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Prabhakar, P. K.

Publications and source records attributed to Prabhakar, P. K..

4 recordsLinked to original sources

Loss of flavonol 3-O-glucosyltransferase activity confers soybean resistance to leaf-chewing insects

Caterpillars and beetles are among the most economically damaging defoliating insects, and their economic damage is predicted to increase in the coming decades. Hence the use of genetically derived resistance to supplement other pest control strategies is warranted. In soybean (Glycine max (L.) Merr.), a major determinant for resistance is the quantitative trait locus, QTL-M. Glyma07g14530, the gene underlying QTL-M, encodes a feeding-inducible flavonol 3-O-glycosyltransferase (F3GlcT or UGT78D2) that glucosylates kaempferol, as well as quercetin, myricetin, and isorhamnetin. The resistant allele has a premature stop codon in it, thus preventing the glucosylation and sequestration of flavonols in the vacuole, leading to a concomitant accumulation of proanthocyanidins and manifestation of resistance. Expressing the dominant (susceptible) allele in resistant plants restores susceptibility and silencing the susceptible allele results in resistance. The discovery and characterization of GmF3GlcT helps clarify the role of flavonoids in resistance to leaf-chewing insects and facilitates the development of insect-resistant cultivars that ultimately can lower production costs and reduce insecticide applications. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=131 SRC="FIGDIR/small/679769v1_ufig1.gif" ALT="Figure 1"> View larger version (46K): org.highwire.dtl.DTLVardef@10e2e77org.highwire.dtl.DTLVardef@ca905org.highwire.dtl.DTLVardef@12cb46corg.highwire.dtl.DTLVardef@1f9328b_HPS_FORMAT_FIGEXP M_FIG C_FIG The loss of flavonol 3-O-glucosyltransferase in soybean reduces feeding damage from defoliating insects and is accompanied by a concomitant increase in proanthocyanidins (red arrowhead). SignificanceUnraveling the biochemical and genetic basis of soybean resistance to leaf-chewing insects facilitates the development of new, naturally insect resistant varieties. Such varieties contribute to on-farm profitability and reduced concerns over pesticide residues in the field.

plant biology↗

Biochemical and structural characterization of glycosyltransferase family 61 proteins reveal a key determinant of sugar donor specificity

Xylan, the most abundant non-cellulosic polymer in plant cell walls, is structurally diverse, especially in grasses where it is heavily substituted with arabinofuranose and further modified by various residues. Common substitutions across species include glucuronic and 4-O-methyl-glucuronic acid. Arabinose and xylose sidechains are synthesized by glycosyltransferase family 61 (GT61) proteins, many of which remain uncharacterized in plants, with limited structural and mechanistic understanding. In this study, we identified two novel GT61 enzymes in Sorghum bicolor, functioning as xylan arabinosyltransferase (SbXAT) and xylan xylosyltransferase (SbXXT). We resolved the crystal structure of SbXAT, which exhibits a GT-B fold with two Rossmann-like domains linked by a cleft that accommodates the catalytic site. Structural comparison with a predicted SbXXT model revealed a substrate-binding residue critical for sugar donor specificity, validated through site-directed mutagenesis and enzymatic assays. These findings enhance understanding of xylan biosynthesis and provide a foundation for engineering glycosyltransferases and predicting their functions.

biochemistry↗

Modulation of the GT Family 47 clade B gene affects arabinan deposition in elaters of Marchantia polymorpha

The plant cell wall polymer -1,5-linked arabinan is associated with important functions in plant physiology, such as cell wall flexibility and desiccation tolerance in angiosperms. However, its biosynthetic mechanism remains obscure. A putative arabinan arabinosyltransferase (AraT) is the Arabidopsis ARABINAN-DEFICIENT1 in GT family 47 clade B (GT47B), but its role is inferred by its mutant cell wall phenotypes, and not through in vitro assays. With seven other genes in the clade, investigating the function of the members in GT47B is hampered by the high genetic redundancy in Arabidopsis. Instead, we probe the function of the only two genes in GT47B in the liverwort model organism Marchantia polymorpha, named MpARAD-Like 1 (MpARADL1) and MpARADL2. Mparadl1 and Mparadl2 loss-of-function mutants and overexpression lines were generated, and their cell wall composition was probed using Comprehensive Microarray Polymer Profiling (CoMPP), glycosyl linkage analysis and immunolabelling. Interestingly, Mparadl2 mutants have much less of the 1,5--L-arabinan epitope in elaters since LM6 antibody recognition showed a notable reduction. However, 5-linked Araf levels in the Marchantia thallus tested with glycosyl linkage analysis are comparable between mutants and wild type, suggesting that there is another enzyme forming 5-Araf linkages in Marchantia. Our attempts to obtain the biochemical activity of these enzymes through the expression and purification of AtARAD1, MpARADL1 and MpARADL2 proteins in the HEK293 cell heterologous expression system were unsuccessful. Therefore, we suspect that an evolutionarily conserved, and clade-specific mechanism is required to confer solubility for purification and subsequent activity characterisation of GT47B proteins. Previous studies have shown that co-expression of protein interaction partners can enhance protein solubility in the HEK293 cell system, but co-expression of MpARADL2 with AtARAD1 and MpARADL1 did not yield soluble proteins, prompting further investigation into the protein-protein interactors of GT47B proteins.

plant biology↗

The Plasminogen-Apple-Nematode (PAN) domain suppresses JA/ET defense pathways in plants

Suppression of immune response is a phenomenon that enables biological processes such as gamete fertilization, cell growth, cell proliferation, endophyte recruitment, parasitism, and pathogenesis. Here, we show for the first time that the Plasminogen-Apple-Nematode (PAN) domain present in G-type lectin receptor-like kinases is essential for immunosuppression in plants. Defense pathways involving jasmonic acid and ethylene are critical for plant immunity against microbes, necrotrophic pathogens, parasites, and insects. Using two Salix purpurea G-type lectin receptor kinases, we demonstrated that intact PAN domains suppress jasmonic acid and ethylene signaling in Arabidopsis and tobacco. Variants of the same receptors with mutated residues in this domain could trigger induction of both defense pathways. Assessment of signaling processes revealed significant differences between receptors with intact and mutated PAN domain in MAPK phosphorylation, global transcriptional reprogramming, induction of downstream signaling components, hormone biosynthesis and resistance to Botrytis cinerea. Further, we demonstrated that the domain is required for oligomerization, ubiquitination, and proteolytic degradation of these receptors. These processes were completely disrupted when conserved residues in the domain were mutated. Additionally, we have tested the hypothesis in recently characterized Arabidopsis mutant which has predicted PAN domain and negatively regulates plant immunity against root nematodes. ern1.1 mutant complemented with mutated PAN shows triggered immune response with elevated WRKY33 expression, hyperphosphorylation of MAPK and resistant to necrotrophic fungus Botrytis cinerea. Collectively, our results suggest that ubiquitination and proteolytic degradation mediated by the PAN domain plays a role in receptor turn-over to suppress jasmonic acid and ethylene defense signaling in plants.

plant biology↗