An apple NITRATE REDUCTASE 2 gene positively regulates nitrogen utilization and abiotic stress tolerance in Arabidopsis and apple callus.

Plant Physiol Biochem

National Key Laboratory of Crop Biology, National Research Center for Apple Engineering and Technology, College of Horticulture Science and Engineering, Shandong Agricultural University, Tai-An, 271018, Shandong, China. Electronic address:

Published: March 2023

AI Article Synopsis

  • Nitrogen is crucial for crop growth and quality, but excessive fertilizer use can cause environmental problems; thus, improving nitrogen use efficiency in crops is essential for sustainable agriculture.
  • The MdNIA2 gene, identified in apples, plays a significant role in nitrogen metabolism and is closely related to a similar gene in another species, suggesting its importance in crop breeding.
  • Ectopic expression of MdNIA2 in Arabidopsis enhances nitrogen use efficiency, root development, and increases tolerance to salt and drought, indicating its potential benefits for improving crop resilience.

Article Abstract

Nitrogen (N) is an essential element that plays an important role in crop biomass accumulation and quality formation. Increased crop yield is relied on excessive application of fertilizers, which usually leads to environmental pollution and unsustainable development. Thus, identification and characterization of genes involved in promoting nitrogen use efficiency is of high priority in crop breeding. The activity of nitrate reductase (NR) plays a critical role in nitrogen metabolism. In model plant Arabidopsis, NITRATE REDUCTASE 2 (NIA2), one of the two NRs, is responsible for about 90% of the NR activity. In this study, MdNIA2 gene in apple (Malus domestica) genome was screened out and identified by using AtNIA2 as bait. Phylogenetic analysis revealed that MdNIA2 had the closest evolutionary relationship with MbNIA from Malus baccata. Ectopic expression of MdNIA2 in Arabidopsis elevated the nitrogen use efficiency and increased root hair elongation and formation, resulting in promoted plant growth. Furthermore, the overexpression of MdNIA2 improved salt and drought tolerance in transgenic Arabidopsis and improved the salt tolerance of transgenic apple callus, and MdNIA2-reagualted NO metabolism might contribute to the abiotic stress tolerance. Overall, our data indicate the critical role of MdNIA2 in regulating nitrogen utilization efficiency and abiotic stress responses.

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Source
http://dx.doi.org/10.1016/j.plaphy.2023.01.026DOI Listing

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