Mentha longifolia; horsemint; allelopathy; actin; weed control
Abstract :
[en] Weed control tries to suppress competitors for a crop and often relies on differential intoxication, making use of differences in uptake, development, or metabolism. We explored the possibility of using natural signals to shift competition in favour of the crop. Using the competitive horsemint (Mentha longifolia) as a paradigm, we showed that essential oils from certain mint species suppress the seedling development of different target species in a specific and efficient manner. The specificity concerned both the donor and the receptor. We demonstrated further that the effect of horsemint oil was specific for actin filaments, and not for microtubules. Since the elimination of actin will impair auxin transport, which is essential for root regeneration in vegetatively propagating weeds, we tested the efficacy of horsemint essential oil in combination with a slow-release carrier against field bindweed (Convolvulus arvensis), a pertinent weed in organic cereal production. We observed that the development of this weed can be specifically blocked, especially if the carrier is worked into the soil. We propose that allelopathic interactions, often relying on manipulative chemical signalling, harbour significant potential for organic weed control.
Disciplines :
Agriculture & agronomy Chemistry
Author, co-author :
Sarheed, Mohammed; Botanical Institute, Karlsruhe Institute of Technology, Karlsruhe, Germany
Schärer, Hans-Jakob; Research Institute of Organic Agriculture (FiBL), Frankfurt am Main, Germany
Wang-Müller, Qiyan; Swiss Chinese Herbal Medicine and Functional Food Innovation Center, Zurich, Switzerland
Flury, Pascale; Research Institute of Organic Agriculture (FiBL), Frankfurt am Main, Germany
Maes, Chloé ; Université de Liège - ULiège > Université de Liège - ULiège
Genva, Manon ; Université de Liège - ULiège > Département GxABT > Chimie des agro-biosystèmes
Fauconnier, Marie-Laure ; Université de Liège - ULiège > TERRA Research Centre > Chimie des agro-biosystèmes
Nick, Peter; Botanical Institute, Karlsruhe Institute of Technology, Karlsruhe, Germany
Language :
English
Title :
Signal, Not Poison-Screening Mint Essential Oils for Weed Control Leads to Horsemint
Publication date :
18 March 2023
Journal title :
Agriculture
eISSN :
2077-0472
Publisher :
Multidisciplinary Digital Publishing Institute (MDPI), Switzerland
Flessner M.L. Burke I.C. Dille J.A. Everman W.J. VanGessel M.J. Tidemann B. Manuchehri M.R. Soltani N. Sikkema P.H. Potential wheat yield loss due to weeds in the United States and Canada Weed Technol. 2021 35 916 923 10.1017/wet.2021.78
Hoppe J.H. Strategies and perspectives of weed and weed-grass control in maize in northern Germany Planzenschutz-Nachr. Bayer 1998 51 175 182
Pimentel D. Green revolution agriculture and chemical hazards Sci. Total Environ. 1996 188 S86 S98 10.1016/0048-9697(96)05280-1 8966546
Anthony R.G. Waldin T.R. Ray J.A. Bright S.W. Hussey P.J. Herbicide resistance caused by spontaneous mutation of the cytoskeletal protein tubulin Nature 1998 393 260 263 10.1038/30484
Dayan F.E. Owens D.K. Duke S.O. Rationale for a natural products approach to herbicide discovery Pest Manag. Sci. 2012 68 519 528 10.1002/ps.2332
Macias F.A. Molinillo J.M.G. Varela R.M. Galindo J.C.G. Allelopa-thy—A natural alternative for weed control Pest. Manag. Sci. 2007 63 327 348 10.1002/ps.1342
Singh H.P. Batish D.R. Kohli R.K. Allelopathic interactions and allelo-chemicals: New possibilities for sustainable weed management Crit. Rev. Plant Sci. 2003 22 239 311 10.1080/713610858
Cheng F. Cheng Z. Research Progress on the use of Plant Allelopathy in Agriculture and the Physiological and Ecological Mechanisms of Allelopathy Front. Plant Sci. 2015 6 1020 10.3389/fpls.2015.01020
Travlos I. Rapti E. Gazoulis I. Kanatas P. Tataridas A. Kakabouki I. Pa-pastylianou P. The Herbicidal Potential of Different Pelargonic Acid Products and Es-sential Oils against Several Important Weed Species Agronomy 2020 10 1687 10.3390/agronomy10111687
Pavela R. Benelli G. Essential Oils as Ecofriendly Biopesticides? Challenges and Constraints Trends Plant Sci. 2016 21 1000 1007 10.1016/j.tplants.2016.10.005
Werrie P. Durenne B. Delaplace P. Fauconnier M. Phytotoxicity of Essential Oils: Opportunities and Constraints for the Development of Biopesticides. A Review Foods 2021 9 1291 10.3390/foods9091291
Šoln K. Klemenčič M. Koce J.D. Plant cell responses to allelopathy: From oxidative stress to programmed cell death Protoplasma 2022 259 1111 1124 10.1007/s00709-021-01729-8 34993622
Lam E. Controlled cell death, plant survival and development Nat. Rev. Mol. Cell Biol. 2004 5 305 315 10.1038/nrm1358 15071555
Singh P. Pandey A.K. Prospective of Essential Oils of the Genus Mentha as Biopesticides: A Review Front. Plant Sci. 2018 9 1295 10.3389/fpls.2018.01295 30250476
Bajalan I. Zand M. Rezaee S. The study on allelopathic effects of Mentha longifolia on seed germination of velvet flower and two cultivars of wheat Int. Res. J. Appl. Basic Sci. 2013 4 2539 2543
Shakir W.M. Ibrahim N.S. Nasser N.S. Ali A.S. The Allelopathic Effect of The Mentha longifolia Aqueous Extract on The Germination and Growth of Cicer arietinum L Nat. Volatiles Essent. Oils 2021 8 2010 2017
Skrzypek E. Repka P. Stachurska-Swakon A. Barabasy-Krasny B. Mozdzen K. Allelopathic effect of aqueous extracts from the leaves of peppermint (Mentha × piperita L.) on selected physiological processes of common sunflower (Helianthus annuus L.) Not. Bot. Horti Agrobot. Cluj-Napoca 2015 43 335 342 10.15835/nbha43210034
Stüner T. Kordali S. Bozhüyük A.U. Herbicidal and Fungicidal Effects of Cuminum cyminum, Mentha longifolia and Allium sativum Essential Oils on Some Weeds and Fungi Rec. Nat. Prod. 2018 12 619 629 10.25135/rnp.80.18.05.106
Sarheed M.M. Rajabi F. Kunert M. Boland W. Wetters S. Miadowitz K. Kaźmierczak A. Sahi V.P. Nick P. Cellular Base of Mint Allelopathy: Menthone Affects Plant Microtubules Front. Plant Sci. 2020 11 546345 10.3389/fpls.2020.546345
Kumagai F. Yoneda A. Tomida T. Sano T. Nagata T. Hasezawa S. Fate of nascent microtubules organized at the M/G1 interface, as visualized by synchronized tobacco BY-2 cells stably expressing GFP-tubulin: Time-sequence observations of the reorganization of cortical microtubules in living plant cells Plant Cell Physiol. 2001 42 723 732 10.1093/pcp/pce091
Sano T. Higaki T. Oda Y. Hayashi T. Hasezawa S. Appearance of actin microfilament ‘twin peaks’ in mitosis and their function in cell plate formation, as visualized in tobacco BY-2 cells expressing GFP–fimbrin Plant J. 2005 44 595 605 10.1111/j.1365-313X.2005.02558.x 16262709
Nick P. Han M. An G. Auxin stimulates its own transport by actin reorganization Plant Physiol. 2009 151 155 167 10.1104/pp.109.140111
Lin C. Sauter M. Polar Auxin Transport Determines Adventitious Root Emergence and Growth in Rice Front. Plant Sci. 2019 10 444 10.3389/fpls.2019.00444 31024605
Ethridge S.R. Post A. Devkota P. Mulvaney M.J. Leon R.G. Characterization of carinata tolerance to select herbicides using field dose-response studies Weed Technol. 2021 35 957 966 10.1017/wet.2021.57
Cheam A.H. Storrie A.M. Koetz E.A. Holding D.J. Bowcher A.J. Barker J.A. Managing Wild Radish and Other Brassicaceous Weeds in Australian Cropping Systems CRC for Australian Weed Management Adelaide, Australia 2008
Horse Mint Oil Available online: https://www.alibaba.com/product-detail/Horse-mint-oil-Mentha-longifolia-oil_60562489559.html (accessed on 18 November 2022)
Odeyemi O.O. Yakubu M.T. Masika P.J. Afolayan A.J. Toxicological Evaluation of the Essential Oil from Mentha longifolia L. subsp. capensis Leaves in Rats J. Med. Food 2009 12 669 674 10.1089/jmf.2008.0136
Environmental Protection Agency, Datasheet 00027 1987 Available online: https://cfpub.epa.gov/ncea/iris2/chemicalLanding.cfm?substance_nmbr=27 (accessed on 18 November 2022)
Maes C. Bouquillon S. Fauconnier M.-L. Encapsulation of Essential Oils for the Development of Biosourced Pesticides with Controlled Release: A Review Molecules 2019 24 2539 10.3390/molecules24142539
Chaimovitsh D. Abu-Abied M. Belausov E. Rubin B. Dudai N. Sadot E. Microtubules are an intracellular target of the plant terpene citral Plant J. 2010 61 399 408 10.1111/j.1365-313X.2009.04063.x
Chaimovitsh D. Shachter A. Abu-Abied M. Rubin B. Sadot E. Dudai N. Herbicidal Activity of Monoterpenes Is Associated with Disruption of Microtubule Functionality and Membrane Integrity Weed Sci. 2016 65 19 30 10.1614/WS-D-16-00044.1
Patonay K. Németh-Zámboriné E. Horsemint as a potential raw material for the food industry: Survey on the chemistry of a less studied mint species Phytochem. Rev. 2020 20 631 652 10.1007/s11101-020-09718-0
Bühler K. Sprachtheorie Die Darstellungsfunktion der Sprache 1934 Gustav Fischer Jena, Germany 1934
Peier A.M. Moqrich A. Hergarden A.C. Reeve A.J. Andersson D.A. Story G.M. Earley T.J. Dragoni I. McIntyre P. Bevan S. et al. A TRP Channel that Senses Cold Stimuli and Menthol Cell 2002 108 705 715 10.1016/S0092-8674(02)00652-9
Oliver C.L. Miranda M.B. Shangary S. Land S. Wang S. Johnson D.E. (−)-Gossypol acts directly on the mitochondria to overcome Bcl-2- and Bcl-X(L)-mediated apoptosis resistance Mol. Cancer Ther. 2005 4 23 31 10.1158/1535-7163.23.4.1 15657350
Nagashima A. Higaki T. Koeduka T. Ishigami K. Hosokawa S. Watanabe H. Matsui K. Hasezawa S. Touhara K. Transcriptional regulators involved in responses to volatile organic compounds in plants J. Biol. Chem. 2019 294 2256 2266 10.1074/jbc.RA118.005843 30593507
Pauwels L. Barbero G.F. Geerinck J. Tilleman S. Grunewald W. Pérez A.C. Chico J.M. Bossche R.V. Sewell J. Gil E. et al. NINJA connects the co-repressor TOPLESS to jasmonate signalling Nature 2010 464 788 791 10.1038/nature08854 20360743
An C. Deng L. Zhai H. You Y. Wu F. Zhai Q. Goossens A. Li C. Regulation of jasmonate signaling by reversible acetylation of TOPLESS in Arabidopsis Mol. Plant 2022 15 1329 1346 10.1016/j.molp.2022.06.014
Frank L. Wenig M. Ghirardo A. van der Krol A. Vlot A.C. Schnitzler J. Rosenkranz M. Isoprene and β-caryophyllene confer plant resistance via different plant internal signalling pathways Plant Cell Environ. 2021 44 1151 1164 10.1111/pce.14010
Q94AI7 Available online: https://www.uniprot.org/uniprotkb/Q94AI7/entry (accessed on 15 March 2023)