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Seasonal dynamics in the concentrations of macronutrients and organic constituents in green and senesced leaves of three agroforestry species in southern Ethiopia

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Abstract

Foliar inputs from indigenous agroforestry trees and shrubs could provide sufficient nutrients and organic matter to sustain crop growth. However, concentrations of foliar nutrients and organic constituents show considerable seasonal, inter- and/or intra-species variations. To determine this variability, green and senesced leaves were sampled during dry and wet seasons from Cordia africana, Albizia gummifera and Milletia ferruginea trees at Wondo Genet, southern Ethiopia. Cordia is a deciduous, non-leguminous tree, while Albizia and Milletia are semi-deciduous and leguminous trees. Leaves were analyzed for concentrations of ash, N, P, K, cellulose, lignin, soluble polyphenols, and condensed tannins. Results from statistical analyses showed significant seasonal variations (P < 0.001) in concentrations of all leaf constituents, except for P and cellulose. Foliar concentrations of ash, N, soluble polyphenols, and condensed tannins were higher during the wet season while those of K and lignin were higher during the dry season. Green leaves had significantly higher (p < 0.001) N and P concentrations than senesced leaves, while senesced leaves had higher concentrations of K, cellulose, soluble polyphenols, and condensed tannins. The ‘ Relative Percentage Changes’ in concentration of N and P in senesced leaves, i.e., their enrichment or depletion with such nutrients relative to those in green leaves, were significantly higher (P < 0.001) for Cordia than Albizia and Milletia. On the other hand, there was no consistent pattern in the enrichment or depletion of senesced leaves with organic constituents, but these leaves were in most cases more enriched with organic constituents than green leaves. Over all, the percentage depletion or enrichment ranged from about 8% to 38% for N; 24% to 63% for P; −141% to 48% for K; −44% to 15% for cellulose; −44% to 51% for lignin; −203% to −61% for soluble polyphenols; and −290% to 11% for condensed tannins. It was concluded that variations in species and life-form (legume versus non-legume), season, and developmental stage of leaves could affect the quality of organic material from agroforestry species, which has important implications for management of organic residues in tropical agricultural systems.

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References

  • Aerts R 1996 Nutrient resorption from senescing leaves of perennials: are there general patterns? J. Ecol. 84, 597–608.

    Article  Google Scholar 

  • Anderson J M and Ingram J S I 1993 Tropical Soil Biology and Fertility: A Handbook of Methods. CAB Int., Wallingford, UK. 221 pp.

    Google Scholar 

  • AOAC 1980 Official Methods of Analysis. 13th edn. Association of Official Analytical Chemists, Washington, D.C. 1018 pp.

    Google Scholar 

  • Bekele A, Birnie A and Tengnas B 1993. Useful Trees and Shrubs for Ethiopia: Identification, Propagation and Management for Agricultural and Pastoral Communities. RSCU/SIDA, Nairobi. 474 pp.

    Google Scholar 

  • Bell D T and Ward S C 1984 Seasonal changes in foliar macronutrients (N, P, K, Ca and Mg) in Eucalyptus saligna Sm., and E. wadoo Blakely growing in rehabilitated bauxite mine soils of the Darling Range, Western Australia. Plant Soil 81, 377–388.

    Article  CAS  Google Scholar 

  • Bremner J M 1996 Total-Nitrogen. In Methods of Soil Analysis. Part 3: Chemical Methods. Ed. D L Sparks. pp. 1085–1121. Soil Science Society of America, Madison.

    Google Scholar 

  • Carrera A L, Sain C L and Bertiller M B 2000 Patterns of nitrogen conservation in shrubs and grasses in the Patagonian Monte, Argentina. Plant Soil 224, 185–193.

    Article  CAS  Google Scholar 

  • Chapin III F S 1980 The mineral nutrition of wild plants. Annu. Rev. Ecol. Syst. 11, 233–260.

    Article  CAS  Google Scholar 

  • Chapin III F S and Moilanen L 1991 Nutritional controls over nitrogen and phosphorus resorption from Alaskan birch leaves. Ecology 72, 709–715.

    Article  Google Scholar 

  • Constantinides M and Fownes J H 1994a Nitrogen mineralization from leaves and litter of tropical plants: Relationship to nitrogen, lignin and soluble polyphenol concentrations. Soil Biol. Biochem. 26, 49–55.

    Article  CAS  Google Scholar 

  • Duchesne L, Ouimet R, Camiré C and Houle D 2001 Seasonal nutrient transfers by foliar resorption, leaching, and litter fall in a northern hardwood forest at Lake Clair Watershed, Quebec, Canada. Can. J. For. Res. 31, 333–344.

    Article  CAS  Google Scholar 

  • Eckstein R L, Karlsson P S and Weih M 1999 Leaf life span and nutrient resorption as determinants of plant nutrient conservation in temperate-arctic regions. New Phytol. 143, 177–189.

    Article  Google Scholar 

  • Escudero A, Del Arco J M, Sanz I C and Ayala J 1991 Effect of leaf longevity and re-translocation efficiency on the retention time of nutrients in the leaf biomass of different woody species. Oecologia 90, 80–87.

    Article  Google Scholar 

  • Fircks Y von, Ericsson T and Sennerby-Forsse L 2001 Seasonal variation of macronutrients in leaves, stems and roots of Salix dasyclados Wimm. grown at two nutrient levels. Biomass & Bioenergy 21, 321–334.

    Article  Google Scholar 

  • Jonasson S 1990 Implications of leaf longevity, leaf nutrient re-absorption and translocation for the resource economy of five evergreen plant species. Oikos 56, 121–131.

    Article  Google Scholar 

  • Haslam E 1989 Plant polyphenols: Vegetable tannins revisited. Cambridge University Press, Cambridge. 230 pp.

    Google Scholar 

  • Hättenschwiler S and Vitousek P M 2000 The role of polyphenols in terrestrial ecosystem nutrient cycling. Tree 15, 238–243.

    PubMed  Google Scholar 

  • Killingbeck K T 1996 Nutrients in senesced leaves: Keys to the search for potential resorption and and resorption efficiency. Ecology 77, 1728–1737.

    Article  Google Scholar 

  • Mafongoya P L, Giller K E and Palm C A 1998 Decomposition and nitrogen release patterns of tree prunings and litter. Agrofor. Syst. 38, 77–97.

    Article  Google Scholar 

  • Makkar H P S and Becker K 1998 Do tannins in leaves of trees and shrubs from Africa and Himalayan regions differ in level and activity? Agrofor. Syst. 40, 59–68.

    Article  Google Scholar 

  • Minoletti M L and Boerner R E J 1994 Drought and site fertility effects on foliar nitrogen and phosphorus dynamics and nutrient resorption by the forest understorey shrub Viburnum acerifolium L. Am. Midl. Naturalist 131, 109–119.

    Article  Google Scholar 

  • Mueller-Harvey I 1989 Identification and importance of polyphenolic compounds in crop residues. In Physico-chemical characterization of plant residues for industrial and feed use. Eds. A Chesson and E R Orskov. pp. 88–109. Elsevier Science Publishing Co. Inc., New York.

    Google Scholar 

  • Murphy J and Riley J P 1982 A modified single solution method for determination of phosphate in natural waters. Anal. Chem. Acta 27, 31–36.

    Article  Google Scholar 

  • Nelson D W and Sommers L E 1982 Total carbon, organic carbon and organic matter. In Methods of Soil Analysis. Part 2. Chemical and Microbiological Properties. Ed. C A Black. pp. 570–571. American Society of Agronomy, Madison.

    Google Scholar 

  • Northup R R, Dahlgren R A and McColl J G 1998 Polyphenols as regulators of plant-litter-soil interactions in Northern California’s pygmy forest: A positive feedback? Biogeochem. 42, 189–220.

    Article  CAS  Google Scholar 

  • Palm C A 1995 Contribution of Agroforestry trees to nutrient requirements of inter-cropped plants. Agrofor. Syst. 30, 105–124.

    Article  Google Scholar 

  • Palm C A and Rowland A P 1997 A minimum dataset for characterization of plant quality for decomposition. In Driven by Nature: Plant Litter Quality and Decomposition. Eds. G Cadisch and K E Giller. pp. 379–392. CAB, Wallingford.

    Google Scholar 

  • Palm C A, Nziguheba G, Gachengo C, Gacheru E and Rao M R 1999 Organic materials as sources of phosphorus. Agrofor. Forum 9, 30–33.

    Google Scholar 

  • Porter L J, Hrstich L N and Chan B G 1986 The conversion of procyanidins and prodelphinidins to cyanidin and delphinidin. Phytochem. 25, 223–230.

    Article  CAS  Google Scholar 

  • Reed J D, Horvath P J, Allen M S and Van Soest P J 1985 Gravimetric determination of soluble phenolics including tannins from leaves by precipitation with trivalent ytterbium. J. Food Agric. 36, 255–261.

    Article  CAS  Google Scholar 

  • Schlesinger W H and Hasey M M 1981 Decomposition of Chaparral Shrub Foliage: Losses of Organic and Inorganic Constituents from Deciduous and Evergreen leaves. Ecology 62, 762–774.

    Article  CAS  Google Scholar 

  • Schlesinger W, DeLucia E and Billings W 1989 Nutrient-use efficiency of woody plants on contrasting soils in the western Great Basin, Nevada. Ecol. 70, 105–113.

    Article  Google Scholar 

  • Sharma B M 1983 Mineral content of leaves of some common tropical trees and their associated soils in Ibadan, Nigeria. Can. J. For. Res. 13, 556–562.

    Article  CAS  Google Scholar 

  • Sumner M E and Miller W P 1996 Cation Exchange Capacity and Exchange Coefficients. In Methods of Soil Analysis. Part 3: Chemical Methods. Ed. D L Sparks. pp. 1201–1229. Soil Science Society of America, Madison, USA

    Google Scholar 

  • SPSS 1996 SPSS Reference Guide. SPSS Inc., Chicago, IL.

    Google Scholar 

  • Tolsma D J, Ernst W H O, Verweij R A and Vooist R 1987 Seasonal variation of nutrient concentrations in a semi-arid savanna ecosystem in Botswana. J. Ecology 75, 755–770.

    Article  CAS  Google Scholar 

  • Van Soest P J 1963 Use of detergents in the analysis of fibrous feeds. II: A rapid method for the determination of fibre and lignin. J. Assoc. Agric. Chem. 46, 829–835.

    Google Scholar 

  • Verma K S and Mishra V K 1999 Foliage nutrient concentration and lopping time of agroforestry tree species in the Western Himalayan region of India. Agrofor. Syst. 42, 283–290.

    Article  Google Scholar 

  • Vitousek P M 1984 Litterfall, nutrient cycling, and nutrient limitation in tropical forests. Ecology 65, 285–298.

    Article  CAS  Google Scholar 

  • Vitousek P M 1998 Foliar and Litter Nutrients, Nutrient Resorption, and Decomposition in Hawaiian Metrosideros polymorpha. Ecosystem 1, 401–407.

    Article  CAS  Google Scholar 

  • Waterman P G and Mole S 1994 Analysis of Plant Metabolites. Blackwell Scientific Publications, London. 238 pp.

    Google Scholar 

Download references

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Teklay, T. Seasonal dynamics in the concentrations of macronutrients and organic constituents in green and senesced leaves of three agroforestry species in southern Ethiopia. Plant Soil 267, 297–307 (2004). https://doi.org/10.1007/s11104-005-0124-3

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