Differences in foliar phosphorus fractions, rather than in cell-specific phosphorus allocation, underlie contrasting photosynthetic phosphorus use efficiency among chickpea genotypes

Author:

Wen Zhihui12ORCID,Pang Jiayin34ORCID,Wang Xiao23,Gille Clément E2,De Borda Axel25,Hayes Patrick E2ORCID,Clode Peta L26ORCID,Ryan Megan H34,Siddique Kadambot H M34,Shen Jianbo1ORCID,Lambers Hans123ORCID

Affiliation:

1. Department of Plant Nutrition, College of Resources and Environmental Sciences; National Academy of Agriculture Green Development; Key Laboratory of Plant-Soil Interactions, Ministry of Education, China Agricultural University , Beijing 100193 , China

2. School of Biological Sciences, The University of Western Australia , Perth, WA 6009 , Australia

3. The UWA Institute of Agriculture, The University of Western Australia , Perth, WA 6009 , Australia

4. UWA School of Agriculture and Environment, The University of Western Australia , Perth, WA 6009 , Australia

5. Agronomy Engineering School of Purpan , 75 Voie du Toec-BP 57611, 31076 Toulouse , France

6. Centre for Microscopy, Characterisation and Analysis, The University of Western Australia , Perth, WA 6009 , Australia

Abstract

Abstract Although significant intraspecific variation in photosynthetic phosphorus (P) use efficiency (PPUE) has been shown in numerous species, we still know little about the biochemical basis for differences in PPUE among genotypes within a species. Here, we grew two high PPUE and two low PPUE chickpea (Cicer arietinum) genotypes with low P supply in a glasshouse to compare their photosynthesis-related traits, total foliar P concentration ([P]) and chemical P fractions (i.e. inorganic P (Pi), metabolite P, lipid P, nucleic acid P, and residual P). Foliar cell-specific nutrient concentrations including P were characterized using elemental X-ray microanalysis. Genotypes with high PPUE showed lower total foliar [P] without slower photosynthetic rates. No consistent differences in cellular [P] between the epidermis and mesophyll cells occurred across the four genotypes. In contrast, high PPUE was associated with lower allocation to Pi and metabolite P, with PPUE being negatively correlated with the percentage of these two fractions. Furthermore, a lower allocation to Pi and metabolite P was correlated with a greater allocation to nucleic acid P, but not to lipid P. Collectively, our results suggest that a different allocation to foliar P fractions, rather than preferential P allocation to specific leaf tissues, underlies the contrasting PPUE among chickpea genotypes.

Funder

National Natural Science Foundation of China

China Postdoctoral Science Foundation

Australian Research Council

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Physiology

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