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Biology subjects

Bonthala, V. S.

Publications and source records attributed to Bonthala, V. S..

3 recordsLinked to original sources

HvbZIP33 and HvbZIP76 have overlapping roles in foliar transpiration in drought-stressed barley

Basic leucine zippers (bZIP) constitute one of the biggest protein families and evolutionarily conserved transcription factors (TFs) in plants. We obtained mutant lines for two bZIP TFs, HvbZIP33 and HvbZIP76, in the genetic background of the barley cultivar Golden Promise (GP) via targeted gene-specific mutagenesis using an RNA-guided Cas9 endonuclease. A comprehensive morphological, physiological and transcriptomic analysis was performed in wild-type GP compared with hvbzip33 and hvbzip76 mutants under drought stress. The morphological and physiological changes were similar in both mutants and in the wild-type GP. Most strikingly, the mutants exhibited accelerated wilting and increased water loss. This effect was primarily caused by higher stomatal conductance (gs) and transpiration rate (E) in mutants compared to wild-type GP under both control and drought conditions, which in turn had a detrimental effect on the mutants intrinsic water use efficiency (iWUE). Likewise, the transcriptome profiles of hvbzip33 and hvbzip76 were more similar to each other than those of wild-type GP. We found that the number of differentially regulated genes under control versus drought-stress conditions was higher in the mutants than in wild-type GP, suggesting that the mutants try to compensate for accelerated foliar water loss. The study highlights the essential roles of HvbZIP33 and HvbZIP76 in balancing water loss in barley. These findings provide a foundation for engineering enhanced drought tolerance in barley through targeted manipulation of these genes to optimize transpiration rates.

genetics↗

Conserved spatial patterning of gene expression in independent lineages of C4 plants

O_LIC4 photosynthesis enhances carbon fixation efficiency by reducing photorespiration through the use of an oxygen-insensitive carboxylase and spatial separation of photosynthesis between mesophyll and bundle sheath cells. The C4 pathway has evolved independently in more than sixty plant lineages but molecular mechanisms underpinning this convergence remain unclear. To explore this, we generated high-resolution transcriptome atlases for two independently evolved C4 dicotyledonous species - Gynandropsis gynandra (NAD-ME subtype) and Flaveria bidentis (NADP-ME subtype). C_LIO_LIWe used both single-cell and single-nucleus RNA sequencing to capture gene expression profiles from individual leaf cells, enabling detailed comparison of cell types and transcriptional signatures. C_LIO_LIBoth approaches produced biologically comparable data for major leaf cell types, transcriptomes from single-nucleus sequencing showed lower stress signatures and were more representative of tissue proportions in the leaf. The single-nucleus data revealed that bundle sheath cells from both C4 species share a gene expression pattern associated with mesophyll cells of C3 plants. A conserved set of transcription factors, including members of the C2H2 and DOF families, was identified in the bundle sheath cells of both species. C_LIO_LIThis study presents the first single-cell-resolution transcriptomes for two independent C4 dicot lineages and provides a valuable resource, including a web-based portal for data visualization. C_LI

plant biology↗

A genomic panel for studying C3-C4 intermediate photosynthesis in the Brassiceae tribe

Research on C4 and C3-C4 photosynthesis has attracted significant attention because the understanding of the genetic underpinnings of this trait will support the introduction of its characteristics into commercially relevant crop species. We used a panel of 19 taxa of 18 Brassiceae species with different photosynthesis characteristics (C3 and C3-C4) with the following objectives: (i) create draft genome assemblies and annotations, (ii) quantify the level of orthology using synteny maps between all pairs of taxa, (iii) describe the phylogenetic relatedness across all the species, and (iv) track the evolution of C3-C4 intermediate photosynthesis in the Brassiceae tribe. Our results indicate that the draft de novo genome assemblies are of high quality and cover at least 90% of the gene space. Therewith we more than doubled the sampling depth of genomes of the Brassiceae tribe that comprises commercially important as well as biologically interesting species. The gene annotation generated high-quality gene models, and for most genes extensive upstream sequences are available for all taxa, yielding potential to explore variants in regulatory sequences. The genome-based phylogenetic tree of the Brassiceae contained two main clades and indicated that the C3-C4 intermediate photosynthesis has evolved five times independently. Furthermore, our study provides the first genomic support of the hypothesis that Diplotaxis muralis is a natural hybrid of D. tenuifolia and D. viminea. Altogether, the de novo genome assemblies and the annotations reported in this study are a valuable resource for research on the evolution of C3-C4 intermediate photosynthesis.

genomics↗