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Roychowdhury, R.

Publications and source records attributed to Roychowdhury, R..

4 recordsLinked to original sources

Evaluation of morpho-physiological and yield-associated traits of rice (Oryza sativa L.) landraces combined with marker-assisted selection under high temperature stress and elevated atmospheric CO2 levels

Rice (Oryza sativa L.) has a tremendous domestication history and is presently used as a major cereal all over the world. In Asia, India is considered as one of the centers of origin of indica rice and has several native landraces, especially in North-Eastern India (NEI), which have the potential to cope with the negative impact of present-day climate change. The current investigation aimed to evaluate the NEI rice landraces potential under high temperatures and elevated CO2 levels in comparison with a check variety for phenological, morphological, physiological and yield-associated parameters and molecularly validated with marker-assisted genotyping. The initial experiment was carried out with 75 rice landraces to evaluate their high heat tolerance ability. Seven better-performing landraces along with the check variety (N22) were further evaluated for aforesaid traits across two years (2019 and 2020) under control (or T1) and two stress treatments - (i) mild stress or T2 [CO2 550 ppm + 4{degrees} C more than ambient temperature] and (ii) severe stress or T3 [CO2 750 ppm + 6{degrees} C more than ambient temperature] using bioreactors. In the molecular analysis, the eight selected genotypes were evaluated through 25 Start Codon Targeted (SCoT) markers. The results revealed that the mild stress (T2) had a positive impact on various morpho-physiological parameters like plant height, number of leaves, leaf area and yield parameters like spikelets panicle-1 (S/P), thousand-grain weight (TGW) and grain yield (GY). This effect could be attributed to the genotypes ability to maintain a higher photosynthetic rate and possess better tolerance ability to moderately high temperatures. However, under high-temperature conditions in T3, all genotypes exhibited a significant decrease in the studied parameters including GY. It was found that pollen traits were significantly and positively correlated to spikelet fertility% at maturity, which was further significantly associated with GY under applied stress conditions. The physiological traits including shoot biomass were evident to have a significant positive effect on yield-associated parameters like S/P, harvest index (HI), TGW and GY. Overall, two landraces Kohima special and Lisem were found to be better responsive compared to other landraces as well as the check variety N22 under stress conditions. SCoT genotyping amplified a total of 77 alleles out of which 55 were polymorphic with the PIC value ranging from 0.22 to 0.67. The investigation suggests the presence of genetic variation among the tested rice lines and further supports evidence of the closely relatedness of Kohima special and Lisem. These two are two better-performing rice landraces from North-East India based on their improving morpho-physiological parameters and yield attributes in mild and severe high temperature and elevated CO2 stress environments. The shortlisted two rice landraces can be used as valuable pre-breeding materials for future rice breeding programs to improve the stress tolerance properties, particularly to high temperatures and elevated CO2 levels under ongoing changing climatic scenarios.

plant biology↗

Pre-anthesis spike growth dynamics and its association to yield components among elite bread wheat cultivars (Triticum aestivum L. spp.) under Mediterranean climate

Wheat (Triticum spp.) grain yield (GY) is highly associated with grain number per unit area (GN m-2). Biomass accumulation and partitioning are essential to understand pre-anthesis spike growth dynamics which determines spike dry matter at anthesis (SDMa) - a GN determinant. Spike growth takes place during the stem elongation period (SE), from terminal spikelet to anthesis, following leaf and spikelet initiation (LS) from sowing to terminal spikelet. In this study, bread wheat cultivars were examined under Mediterranean semi-arid conditions to determine (i) the varietal differences in pre-anthesis phase duration, (ii) whether this variability influences biomass partitioning and spike-related traits, and (iii) to what extent, the genotypic variations in pre-anthesis phase duration and spike growth are associated with yield components. A panel of Israeli commercial bread wheat cultivars were grown in the field during 2016-17 (three environments) and 2017-18 (two environments) and characterized for pre-anthesis phases, floral conditions and spike fertility via histological measurements, spike traits and dry matter accumulation and partitioning at anthesis and maturity and for yield components. Significant variability in the timing of pre-anthesis phases was detected within the tested panel. LS duration, and occasionally SE, favourably related with a better dry matter of fertile florets spike-1 (at anthesis) and SDM (at both anthesis and maturity). Two cultivar pairs Zahir-Yuval and Negev-Gedera, which flowered concurrently, revealed significant differences in the durations of LS and SE phases across the environments. Longer LS (e.g., in cultivars Zahir and Negev) exhibited increased spikelets number spike-1, whereas longer SE (e.g., in Yuval and Gedera) enhanced spike fertility through improving the survival rate of floret primordia (FSR%) of central spikelets. However, there was a trade-off for FSR at the proximal and distal spike portions, resulting reduction of final GN (or GY) in cultivars with longer SE. It is concluded that, in this panel, the duration of both LS and SE contribute to spike fertility. However, under short wheat growing cycle, LS duration seemed a stronger driver than SE for GN and yield enhancement. These highlights the novel importance of pre-anthesis phases, especially the role of LS in wheat yield increment during the short growing cycle. The varietal combination with variable LS and SE duration could be implemented in the breeding pipeline and used as pre-breeding materials for GN improvement. Furthermore, the findings will improve pre-anthesis traits adoption in Mediterranean bread wheat future breeding programs.

plant biology↗

Long-read genome sequencing accelerated the cloning of Pm69 by resolving the complexity of a rapidly evolving resistance gene cluster in wheat

Gene cloning in repeat-rich polyploid genomes remains challenging. Here we describe a strategy for overcoming major bottlenecks in the cloning of the powdery mildew (Pm) resistance gene (R-gene) Pm69 derived from tetraploid wild emmer wheat (WEW). A conventional positional cloning approach encountered suppressed recombination due to structural variations, while chromosome sorting yielded an insufficient purity level. A Pm69 physical map, constructed by assembling ONT long-read genome sequences, revealed a rapidly evolving nucleotide-binding leucine-rich repeat (NLR) R-gene cluster. A single candidate NLR was identified within this cluster by anchoring RNASeq reads of susceptible mutants to ONT contigs and was validated by the virus-induced gene silencing (VIGS) approach. Pm69, comprising Rx_N with RanGAP interaction sites, NB-ARC, and LRR domains, is probably a newly evolved NLR discovered only in one location across the WEW distribution range in the Fertile Crescent. Pm69 was successfully introgressed into durum and bread wheat, and a diagnostic molecular marker could be used to accelerate its deployment and pyramiding with other resistance genes.

genetics↗

Intracellular reactive oxygen species (intraROS)-aided localized cell death contributing to immune responses against wheat powdery mildew pathogen

Reactive oxygen species (ROS) and hypersensitive response (HR) mediated cell death have long been known to play critical roles in plant immunity to pathogens. Wheat powdery mildew caused by Blumeria graminis f. sp. tritici (Bgt) is a destructive wheat pathogen. Here, we report a quantitative analysis of the proportion of infected cells with local apoplastic ROS (apoROS) versus intracellular ROS (intraROS) accumulation in various wheat accessions that carry different disease resistance genes (R genes), at a series of time points post-infection. The proportion of apoROS accumulation was 70-80% of the infected wheat cells detected in both compatible and incompatible host-pathogen interactions. However, intensive intraROS accumulation followed by localized cell death responses were detected in 11-15% of the infected wheat cells, mainly in wheat lines that carried nucleotide-binding leucine-rich repeat (NLR) R genes (e.g. Pm3F, Pm41, TdPm60, MIIW72, Pm69). The lines that carry unconventional R genes, Pm24 (Wheat Tandem Kinase 3) and pm42 (a recessive R gene), showed very less intraROS responses, while 11% of Pm24 line infected epidermis cells still showed HR cell death, suggesting that different resistance pathways are activated there. Here, we also demonstrated that ROS could not act as a strong systemic signal for inducing high resistance to Bgt in wheat, although it induced the expression of pathogenesis-related (PR) genes. These results provide new insights on the contribution of intraROS and localized cell death to immune responses against wheat powdery mildew.

pathology↗