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Effect of phosphorus availability on basal root shallowness in common bean

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Abstract

Root gravitropism may be an important element of plant response to phosphorus availability because it determines root foraging in fertile topsoil horizons, and thereby phosphorus acquisition. In this study we seek to test this hypothesis in both two dimensional paper growth pouch and three-dimensional solid media of sand and soil cultures. Five common bean (Phaseolus vulgaris L.) genotypes with contrasting adaptation to low phosphorus availability were evaluated in growth pouches over 6 days of growth, and in sand culture and soil culture over 4 weeks of growth. In all three media, phosphorus availability regulated the gravitropic response of basal roots in a genotype-dependent manner. In pouches, sand, and soil, the phosphorus-inefficient genotype DOR 364 had deeper roots with phosphorus stress, whereas the phosphorus-efficient genotype G19833 responded to phosphorus stress by producing shallower roots. Genotypes were most responsive to phosphorus stress in sand culture, where relative root allocation to the 0–3- and 3–6-cm horizons increased 50% with phosphorus stress, and varied 300% (3–6 cm) to 500% (0–3 cm) among genotypes. Our results indicate that (1) phosphorus availability regulates root gravitropic growth in both paper and solid media, (2) responses observed in young seedlings continue throughout vegetative growth, (3) the response of root gravitropism to phosphorus availability varies among genotypes, and (4) genotypic adaptation to low phosphorus availability is correlated with the ability to allocate roots to shallow soil horizons under phosphorus stress.

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References

  • Anderson G 1980 Assessing organic phosphorus in soils. In The Role of Phosphorus in Agriculture. Eds. F E Khasawneh et al. pp. 411–431. American Society of Agronomy, Madison, WI, USA.

    Google Scholar 

  • Barber S A 1995 Soil Nutrient Bioavailability: A Mechanistic Approach. pp. 202–230. John Wiley and Sons, New York, USA.

    Google Scholar 

  • Beebe S, Lynch J P, Galwey N, Tohme J and Ochoa I 1997 A geographical approach to identify phosphorus-efficient genotypes among landraces and wild ancestors of common bean. Euphytica 95, 325–336.

    Google Scholar 

  • Berta G, Trotta A, Fusconi A, Hooker J E, Munro M, Atkinson D, Giovannetti M, Morini S, Fortuna P and Tisserant B 1995 Arbuscular mycorrhizal induced changes to plant growth and root system morphology in Prunus cerasifera. Tree Physiol. 15, 281–293.

    Google Scholar 

  • Bonser A M, Lynch J P and Snapp S 1996 Effect of phosphorus deficiency on growth angle of basal roots of Phaseolus vulgaris L. New Phytol. 132, 281–288.

    Google Scholar 

  • Borch K, Bouma T J, Lynch J P and Brown K M 1999 Ethylene: a regulator of root architectural responses to soil phosphorus availability. Plant Cell Environ. 22, 425–431.

    Google Scholar 

  • Cathcart J B 1980 World phosphate reserves and resources for fertilizer production. In The Role of Phosphorus in Agriculture. Eds. F E Khasawneh et al. pp. 1–18. American Society of Agronomy, Madison, WI, USA.

    Google Scholar 

  • Chu W K and Chang S C 1966 Surface activity of inorganic soil phosphorus. Soil Sci. 101, 459–464.

    Google Scholar 

  • CIAT (Centro Internacional de Agricultura Tropical) 1987. CIAT Annual Report for 1986. Cali, Colombia.

  • CIAT (Centro Internacional de Agricultura Tropical) 1996. CIAT Annual Report for 1995. Cali, Colombia.

  • Coltman R R, Gerloff G C and Gabelman W H 1982 A sand culture system for simulating plant responses to phosphorus in soil. J. Am. Soc. Hortic. Sci. 107, 938–942.

    Google Scholar 

  • Espeleta J F and Eissenstat D M 1998 Responses of citrus fine roots to localized soil drying: a comparison of seedlings with adult fruiting trees. Tree Physiol. 18, 113–119.

    Google Scholar 

  • Evans M L 1991 Gravitropism: interaction of sensitivity modulation and effector redistribution. Plant Physiol. 95, 1–5.

    Google Scholar 

  • Fitter A H 1991 Characteristics and functions of root systems. In Plant Roots: The Hidden Half. 2nd edn. Eds. Y Waisel et al. pp. 3–25. Marcel Dekker, New York, USA.

    Google Scholar 

  • Ge Z, Rubio G and Lynch J P 2000 The importance of root gravitropism for inter-root competition and phosphorus acquisition efficiency: results from a geometric simulation model. Plant Soil. 218, 159–171.

    Google Scholar 

  • Kays S J, Nicklow C W and Simons D H 1974 Ethylene in relation to the response of roots to physical impedance. Plant Soil 40, 565–571.

    Google Scholar 

  • Kirk G J D and van Du L 1997 Changes in rice root architecture, porosity, and oxygen and proton release under phosphorus deficiency. New Phytol. 135, 191–200.

    Google Scholar 

  • Li Q 1985 Red Soils in China (in Chinese). pp. 145–146. China Science Press, Beijing, China.

    Google Scholar 

  • Liao H and Yan X 1999 Seed size is closely related to phosphorus use efficiency and photosynthetic phosphorus use efficiency in common bean. J. Plant Nutr. 22, 877–888.

    Google Scholar 

  • Lynch J P 1995 Root architecture and plant productivity.Plant Physiol. 109, 7–13.

    Google Scholar 

  • Lynch J P 1998a The role of nutrient-efficient crops in modern agriculture. J. Crop Prod. 1, 241–264.

    Google Scholar 

  • Lynch J P 1998b Root architecture and phosphorus acquisition efficiency in common bean. In Phosphorus in Plant Biology: Regulatory Roles in Molecular, Cellular, Organismic, and Ecosystem Processes. Eds. J P Lynch and J Deikman. Rockville, USA. American Society of Plant Physiologists. 19, 81–91.

    Google Scholar 

  • Lynch J P and van Beem J 1993 Growth and architecture of seedling roots of common bean genotypes.Crop Sci. 33, 1253–1257.

    Google Scholar 

  • Lynch J P and Beebe S E 1995 Adaptation of beans (Phaseolus vulgaris L.) to low phosphorus availability. HortScience 30, 1165–1171.

    Google Scholar 

  • Lynch J P and Brown K M 1997 Ethylene and plant responses to nutritional stress. Physiol. Plant. 100, 613–619.

    Google Scholar 

  • Lynch J P, Epstein E, Lauchli A and Weight G E 1990 An automated greenhouse sand culture system suitable for studies of P nutrition. Plant Cell Environ. 13, 547–554.

    Google Scholar 

  • Miller C, Nielsen K, Lynch J P and Beck D 1998 Adventitious root response in field grown common bean: a possible adaptive strategy to low-phosphorus conditions. In Phosphorus in Plant Biology: Regulatory Roles in Molecular, Cellular, Organismic, and Ecosystem Processes. Eds. J P Lynch and J Deikman. Rockville, USA: American Society of Plant Physiologists 19, 394–397.

    Google Scholar 

  • Pothuluri J V, Kissel D E, Whitney D A and Thien S J 1986 Phosphorus uptake from soil layers having different soil test phosphorus levels. Agron. J. 78, 991–994.

    Google Scholar 

  • Rendig V V and Taylor H M 1989 Principles of Soil-Plant Interrelationships. pp. 95–100. McGraw-Hill, New York, USA.

    Google Scholar 

  • Ryden J C, Syers J K and Harris R F 1973 Phosphorus in runoff and streams. Adv. Agron. 25, 1–45.

    Google Scholar 

  • Sample E C, Soper R J and Racz G J 1980 Reactions of phosphate fertilizers in soils. In The Role of Phosphorus in Agriculture. Eds. F.E. Khasawneh et al. pp. 263–310. American Society of Agronomy, Madison, WI, USA.

    Google Scholar 

  • Sanchez P A 1976 Properties and Management of Soils in the Tropics. John Wiley and Sons, New York, USA.

    Google Scholar 

  • Sanchez P A and Buol S W 1975 Soils of the tropics and the world food crisis. In Food: Politics Economics Nutrition and Research. Eds. P.H. Abelson. pp. 115–120. American Association for the Advancement of Science, Washington, DC, USA.

    Google Scholar 

  • Sarquis J, Jordan W and Morgan P 1991 Ethylene evolution from maize (Zea mays L.) seedling roots and shoots in response to mechanical impedance. Plant Physiol. 96, 1171–1177.

    Google Scholar 

  • Schellenbaum L, Berta G, Ravolanirina F, Tisserant B, Gianinazzi S and Fitter A H 1991 Influence of endomycorrhizal infection on root morphology in a micropropagated woody plant species (Vitis vinifera L.). Ann. Bot. 68, 135–141.

    Google Scholar 

  • Singh S P, Gepts P and Debouck D G 1991 Races of common bean (Phaseolus vulgaris, Fabacea). Econ. Bot. 45, 379–396.

    Google Scholar 

  • Snapp S, Koide R and Lynch J P 1995 Exploitation of localized phosphorus-patches by common bean roots. Plant Soil 177, 211–218.

    Google Scholar 

  • Stevenson F J 1986 Cycles of Soil: Carbon, Nitrogen, Phosphorus, Sulfur, Micronutrients. John Wiley and Sons, New York, USA

    Google Scholar 

  • Tarafdar J C and Claassen N 1988 Organic phosphorus compounds as a phosphorus source for higher plants through the activity of phosphatase produced by plant roots and microorganisms. Biol. Fertil. Soils 5, 308–312.

    Google Scholar 

  • Trotta A, Carminati C, Schellenbaum L, Scannerini S, Fusconi A and Berta G 1991 Correlation between root morphogenesis, VA mycorrhizal infection and phosphorus nutrition. Dev. Agric. Managed For. Ecol. 24, 333–339.

    Google Scholar 

  • White J W and Castillo J A 1992 Evaluation of diverse shoot genotypes on selected root genotypes of common bean under soil water deficits. Crop Sci. 32, 762–765.

    Google Scholar 

  • Wilkinson L, Hill M and Vang E 1992 SYSTAT Statistics. pp. 116–364. SYSTAT, Evanston, USA.

    Google Scholar 

  • Wortmann C S and Allen D J 1994 Constraints on bean production in Africa. Ann. Rep. 37, 202–203.

    Google Scholar 

  • Yan X and Lynch J P 1999 Genetic variation for root hair density and length in the common bean in response to low phosphorus availability. In Phosphorus in Plant Biology: Regulatory Roles in Molecular, Cellular, Organismic, and Ecosystem Processes. Eds. J P Lynch an J Deikman. Rockville, USA: American Society of Plant Physiologists.19, 332–334.

    Google Scholar 

  • Yan X, Lynch J P and Beebe S E 1995a Genetic variation for phosphorus efficiency of common bean in contrasting soil types: I. Vegetative response. Crop Sci. 35, 1086–1093.

    Google Scholar 

  • Yan X, Beebe S E and Lynch J P 1995b Genetic variation for phosphorus efficiency of common bean in contrasting soil types: II. Yield response. Crop Sci. 35, 1094–1099.

    Google Scholar 

  • Yang M and Yan X 1998 Preliminary studies on morphological and physiological mechanisms of Stylosanthes guianensis for P effi-ciency on an acid soil (in Chinese, with English abstract). Acta Agrestia Sinica 6, 212–220.

    Google Scholar 

  • Yang M and Yan X 1999 Genotypic variation of Stylosanthes guianensis in P efficiency on an acid soil of red earth region (in Chinese, with English abstract). Acta Agrestia Sinica 7, 113–120.

    Google Scholar 

  • Zhang Y J, Lynch J P and Brown K 1998 Mediation of phosphorus by ethylene. In 1997 Agronomy Abstracts. p. 95. ASA, Baltimore, MD.

    Google Scholar 

  • Zobel R W 1996 Genetic control of root systems. In Plant Roots: The Hidden Half. Eds. Y Waisel, A Eshel and U Kafkafi. pp. 21–30. Marcel Dekker, New York.

    Google Scholar 

Download references

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Correspondence to Jonathan P. Lynch.

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Liao, H., Rubio, G., Yan, X. et al. Effect of phosphorus availability on basal root shallowness in common bean. Plant and Soil 232, 69–79 (2001). https://doi.org/10.1023/A:1010381919003

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