.
Colby, S.R. (1967) Calculating Synergistic and Antagonistic Responses of Herbicide Combinations. Weeds, 15, 20-22. https://doi.org/10.2307/4041058
Gisi, U., Binder, H. and Rimbach, E. (1985) Synergistic Interactions of Fungicides with Different Modes of Action. Transactions of the British Mycological Society, 85, 299-306. https://doi.org/10.1016/S0007-1536(85)80192-3
Sharon, A., Amsellem, Z. and Gressel, J. (1992) Glyphosate Suppression of an Elicited Defense Response. Plant Physiology, 98, 654-659. https://doi.org/10.1104/pp.98.2.654
Peng, G. and Byer, K.N. (2005) Interactions of Pyricularia setariae with Herbicides for Control of Green Foxtail (Setaria viridis). Weed Technology, 19, 589-598. https://doi.org/10.1614/WT-04-130R.1
Mitchell, J.K., Yerkes, C.N., Racine, S.R. and Lewis, E.H. (2008) The Interaction of Two Potential Fungal Bioherbicides and a Sub-Lethal Rate of Glyphosate for the Control of Shattercane. Biological Control, 46, 391-399. https://doi.org/10.1016/j.biocontrol.2008.02.009
Peng, G. and Wolf, T.M. (2011) Herbicide-Microbial Synergy for Improved Weed Control. Pest Technology, 5, 18-27.
Boyette, C.D., Hoagland, R.E. and Weaver, M.A. (2008) Interaction of a Bioherbicide and Glyphosate for Controlling Hemp Sesbania in Glyphosate-Resistant Soybean. Weed Biology and Management, 8, 18-24. https://doi.org/10.1111/j.1445-6664.2007.00269.x
Weaver, M.A., Jin, X., Hoagland, R.E. and Boyette, C.D. (2009) Improved Bioherbicidal Efficacy by Myrothecium verrucaria via Spray Adjuvants or Herbicide Mixtures. Biological Control, 50, 150-156. https://doi.org/10.1016/j.biocontrol.2009.03.007