AI Article Synopsis

  • Iron (Fe) is crucial for plant health, and this study focuses on understanding why some wheat genotypes tolerate Fe deficiency better than others.
  • The wheat variety Kanchan (KAN) showed better tolerance to Fe deficiency compared to PBW343 (PBW), exhibiting delayed symptoms of chlorosis and lower stress markers during early growth.
  • Molecular analyses revealed specific gene expressions related to Fe uptake and remobilization, with KAN demonstrating higher phytosiderophore production, which aids in Fe absorption, and the identification of TaZIFL4.2D as a key transporter contributing to this tolerant trait.

Article Abstract

Iron (Fe) is an essential plant nutrient that is indispensable for many physiological activities. This study is an effort to identify the molecular and biochemical basis of wheat genotypes with contrasting tolerance towards Fe deficiency. Our physiological experiments performed at the early growth stage in cv. Kanchan (KAN) showed Fe deficiency tolerance, whereas cv. PBW343 (PBW) was susceptible. Under Fe deficient condition, KAN showed delayed chlorosis, high SPAD values, and low malondialdehyde content compared to PBW, indicative of Fe deficient condition. Comparative shoot transcriptomics revealed increased expression of photosynthetic pathway genes in PBW, further suggesting its sensitivity to Fe fluctuations. Under Fe deficiency, both the cultivars showed distinct molecular re-arrangements such as high expression of genes involved in Fe uptake (including membrane transporters) and its remobilization. Specifically, in KAN these changes lead to high root phytosiderophores (PS) biosynthesis and its release, resulting in enhanced Fe translocation index. Utilizing the non-transgenic TILLING (Targeting Induced Lesions in Genomes) technology, we identified TaZIFL4.2D as a putative PS efflux transporter. Characterization of the wheat TILLING lines indicated that TaZIFL4.2 functions in PS release and Fe acquisition, thereby imparting tolerance to Fe deficiency. Altogether, this work highlights the mechanistic insight into Fe deficiency tolerance of hexaploid wheat, thus enabling breeders to select suitable genotypes to utilize nutrients for maximum yields.

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Source
http://dx.doi.org/10.1016/j.plaphy.2024.108336DOI Listing

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