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Ants and Sustainable Agriculture

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Sustainable Agriculture Volume 2

Abstract

60% of the world’s ecosystems are not used in a sustainable way. Modern agriculture is blamed for declining soil carbon and biodiversity. Climate change, habitat fragmentation and other obstacles impede the movement of many animal species, and distribution changes are projected to continue. Therefore, we need alternative management strategies. The colony organisation of social insects, especially of ants, is seen as a model to design an improved agricultural management, because ants are very experienced agriculturists. Ants represent half of the global insect biomass. Their individuals work like a super organism. This article focuses on harvester and leaf cutter ants by considering Lasius species. It reviews the organisation structure of social ant communities. Harvester and leaf cutter ants represent a high percentage of the worldwide ant societies. They collect plant saps with carbon nitrogen (C/N) ratios of about 40 for their own nourishment and leaf fragments with C/N ratios of about 100 for fungi gardens and brood nourishment. They sustain huge numbers of individuals with their low N-based organic imports and their colony commensalisms enable them to convert these polymers into lower molecular, partly volatile compounds, adenosinetriphosphate (ATP), and heat. Digging improves water infiltration, drainage and soil aeration. Ants maintain fungi as a food source for the scleroproteinous brood, carry out food preservation, infection control and waste management, and construct with endurance new nests and rebuild them after damage. All these activities move the nest sites far away from the thermodynamic equilibrium. Physical, chemical and biological gradients emerge and the growing populations, together with nest-penetratingmycorrhized plant roots, absorb the released nutrients and form biomass by lowering energy flows into potentially strong consumer- resource interactions or runaway consumptions. The plant material import of leaf cutter ants, rich in carbon but low in proteins, amounts to 85–470 kg dry weight per year. It keeps the electron donor/acceptor ratio in favour of the electron donor so that denitrifiers can reduce nitrate predominantly to N2. Ants living in highly N-polluted areas bind the pollutant in the cuticle. In their low N-input environments harvester, leaf cutter and honeydew-sucking ants furnish the N demand of adult ants with the help of N2-fixing bacteria. The low N-input management of harvester, leaf cutter and honeydew-sucking ants is therefore a resourceful concept for approaching a highly productive agriculture by avoiding soil carbon decline and N2O emissions increase.

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References

  • Addiscott T.M. (1995) Entropy and sustainability, Eur. J. Soil Sci. 46, 161–168.

    Article  Google Scholar 

  • Alonso L.E., Agosti D. (2000) Biodiversity studies, monitoring, and ants: an overview, in: Agosti D., Maijer J.D., Alonso L.E., Schultz T.R., Ants – Standard methods for measuring and monitoring biodiversity, Smithonsian Institution Press, Washington, pp. 1–8.

    Google Scholar 

  • Balasubramani G., Kannaiyan S. (1991) Natural spread of A.  caulinodans in stem nodulating S. rostrata, INSURF Netwatch 1, 5–6.

    Google Scholar 

  • Banschbach V.S., Levit N., Herbers J.M. (1997) Nest temperatures and thermal preferences of a forest ant species: is seasonal polydomy a thermoregulatory mechanism? Insect. Soc. 44, 109–122.

    Google Scholar 

  • Ben-Jacob E. (2003) Bacterial self-organization: co-enhancement of complexification and adaptability in a dynamic environment, Philos. T. Math., Phys. Eng. Sci. 361, 1283–1312.

    Google Scholar 

  • Benckiser G. (1997) Organic inputs and soil metabolism, in: Benckiser G. (Ed.), Fauna in soil ecosystems – recycling processes, nutrient fluxes, and agricultural production. Marcel Dekker, New York, pp. 7–62.

    Google Scholar 

  • Benckiser G. (2007) Principles behind order and sustainability in natural successions and agriculture, in: Benckiser G., Schnell S. (Eds.), Biodiversity in agricultural production systems. CRC, Taylor and Francis, Boca Raton, Florida, pp. 349–383.

    Google Scholar 

  • Benckiser G., Schnell S. (Eds.) (2007) Biodiversity in agricultural production systems. CRC, Taylor and Francis, Boca Raton, USA.

    Google Scholar 

  • Bollazzi M., Roces F. (2007) To build or not to build: circulating dry air organizes collective building for climate control in the leaf-cutting ant Acromyrmex ambiguous, Anim. Behav. 74, 1349–1355.

    Article  Google Scholar 

  • Bollazzi M., Kronenbitter J., Roces F. (2008) Soil temperature, digging behaviour, and the adaptive value of nest depth in South American species of Acromyrmex leaf-cutting ants, Oecologia 158, 165–175.

    Article  PubMed  Google Scholar 

  • Braschler B.M. (2005) Effects of experimental small-scale grassland fragmentation on the population dynamics of invertebrates, Ph.D. thesis, University of Basel, Switzerland.

    Google Scholar 

  • Brussard L., de Ruiter P.C., Brown G.G. (2007) Soil biodiversity for agricultural sustainability, Agr. Ecosyt. Environ. 121, 233–244.

    Article  Google Scholar 

  • Bucher E.H., Marchesini V. (2004) Herbivory by leaf-cutting ants: nutrient balance between harvested and refuse material, Biotropica. 36, 327–332.

    Google Scholar 

  • Cannon C.A. (1998) Nutritional Ecology of the Carpenter Ant Camponotus pennsylvanicus (De Geer): Macronutrient Preference and Particle Consumption. Dissertation submitted to the Faculty of the Virginia Polytechnic Institute and State University in partial fulfillment of the requirements for the degree of Doctor of Philosophy in Entomology, Blacksburg, Virginia scholar lib.vt.edu/theses/ available/ etd-110398-001812/ unrestricted/Dissertation-etd.PDF.

    Google Scholar 

  • Currie C.R., Scott J.A., Summerbell R.C., Malloch D. (1999) Fungus-growing ants use antibiotic producing bacteria to control garden parasites, Nature 398, 701–704.

    Article  CAS  Google Scholar 

  • Crutzen P.J., Mosier A.R., Smith K.A., Winiwarter W. (2007) N2O release from agro-biofuel production negates global warming reduction by replacing fossil fuels, Atm. Chem. Phys. Discus. 7, 11191–112055.

    Article  Google Scholar 

  • Dauber J. (2001) Ant communities of an agricultural landscape: Relationships to landscape structure and land-use management, Ph.D. thesis, Justus Liebig- University of Giessen, Germany, 120 p.

    Google Scholar 

  • Dauber J., Purtauf T., Allspach A., Frisch J., Voigtländer K., Wolters V. (2005) Local vs. landscape controls on diversity: a test using surface-dwelling soil macro-invertebrates of differing mobility, Global Ecol. Biogeogr. 14, 213–221.

    Google Scholar 

  • D’Ettorre P., Mora P., Dibangou V., Rouland C., Errard, C. (2001) The role of the symbiotic fungus in the digestive metabolism of two species of fungus-growing ants, J. Comp. Physiol. B 172, 169–176.

    Google Scholar 

  • Detrain C., Deneubourg J.L. (2006) Self-organized structures in a superorganism: do ants “behave” like molecules? Phys. Life Rev. 3, 162–187.

    Article  Google Scholar 

  • Duxbury J.M., Bouldin D.R., Terry R.E., Tate III R.L. (1982) Emissions of nitrous oxide from soils, Nature 298, 462–464.

    Article  CAS  Google Scholar 

  • Falkowski P.G., Fenchel T., Delong E.F. (2008) The microbial engines that drive earth’s biochemical cycles, Science 320, 1034–1039.

    Article  PubMed  CAS  Google Scholar 

  • Fargione J., Hill J., Tilman D., Polasky S., Hawthrone P. (2008) Land clearing and the biofuel carbon debt. Science 319, 1235–1238.

    Article  PubMed  CAS  Google Scholar 

  • Fillman D.A., Sterling W.L. (1985) Inactivation Level for the red imported fire ant, Solenopsis invicta (Hym: Formicidae): a predator of the boll weevil, anthomonas grande (Col.: Curculionidae), Agr. Ecosyst. Environ. 13, 93–122.

    Article  Google Scholar 

  • Fischer M.K., Hoffmann K., Völkl W. (2001) Competition for mutualists in an ant-homopteran interaction mediated by hierachies of ant attendance, Oikos 92, 531–541.

    Article  Google Scholar 

  • Franken P., George E. (2007) Diversity of arbuscular mycorrhizal fungi, in: Benckiser G., Schnell S. (Eds.), Biodiversity in agricultural production systems, CRC, Taylor and Francis, Boca Raton, Florida, pp. 189–203.

    Google Scholar 

  • Gómez-Gómez L., Boller T. (2002) Flagellin perception: a paradigm for innate immunity, Trends Plant Sci. 7, 251–256.

    Article  PubMed  Google Scholar 

  • Gordon D.M. (2007) Control without hierarchy, Nature 446, 1433.

    Article  Google Scholar 

  • Green A.M., Mueller U.G., Adams R.M.M. (2002) Extensive exchange of fungal cultivars between sympatric species of fungus-growing ants, Mol. Ecol. 11, 191–195.

    CAS  Google Scholar 

  • Herz H., Hölldobler B., Roce F. (2008) Delayed rejection in a leaf-cutting ant after foraging on plants unsuitable for the symbiotic fungus, Behav. Ecol. 19, 575–582

    Google Scholar 

  • Hölldobler B., Wilson E.O. (1990) The ants. Springer, Heidelberg, 732 p.

    Google Scholar 

  • Hölldobler B., Wilson E.O. (2009) The superorganism, W.W. Norton & Company, Inc., New York, 522 p.

    Google Scholar 

  • Honermeier B. (2007) Diversity in crop production systems, in: Benckiser G., Schnell S. (Eds.), Biodiversity in Agricultural Production Systems, CRC, Taylor & Francis, Boca Raton, pp. 1–19.

    Google Scholar 

  • Houlton B.Z., Wang Y.P., Vitousek P.M., Field C.B. (2008) A unifying framework for dinitrogen fixation in the terrestrial biosphere, Nature 454, 327–331.

    Article  PubMed  CAS  Google Scholar 

  • Icoz I., Stotzky G. (2008) Fate and effects of insect-resistant Bt crops in soil ecosystems, Soil Biol. Biochem. 40, 559–586.

    CAS  Google Scholar 

  • Jones C.G., Gutiérrez J.L., Groffman P.M., Shachak M. (2006) Linking ecosystem engineers to soil processes: a frame work using the Jenny State Factor Equation, Eur. J. Soil Biol. 42, 39–53.

    Article  Google Scholar 

  • Jones J.B., Wagner D. (2006) Microhabitat-specific controls on soil respiration and denitrification in the Mojave Desert: the role of harvester ant nests and vegetation, West. N. Am. Naturalist 66, 426–432.

    Article  Google Scholar 

  • Jouquet P., Dauber J., Lagerlöf J., Lavelle P., Lepage M. (2006) Soil invertebrates as ecosystem engineers: Intended and accidental effects on soil and feed back loops, Appl. Soil Ecol. 32, 153–164.

    Article  Google Scholar 

  • Kooijman A.M., Kooijman-Schouten M.M., Martinez-Hernandez G.B. (2008) Alternative strategies to sustain N-fertility in acid and calcaric beech forests: low microbial N-demand versus high biological activity, Basic Appl. Ecol. 9, 410–421.

    CAS  Google Scholar 

  • Lobry de Bryuyn L.A. (1999) Ants as bioindicators of soil function in rural environments, Agr. Ecosyst. Environ. 74, 425–441.

    Article  Google Scholar 

  • Lopes E., Orduz S. (2003) Metarhizium anisopliae and Trichoderma viride for control of nests of the fungus-growing ant, Atta cephalotes, Biol. Control. 27, 194–200.

    Article  Google Scholar 

  • Marris M. (2006) Black is the new green, Nature 442, 624–626.

    Article  PubMed  CAS  Google Scholar 

  • Malézieux E., Crozat Y., Dupraz C., Laurans M., Makowski D. Ozier-Lafontaine H., Rapidel B., de Tourdonnet S., Valantin-Morison M. (2009) Mixing plant species in cropping systems: concepts, tools and models. A review, Agron. Sustain. Dev. 29, 43–62.

    Google Scholar 

  • Meyer S.T., Roces F., Wirth R. (2006) Selecting the drought stressed: effects of plant stress on intraspecific and within-plant herbivory patterns of the leaf-cutting ant Atta colombica, Funct. Ecol. 20, 973–981.

    Google Scholar 

  • Miramontes O., Sole R.V., Goodwin B.C. (2001) Neural networks as sources of chaotic motor activity in ants and how complexity develops at the social scale, Int. J Bifurcat. Chaos 11, 1655–1664.

    Article  Google Scholar 

  • Moore J.C., Simpson R.T., McCann K.S., de Ruiter P.C. (2007) Food web interactions and modeling, in: Benckiser G., Schnell S. (Eds.), Biodiversity in Agricultural Production Systems, CRC, Taylor & Francis, Boca Raton, pp. 385–398.

    Google Scholar 

  • Mueller U.G., Gerardo N.M, Aanen D.K., Six D.L., Schultz D.R. (2005) The evolution of agriculture in insects, Annu. Rev. Ecol. Sytst. 36, 563–595.

    Article  Google Scholar 

  • Nelson D.W., Huber D. (2001) Nitrification inhibitors for corn production. National Corn Handbook, Iowa State University, USA, University extension, http://www.extension.iastate.edu/Publications/NCH55.pdf.

  • Osler G.H.R., Sommerkorn M. (2007) Toward a complete soil C and N Cycle: Incorporating the soil fauna, Ecology 88, 1611–1621.

    Article  PubMed  Google Scholar 

  • Philpott S.M., Uno S., Maldonado J. (2006) The importance of ants and high-shade management to coffee pollination and fruit weight in Chiapas, Mexico. Biodiv. Conser. 15, 487–501.

    Article  Google Scholar 

  • Pratt S.C., Mallon E.B., Sumpter D.J.T., Franks R.N. (2002) Quorum sensing, recruitment, and collective decision-making during colony emigration by the ant Leptothorax albipennis, Behav. Ecol. Sociobiol. 52, 117–127.

    Article  Google Scholar 

  • Ratering S., Benckiser G., Schnell S. (2007) Metabolic diversity of micro-organisms in agricultural soils In: Benckiser G., Schnell S. (Eds.), Biodiversity in Agricultural Production Systems, CRC, Taylor & Francis, Boca Raton, pp. 287–315.

    Google Scholar 

  • Raubuch M., Beese F. (2005) Influence of soil acidity on depth gradients of microbial biomass in beech forest soils, Eur. J. Forest. Res. 124, 87–93.

    Article  CAS  Google Scholar 

  • Ricks B.L., Bradleigh Vinson S. (1972) Digestive enzymes of the imported fire ant Solenopsis richteri (Hymenoptera: Formicidae), Entomol. Exp. Appl. 15, 329–334.

    Google Scholar 

  • Rizhiya E., Bertora C., van Vliet P.C.J., Kuikman P.J., Faber J.H., van Groenigen J.W. (2007) Earthworm activity as a determinant for N2O emission from crop residue, Soil Biol. Biochem. 39, 2058–2069.

    CAS  Google Scholar 

  • Roces F. (2002) Individual complexity and self-organisation in foraging by leaf-cutting ants, Biol. Bull. US 202, 306–313.

    Article  Google Scholar 

  • Ruano F., Tinaut A., Soler J.J. (2000) High surface temperature select for individual foraging in ants, Behav. Ecol. 11, 396–404.

    Google Scholar 

  • Ruiz M., Aguiriano E., Carrillo J.M. (2008) Effects of N fertilization on yield for low-input production in Spanish wheat landraces (Triticum turgidum L. and Triticum monococcum L.), Plant Breeding 127, 20–23.

    Article  CAS  Google Scholar 

  • Schmidt-Rohr K., Mao J.D., Olk D.C. (2004) Nitrogen-bonded aromatics in soil organic matter and their implications for a yield decline in intensive rice cropping, Proc. Natl. Acad. Sci. (USA) 101, 6351–6354.

    Article  CAS  Google Scholar 

  • Searchinger T., Heimlich R., Houghton R.A., Dong F., Elobeid A., Fabiosa J., Tokgoz S., Hayes D., Yu T.H. (2008) Use of U.S. croplands for biofuels increases greenhouse gases through emissions from land-use change, Science 319, 238–240.

    Article  Google Scholar 

  • Shaw L.J., Morris P. Hooker J. E. (2006) Perception and modification of plant flavonoid signals by rhizosphere microorganisms, Environ. Microbiol. 8, 1867–1880.

    Google Scholar 

  • Shetty P.S. (1982) Gustatory preferences of ants (Camponotus compressus) for urea and sugars, Experentia 38, 259–260.

    Article  CAS  Google Scholar 

  • Showler A.T., Knaus R.M., Reagan T.E. (1990) Studies of the territorial dynamics of the red imported Fire Ant (Solenopsis invicta Buren, Hymenoptera: Formicidae), Agr. Ecosyst. Environ. 30, 97–105.

    Article  Google Scholar 

  • Simarmata T., Benckiser G., Ottow J.C.G. (1993) Effect of an increasing carbon:nitrate ratio on the reliability of acetylene in blocking the N2O-reductase activity of denitrifying bacteria in soil, Biol. Fert. Soils 15, 107–112.

    Article  Google Scholar 

  • Sticht C., Schrader S., Giesemann A., Weigel H.J. (2006) Effects of elevated atmospheric CO2 and N fertilization on abundance, diversity and C-isotopic signature of collembolan communities in arable soil, Appl. Soil Ecol. 34, 219–229.

    Article  Google Scholar 

  • Stoll S., Gadau J., Gross R., Feldhaar H. (2007) Bacterial microbiota associated with ants of the genus Tetraponera, Biol. J. Linn. Soc. 90, 399–412.

    Article  Google Scholar 

  • Tiedje J.M. (1988) Ecology of denitrification and dissimilatory nitrate reduction to ammonium, in: Zehnder A.J.B. (Ed.), Biology of anaerobic microorganisms, John Wiley, New York, pp. 179–244.

    Google Scholar 

  • Vespermann A., Kai M., Piechullaet B. (2007) Rhizobacterial volatiles affect the growth of fungi and Arabidopsis thaliana, Appl. Environ. Microb. 73, 5639–5641.

    Article  CAS  Google Scholar 

  • Von Lützow M., Kögel-Knabner I., Ekschmitt K. Flessa H., Guggenberger G., Matzner E., Marscner B. (2007) SOM fractionation methods: Relevance to functional pools and to stabilization mechanisms, Soil Biol. Biochem. 39, 2183–2207.

    Google Scholar 

  • Vishnudas C.K. (2008) Woodpeckers and ants in India’s shade coffee, Indian Birds 4, 9–11.

    Google Scholar 

  • Wagner D., Jones J.B. (2004) The contribution of harvester ant nests (Pogonomyrmex rugosus, Hymenoptera, Formicidae) to soil nutrient stocks and microbial biomass in the Mojave Desert. Environ. Entomol. 33, 599–607.

    Article  Google Scholar 

  • Wagner D., Jones J.B. (2006) The impact of harvester ant nests on decomposition, N mineralization, litter quality, and availability of N to plants in the Mojave Desert, Soil Biol. Biochem. 38, 2593–2601.

    CAS  Google Scholar 

  • Wagner D., Jones J.B., Gordonet D.M. (2004) Development of ant harvester colonies alters soil chemistry, Soil Biol. Biochem. 36, 797–804.

    CAS  Google Scholar 

  • Wang D., McSweeney K., Lowery B., Norman J.M. (1995) Nest structure of ant Lasius neoniger Emery and its implication to soil modification, Geoderma 66, 259–272.

    Article  Google Scholar 

  • Way M.J. (1963) Mutualism between ants and honeydew-producing Homoptera, Ann. Rev. Entomol. 8, 307–344.

    Article  Google Scholar 

  • Weiske A., Benckiser G., Herbert T., Ottow J.C.G. (2001) Influence of thenitrification inhibitor 3,4-dimethylpyrazole phosphate (DMPP) in comparison to dicyandiamide onnitrous oxide emissions, carbon dioxide fluxes and methane oxidation during 3 years of repeated application in field experiments, Biol. Fert. Soils 34, 109–117.

    Article  CAS  Google Scholar 

  • Young I.M., Crawford J.W. (2004) Interactionsand self-organisation in the soil-microbe complex, Science 304, 1634–1637.

    Article  PubMed  CAS  Google Scholar 

  • Zhou X., Haya H.K., Heungens K., Goodrich-Blair H. (2002) Response of ants to a deterrent factor(s) produced by the symbiontic bacteria of Entomopathogenic nematodes, Appl Environ. Microb. 68, 6202–6209.

    CAS  Google Scholar 

  • Zients E., Feldhaar H., Stoll S., Gross R. (2005) Insights into the microbial world associated with ants, Arch. Microbiol. 184, 199–206.

    Google Scholar 

  • Zients E., Beyaert I., Gross R., Feldhaar H. (2006) Relevance of the endosymbiosis of Blochmannia floridans and carpenter ants at different stages of the life cycle of the host, Appl. Environ. Microb. 72, 6027–6033.

    Article  Google Scholar 

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Benckiser, G. (2011). Ants and Sustainable Agriculture. In: Lichtfouse, E., Hamelin, M., Navarrete, M., Debaeke, P. (eds) Sustainable Agriculture Volume 2. Springer, Dordrecht. https://doi.org/10.1007/978-94-007-0394-0_2

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