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Anandan, A.

Publications and source records attributed to Anandan, A..

2 recordsLinked to original sources

Structural analysis of the Sterile alpha motif (SAM) domain of the Arabidopsis mitochondrial tRNA import receptor

Mitochondria are membrane bound organelles of endosymbiotic origin with limited protein coding capacity. As a consequence, the continual import of nuclear-encoded protein and nucleic acids such as DNA and small non-coding RNA is required and essential for maintaining organelle mass, number and activity. As plant mitochondria do not encode all the necessary tRNA types required, the import of cytosolic tRNA is vital for organelle maintenance. Recently, two mitochondrial outer membrane proteins, named Tric1 and Tric2, for tRNA import component, were shown to be involved in the import of cytosolic tRNA. Tric1/2 binds tRNAala via conserved residues in the C-terminal Sterile Alpha Motif (SAM) domain. Here we report the X-ray crystal structure of the Tric1 SAM domain. We identified the ability of the SAM domain to form a helical superstructure with 6 SAM domains per helical turn and key amino acid residues responsible for its formation. We determined that the oligomerization of Tric1 SAM domain was essential for protein function whereby mutation of Gly241 resulted in the disruption of the oligomer and the loss of RNA binding capability in Tric1. Furthermore, complementation of Arabidopsis thaliana Tric1/2 knockout lines with a mutated Tric1 failed to restore the defective plant phenotype suggesting the oligomerization is essential for function in planta. AlphaFold2 structure prediction of the SAM domain and Tric1 support a cyclic hexamer generating a pore of sufficient dimensions to transfer tRNA across the mitochondrial membrane. Our results highlight the importance of oligomerization of Tric1 for protein function.

biochemistry↗

Genomewide basis for nitrogen use efficiency in contrasting genotypes of rice

Rice is an ideal crop with huge germplasm diversity and post-genomic resources for improvement of nitrogen (N) use efficiency (NUE). There is a paucity of comparative studies on rice genotypes contrasting for NUE, especially with urea, the predominant fertilizer in rice growing countries. In this study, low urea-responsive transcriptomes of contrasting rice genotypes namely Nidhi (low NUE) and Panvel1 (high NUE) were compared. They were based on whole plants grown for 21 days in pots containing nutrient-depleted soil fertilized with normal (15 mM) and low urea (1.5 mM) media. There were 1497 and 2819 differentially expressed genes (DEGs) in Nidhi and Panvel1, respectively, of which 271 were common. Though 1226 DEGs were genotype-specific in Nidhi and 2548 in Panvel1, there was far higher commonality in underlying processes. High NUE is associated with the urea-responsive regulation of other nutrient transporters, miRNAs, transcription factors and better photosynthesis, water use efficiency and post translational modifications. Many of their genes co-localized to NUE QTLs on chromosomes 1, 3 and 9. Field evaluation of the contrasting genotypes under different doses of urea revealed better performance of Panvel1 in different agronomic parameters including grain yield, transport/uptake efficiencies and NUE. Comparison of our urea-based transcriptomes with our previous nitrate-based transcriptomes from the same contrasting rice genotypes revealed many common processes despite large differences in their expression profiles. Our model proposes that differential involvement of transporters and transcription factors among others contributes to better urea uptake, translocation, utilization, flower development and yield for high NUE. SummaryRice genotypes with contrasting urea use efficiency differ in the role of transporters, transcription factors, miRNAs, post-translational modifications, photosynthesis and water use efficiency

plant biology↗