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Combined Transcriptome and Proteome Analysis of Maize ( L.) Reveals A Complementary Profile in Response to Phosphate Deficiency

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Publisher MDPI
Specialty Molecular Biology
Date 2021 Sep 25
PMID 34563050
Citations 6
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Abstract

A deficiency in the macronutrient phosphate (Pi) brings about various changes in plants at the morphological, physiological and molecular levels. However, the molecular mechanism for regulating Pi homeostasis in response to low-Pi remains poorly understood, particularly in maize ( L.), which is a staple crop and requires massive amounts of Pi. Therefore, in this study, we performed expression profiling of the shoots and roots of maize seedlings with Pi-tolerant genotype at both the transcriptomic and proteomic levels using RNA sequencing and isobaric tags for relative and absolute quantitation (iTRAQ). We identified 1944 differentially expressed transcripts and 340 differentially expressed proteins under low-Pi conditions. Most of the differentially expressed genes were clustered as regulators, such as transcription factors involved in the Pi signaling pathway at the transcript level. However, the more functional and metabolism-related genes showed expression changes at the protein level. Moreover, under low-Pi conditions, Pi transporters and phosphatases were specifically induced in the roots at both the transcript and protein levels, and increased amounts of mRNA and protein of two purple acid phosphatases (PAPs) and one UDP-sulfoquinovose synthase (SQD) were specifically detected in the roots. The new insights provided by this study will help to improve the P-utilization efficiency of maize.

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References
1.
Hammond J, Bennett M, Bowen H, Broadley M, Eastwood D, May S . Changes in gene expression in Arabidopsis shoots during phosphate starvation and the potential for developing smart plants. Plant Physiol. 2003; 132(2):578-96. PMC: 166999. DOI: 10.1104/pp.103.020941. View

2.
Di Pietro M, Vialaret J, Li G, Hem S, Prado K, Rossignol M . Coordinated post-translational responses of aquaporins to abiotic and nutritional stimuli in Arabidopsis roots. Mol Cell Proteomics. 2013; 12(12):3886-97. PMC: 3861731. DOI: 10.1074/mcp.M113.028241. View

3.
Versaw W, Harrison M . A chloroplast phosphate transporter, PHT2;1, influences allocation of phosphate within the plant and phosphate-starvation responses. Plant Cell. 2002; 14(8):1751-66. PMC: 151463. DOI: 10.1105/tpc.002220. View

4.
Szklarczyk D, Franceschini A, Wyder S, Forslund K, Heller D, Huerta-Cepas J . STRING v10: protein-protein interaction networks, integrated over the tree of life. Nucleic Acids Res. 2014; 43(Database issue):D447-52. PMC: 4383874. DOI: 10.1093/nar/gku1003. View

5.
Casimiro I, Marchant A, Bhalerao R, Beeckman T, Dhooge S, Swarup R . Auxin transport promotes Arabidopsis lateral root initiation. Plant Cell. 2001; 13(4):843-52. PMC: 135543. DOI: 10.1105/tpc.13.4.843. View