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Root characteristics of representative Mediterranean plant species and their erosion-reducing potential during concentrated runoff

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Abstract

Gully erosion is an important soil degradation process in Mediterranean environments. Revegetation strategies for erosion control rely in most cases on the effects of the above-ground biomass on reducing water erosion rates, whereas the role of the below-ground biomass is often neglected. In a Mediterranean context, the above-ground biomass can temporally disappear because of fire or overgrazing and when concentrated flow erosion occurs, roots can play an important role in controlling soil erosion rates. Unfortunately, information on root characteristics of Mediterranean plants, growing on semi-natural lands, and their effects on the topsoil resistance to concentrated flow erosion is lacking. Therefore, typical Mediterranean grass, herb, reed, shrub and tree root systems of plants growing in habitats that are prone to concentrated flow erosion (i.e. in ephemeral channels, abandoned fields and steep badland slopes) are examined and their erosion-reducing potential was evaluated. Root density (RD), root length density (RLD) and root diameters are measured for 26 typical Mediterranean plant species. RD values and root diameter distribution within the upper 0.10–0.90 m of the soil profile are then transformed into relative soil detachment rates using an empirical relationship in order to predict the erosion-reducing effect of root systems during concentrated runoff. Comparing the erosion-reducing potential of different plant species allows ranking them according to their effectiveness in preventing or reducing soil erosion rates by concentrated flow. RD in the 0.10 m thick topsoil ranges between 0.13 kg m−3 for Bromus rubens (L.) and 19.77 kg m−3 for Lygeum spartum (L.), whereas RLD ranges between 0.01 km m−3 for Nerium oleander (L.) and 120.43 km m−3 for Avenula bromoides ((Gouan) H. Scholz.) Relative soil detachment rates, compared to bare soils, range between 0.3 × 10-12 and 0.7 for the 0.10 m thick topsoil. The results show that grasses such as Helictotrichon filifolium ((Lag.) Henrard), Piptatherum miliaceum ((L.) Coss.), Juncus acutus (L.), Avenula bromoides ((Gouan) H. Scholz), Lygeum spartum (L.) and Brachypodium retusum ((Pers.) Beauv.) have the highest potential to reduce soil erosion rates by concentrated flow in the 0–0.1 m topsoil. But also shrubs such as Anthyllis cytisoides (L.) and Tamarix canariensis (Willd.), having high root densities in the topsoil, can reduce erosion rates drastically. Among the species growing in channels, Juncus acutus (L.) has the highest erosion reducing potential, whereas Phragmites australis (Cav.) is the least effective. On abandoned fields, Avenula bromoides ((Gouan) H. Scholz) and Plantago albicans (L.) are the most effective species in reducing concentrated flow erosion rates, while Thymelaea hirsuta (L. (Endl.)) and Bromus rubens (L.) perform the worst. On steep badland slopes, Helictotrichon filifolium ((Lag.) Henrard) and Anthyllis cytisoides (L.) perform the best in the analysis of erosion reducing potential, while Ononis tridentata (L.) is the least effective species. These findings have implications for ecological restoration and management of erosion-prone slopes.

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References

  • Bochet E, Garcia-Fayos P (2004) Factors controlling vegetation establishment and water erosion on motorway slopes in Valencia, Spain. Restor Ecol 12(2):166–174

    Article  Google Scholar 

  • Bochet E, Poesen J, Rubio JL (2006) Runoff and soil loss under individual plants of a semi-arid Mediterranean shrubland: influence of plant morphology and rainfall intensity. Earth Surf Proc Land 31:536–549

    Article  Google Scholar 

  • Böhm W (1979) Methods of studying root systems. Springer-Verlag, Heidelberg, pp 188

    Google Scholar 

  • Bryan RB, Yair A (1982) Badland geomorphology and piping. Geobooks, Norwich, pp 408

    Google Scholar 

  • Bunte K, Poesen J (1994) Effects of rock fragment size and cover on overland flow hydraulics, local turbulence and sediment yield on an erodible soil surface. Earth Surf Proc Land 19:115–135

    Article  Google Scholar 

  • De Baets S, Poesen J, Knapen A, Galindo Morales P (2007) Impact of root architecture, soil characteristics and flow shear stress on the erosion-reducing potential of roots during concentrated flow. Earth Surf Proc Land (in press)

  • FAO (2005) New_LocClim software – local climate estimator. Environment and Natural Resources Working Paper No 20. Environment and Natural Resources Service, FAO, Rome, Italy (CD-ROM)

  • Garcia-Fuentes A, Salazar C, Torres JA, Cano E, Valle F (2001) Review of communities of Lygeum spartum L. in the south-eastern Iberian Peninsula (western Mediterranean). J Arid Environ 48:323–339

    Article  Google Scholar 

  • Gökbulak F (2003) Comparison of growth performance of Lolium perenne L., Dactylis glomerata L. and Agropyron elongatum (Host.) P. Beauv. for erosion control in Turkey. J Environ Biol 24:45–53

    PubMed  Google Scholar 

  • Gray D H, Sotir RB (1996) Biotechnical and soil bioengineering slope stabilization: a practical guide for erosion control. John Wiley and Sons, Toronto

    Google Scholar 

  • Greenway DR (1987) Vegetation and slope stability. In: Anderson MG, Richards KS (eds) Slope stability: geotechnical engineering and geomorphology. John Wiley and Sons, Chichester, pp 187–230

  • Gyssels G, Poesen J, Bochet E, Li Y (2005) Impact of plant roots on the resistance of soils to erosion by water: a review. Prog Phys Geog 29(2):189–217

    Article  Google Scholar 

  • Gregory PJ (2006) Plant roots: growth, activity and interaction with soils. Blackwell Publishing, Oxford

    Google Scholar 

  • Hofmann L, Ries RE (1991) Relationships of soil and plant characteristics to erosion and runoff on pasture and range. J Soil Water Conserv 46:143–147

    Google Scholar 

  • Hooke JM, Sandercock PJ, van Wesemael B, Meerkerk A, Torri D, Calzolari C, Marignani M, Borselli L, Busoni E, Sette MD, Salvador M., Ungaro F Chiarucci A, Maccherini S, Castillo V, González-Barbára G, Navarro-Cano J A Montoro JA, Martinez-Mena M, Boix-Fayos C, Cammeraat LH, Lesschen JP, Cladder E, Poesen J, De Baets S (in press) RECONDES: Conditions for restoration and mitigation of desertified areas using vegetation. Proc. EC Desertification meeting, Oct 2005, Brussels

  • Jackson RB, Canadell J, Ehleringer JR, Mooney HA, Sala OE, Shulze ED (1996) A global analysis of root distribution for terrestrial biomes. Oecologia 108:389–411

    Article  Google Scholar 

  • Lavee H, Imeson AC, Sarah P (1998) The impact of climate change on geomorphology and desertification along a Mediterranean-arid transect. Land Degrad Dev 9:407–422

    Article  Google Scholar 

  • Lesschen JP, Kok K, Verburg PH, Cammeraat, LH (2007) Identification of vulnerable areas for gully erosion under different scenarios of land abandonment in Southeast Spain. Catena (in press)

  • Li Y, Zhu X, Tian J 1991 Effectiveness of plant roots to increase the anti-scourability of soil on the Loess Plateau. Chin Sci Bull 36:2077–2082

    Google Scholar 

  • Lopez-Bermudez F, Barbera G G, Alonso-Sarria F, Belmonte Serrato F (2002) Natural resources in the Guadalentin basin (South-east Spain): water as a key factor. In: Brandt CJ, Geeson NA, Thornes JB (eds) Mediterranean desertification: a mosaic of processes and responses. John Wiley and Sons, Chichester, pp 233–245

  • Manschadi AM, Sauerborn J, Stützel H, Göbel W, Saxena MC (1998) Simulation of faba bean root system development under Mediterranean conditions. Eur J Agron 9:259–272

    Article  Google Scholar 

  • Morgan RPC (2005) Soil erosion and conservation, 3nd edn. Blackwell Science Ltd., Oxford (UK), pp 299

    Google Scholar 

  • Oostwoud Wijdenes DJ, Poesen J, Vandekerckhove L, Ghesquiere M (2000) Spatial distribution of gully head activity and sediment supply along an ephemeral channel in a Mediterranean environment. Catena 39:147–167

    Article  Google Scholar 

  • Poesen JWA, Hooke JM (1997) Erosion, flooding and channel management in Mediterranean environments of southern Europe. Prog Phys Geog 21:157–199

    Google Scholar 

  • Poesen J, Nachtergaele J, Verstraeten G, Valentin C (2003) Gully erosion and environmental change: importance and research needs. Catena 50:91–133

    Article  Google Scholar 

  • Pugnaire F, Haase P (1996) Comparative physiology and growth of two perennial tussock grass species in a semi-arid environment. Ann Bot 77:81–86

    Article  Google Scholar 

  • Quinton JN, Morgan RPC, Archer NA, Hall GM, Green A (2002) Bioengineering principles and desertification mitigation. In: J Brandt JB Thornes (eds) Mediterranean Desertification and Land Use. John Wiley and Sons, Chichester, pp 137–168

    Google Scholar 

  • Silva JS, Rego FC (2003) Root distribution of a Mediterranean shrubland in Portugal. Plant Soil 255:529–540

    Article  CAS  Google Scholar 

  • Slobodian N, Van Rees K, Pennock D (2002) Cultivation-induces effects on belowground biomass and organic carbon. Soil Sci Soc Am J 66:924–930

    Article  CAS  Google Scholar 

  • Smit AL, Bengough AG, Engels C, van Noordwijk M, Pellerin S, van de Geijn SC (2000) Root methods: a handbook. Springer-Verlag, Berlin, pp 587

    Google Scholar 

  • Weaver JE, Clements FE (1938) Plant ecology. Mc Graw-Hill book company, New York

    Google Scholar 

  • Zhou Z, Shangguan Z (2005) Soil anti-scourability enhanced by plant roots. J Integr Plant Biol 47(6):676–682

    Article  Google Scholar 

Download references

Acknowledgements

This research is part of the RECONDES (Conditions for Restoration and Mitigation of Desertified Areas Using Vegetation) project funded by the European Commission, Directorate-General of Research, Global Change and Desertification Programme, Project No. GOCE-CT-2003-505361.

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De Baets, S., Poesen, J., Knapen, A. et al. Root characteristics of representative Mediterranean plant species and their erosion-reducing potential during concentrated runoff. Plant Soil 294, 169–183 (2007). https://doi.org/10.1007/s11104-007-9244-2

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