The structure of cauliflower mosaic virus. I. A restriction endonuclease map of cauliflower mosaic virus DNA.
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Leaves from a standard, insect-susceptible cauliflower variety and an insect-resistant strain were formulated at either 10 or 25% into semipurified diets for male and female weanling rats. After 3 weeks, relative liver weights, microsomal protein, cytochrome P-450, and activities of hepatic microsomal aminopyrine N-demethylase, aniline hydroxylase, p-nitroanisole O-demethylase, and N-methylaniline N-demethylase were determined. Growth, feed intake, and feed efficiency of male rats were not affected by the inclusion of the dried cauliflower leaf in the diet. However, female rats exhibited a depressed feed intake and increased feed efficiency with cauliflower leaf supplemental diets. Relative liver weights increased with increasing percentage of cauliflower leaves in the diet. Hepatic microsomal enzyme response to cauliflower leaf supplementation of the diet was greater in males than in females. Only aniline hydroxylase activity remained unchanged by the test diets. Male rats showed significant increases in N- and O-demethylation with both the 10 and 25% cauliflower diets, and increased values for microsomal protein and cytochrome P-450 at the 25% supplemental level. Female rats did not show significant hepatic microsomal induction from cauliflower leaf consumption at the 10% level. However, cytochrome P-450 and the metabolism of aminopyrine and p-nitroanisole were enhanced by consumption of cauliflower leaves at 25% of their diet. None of the parameters tested in this study evidenced a difference between the two cauliflower cultivars fed to either sex.
BACKGROUND: Cauliflower, as an important vegetable crop, the research on its curd formation mechanism and stress-responsive gene networks is of great significance for improving its quality, yield and abiotic stress tolerance. The response regulator (RR) gene family plays a crucial role in the regulation of various life processes of many organisms. In this research, a comprehensive analysis of the BoRR gene family in cauliflower was carried out. RESULTS: A Total of 57 BoRR genes were identified in cauliflower and classified into seven subtypes (type A/B-I/B-II/B-IV/C/B-PRR/Clock PRR) based on sequence homology. Chromosomal mapping showed even distribution across genomes, while physicochemical analysis revealed diverse protein properties (134-915 amino acids, pI 4.51-9.19) with predominant nuclear localization. Structural analyses found all BoRR proteins contain REC-type domains, with subtype-specific features: type A has REC_typeA_ARR, type B harbors REC_typeB_ARR domains, and Clock PRR shows circadian-related psREC_RR domains. Exon numbers range from 2 to 10, with type A BoRR genes having shorter CDS lengths. Collinearity analysis identified 28 pairs of gene duplicates (26 inter-chromosomal). Comparative analysis showed 133 collinear pairs with Brassica napus, 96 with Brassica. rapa, and only 1 with monocots specie (rice and maize). Promoter analysis identified hormone-responsive motifs (ABRE, TGACG), development-related elements (ARE), and stress-responsive sequences (e.g., MBS for drought tolerance) in the promoters of BoRR genes. GO enrichment linked BoRR genes to phosphorelay signaling, cytokinin/ethylene response, and developmental processes like meristem maintenance. Expression profiling during curd development showed type A genes (BoRR23/27/34/38/45) up-regulated in vegetative-reproductive transition, BoRR3/6/12/32/54 in curd enlargement, and several genes like BoRR49 in flower bud differentiation. Salt stress (1.5% NaCl) induced transient expression in 8 of 9 selected BoRR genes at day 1 after treatment. qRT-PCR validated their roles in developmental regulation and salt tolerance. CONCLUSION: This study provides valuable insights into the BoRR gene family in cauliflower, laying a foundation for further understanding its genetic mechanisms and potentially guiding efforts to enhance curd quality and salt tolerance in cauliflower.
The availability of methods to fractionate non-green plastids and to prepare their limiting envelope membranes [Alban, Joyard & Douce (1988) Plant Physiol. 88, 709-717] allowed a detailed analysis of the biosynthesis of lysophosphatidic acid, phosphatidic acid, diacylglycerol and monogalactosyl-diacylglycerol (MGDG) in two different types of non-green starch-containing plastids: plastids isolated from cauliflower buds and amyloplasts isolated from sycamore cells. An enzyme [acyl-ACP (acyl carrier protein):sn-glycerol 3-phosphate acyltransferase) recovered in the soluble fraction of non-green plastids transfers oleic acid from oleoyl-ACP to the sn-1 position of sn-glycerol 3-phosphate to form lysophosphatidic acid. Then a membrane-bound enzyme (acyl-ACP:monoacyl-sn-glycerol 3-phosphate acyltransferase), localized in the envelope membrane, catalyses the acylation of the available sn-2 position of 1-oleoyl-sn-glycerol 3-phosphate by palmitic acid from palmitoyl-ACP. Therefore both the soluble phase and the envelope membranes are necessary for acylation of sn-glycerol 3-phosphate. The major difference between cauliflower (Brassica oleracea) and sycamore (Acer pseudoplatanus) membranes is the very low level of phosphatidate phosphatase activity in sycamore envelope membrane. Therefore, very little diacylglycerol is available for MGDG synthesis in sycamore, compared with cauliflower. These findings are consistent with the similarities and differences described in lipid metabolism of mature chloroplasts from 'C18:3' and 'C16:3' plants (those with MGDG containing C18:3 and C16:3 fatty acids). Sycamore contains only C18 fatty acids in MGDG, and the envelope membranes from sycamore amyloplasts have a low phosphatidate phosphatase activity and therefore the enzymes of the Kornberg-Pricer pathway have a low efficiency of incorporation of sn-glycerol 3-phosphate into MGDG. By contrast, cauliflower contains MGDG with C16:3 fatty acid, and the incorporation of sn-glycerol 3-phosphate into MGDG by the enzymes associated with envelope membranes is not limited by the phosphatidate phosphatase. These results demonstrate that: (1) non-green plastids employ the same biosynthetic pathway as that previously established for chloroplasts (the formation of glycerolipids is a general property of all plastids, chloroplasts as well as non-green plastids), (2) the envelope membranes are the major structure responsible for the biosynthesis of phosphatidic acid, diacylglycerol and MGDG, and (3) the enzymes of the envelope Kornberg-Pricer pathway have the same properties in non-green starch-containing plastids as in mature chloroplasts from C16:3 and C18:3 plants.
The case of an elderly Chinese male opium addict with cauliflower ears is discussed. He had no history of contact sports that could have led to auricular trauma resulting in deformed ears. Besides cauliflower ears, he had features of chronic bronchitis. The association between opium addiction and cauliflower ears was first described way back in 1932. It was attributed to the prolonged opium induced sleep on hard surface subjecting the ears to repeated pressure and trauma. With the changing pattern of drug abuse, opium abuse related cauliflower ears will become a vanishing sign.
Cauliflower mosaic virus (CaMV) is a plant pararetrovirus i.e., a DNA virus that replicates through reverse transcription of its terminally redundant genomic RNA (the 35 S RNA). In this study, the absolute levels and relative ratios of CaMV-encoded RNA species were analyzed in Brassica host plants with different susceptibilities to infection. As reported previously, only very low levels of CaMV RNAs were detected in plants of low susceptibility such as cauliflower. Early in infection, a large proportion of these RNAs were the "short-stop" RNA: a 180-nucleotide RNA generated by mRNA 3' end processing at the first encounter of the polyadenylation [poly(A)] signal rather than at the second encounter by which the 35 S RNA is generated. In contrast, in highly susceptible plants such as turnip, high levels of CaMV RNAs were detected, and the short-stop RNA represented only a small fraction of the RNA. In leaf protoplasts, bypass of the poly(A) signal was similar in all Brassica species. Finally, the ratio of the 19 S RNA, a subgenomic RNA encoding a post-transcriptional trans-activator, to the 35 S RNA was lower in cauliflower than in turnip. These results are discussed in light of the CaMV life cycle.
An ATP-independent DNA topoisomerase has been isolated from chloroplasts of cauliflower leaves (Brassica oleracea var. botrytis) through DEAE-cellulose, AF-blue Toyopearl, and hydroxyapatite column chromatography. The sedimentation coefficient and Stokes radius of this enzyme are 3.6S and 3.6 nm, respectively, and the molecular weight of native enzyme is estimated to be 54,000. This enzyme changes the linking number in steps of one. The enzyme activity is stimulated by MgCl2, and this enzyme shows optimum activity at 30 degrees C in the range of 3 mM MgCl2 + 100 mM KCl-10 mM MgCl2 + 50 mM KCl. The enzyme activity was reduced remarkably by N-ethylmaleimide, indicating that a free sulfhydryl group is important for the activity; heparin and ellipticine also reduced the activity. Both cauliflower chloroplast topoisomerase and spinach chloroplast topoisomerase can relax positive supercoils as well as negative supercoils. From these properties, cauliflower chloroplast topoisomerase can be classified as a eukaryotic type I DNA topoisomerase.
Feeding diets containing cauliflower to rats inhibited hepatic residues of polybrominated biphenyls (PBB) with a reduction of fatty livers produced by 50 ppm of dietary PBB. Cauliflower diets also reduced the toxic effects of aflatoxin in Fischer rats, i.e. prevented mortality and internal hemorrhaging, and reduced liver pathology. These diets enhanced hepatic aminopyrine N-demethylase and p-nitroanisole O-demethylase activities. A kinetic study of aryl hydrocarbon hydroxylase reaction rates showed that apparent Km was lower in liver, kidney, and intestine, with a higher Vmax in the intestine. These data, combined with earlier studies, suggest that microsomal enzyme induction, especially in liver and intestine, affords a detoxication mechanism of two widespread food contaminants when animals are under a cauliflower dietary regimen.
Class III DNA-dependent RNA polymerase (EC 2.7.7.6) was highly purified from cauliflower (Brassica oleracea, var. bortytis) by using polyethyleneimine precipitation. The specific activity of the enzyme was comparable to that reported for mammalian enzymes. Glycerol gradient sedimentation analysis indicated that the sedimantation coefficient (23 S) was slightly higher than that of enzyme II from cauliflower. The class III enzyme was inhibited by alpha-amanitin at high concentrations (50% inhibition at 200 microgram/ml). The Km value for nucleoside triphosphate was determined. Template specificities for single synthetic polymers showed that the enzyme read pyrimidine homopolymers as templates and preferred poly(dT) to poly(dC). The enzyme transcribed both strands of homopolymer pairs of poly(dI). poly(dC) and poly(dA).poly(dT). The synthetic polyribonucleotides were not effectively read. Competition experiments with these synthetic polymers indicated that the enzyme had different binding specificities which were not the same as their template specificities. The different binding affinities and template specificites for synthetic templates of the three classes of enzyme suggest that the enzyme can discriminate among different template sequences.
The ability of plant cells to translate dicistronic mRNAs that mimic a segment of the polycistronic 35S RNA from cauliflower mosaic virus has been tested. The chloramphenicol acetyltransferase and beta-glucuronidase open reading frames (ORFs) were fused in-frame to the second viral cistron (ORF I). Efficient reporter expression from the corresponding plasmids in plant protoplasts was observed only upon cotransfection with viral DNA. The trans-activating gene maps at ORF VI, which is expressed from a separate, monocistronic messenger (19S RNA). Deletion analysis shows that trans-activation selectively enhances downstream gene expression; the high expression of the upstream ORF is not further increased. The major reporter transcript remained bicistronic upon trans-activation, and its abundance varied only to a limited extent. Results indicate that trans-activation enhances the translation of downstream ORFs on polycistronic mRNAs derived from cauliflower mosaic virus.
The abnormal cauliflower collagen fibrils present in skin of patients with Ehlers-Danlos type I were studied by electron microscopy and computerized image analysis. The size control of the few fibrils displaying a cauliflower shape is apparently lost, eventuating in an increased amount of collagen polymers constitutive of these fibrils. This situation is fundamentally different from that occurring in dermatosparaxis, an animal disease considered as a model for Ehlers-Danlos syndrome.
The 35S promoter is a major promoter of the cauliflower mosaic virus that infects crucifers. This promoter is still active when excised from cauliflower mosaic virus and integrated into the nuclear genome of transgenic tobacco. Previous work has shown that the -343 to -46 upstream fragment is responsible for the majority of the 35S promoter strength (Odell, J.T., Nagy, F., and Chua, N.-H. [1985]. Nature 313, 810-812). Here we show by 5', 3', and internal deletions that this upstream fragment can be subdivided into three functional regions, -343 to -208, -208 to -90, and -90 to -46. The first two regions can potentiate transcriptional activity when tested with the appropriate 35S promoter sequence. In contrast, the -90 to -46 region by itself has little activity but it plays an accessory role by increasing transcriptional activity of the two distal regions. Finally, we show that monomers and multimers of a 35S fragment (-209 to -46) can act as enhancers to potentiate transcription from a heterologous promoter.
The cauliflower mosaic virus ORF II encoding the aphid transmission factor (ATF) was mutagenized to introduce a BamHI restriction site upstream from the initiation codon and then cloned into an eukaryotic viral expression vector (Autographa californica nuclear polyhedrosis virus). All recombinant viruses tested in Spodoptera frugiperda (SF21) cells expressed a protein of about 18 kD which comigrated in PAGE with ATF from infected plants. Western blotting using an oligopeptide antiserum to ATF confirmed the identity of the 18-kD protein from infected cells as the product of the ORF II sequences (P18). Subcellular fractionation of cells infected with the recombinant AcMNPV demonstrated that the expressed P18 accumulated intracellularly in an insoluble form. Antiserum was produced in rabbit against the partially purified P18 expressed in SF21 cells. When used to immunogold label ultrathin sections of cauliflower mosaic virus (CaMV)-infected turnip tissue, this antiserum was shown to be highly specific, labelling only the electronlucent inclusion bodies (containing P18) and not other plant cellular components.
Appreciating an imcomplete understanding of the pathogenesis of cauliflower ear, an experimental study was designed to demonstrate the pathophysiology of this deformity. The investigation was conducted in 2-month-old rabbits. In one ear a collection of blood was placed under the raised perichondrium which was then sutured back in place and the skin closed. In the other ear an equal amount of blood was deposited between the intact perichondrium and skin. In the first study new cartilage developed under the perichondrium, but in the ear in which the blood was left above the surface of the perichondrium-covered cartilage, complete resorption of the clot occurred. The cauliflower ear was thus shown to be generating cartilage, arising from a layer of raised perichondrium which was further stimulated by a sero-sanguinous medium. The subperichondrial hematoma was extensively invaded by chondroblasts within 2 weeks, and over a period of 4 weeks the new tissue gradually changed into more mature cartilage. It was a consistent finding that the separated perichondrium retracted, thus causing the original cartilage to rise and buckle over the hamatoma, similar to the picture observed in the human pathology.
Culture samples of lettuce, cauliflower, celery, and taro root (Colocasia esculenta) were assayed for the presence of aflatoxin after inoculation with Aspergillus flavus and A. parasiticus. Cultures of A. flavus produced both aflatoxins B1 and G1 on taro root, but produced by B1 on lettuce, cauliflower, and celery. For taro root, the percentage of aflatoxin G1 produced was considerably greater than that of B1. While A. parasiticus did produce mycelia and spores on the lettuce and taro root samples, there were not detectable levels of any aflatoxin produced. All the samples studied were successfully extracted and analyzed qualitatively and quantatively for the presence of aflatoxin by using official AOAC thin layer chromatographic procedures. There is sufficient evidence that Aspergilli can grow on some leafy produce and one strain produced aflatoxins.
Cauliflower mosaic virus (CaMV), a plant pararetrovirus, produces polyproteins from its adjacent genes for the coat protein (ORF IV) and for enzymatic functions (ORF V). The N-terminal domain of the latter gene includes a sequence showing homology to the active site of other retroviral and acid proteases. We have now shown that this domain does indeed produce a functional aspartic protease that can process both the polyproteins. Mutations in the putative active site abolished virus infectivity. In transient expression studies in protoplasts, the N-terminal domain of ORF V was able to free active CAT enzyme from a precursor containing an N-terminal fusion of a portion of ORF IV. The junction between the two domains of this artificial polyprotein comprised sequences from the ORF IV product that had previously been shown to include a proteolytic processing site. The protease mutants were not able to free active CAT enzyme from this precursor. Direct analysis of cleavage at the same site in the ORF IV product using proteins expressed in Escherichia coli revealed the expected products. In vitro translation of a synthetic transcript covering ORF V was used to study the autocatalytic cleavage of the ORF product. Pulse-chase experiments showed that the 80 kd initial translation product was processed to yield a N-terminal doublet of polypeptides of 22 and 20 kd apparent mol. wt, which cover the protease domain. The mutants in the active site were not processed.
Cauliflower mosaic virus (CaMV) possesses start codons at the beginning of its reverse transcriptase (RT) gene (ORF V) suggesting that, unlike in retroviruses and retrotransposons, it is translated independently from the capsid gene (ORF IV). To test this hypothesis a mutational analysis of the CaMV ORF IV/V overlapping region was performed. Mutants in which both ORFs are separated by stop codons in all three reading frames are viable and stable, while mutations affecting the first two AUG codons of ORF V are either lethal or unstable, giving rise to true and second site reversions. Mutants in which the AUG codons were replaced by ACG or AAG reverted only slowly and ACG could direct the synthesis of small amounts of reporter enzyme in transfected plant protoplasts, showing that this codon can act in plant cells as a weak start codon. CaMV has apparently developed a strategy for translation of the RT gene different from that in retroviruses and retrotransposons, but similar to that of hepadnaviruses, another group of pararetroviruses. The separate translation of the RT gene as a common feature of pararetroviruses might reflect the difference in their life cycle in comparison with retroviruses.
We have studied the influence of the 600 nt long leader sequence of cauliflower mosaic virus 35S RNA on downstream translation. Plant protoplasts were transfected with plasmids expressing a CAT reporter gene from a mRNA, containing wild-type or mutant forms of the 35S RNA leader. Deletion analysis revealed the presence of three separate stimulatory sequence regions, S1, S2 and S3. The latter two interact with each other to enhance downstream translation 5- to 10-fold. This enhancement was not observed in protoplasts from a non-host plant. In the absence of either S2 or S3, the region I2, located in between, exerts an inhibitory effect on downstream translation, probably due to the presence of short open reading frames. Expression of a reporter gene inserted into I2 increases 2-fold upon deletion of either S2 or S3. We propose that mRNA regions S2 and S3 form a complex with cellular factors that allows scanning ribosomes to bypass region I2.