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Growth inhibition

BAS 111 l-Phenoxy-3-(lH-l,2,4-tria2ole-l-yl)-4-hydroxy-5,5-dimethylhexane [9003-11-6] (BAS 111) (46) is a triazole that has plant growth inhibiting properties. It exerts its influence by inhibiting the production of gibbereUic acid in plants this has been demonstrated in canola (31,37). [Pg.427]

Cell Division Inhibitors. The most common mode of action of soil-appHed herbicides is growth inhibition, primarily through dkect or indkect interference with cell division (163). Such growth inhibitory activity is the basis for most pre- or post-emergent herbicides intended to control germinating weed seeds. In germinating seeds, cell division occurs in the meristems of the root and the shoot. Meristematic cells go through a cycle... [Pg.45]

Amino acids essential for young rats (98) and fishes (99) have been reviewed. Rats preferably eat a diet with sufficient amounts of essential amino acids rather than one that is deficient (100). Each essential amino acid, consumed in self-selection, has been reviewed (101). A protein diet with an excess of essential amino acids has been described as a poor protein diet from investigations that showed remarkable growth inhibition and occurrence of fatty fiver disease in rats (102). This is called amino acid imbalance (103). [Pg.282]

Some related antibacteiials are also included with the sulfonamides. The azo dye, Piontosil (3) is metabolized to sulfanilamide in and was the piogenitoi of the sulfa dmgs. Also, the antibacteiial sulfones, eg, dapsone (4), are believed to act in a similai fashion on enzymes involved with synthesis of fohc acid, leading to bacterial growth inhibition. [Pg.463]

Sundower Seed. Compared to the FAO/WHO/UNU recommendations for essential amino acids, sunflower proteins are low in lysine, leucine, and threonine for 2 to 5-year-olds but meet all the requirements for adults (see Table 3). There are no principal antinutritional factors known to exist in raw sunflower seed (35). However, moist heat treatment increases the growth rate of rats, thereby suggesting the presence of heat-sensitive material responsible for growth inhibitions in raw meal (72). Oxidation of chlorogenic acid may involve reaction with the S-amino group of lysine, thus further reducing the amount of available lysine. [Pg.301]

In summary, dispersants are effective for particle dispersion and crystal growth inhibition, but do not normally have surface-active properties such as oil emulsification. Chelants and antiprecipitants frequently inhibit crystal growth better than dispersants, but are ineffective for particle dispersion. Flocculants are effective for aggregating particles, the opposite function of a dispersant. [Pg.150]

Material Function Typical dosage, ppm Ratio of cation to material Oil emulsification Kaolin dispersing CaCO growth inhibition... [Pg.150]

Microbiol Stability. Microbial growth is hindered by reducing water activity and adding preservatives. An overview is available (30). Reduction in water activity is typically obtained by including approximately 50% of a polyalcohol such as sorbitol or glycerol. Furthermore, 20% of a salt like NaCl has a pronounced growth inhibiting effect. [Pg.290]

When reacted with dimethyl acetylenedicarboxylate, the amines produced ben-zotriazolylaminobutendioates 188 accompanied by A-benzotriazolyl substituted 2-pyridones only in the case of 5-amino-2-methyl-2//-benzotriazole, the triazolo-9,10-dihydrobenzo[d]azepine and an unusual cyclization product, triazolo-2-oxindole (convertible into 2-methyltriazolo[4,5-/]carbostyril-9-carboxylate) were formed. The quinolones 189 were aromatized to chloroesters 190 these in turn were hydrolyzed to chloroacids 191 and decarboxylated to 9-chlorotriazolo[4, 5-/]quinolines 192 (Scheme 58) (93H259). The chlorine atom could be replaced with 17 various secondary amines to give the corresponding 9-aminoalkyl(aryl) derivatives 193, some of which exhibit both cell selectivity and tumor growth inhibition activity at concentrations between 10 and 10 " M (95FA47). [Pg.259]

Wachstum, w, growth increase accretion, wachstum-fordemd, a. growth-promoting,. hemmend, a. growth-checking, growth-inhibiting. [Pg.499]

Foam in the bioreactor is troublesome it can reduce the oxygen transfer rate (OTR). Antifoam is use to prevent foam formation. However, excess antifoam may cause growth inhibition in the course of fermentation. The simplest device is known as a foam breaker, which is mounted on the stirrer shaft located on the surface of liquid. It is a flat blade. [Pg.293]

Essential oils are known to have detrimental effects on plants. The inhibitory components have not been identified, but both alde-hydic (benzol-, citrol-, cinnamal-aldehyde) and phenolic (thymol, carvacol, apiol, safrol) constituents are suspected. Muller et al. (104) demonstrated that volatile toxic materials localized in the leaves of Salvia leucophylla, Salvia apiana, and Arthemisia californica inhibited the root growth of cucumber and oat seedlings. They speculated that in the field, toxic substances from the leaves of these plants might be deposited in dew droplets on adjacent annual plants. In a subsequent paper, Muller and Muller (105) reported that the leaves of S. leucophylla contained several volatile terpenes, and growth inhibition was attributed to camphor and cineole. [Pg.122]

Coumarin, the lactone of o-hydroxycinnamic acid, and some of its derivatives have been isolated from many plant species 31). Thimann and Bonner 141) attributed the growth-inhibiting effects of coumarin to its action on enzyme sulfhydryl groups. Inhibitory effects of coumarin on Avena coleoptiles and pea stem sections could be overcome by 2,3-dimercaptopropanol (BAL). Coumarin has also been reported to disrupt mitosis 29,30). [Pg.130]

Figure 2. Structural formulas of some lactones isolated from plants which have a growth-inhibiting action... Figure 2. Structural formulas of some lactones isolated from plants which have a growth-inhibiting action...
Ailanthus altissima (tree of heaven) grows in pure stands, hence, secretion of a toxic principle is implied. Mergen (98) prepared aqueous extracts of the foliage and found growth inhibition produced in 45 of 46 species of test plants. [Pg.136]


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AFPs inhibit growth

Activity inhibit growth/metabolic

Algal growth inhibition test

Allelopathy growth inhibition

Antibiotics (Growth Inhibiting)

Aromatics growth inhibition

Asparagine, growth inhibition

Asperity Junction-Growth Inhibition

Bacillus subtilis, growth inhibition

Bacterial growth inhibition

Biocompatibility cell growth inhibition

Biocompatibility growth inhibition

Biological growth inhibition

Cancer growth inhibition

Candida albicans, growth inhibition

Cell growth inhibition

Cell-growth inhibition assays

Chicken growth inhibition

Cladosporium, growth inhibition

Crack growth inhibition

Crystal growth inhibition

Crystals additive inhibited growth

Epidermal growth factor receptor mediated pathways, inhibition

Filamentous carbon growth inhibition

Fungal growth inhibition

Garlic tumor growth inhibition

Grasses growth inhibition

Growth abnormalities inhibition

Growth hormone release-inhibition

Growth hormone-release inhibiting

Growth hormone-release inhibiting factor

Growth inhibiting compounds

Growth inhibiting compounds biological activity

Growth inhibition Hordeum vulgare

Growth inhibition activity

Growth inhibition assay

Growth inhibition induced

Growth inhibition induced herbicides

Growth inhibition, parasitism

Growth product inhibition

Growth, hormone inhibition

Growth-inhibiting concentrations

Growth-inhibiting concentrations antibacterial substances

Growth-inhibiting effects

Growth-inhibition effects

Herbs, growth inhibition

Hormones growth inhibiting

Human cancer cell lines growth inhibition assay

Hybrid Growth Inhibitions

Hypocotyls, growth inhibition

Inhibited radicle growth

Inhibiting growth

Inhibiting growth

Inhibition of bacterial growth

Inhibition of root growth

Insect growth inhibition

Larval growth-inhibition bioassay

Lettuce growth inhibition

Maleic hydrazide plant growth inhibition

Microbial growth inhibition

Microbial growth inhibition assays

Mycobacterium tuberculosis, growth inhibition

Nerve growth factor inhibition

Other Inhibitory Molecules Contributing to Axonal Growth Inhibition

Paraquat plant growth inhibition

Phenols growth inhibition

Plant pathogens, growth inhibition

Platelet-derived growth factor receptor tyrosine kinase inhibition

Rhizobium, growth inhibition

Root growth inhibition

Saccharomyces cerevisiae growth inhibition

Seedling growth inhibition

Shoot growth inhibition

Staphylococcus growth inhibition

Tetrahymena pyriformis growth inhibition

Tobacco tumor cell growth, inhibition

Triazines growth inhibition

Trichophyton mentagrophytes, growth inhibition

Tumor growth inhibition

Tumor growth, proteins that inhibit

Vascular endothelial growth factor , inhibition

Vitamin growth inhibition

Vitamin growth-inhibiting dose

Winter wheat growth inhibition

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