Phosphorus fractions in leaves.

crop improvement organic phosphorus phospholipids phosphorus fractions phosphorus-use efficiency

Journal

The New phytologist
ISSN: 1469-8137
Titre abrégé: New Phytol
Pays: England
ID NLM: 9882884

Informations de publication

Date de publication:
02 2023
Historique:
received: 12 07 2022
accepted: 25 10 2022
pubmed: 4 11 2022
medline: 21 1 2023
entrez: 3 11 2022
Statut: ppublish

Résumé

Leaf phosphorus (P) comprises four major fractions: inorganic phosphate (P

Identifiants

pubmed: 36328763
doi: 10.1111/nph.18588
doi:

Substances chimiques

Phosphorus 27YLU75U4W
Phosphates 0
Soil 0

Types de publication

Review Journal Article Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

1122-1135

Informations de copyright

© 2022 The Authors. New Phytologist © 2022 New Phytologist Foundation.

Références

Alkarawi HH, Zotz G. 2014a. Phytic acid in green leaves. Plant Biology 16: 697-701.
Alkarawi HH, Zotz G. 2014b. Phytic acid in green leaves of herbaceous plants-temporal variation in situ and response to different nitrogen/phosphorus fertilizing regimes. AoB Plants 6: plu048.
Andersson MX, Larsson KE, Tjellström H, Liljenberg C, Sandelius AS. 2005. Phosphate-limited oat: the plasma membrane and the tonoplast as major targets for phospholipid-to-glycolipid replacement and stimulation of phospholipases in the plasma membrane. Journal of Biological Chemistry 280: 27578-27586.
Bieleski RL. 1968. Effect of phosphorus deficiency on levels of phosphorus compounds in Spirodela. Plant Physiology 43: 1309-1316.
Bieleski RL. 1973. Phosphate pools, phosphate transport, and phosphate availability. Annual Review of Plant Physiology 24: 225-252.
Brady CJ. 1973. Ch. 24, Changes accompanying growth and senescence and effect of physiological stress. In: Butler GW, Bailey RW, eds. Chemistry and biochemistry of herbage, vol. 2. London, UK: Academic Press, 3I7-35I.
Chapin FS III, Bieleski RL. 1982. Mild phosphorus stress in barley and a related low-phosphorus-adapted barleygrass: phosphorus fractions and phosphate absorption in relation to growth. Physiologia Plantarum 54: 309-317.
Chapin FS III, Kedrowski RA. 1983. Seasonal changes in nitrogen and phosphorus fractions and autumn retranslocation in evergreen and deciduous taiga trees. Ecology 64: 376-391.
Chapin FS III, Shaver GR. 1988. Differences in carbon and nutrient fractions among arctic growth forms. Oecologia 77: 506-514.
Chapin FS III, Shaver GR, Kedrowski RA. 1986. Environmental controls over carbon, nitrogen and phosphorus fractions in Eriophorum vaginatum in Alaskan tussock tundra. Journal of Ecology 74: 167-195.
Conn S, Gilliham M. 2010. Comparative physiology of elemental distributions in plants. Annals of Botany 105: 1081-1102.
Denton MD, Veneklaas EJ, Freimoser FM, Lambers H. 2007. Banksia species (Proteaceae) from severely phosphorus-impoverished soils exhibit extreme efficiency in the use and re-mobilization of phosphorus. Plant, Cell & Environment 30: 1557-1565.
Dietz KJ, Schramm M, Betz M, Busch H, Dürr C, Martinoia E. 1992. Characterization of the epidermis from barley primary leaves. Planta 187: 425-430.
Guilherme Pereira C, Clode PL, Oliveira RS, Lambers H. 2018. Eudicots from severely phosphorus-impoverished environments preferentially allocate phosphorus to their mesophyll. New Phytologist 218: 959-973.
Guilherme Pereira C, Hayes PE, O'Sullivan O, Weerasinghe L, Clode PL, Atkin OK, Lambers H. 2019. Trait convergence in photosynthetic nutrient-use efficiency along a 2-million year dune chronosequence in a global biodiversity hotspot. Journal of Ecology 107: 2006-2023.
Hart AL, Jessop D. 1984. Diurnal variation in starch and inorganic phosphate concentrations in leaves of white clover and lotus. New Zealand Journal of Agricultural Research 27: 1-3.
Hayes P, Turner BL, Lambers H, Laliberté E. 2014. Foliar nutrient concentrations and resorption efficiency in plants of contrasting nutrient-acquisition strategies along a 2-million-year dune chronosequence. Journal of Ecology 102: 396-410.
Hayes PE, Adem GD, Pariasca-Tanaka J, Wissuwa M. 2022. Leaf phosphorus fractionation in rice to understand internal phosphorus-use efficiency. Annals of Botany 129: 287-302.
Hayes PE, Clode PL, Oliveira RS, Lambers H. 2018. Proteaceae from phosphorus-impoverished habitats preferentially allocate phosphorus to photosynthetic cells: an adaptation improving phosphorus-use efficiency. Plant, Cell & Environment 41: 605-619.
Hellin E, Alcaraz CF. 1980. Influence of manganese deficiency on phosphorus fractions in lemon leaves. Journal of Plant Nutrition 2: 323-333.
Hidaka A, Kitayama K. 2011. Allocation of foliar phosphorus fractions and leaf traits of tropical tree species in response to decreased soil phosphorus availability on Mount Kinabalu, Borneo. Journal of Ecology 99: 849-857.
Hidaka A, Kitayama K. 2013. Relationship between photosynthetic phosphorus-use efficiency and foliar phosphorus fractions in tropical tree species. Ecology and Evolution 3: 4872-4880.
Jeong K, Julia CC, Waters DLE, Pantoja O, Wissuwa M, Sigrid H, Liu L, Rose TJ. 2017. Remobilisation of phosphorus fractions in rice flag leaves during grain filling: implications for photosynthesis and grain yields. PLoS ONE 12: e0187521.
Jouhet J, Maréchal E, Baldan B, Bligny R, Joyard J, Block MA. 2004. Phosphate deprivation induces transfer of DGDG galactolipid from chloroplast to mitochondria. Journal of Cell Biology 167: 863-874.
Kedrowski RA. 1983. Extraction and analysis of nitrogen, phosphorus and carbon fractions in plant material. Journal of Plant Nutrition 6: 989-1011.
Killingbeck KT. 1996. Nutrients in senesced leaves: keys to the search for potential resorption and resorption proficiency. Ecology 77: 1716-1727.
Kumar A, Singh B, Raigond P, Sahu C, Mishra UN, Sharma S, Lal MK. 2021. Phytic acid: blessing in disguise, a prime compound required for both plant and human nutrition. Food Research International 142: 110193.
Kuppusamy T, Giavalisco P, Arvidsson S, Sulpice R, Stitt M, Finnegan PM, Scheible W-R, Lambers H, Jost R. 2014. Lipid biosynthesis and protein concentration respond uniquely to phosphate supply during leaf development in highly phosphorus-efficient Hakea prostrata. Plant Physiology 166: 1891-1911.
Lagace TA, Ridgway ND. 2013. The role of phospholipids in the biological activity and structure of the endoplasmic reticulum. Biochimica et Biophysica Acta - Molecular Cell Research 1833: 2499-2510.
Lambers H, Cawthray GR, Giavalisco P, Kuo J, Laliberte E, Pearse SJ, Scheible WR, Stitt M, Teste F, Turner BL. 2012. Proteaceae from severely phosphorus-impoverished soils extensively replace phospholipids with galactolipids and sulfolipids during leaf development to achieve a high photosynthetic phosphorus-use-efficiency. New Phytologist 196: 1098-1108.
Lambers H, Finnegan PM, Jost R, Plaxton WC, Shane MW, Stitt M. 2015. Phosphorus nutrition in Proteaceae and beyond. Nature Plants 1: 15109.
Lambers H, Poorter H. 1992. Inherent variation in growth rate between higher plants: a search for physiological causes and ecological consequences. Advances in Ecological Research 34: 187-261.
Lee RB, Ratcliffe RG. 1993. Subcellular distribution of inorganic phosphate, and levels of nucleoside triphosphate, in mature maize roots at low external phosphate concentrations: measurements with 31P-NMR. Journal of Experimental Botany 44: 587-598.
Madsen CK, Brinch-Pedersen H. 2020. Globoids and phytase: the mineral storage and release system in seeds. International Journal of Molecular Sciences 21: 7519.
Mao R, Zeng D-H, Zhang X-H, Song C-C. 2015. Responses of plant nutrient resorption to phosphorus addition in freshwater marsh of North-east China. Scientific Reports 5: 8097.
Matzek V, Vitousek PM. 2009. N:P stoichiometry and protein:RNA ratios in vascular plants: an evaluation of the growth-rate hypothesis. Ecology Letters 12: 765-771.
Mimura T, Dietz KJ, Kaiser W, Schramm MJ, Kaiser G, Heber U. 1990. Phosphate transport across biomembranes and cytosolic phosphate homeostasis in barley leaves. Planta 180: 139-146.
Mimura T, Sakano K, Shimmen T. 1996. Studies on the distribution, re-translocation and homeostasis of inorganic phosphate in barley leaves. Plant, Cell & Environment 19: 311-320.
Mo Q, Li Z, Sayer EJ, Lambers H, Li Y, Zou B, Tang J, Heskel M, Ding Y, Wang F. 2019. Foliar phosphorus fractions reveal how tropical plants maintain photosynthetic rates despite low soil phosphorus availability. Functional Ecology 33: 503-513.
Nicol D, Ryan H. 2021. Dataset. Leaf phosphorus fractions at a field site in southern Western Australia. The University of Western Australia. [WWW document] URL doi: 10.26182/4vwc-e382. https://research-repository.uwa.edu.au/en/persons/megan-ryan/datasets/ [accessed 14 January 2022]
Ostertag R. 2010. Foliar nitrogen and phosphorus accumulation responses after fertilization: an example from nutrient-limited Hawaiian forests. Plant and Soil 334: 85-98.
Phillis E, Mason TG. 1942. On diurnal variations in the mineral content of the leaf of the cotton plant. Annals of Botany 6: 437-442.
Raboy V. 2003. Myo-inositol-1,2,3,4,5,6-hexakisphosphate. Phytochemistry 64: 1033-1043.
Reddy NR, Sathe SK, Salunkhe DK. 1982. Phytates in legumes and cereals. In: Chichester CO, Mrak EM, Stewart GF, eds. Advances in food research. New York, NY, USA: Academic Press, 1-92.
Reed SC, Townsend AR, Davidson EA, Cleveland CC. 2012. Stoichiometric patterns in foliar nutrient resorption across multiple scales. New Phytologist 196: 173-180.
Ryan MH, Kaur P, Nazeri NK, Clode PL, Keeble-Gagnère G, Doolette AL, Smernik RJ, Van Aken O, Nicol D, Maruyama H et al. 2019. Globular structures in roots accumulate phosphorus to extremely high concentrations following phosphorus addition. Plant, Cell & Environment 42: 1987-2002.
SAS. 2003. Statistical analysis system. SAS release 9.1 for windows. Cary, NC, USA: SAS Institute.
Siminovitch D, Rheaume B, Pomeroy K, Lepage M. 1968. Phospholipid, protein, and nucleic acid increases in protoplasm and membrane structures associated with development of extreme freezing resistance in black locust tree cells. Cryobiology 5: 202-225.
Sinclair TR, Vadez V. 2002. Physiological traits for crop yield improvement in low N and P environments. Plant and Soil 245: 1-15.
Strother S. 1980. Homeostasis in germinating seeds. Annals of Botany 45: 217-218.
Sulpice R, Ishihara H, Schlereth A, Cawthray GR, Encke B, Giavalisco P, Ivakov A, Arrivault S, Jost R, Krohn N et al. 2014. Low levels of ribosomal RNA partly account for the very high photosynthetic phosphorus-use efficiency of Proteaceae species. Plant, Cell & Environment 37: 1276-1298.
Suriyagoda LDB, Rajapaksha R, Pushpakumara G, Lambers H. 2017. Nutrient resorption from senescing leaves of epiphytes, hemiparasites and their hosts in tropical forests of Sri Lanka. Journal of Plant Ecology 11: 815-826.
Tachibana S. 1987. Effect of root temperature on the concentration of various forms of phosphorus in cucumber and figleaf gourd plants. Bulletin of the Faculty of Agriculture - Mie University 74: 1-8.
Takagi D, Miyagi A, Tazoe Y, Suganami M, Kawai-Yamada M, Ueda A, Suzuki Y, Noguchi K, Hirotsu N, Makino A. 2020. Phosphorus toxicity disrupts Rubisco activation and reactive oxygen species defence systems by phytic acid accumulation in leaves. Plant, Cell & Environment 43: 2033-2053.
Takyu M, Aiba SI, Kitayama K. 2002. Effects of topography on tropical lower montane forests under different geological conditions on Mount Kinabalu, Borneo. Plant Ecology 159: 35-49.
Tawaraya K, Honda S, Cheng W, Chuba M, Okazaki Y, Saito K, Oikawa A, Maruyama H, Wasaki J, Wagatsuma T. 2018. Ancient rice cultivar extensively replaces phospholipids with non-phosphorus glycolipid under phosphorus deficiency. Physiologia Plantarum 163: 297-305.
Tsujii Y, Onoda Y, Kitayama K. 2017. Phosphorus and nitrogen resorption from different chemical fractions in senescing leaves of tropical tree species on Mount Kinabalu, Borneo. Oecologia 185: 171-180.
Veneklaas EJ, Lambers H, Bragg J, Finnegan PM, Lovelock CE, Plaxton WC, Price CA, Scheible WR, Shane MW, White PJ et al. 2012. Opportunities for improving phosphorus-use efficiency in crop plants. New Phytologist 195: 306-320.
Vergutz L, Manzoni S, Porporato A, Novais RF, Jackson RB. 2012. Global resorption efficiencies and concentrations of carbon and nutrients in leaves of terrestrial plants. Ecological Monographs 82: 205-220.
Yan L, Zhang X, Han Z, Pang J, Lambers H, Finnegan PM. 2019. Responses of foliar phosphorus fractions to soil age are diverse along a 2 Myr dune chronosequence. New Phytologist 223: 1621-1633.
Ye D, Clode PL, Hammer TA, Pang J, Lambers H, Ryan MH. 2021. Accumulation of phosphorus and calcium in different cells protects the phosphorus-hyperaccumulator Ptilotus exaltatus from phosphorus toxicity in high-phosphorus soils. Chemosphere 264: 128438.
Yuan Z, Chen HYH. 2009. Global trends in senesced-leaf nitrogen and phosphorus. Global Ecology and Biogeography 18: 532-542.
Zemunik G, Turner BL, Lambers H, Laliberté E. 2015. Diversity of plant nutrient-acquisition strategies increases during long-term ecosystem development. Nature Plants 1: 15050.

Auteurs

Lalith D B Suriyagoda (LDB)

Department of Crop Science, Faculty of Agriculture, University of Peradeniya, Peradeniya, 20400, Sri Lanka.
School of Biological Sciences, The University of Western Australia, 35 Stirling Highway, Perth, WA, 6009, Australia.

Megan H Ryan (MH)

UWA School of Agriculture and Environment, The University of Western Australia, 35 Stirling Highway, Perth, WA, 6009, Australia.
Institute of Agriculture, The University of Western Australia, 35 Stirling Highway, Perth, WA, 6009, Australia.

Clément E Gille (CE)

School of Biological Sciences, The University of Western Australia, 35 Stirling Highway, Perth, WA, 6009, Australia.

Roberta L C Dayrell (RLC)

School of Biological Sciences, The University of Western Australia, 35 Stirling Highway, Perth, WA, 6009, Australia.

Patrick M Finnegan (PM)

School of Biological Sciences, The University of Western Australia, 35 Stirling Highway, Perth, WA, 6009, Australia.

Kosala Ranathunge (K)

School of Biological Sciences, The University of Western Australia, 35 Stirling Highway, Perth, WA, 6009, Australia.

Dion Nicol (D)

UWA School of Agriculture and Environment, The University of Western Australia, 35 Stirling Highway, Perth, WA, 6009, Australia.
Institute of Agriculture, The University of Western Australia, 35 Stirling Highway, Perth, WA, 6009, Australia.
Department of Primary Industries and Regional Development, Western Australia, Dryland Research Institute, Merredin, WA, 6415, Australia.

Hans Lambers (H)

School of Biological Sciences, The University of Western Australia, 35 Stirling Highway, Perth, WA, 6009, Australia.
Institute of Agriculture, The University of Western Australia, 35 Stirling Highway, Perth, WA, 6009, Australia.

Articles similaires

Photosynthesis Ribulose-Bisphosphate Carboxylase Carbon Dioxide Molecular Dynamics Simulation Cyanobacteria
Populus Soil Microbiology Soil Microbiota Fungi
Genome, Viral Ralstonia Composting Solanum lycopersicum Bacteriophages
Semiconductors Photosynthesis Polymers Carbon Dioxide Bacteria

Classifications MeSH