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[Activity, isoenzyme composition, thermostability and molecular weight of peroxidase from intact and virus infected tobacco plant leaves].

The enzyme peroxidase was isolated from the leaves of the tobacco plant Xanthi (intact and infected with weakly (XY) and highly (XT) pathogenic strains of potato X-virus) and partially purified. The original extract (the 30,000 g supernatant) was purified by ammonium sulfate at 30--80% of saturation and by gel filtration through Sephadex G-25 and G-100 in 0.05 M tris-HCl buffer, pH 7.4 containing 17% sucrose. Disc electrophoresis revealed that both intact and infected plants contain 10 isoperoxidases. The electrophoregrams of isoenzymes from infected plants with the Rf values of 0.1, 0.48, 0.53 and 0.59 stained with benzidine produced a more intensive colouring as compared to the corresponding isoenzymes from intact plants. The total enzymatic activity for the plants infected with the XY and XT strains made up to 180% and 240% of that for the intact plants, respectively. The molecular weights of the peroxidase isoenzymes were found to be the same and equal to 40,000. Study of the thermostability at 60 degrees C and pH 7.0 showed that after 90 min the enzyme activity was 12.4% and 5.1% of the original one in intact and infected plants, respectively. The data obtained suggest that the activity, thermostability and synthesis of some peroxidase isoenzymes in tobacco plant leaves are affected by viral infection.

Drug Stability

Methods of chromatography and quantitative analysis of galacto- and phospholipids of plant leaves.

Data in the literature on chromatography of glycerolipids of plant leaves on columns of DEAE-cellulose, Sephadex LH-20, silica gel, florisil, in a thin layer of silica gel, paper are generalized. Methods of obtaining chromatographically pure glycerolipids, their subfractionation, and the quantitative analysis of glycerolipids are described. Experimental data are presented on fractionation of lipids of potato leaves on columns of DEAE-cellulose, silica gel, on paper, and the quantitative determination of phospholipids. A method of rapid division of lipids into classes by means of their elution with silica gel KSC by different solvents is described.

Chromatography, DEAE-Cellulose

[Biosynthesis of RNA in the nuclear structure of wilted cotton plant leaves].

The development of verticillate wilt in cotton plants is accompanied by an increase in the RNA-polymerase activity in isolated nuclear structures of cotton leaves at the latent stage of disease followed by its decrease when the plants develope inner signs of disease. The analysis of biosynthetic rates of nuclear RNA individual fractions showed that at the latent stage the biosyntheses of rRNAs and mRNAs in the nuclear structrues of the leaves are considerably enhanced. The development of inner signs of disease is accompanied by a disturbance of biosynthesis in the nucleus, primarily of mRNA. In the cells of wilted plants only 60% of the mRNA nucleotide sequences present in the controls are synthesized. Deficiency in matric cells for protein biosynthesis leads to further progress of the disease and to destruction of cells.

Cell Nucleus

[Malic acid induction of decarboxylating NADP-malate dehydrogenase synthesis in C3-plant leaves].

The activity of decarboxylating NADP-malatedehydrogenase (E. C. 1.1.1.40) in green ethiolated pea and barley leaves and in green leaves of a pea mutant lacking photosystem II is found to be 3-fold increased after the injection of malic acid into cut plants. Protein synthesis inhibitors depressed malic acid-induced increase of the activity of "malic"-enzyme, the effect of chloramphenicol being more pronounced in ethiolated green leaves, and that of cycloheximide--in leaves of a mutant with formed photosynthetic apparatus. Possible dependence of malate-induced biosynthesis of "malic"-enzyme on the degree of NADP reduction in chloroplasts is discussed.

Chloramphenicol

Biosynthetic potential of the culturable foliar fungi associated with field-grown lettuce.

Fungal endophytes and epiphytes associated with plant leaves can play important ecological roles through the production of specialized metabolites encoded by biosynthetic gene clusters (BGCs). However, their functional capacity, especially in crops like lettuce (Lactuca sativa L.), remains poorly understood. We sequenced the genomes of nine fungal isolates, representing Fusarium sp., Fulvia sp., Alternaria alternata, and Alternaria postmessia, from leaves of lettuce grown under field conditions in Arizona, USA. We used antibiotics and secondary metabolite analysis shell (antiSMASH) and the database for automated carbohydrate-active enzyme annotation (dbCAN3), to predict BGCs and carbohydrate-active enzymes (CAZymes) for each strain, and then compared them to conspecific strains from other environments and substrates. Foliar lettuce-associated fungi featured 39-95 BGCs per genome, with substantial overlap between isolates occurring in association with lettuce leaves vs. from other substrates. Species identity was a significant determinant of BGC count, while host type, isolation source, and lifestyle were not. Several BGCs, including those for alternariol and 1,3,6,8-Tetrahydroxynaphthalene (T4HN), showed 100% similarity to characterized minimum information about a biosynthetic gene cluster (MIBiG) clusters based on antiSMASH predictions. Although analysis by biosynthetic gene similarity clustering and prospecting engine (BiG-SCAPE) identified gene cluster families (GCFs) across the dataset, these reference-matching clusters were not always grouped, reflecting methodological differences in how the tools assess similarity. Comparative CAZyme analysis in a focal species (Fulvia sp.) revealed higher gene counts in a foliar lettuce-derived isolate than in tomato (Solanum lycopersicum)-associated strains, challenging assumptions about host chemical complexity. These results highlight the importance of phylogenetic context in shaping fungal functional potential and suggest that selection on microbial traits in edible leafy crops may be more subtle and species-specific than previously assumed. KEY POINTS: • Lettuce-associated fungi feature diverse biosynthetic potential • Phylogeny predicts fungal BGC content more strongly than ecological lifestyle • Findings support genome-informed microbiome strategies for leafy crops.

Lactuca

[Effect of adaptation conditions on slow induction of fluorescence in the leaves of higher plants].

Fluorescence induction was studied in the leaves of higher plants in vivo under normal physiological conditions according to the time of dark adaptation and preillumination conditions under the effect of red light (lambda = 650 nm) and light which stimulated the photosystem I (lambda = 700 nm). At pre-illumination of the PS I the dark adaptation curve has an extremal character which points to a process developing for 6--8 min in the darkness. Such processes may proceed in the system of biochemical reactions after PS I.

Adaptation, Physiological

[2 types of reduction of P700+ reaction centers in the leaves of green plants].

It is shown that in the leaves of Hibiscous sp. the ESR signal I rises under weak far red light after its partial inhibition with a short white flash is slower than after adaptation to 710 nm light and short dark exposition. It is suggested that this divergence in the ESR kinetics is due to the fact that only part of reduced intermediates generated by the photosystem 2 under flash is readily available to P700+, whereas other reducing reagents slowly react with the photosystem 1 reaction centres.

Binding Sites

Proton-induced x-ray emission analysis--a promising technique for studying the metal content of plants and soils.

The ease of employing proton-induced X-ray emission analysis (PIXEA) to studies relating metal content of soils to metal uptake in plants was aptly demonstrated in an investigation concerning the effect of automotive pollution on the abundance of about 16 elements accumulated in ribwort plantain and its surrounding soil. Elemental concentrations were shown to be dependent on the age of the plant leaves, as well as the distance from the roadside.

Metals

Translocation, distribution, and environmental degradation of hexachlorophene in tomatoes.

The translocation, distribution, metabolism and environmental degradation of hexachlorophene were investigated in tomato plants (Lycopersicon esculentum Mill cv. beefsteak). All plants were grown under standardized conditions and treated with leaf-applied 14C-ring-labeled hexachlorophene (HCP). Treatment time ranged from 0 to 70 days. Autoradiographic analyses were performed on all plants. Selected plant tissues were extracted and chromatographed, using thin layer (TLC) and gas liquid chromatography (GLC). Hexachlorophene was not translocated from the plant leaves. No metabolites of hexachlorophene was found. A slight, but statistically nonsignificant, amount of HCP was lost from the leaves and the inert controls. At the end of the 70-day treatment, based on TLC and regression analysis of thin layer chromatographic plates, averages of 89.5% and 75.9% of the applied HPC remained unaltered on the treated plants and controls, respectively. This indicated that 10.5% and 24.1%, respectively, of the original HCP had been altered. Differences between the treatments and controls were statistically significant after 28 days of exposure. Further analyses of the above data, using gas chromatographic methods, showed that as many as 14 peaks were found in the treated samples and the controls, including the parent material. Ultraviolet photolysis seemed to be the mechanism responsible for alteration of the hexachlorophene. Three extracted chlorinated compounds have been identified by GC-mass spectral (MS) analysis including 2,2'-dihydroxy-3,5',6,6'-tetrachlorodiphenylmethane, 2,2'-dihydroxy-3,5,5',6,6'-pentachlorodiphenylmethane, and 2,2'-dihydroxy-3,3',5,5',6,6'-hexachlorodiphenylmethane (parent HCP). Eleven other electrophylic compounds have been found in various treated plant or control extracts. Further analyses will be necessary to verify the identification of the other degradation products.

Biodegradation, Environmental

Purification and properties of spinach leaf cytoplasmic fructose-1,6-bisphosphatase.

Cytoplasmic fructose-1,6-bisphosphatase has been purified from spinach leaves to apparent homogeneity. The enzyme is a tetramer of molecular weight about 130,000. At pH 7.5, the Km for fructose 1.6-bisphosphate was 2.5 micron, and for MgCl2 0.13 mM; the enzyme was specific for fructose 1,6-bisphosphate. Saturation with Mg2+ was achieved with lower concentrations at pH 8 than at pH 7. AMP and high concentrations of fructose 1,6-bisphosphate inhibited enzyme activity. Ammonium sulfate relieved the latter inhibition but was itself inhibitory when substrate concentrations were low. Acetylation studies demonstrated that the AMP regulatory site was distinct from the catalytic site. Cytoplasmic fructose-1,6-bisphosphatase may contribute to the regulation of sucrose biosynthesis in plant leaves.

Cytoplasm

Purification of 3-phosphoglycerate kinase from diverse sources by affinity elution chromatography.

1. Affinity elution chromatography was used to purify phosphoglycerate kinase from a variety of sources. The choice of buffer pH for the chromatography was made according to the relative electrophoretic mobility of the enzyme from the species concerned. 2. Outlines of the methods used to isolate the enzyme from over 20 sources are presented. The enzyme was purified from the muscle tissue of a variety of mammals, fish and birds, from liver of several animals, from yeast, Escherichia coli, and plant leaves. The more acidic varieties of the enzymes were purified by conventional gradient elution from ion-exchangers as affinity elution procedures were not applicable. 3. The structural and kinetic parameters investigated show that phosphoglycerate kinase is evolutionarily a highly conservative enzyme; there were few differences in properties regardless of source or function (glycolytic, gluconeogenic or photosynthetic). 4. A detailed comparison of the enzyme preparations purified from bovine muscle and bovine liver failed to detect any significant differences between them; the evidence indicates that they are genetically identical.

Animals

TGA6 directly activates ABF2 and ABF3 to promote leaf senescence in Arabidopsis thaliana.

Leaf senescence is a tightly regulated developmental process governed by a complex transcriptional network. Although the TGACG motif-binding (TGA) family of basic leucine zipper (bZIP) transcription factors are well-characterized regulators of plant defense responses, their roles in leaf senescence remain poorly understood. Here, we report that overexpression of TGA6 in Arabidopsis thaliana promotes early leaf senescence. Independent TGA6-overexpressing lines displayed premature leaf yellowing and significantly lower chlorophyll levels than wild-type (WT) plants under both normal growth and dark-induced senescence conditions. At the molecular level, RT-qPCR analysis revealed significant upregulation of canonical senescence marker genes, including NYC1, PAO, SAG12, SAG13, SGR1, and SGR2, in the TGA6-OE lines relative to WT plants. Furthermore, we found that the transcript levels of ABA-responsive element binding factor 2 (ABF2) and ABF3, which act upstream of these senescence markers, were significantly elevated in the TGA6-OE lines. Dual-luciferase reporter assays and electrophoretic mobility shift assay demonstrated that TGA6 directly binds to the TGACG motifs within the promoters of ABF2 and ABF3 to activate their transcription. Collectively, these findings demonstrate that TGA6 functions as a positive regulator of leaf senescence.

Arabidopsis

Leaf Rust in Rye: From Pathogen Biology to Host Defense and Resistance Breeding.

Leaf rust (LR), caused by Puccinia recondita f. sp. secalis (Prs), is considered one of the most dangerous rye (Secale cereale L.) diseases, causing yield losses exceeding 35%. This review summarizes all currently available data about this disease: pathogen characteristics (including its life cycle, natural variation, and disease symptoms), resistance resources, and the background of the plant immune response at the genome, transcriptome, and metabolome levels. The research conducted so far has allowed for the identification of dozens of genes that play a significant role in the rye immune response to Prs infection. Among them, genes encoding NBS-LRR proteins (including SECCE1Rv1G0014220, the most likely Pr3 candidate), glycosyltransferase, β-1,3-glucanase, 1-deoxy-D-xylulose 5-phosphate synthase, β-1,3-glucanase, UDP-glycosyltransferase, pathogenesis-related protein 1, ammonium transporter, and cytochrome P450 enzymes are candidates for seedling and all-stage resistance, whereas ScLr_ABC25 currently represents the most promising candidate associated with adult-plant resistance. Among the metabolites differentially accumulated in response to Prs, those related to phenylpropanoids, diterpenoids, and thiamine branches seem to play the most important role in the immune response. Finally, we suggest how the knowledge acquired so far about the rye-Prs interaction can be used in modern breeding programs aimed at obtaining cultivars with enhanced resistance to LR, such as through the use of functional gene markers and/or metabolic biomarker-assisted selection and, in the more distant future, by developing and applying new genomic techniques for precise editing of resistance and susceptibility genes, engineering synthetic immune receptors and decoys, and pan-genomic exploration for identification of rare or lineage-specific resistance alleles. [Formula: see text] Copyright © 2026 The Author(s). This is an open access article distributed under the CC BY-NC-ND 4.0 International license.

Plant Diseases

The combination of morphogenic regulators BABY BOOM and GRF-GIF improves maize transformation efficiency and promotes leaf regeneration.

Transformation is an indispensable tool for plant genetics and functional genomics. Although stable transformation in maize is no longer a major obstacle, there remains a need for accessible and efficient methods for academic laboratories. Here, we present the GGB system, a rapid and efficient approach optimized for immature embryo transformation in B104 and other maize lines. This system combines two distinct morphogenetic regulators, the wheat GRF4-GIF1 chimera and the maize BABY BOOM (BBM) transcription factor (hence the name "GGB") with a modified QuickCorn protocol, enabling regeneration of transformed maize plantlets in c. 2 months with an efficiency 7-fold higher than when compared to either morphogenic factor used in isolation. Expression of both regulators did not significantly affect development, eliminating the need to excise them after regeneration. However, transmission of the transgenic GGB construct through pollen was significantly reduced, potentially aiding transgenic line containment. We show that the GGB system is adaptable for CRISPR-Cas9 editing and reporter line generation. Furthermore, stable GGB transformants exhibited high leaf regeneration capacity via somatic embryogenesis. RNA-seq time-course profiling of GGB leaf cultures identified additional factors that could promote regeneration and led to the discovery of asparagine and trehalose as additional media components that significantly enhanced leaf regeneration.

Zea mays

Rice ETHYLENE RESPONSE FACTOR 101 increases leaf angle by upregulating BRASSINOSTEROID UPREGULATED 1.

The leaf angle (LA) is a critical component of plant architecture that directly influences photosynthetic efficiency and grain yield. In the present study, we found that ETHYLENE RESPONSE FACTOR 101 (OsERF101), an APETALA2/ethylene response factor, plays a role in LA formation. A null mutation in OsERF101 resulted in reduced LA, whereas transgenic plants overexpressing OsERF101 (OsERF101-OEs) exhibited increased LA. OsERF101 increased the development of the adaxial lamina joint (LJ). Transactivation assays and reverse transcription-quantitative polymerase chain reaction (RT-qPCR) analysis indicated that OsERF101 activated BRASSINOSTEROID UPREGULATED 1 (OsBU1) transcription by directly binding to its promoter. However, OsERF101 expression was suppressed by exogenous brassinosteroid (BR) treatment and elevated endogenous brassinolide (BL) levels during LJ development. Additionally, OsERF101 downregulated the expression of BR biosynthesis genes, including Brassinosteroid-deficient dwarf2 (OsBRD2) and CYP90B2/OsDWARF4, leading to reduced levels of endogenous BL, the most active BR, in OsERF101-OEs. These findings suggested that OsERF101 mediates a negative feedback loop that balances endogenous BR levels and signaling. Collectively, rice plants have evolved diverse regulatory mechanisms involving OsERF101 to tune LA formation and optimize plant architecture finely.

Oryza