Published December 18, 2023 | Version v1
Journal article Open

Size spectra of the edaphic fauna of typical Argiudol soils of the Rolling Pampa Region, Argentina

  • 1. Instituto de Ecología y Desarrollo Sustentable (INEDES) - Dept. of Basic Sciences, Universidad Nacional de Luján, Luján, Argentina
  • 2. Centro Austral de Investigaciones Científicas (CADIC - CONICET), Ushuaia, Argentina

Description

Soil-dwelling organisms populate the spaces—referred to as interstices—between the litter on the soil surface and the pores in the soil's organo-mineral matrix. These organisms have pivotal roles in soil ecosystem functions, such as the breakdown and decomposition of organic matter, the dispersal of bacterial and fungal spores and biological habitat transformation. These functions, in turn, contribute to broader ecosystem services like carbon and nutrient cycling, soil organic matter regulation and both chemical and physical soil fertility.

This study provides morphological data pertaining to a range of soil organism sizes, specifically in Argiudol soils subjected to varying levels of agricultural activity in the Rolling Pampas Region, one of the world's most extensive and fertile plains.

The primary focus is on soil microarthropods—namely, Acari (mites) and Collembola (springtails)—with a body width of less than 2 mm. These organisms constitute the majority of life in the intricate soil pore network. Additionally, the study documents species of earthworms (Oligochaeta, Crassiclitelata), recognised as ecosystem engineers for their ability to create physical channels in the soil matrix and to distribute organic matter. Moreover, the study includes measurements of morphological traits of soil-dwelling "macrofauna" (organisms with a body width greater than 2 mm), which are also implicated in various soil ecosystem functions. These include population regulation by apex predators, organic matter decomposition, biogenic structure formation, nutrient mobilisation and herbivory.

In this paper, we report both the geographical locations and individual measurements of key morphological traits for over 7,000 specimens, covering a range of soil-dwelling organisms. These include springtails (Entognatha, Collembola), mites (Arachnida, Acari), earthworms (Oligochaeta, Crassiclitellata) and additional soil macrofauna. All specimens were collected from typical Argiudol soils located in three distinct agricultural systems characterised by varying levels of land-use intensity. To our knowledge, no other dataset exists providing this information for the Argentinian Pampas.

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References

  • Balogh J, Balogh P (1988) Oribatid mites of the Neotropical Region. I. Oribatid mites of the Neotropical Region. I. URL: https://www.cabdirect.org/cabdirect/abstract/19881108205
  • Balogh P, Balogh J (1972) The oribatid genera of the world. The oribatid genera of the world. URL: https://www.cabdirect.org/cabdirect/abstract/19720503787
  • Briones M (2014) Soil fauna and soil functions: a jigsaw puzzle. Frontiers in Environmental Science 2 https://doi.org/10.3389/fenvs.2014.00007
  • Brussaard L (2012) The living soil and ecosystem services: Ecosystem services provided by the soil biota. In: Brussaard L (Ed.) Soil Ecology and Ecosystem Services. [ISBN 978-0-19-957592-3]. https://doi.org/10.1093/acprof:oso/9780199575923.003.0005
  • Burges A, Raw F (Eds) (1967) Soil Biology. Academic Press, London, UK, 524 pp.
  • Butcher JW, Snider RJ (1971) Bioecology of edaphic Collembola and Acarina. Annual review of entomology https://doi.org/10.1146/annurev.en.16.010171.001341
  • Cabrera A, Willink A (1973) Biogeografía de America Latina. Programa Regional de Desarrollo Científico y Tecnológico. Departamento de Asuntos Científicos. Secretaría General de la Organización de los Estados Americanos. Serie de Biología. Monografía nro. 23.
  • Cabrera AL (1976) Regiones fitogeográficas argentinas. In: Kugler WF (Ed.) Enciclopedia Argentina de Agricultura y Jardinería. 2, 2. Acme, 1 - 85 pp.
  • Caruso T, Migliorini M (2009) Euclidean geometry explains why lengths allow precise body mass estimates in terrestrial invertebrates: The case of oribatid mites. Journal of Theoretical Biology 256 (3): 436‑440. https://doi.org/10.1016/j.jtbi.2008.09.033
  • Choate (1999) Introduction to the identification of beetles (Coleoptera). Dichotomous keys to some families of Florida Coleoptera.
  • CIRN IdS (2022) Cartas de Suelos República Argentina - Provincia de Buenos Aires. Zenodo. https://doi.org/10.5281/zenodo.6353509
  • Claps LE, Debandi G, Roig-Juñent S (Eds) (2020) Biodiversidad de Artrópodos Argentinos. 2. Sociedad Entomológica Argentina ediciones, Mendoza, Argentina, 620 pp. [ISBN 978-987-21319-3-7]
  • Coulis M, Joly F (2017) Allometric equations for estimating fresh biomass of five soil macroinvertebrate species from neotropical agroecosystems. European Journal of Soil Biology 83: 18‑26. https://doi.org/10.1016/j.ejsobi.2017.09.006
  • de Michis CC, Moreno AG (1999) Taxonomía de Oligoquetos: Criterios y Metodologías. Universidad Nacional de Córdoba.
  • Dindal D (1990) Soil Biology Guide. Jonh Wiley & Sons, United States, 1349 pp. [ISBN 0-417-04551-9]
  • Evans GO, Till WM (1979) Mesostigmatic mites of Britain and Ireland (Chelicerata: Acari-Parasitifrmes). An introduction to their external morphology and classification. Transactions of the Zoological Societi of London 35: 139‑270. https://doi.org/10.1111/j.1096-3642.1979.tb00059.x
  • Ganihar SR (1997) Biomass estimates of terrestrial arthropods based on body length. Journal of Biosciences 22 (2): 2019‑2024. https://doi.org/10.1007/BF02704734
  • Gonzales AM (2018) ImageJ: una herramienta indispensable para medir el mundo biológico. Folium - Relatos Botánicos 1 (1-17).
  • Greiner H, Costello D, Tiegs S (2010) Allometric estimation of earthworm ash-free dry mass from diameters and lengths of select megascolecid and lumbricid species. Pedobiologia 53 (4): 247‑252. https://doi.org/10.1016/j.pedobi.2009.12.004
  • Hale C, Reich P, Frelich L (2004) Allometric equations for estimation of ash-free dry mass from length measurements for selected European earthworm species (Lumbricidae) in the Western Great Lakes Region. The American Midland Naturalist 151 (1): 179‑185. https://doi.org/10.1674/0003-0031(2004)151[0179:AEFEOA]2.0.CO;2
  • Hawkins JW, Lankester MW, Lautenschlager RA, Bell FW (1997) Length–biomass and energy relationships of terrestrial gastropods in northern forest ecosystems. Canadian Journal of Zoology 75 (3): 501‑505. https://doi.org/10.1139/z97-061
  • Janssens F (2023) Checklist of the Collembola of the World. URL: https://www.collembola.org/
  • Jonsson T, Cohen J, Carpenter S (2005) Food webs, body size, and species abundance in ecological community description. In: Jonsson T, et al. (Ed.) Food webs: from connectivity to energetics. Vol. 36. [ISBN 978-0-12-013936-1]. https://doi.org/10.1016/S0065-2504(05)36001-6
  • Kampichler C (1995) Biomass distribution of a microarthropod community in spruce forest soil. Biology and Fertility of Soils 19: 263‑265. https://doi.org/10.1007/BF00336170
  • Klimaszewiski J, Watt JC (1997) Coleoptera: family-group review and keys to identification. Manaaki Whenua PRESS
  • Krantz GW, Walter DE (Eds) (2009) A manual of acarology. 3rd Edition. Texas Tech University Press, 81 pp.
  • Lavelle P, Allister VS (Eds) (2001) Soil Ecology. Kluwer Academic Publisher, 654 pp. [ISBN 0-306-48162-6] https://doi.org/10.1007/978-94-017-5279-4
  • Lavelle P, Decaëns T, Aubert M, Barot S, Blouin M, Bureau F, Margerie P, Mora P, Rossi J-P (2006) Soil invertebrates and ecosystem services. European Journal of Soil Biology 42: S1‑S15. https://doi.org/10.1016/j.ejsobi.2006.10.002
  • Lavelle P (2012) The living soil and ecosystem services: Soil as habitat. In: Lavelle P (Ed.) Soil ecology and ecosystem services. [ISBN 978-0-19-957592-3]. https://doi.org/10.1093/acprof:oso/9780199575923.003.0003
  • Lebrum P (1971a) Ecologie et biocénotique de quelques peuplements d'arthropodes édaphiques. Institut Royal de Science Naturelles de Belgique, Bruxelles.
  • Lebrum P (1971b) Ecologie et biocénotique de quelques peuplements d'arthropodes édaphiques. Institut Royal de Science Naturelles de Belgique, Bruxelles.
  • Le Guillarme N, Hedde M, Potapov AM, Berg MP, Briones MJ, Calderón-Sanou I, Hoberg K, Almoyna CM, Martínez-Muños C, Pey B, Russell DJ, Thuiller W (2023) The Soil Food Web Ontology: aligning trophic groups, processes, and resources to harmonise and automatise soil food web reconstructions. bioRxiv https://doi.org/10.1101/2023.02.03.526812
  • Mittelbach G, McGill B (2019) Community assembly and species traits. In: Mittelbach G, et al. (Ed.) Community ecology. [ISBN 978-0-19-883585-1]. https://doi.org/10.1093/oso/9780198835851.001.0001
  • Momo FR, Falco LB (Eds) (2009) Biología y Ecología de la fauna del suelo. 1ra. Imago Mundi, Buenos Aires, Argentina, 186 pp. URL: www.ungs.edu.ar/publicaciones [ISBN 978-950-793-094-2]
  • Moreira FMS, Huising EJ, Bignell DE (Eds) (2012) Manual de Biología de Suelos Tropicales: Muestreo y caracterización de la biodiversidad bajo suelo. 1ra. Instituto Nacional de Ecología, Mexico, 337 pp. [ISBN 978-607-7908-31-9]
  • Moretti M, Dias AC, Bello F, Altermatt F, Chown S, Azcárate F, Bell J, Fournier B, Hedde M, Hortal J, Ibanez S, Öckinger E, Sousa JP, Ellers J, Berg M (2017) Handbook of protocols for standardized measurement of terrestrial invertebrate functional traits. Functional Ecology 31 (3): 558‑567. https://doi.org/10.1111/1365-2435.12776
  • Natural Resources Conservation Service, Agriculture Department, Soil Survey Staff (Eds) (2010) Keys to soil taxonomy. 11. Government Printing Office, United States, 346 pp. [ISBN 978-0-16-085427-9]
  • Newton J, Proctor H (2013) A fresh look at weight-estimation models for soil mites (Acari). International Journal of Acarology 39 (1): 72‑85. https://doi.org/10.1080/01647954.2012.744351
  • Oyarzabal M, Clavijo J, Oakley L, Biganzoli F, Tognetti P, Barberis I, Maturo H, Aragon R, Campanello P, Prado D, Oesterheld M, Leon Rolando JC (2018) Unidades de vegetación de la Argentina. Ecología Austral 28 (1): 40‑63. https://doi.org/10.25260/EA.18.28.1.0.399
  • Paoletti M (1999) The role of earthworms for assessment of sustainability and as bioindicators. Agriculture, Ecosystems & Environment 74 (1): 137‑155. https://doi.org/10.1016/S0167-8809(99)00034-1
  • Petchey O, Belgrano A (2010) Body-size distributions and size-spectra: universal indicators of ecological status? Biology Letters 6 (4): 434‑437. https://doi.org/10.1098/rsbl.2010.0240
  • Petersen H (1975) Estimation of dry weight, fresh weight, and calorific content of various Collembolan species. Pedobiologia 15 (3): 222‑243. https://doi.org/10.1016/S0031-4056(23)00038-0
  • Peters RH (Ed.) (1999) The ecological implications of body size. Cambridge University Press, 344 pp. [ISBN 978-0-521-288866] https://doi.org/10.1890/1051-0761(1999)009[0010:WMIOIR]2.0.CO;2
  • Pey B, Nahmani J, Auclerc A, Capowiez Y, Cluzeau D, Cortet J, Decaëns T, Deharveng L, Dubs F, Joimel S, Briard C, Grumiaux F, Laporte M, Pasquet A, Pelosi C, Pernin C, Ponge J, Salmon S, Santorufo L, Hedde M (2014) Current use of and future needs for soil invertebrate functional traits in community ecology. Basic and Applied Ecology 15 (3): 194‑206. https://doi.org/10.1016/j.baae.2014.03.007
  • Phillips HP, Bach E, Bartz MC, Bennett J, Beugnon R, Briones MI, Brown G, Ferlian O, Gongalsky K, Guerra C, König-Ries B, Krebs J, Orgiazzi A, Ramirez K, Russell D, Schwarz B, Wall D, Brose U, Decaëns T, Lavelle P, Loreau M, Mathieu J, Mulder C, van der Putten W, Rillig M, Thakur M, de Vries F, Wardle D, Ammer C, Ammer S, Arai M, Ayuke F, Baker G, Baretta D, Barkusky D, Beauséjour R, Bedano J, Birkhofer K, Blanchart E, Blossey B, Bolger T, Bradley R, Brossard M, Burtis J, Capowiez Y, Cavagnaro T, Choi A, Clause J, Cluzeau D, Coors A, Crotty F, Crumsey J, Dávalos A, Cosín DD, Dobson A, Domínguez A, Duhour AE, van Eekeren N, Emmerling C, Falco L, Fernández R, Fonte S, Fragoso C, Franco AC, Fusilero A, Geraskina A, Gholami S, González G, Gundale M, López MG, Hackenberger B, Hackenberger D, Hernández L, Hirth J, Hishi T, Holdsworth A, Holmstrup M, Hopfensperger K, Lwanga EH, Huhta V, Hurisso T, Iannone B, Iordache M, Irmler U, Ivask M, Jesús J, Johnson-Maynard J, Joschko M, Kaneko N, Kanianska R, Keith A, Kernecker M, Koné A, Kooch Y, Kukkonen S, Lalthanzara H, Lammel D, Lebedev I, Le Cadre E, Lincoln N, López-Hernández D, Loss S, Marichal R, Matula R, Minamiya Y, Moos JH, Moreno G, Morón-Ríos A, Motohiro H, Muys B, Neirynck J, Norgrove L, Novo M, Nuutinen V, Nuzzo V, Mujeeb Rahman P, Pansu J, Paudel S, Pérès G, Pérez-Camacho L, Ponge J, Prietzel J, Rapoport I, Rashid MI, Rebollo S, Rodríguez MÁ, Roth A, Rousseau G, Rozen A, Sayad E, van Schaik L, Scharenbroch B, Schirrmann M, Schmidt O, Schröder B, Seeber J, Shashkov M, Singh J, Smith S, Steinwandter M, Szlavecz K, Talavera JA, Trigo D, Tsukamoto J, Uribe-López S, de Valença A, Virto I, Wackett A, Warren M, Webster E, Wehr N, Whalen J, Wironen M, Wolters V, Wu P, Zenkova I, Zhang W, Cameron E, Eisenhauer N (2021) Global data on earthworm abundance, biomass, diversity and corresponding environmental properties. Scientific Data 8 (1). https://doi.org/10.1038/s41597-021-00912-z
  • Potapov A, Klarner B, Sandmann D, Widyastuti R, Scheu S (2019) Linking size spectrum, energy flux and trophic multifunctionality in soil food webs of tropical land-use systems. Journal of Animal Ecology 88 (12): 1845‑1859. https://doi.org/10.1111/1365-2656.13027
  • Rasband (2018) ImageJ. Image processing and analysis in Java. U.S. National Institutes of Health,. URL: https://imagej.nih.gov/ij/
  • Reynolds JW (1996) Earthworms biology and ecology course manual. Oligochetology Laboratory e Canada, Ontario.
  • Ritz K, van der Putten W (2012) The living soil and ecosystem services: Introduction. In: Wall DH, et al. (Ed.) Soil ecology and ecosystem services. Oxford University Press, 421 pp. [ISBN 978-0-19-957592-3]. https://doi.org/10.1093/acprof:oso/9780199575923.003.0007
  • Rosswall T, Persson T, Lohm U (1977) Energetical significance of the annelids and arthropods in a Swedish grassland soil. Swedish Natural Science Research Council, Stockholm.
  • Satchell JE (Ed.) (1983) Eartworm ecology: From Darwin to Vermiculture. Chapman and Hall, 495 pp. [ISBN 0-412-24310-5] https://doi.org/10.1007/978-94-009-5965-1
  • Sechi V, De Goede RG, Rutgers M, Brussaard L, Mulder C (2017) A community trait-based approach to ecosystem functioning in soil. Agriculture, Ecosystems & Enviroment 239: 265‑273. https://doi.org/10.1016/j.agee.2017.01.036
  • Swift M, Heal O, Anderson J (1979) Decomposition in terrestial ecosystems. CAB URL: https://www.cabdirect.org/cabdirect/abstract/19800665274
  • Tanaka M (1970) Ecological studies on communities of soil Collembola in Mt. Sobo, Southwest Japan. Japanese Journal of Ecology 20 (3): 102‑103.
  • Turnbull M, George PL, Lindo Z (2014) Weighing in: Size spectra as a standard tool in soil community analyses. Soil Biology and Biochemistry 68: 366‑372. https://doi.org/10.1016/j.soilbio.2013.10.019
  • Vargas JGP, Recamier BEM (2007) Técnicas de colecta, montaje y preservación de microartrópodos edáficos. 1 ra. Universidad Autónoma de México, Mexico.
  • Vargas JGP, Recamier BEM, Oyarzabal AD (2014) Guía ilustrada para los artrópodos edáficos. 1ra. Universidad Nacional Autónoma de México, Mexico.
  • Velazco V, Sandler R, Sanabria M, Falco L, Coviella C, Saravia L (2023) Size spectra of the edaphic fauna of Argiudol typical soils of the rolling Pampa region, Argentina. Instituto de Ecología y Desarrollo Sustentable (INEDES). Release date: 2023-9-13. URL: https://doi.org/10.15468/cmp3ma
  • Wallwork J (1958) Notes on the Feeding Behaviour of Some Forest Soil Acarina. Oikos 9 (2). https://doi.org/10.2307/3564770
  • White E, Ernest SKM, Kerkhoff A, Enquist B (2007) Relationships between body size and abundance in ecology. Trends in Ecology & Evolution 22 (6): 323‑330. https://doi.org/10.1016/j.tree.2007.03.007
  • Wurst S, De Deyn G, Orwin K, Wall DH (2012) The living soil and ecosystem services: Soil biodiversity and functions. In: Wurst S, et al. (Ed.) Soil Ecology and Ecosystem Services. Oxford University Press, 20 pp. [ISBN 978-0-19-957592-3]. https://doi.org/10.1093/acprof:oso/9780199575923.003.0004
  • Zhang Z (2011) Animal biodiversity: an outline of higher-level classification and survey of taxonomic richness. Magnolia Press, Auckland, 238 pp. [ISBN 1175-5334]