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13 results for “dicarboxylic acids”

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zenodo44/100

Supplementary data for the manuscript "Technical note: Estimating aqueous solubilities and activity coefficients of mono- and α,ω-dicarboxylic acids using COSMO-RS-DARE"

<p>.cosmo files (BP-TZVPD-FINE) of dicarboxylic acids (C2-C8), dimers and monohydrates of mono- (C1-C6) and dicarboxylic acids, and water dimer.</p>

opencc-by-4.0May 2020View details →
zenodo40/100

A year-round observation of δ13C of dicarboxylic acids and related compounds in fine aerosols: Implications from Central European background site

<p>Data for paper of following abstract:</p> <p>Isotopic analysis of specific compounds in aerosols can be a useful tool when studying atmospheric processes. Here, we present the results of stable carbon isotope ratio (&delta;<sup>13</sup>C) measurements performed on a one-year set (n = 96, Sep. 2013 - Aug. 2014) of dicarboxylic acids and related compounds in PM<sub>1</sub> at a rural Central European background site, Ko&scaron;etice (Czech Republic).</p> <p>The most <sup>13</sup>C enriched acid was oxalic (C<sub>2</sub>, annual average = -16.6&plusmn;5.0&permil;) followed by malonic (C<sub>3</sub>, avg. = -19.9&plusmn;6.6&permil;) and succinic (C<sub>4</sub>, avg. = -21.3&plusmn;4.6&permil;) acids. Thus, &delta;<sup>13</sup>C values decreased with an increase in carbon numbers. Azelaic acid (C<sub>9</sub>, avg. = -27.2&plusmn;3.6&permil;) was found to be the least <sup>13</sup>C enriched.</p> <p>A comparison of &delta;<sup>13</sup>C of dicarboxylic acids from other background sites, especially in Asia, shows similar values to those from the European site. This comparison also showed that C<sub>2</sub> is more <sup>13</sup>C enriched at background sites than at urban ones. In general, we did not observe significant seasonal differences in &delta;<sup>13</sup>C values of dicarboxylic acids at the Central European station. We observed statistically significant differences (p value &lt; 0.05) between winter and summer &delta;<sup>13</sup>C values solely for C<sub>4</sub>, glyoxylic acid (&omega;C<sub>2</sub>), glutaric acid (C<sub>5</sub>) and suberic acid (C<sub>8</sub>).</p> <p>The only significant correlations between &delta;<sup>13</sup>C of C<sub>2</sub> and &delta;<sup>13</sup>C of C<sub>3</sub> were found in spring and summer, suggesting that the oxidation of C<sub>3</sub> to C<sub>2</sub> is significant in these months with a strong contribution from biogenic aerosols. The strongest season-independent annual correlation was observed in &delta;<sup>13</sup>C values between C<sub>2</sub> and C<sub>4</sub>, the two dominant dicarboxylic acids. Therefore, C<sub>4</sub> appears to be the main intermediate precursor of C<sub>2</sub> throughout the whole year.</p>

opencc-by-4.0May 2023View details →
zenodo32/100

Fig. 3 in Extracellular lipids of Camelina sativa: Characterization of cutin and suberin reveals typical polyester monomers and unusual dicarboxylic fatty acids

Fig. 3. Annotated chromatograms of TMSi derivatives of C. sativa leaf cutin (A) and root suberin (B) monomers. Peak numbers correspond to monomers listed in Table 2 (cutin monomers) and Table 3 (suberin monomers). Internal standard (IS): 17:0 fatty acid methyl ester (IS1) and 15-hydroxy 15:0 fatty acid methyl ester (IS2). Asterisks indicate peaks of residual unsaturated fatty acids from membranes, not considered part of the polyester.

opennotspecifiedApr 2021View details →
zenodo32/100

Fig. 2 in Extracellular lipids of Camelina sativa: Characterization of cutin and suberin reveals typical polyester monomers and unusual dicarboxylic fatty acids

Fig. 2. Suberin deposition in roots and seed coats of Camelina sativa. Root cross sections showing suberized root periderm stained with Sudan Red (A) or viewed via blue-yellow suberin autofluorescence (B). Transmission electron microscopy (TEM) image of root endodermis (C) and TEM image of root periderm (D). TEM image of seed coat showing suberized palisade cell walls (E, F). Scale bars: 100 μm (A, B), 100 nm (C, D), 5 μm (E), and 500 nm (F). CW, cell wall; P, palisade layer; S, suberin.

opennotspecifiedApr 2021View details →
zenodo32/100

Fig. 1 in Extracellular lipids of Camelina sativa: Characterization of cutin and suberin reveals typical polyester monomers and unusual dicarboxylic fatty acids

Fig. 1. Ultrastructure of Camelina sativa cuticles. Transmission electron microscopy images of cross-sections of adaxial (A) and abaxial (B) leaves, and top (C) and bottom (D) stems. Scanning electron microscopy images of adaxial (E) and abaxial (F) petal surfaces. Scale bars: 500 nm (A), 200 nm (B, C, D), and 10 μm (E, F). C, cuticle; CW, cell wall.

opennotspecifiedApr 2021View details →
zenodo32/100

Fig. 4 in Extracellular lipids of Camelina sativa: Characterization of cutin and suberin reveals typical polyester monomers and unusual dicarboxylic fatty acids

Fig. 4. Lipid polyester monomer distribution in seed tissues. Comparison of transmethylation products from whole seeds, embryo-enriched and seed coatenriched delipidated residues. (A) Relative content of cutin monomer classes. (B–G) Detailed seed coat, embryo and whole seed monomer composition in each component class, namely hydroxy fatty acids (HFA; B), 1,ω-Diols (C), primary alcohols (PA; D), dicarboxylic acids (DCA; E) and hydroxycinnamic acids (HCA; F). Error bars represent SE; n =3. Fatty acids did not present any particular distribution between seed tissues and are not included in this figure.

opennotspecifiedApr 2021View details →
zenodo28/100

Enhanced contribution of photooxidation to dicarboxylic acids in urban aerosols during the COVID-19 lockdown in Jinan, East China

<p>Diacids in Jinan</p>

opencc-by-4.0Jan 2023View details →
zenodo28/100

Enhanced contribution of photooxidation to dicarboxylic acids in urban aerosols during the COVID-19 lockdown in Jinan, East China

<p>SOA in Jinan, East China.</p>

opencc-by-4.0Jan 2023View details →
geo24/100

Identification and characterization of C4 dicarboxylic acid transporters in Pichia kudriavzevii CY902 strain

GEO Series GSE159457. Pichia kudriavzevii. 6 samples. Type: Expression profiling by high throughput sequencing.

openGEO-OpenMay 2021View details →
geo24/100

The SLC1A1/EAAT3 Dicarboxylic Amino Acid Transporter is an Epigenetically Dysregulated Nutrient Carrier that Sustains Oncogenic Metabolic Programs

GEO Series GSE241864. Homo sapiens. 8 samples. Type: Genome binding/occupancy profiling by high throughput sequencing; Expression profiling by high throughput sequencing.

openGEO-OpenJan 2025View details →
geo24/100

Rational engineering of Corynebacterium glutamicum for the production of the dicarboxylic acid glutarate

GEO Series GSE117175. Corynebacterium glutamicum; Corynebacterium glutamicum ATCC 13032. 3 samples. Type: Expression profiling by array.

openGEO-OpenNov 2018View details →
zenodo20/100

Wildfire Plumes Enhance Water-soluble Dicarboxylic Acids in Summertime Arctic Aerosols

Open the record for dataset details and reuse information.

embargoedcc-by-4.0Jul 2024View details →
geo16/100

Improvement of dicarboxylic acid production with Methylorubrum extorquens by reduction of product reuptake

GEO Series GSE199961. Methylorubrum extorquens AM1. 30 samples. Type: Expression profiling by high throughput sequencing.

openGEO-OpenApr 2022View details →

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