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Pullagurla, N. J.

Publications and source records attributed to Pullagurla, N. J..

3 recordsLinked to original sources

Control of heat and oxidative stress adaptation by the DJ-1 paralogs in Arabidopsis thaliana

Plant growth and development are highly regulated processes and are majorly controlled by various environmental factors, whose extreme exposures lead to chronic stress conditions promoting reactive oxygen species (ROS) and carbonyl species (RCS) production. ROS and RCS extensively damage cellular biomolecules and organelles, affecting plants viability and development. Emerging reports highlight that the multi-stress responding DJ-1 superfamily proteins are critical in attenuating cytotoxic effects associated with abiotic stress. The current report, validated in yeast and plant models, shows that AtDJ-1C and AtDJ-1E are robust antioxidants that scavenge ROS and improve survival under oxidative stress. Although they lack conventional glyoxalases and do not attenuate the glycation of proteins, AtDJ-1C and AtDJ-1E preserve the GSH pool and regulate redox homeostasis. Moreover, transcriptome profiling indicates that levels of AtDJ-1C and AtDJ-1E are rapidly established to counter heat and oxidative stress conditions. Notably, the knockdown of AtDJ-1C and AtDJ-1E promotes detrimental alterations such as reduced chlorophyll retention, impaired root morphogenesis, and induced sensitivity to heat stress due to ROS elevation. Contrastingly, overexpression of AtDJ-1C and AtDJ-1E improved plant height and rosette formation under physiological conditions. In conclusion, our study unravels the pivotal functions of Arabidopsis thaliana DJ-1C and DJ-1E in governing plant health and survival under heat and oxidative stress conditions.

plant biology↗

Conservation of heat stress acclimation by the inositol polyphosphate multikinase, IPMK responsible for 4/6-InsP7 production in land plants

Inositol pyrophosphates (PP-InsPs) are soluble cellular messengers that integrate environmental cues to induce adaptive responses in eukaryotes. In plants, the biological functions of various PP-InsP species are poorly understood, largely due to the absence of canonical enzymes present in other eukaryotes. The recent identification of a new PP-InsP isomer with yet unknown enantiomeric identity, 4/6-InsP7 in the eudicot Arabidopsis thaliana, further highlights the intricate PP-InsP signalling network employed by plants. The abundance of 4/6-InsP7 in land plants, the enzyme(s) responsible for its synthesis, and the physiological functions of this species are all currently unknown. In this study, we show that 4/6-InsP7 is the major PP-InsP species present across land plants. Our findings demonstrate that the Arabidopsis inositol polyphosphate multikinase (IPMK) homolog, AtIPK2 generates 4/6-InsP7 in vitro. Furthermore, the cellular level of 4/6-InsP7 is controlled by the two Arabidopsis IPMK isoforms, AtIPK2 and AtIPK2{beta}. Notably, the activity of these IPMK proteins is critical for heat stress acclimation in Arabidopsis. During heat stress, the expression of genes encoding various heat shock proteins controlled by the heat shock factors (HSFs) is affected in the AtIPK2-deficient plants. Furthermore, we show that the transcription activity of HSF is regulated by the AtIPK2 proteins. Our parallel investigations using the liverwort Marchantia polymorpha suggest that the InsP6 kinase activity of IPMK and the role of IPMK in regulating the heat stress response are evolutionarily conserved. Collectively, our study indicates that IPMK has played a critical role in transducing environmental cues for biological processes during land plant evolution.

plant biology↗

ITPK1 regulates jasmonate-controlled root development in Arabidopsis thaliana

Jasmonic acid (JA) is a plant hormone that regulates a plethora of physiological processes including immunity and development and is perceived by the F-Box protein, Coronatine-insensitive protein 1(COI1). The discovery of inositol phosphates (InsPs) in the COI1 receptor complex highlights their role in JA perception. InsPs are phosphate-rich signaling molecules that control many aspects of plant physiology. Inositol pyrophosphates (PP-InsPs) are diphosphate containing InsP species of which InsP7 and InsP8 are the best characterized ones. Different InsP and PP-InsP species are linked with JA-related plant immunity. However, role of PP-InsP species in regulating JA-dependent developmental processes are poorly understood. Recent identification of ITPK1 kinase responsible for the production of 5-InsP7 from InsP6 in planta provides a platform to interrogate possible involvement of ITPK-derived InsP species in JA-related plant development. Herein this study, we report that ITPK1-defective plants exhibit increased root growth inhibition to bioactive JA treatment. The itpk1 plants also show increased lateral root density when treated with JA. Notably, JA treatment does not induce ITPK1 protein level. Gene expression analyses revealed that JA-biosynthetic genes are not differentially expressed in the ITPK1-deficient plants. We further demonstrate that genes encoding different JAZ repressor proteins are severely downregulated in the ITPK1-defective plants. Taken together, our study highlights the role of ITPK1 in regulating JA-dependent root architecture development through controlling expression of different JAZ repressor proteins.

plant biology↗