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40 results for “hydrogen oxidation”
Fig. 5 in A highly efficient, thermo stable and broad pH adaptable copper-zinc super oxide dismutase (AmSOD1) mediates hydrogen peroxide tolerance in Avicennia marina
Fig. 5. Effects of incubation at different temperatures and pH on the activity of AmSOD1. The purified AmSOD1 was incubated (A) at temperatures (25, 37, 50, 60 and 75 ◦ C) (B) in buffers with pH (3–12) for 1 h before SOD assay. Then the activity of AmSOD1 was determined as explained in the "Materials and Methods". Each data point represents the mean ± SD obtained from three independent reactions.
Dataset for the article "Structural and Functional Insights into Oxidized and Hydrogenated HPHT Nanodiamonds for Cortisol Immunosensor Applications".
<p>Dataset for the article "Structural and Functional Insights into Oxidized and Hydrogenated HPHT Nanodiamonds for Cortisol Immunosensor Applications</p> <p>Chakavak Esmaeili1, Štěpán Stehlík2, Martin Krejci3, Bohuslav Rezek1</p> <p>1 Faculty of Electrical Engineering, CTU in Prague, Technicka 2, 16627 Prague, Czech Republic</p> <p>2 Institute of Physics of the Czech Academy of Sciences, Cukrovarnická 10, 162 00 Prague, Czech Republic</p> <p>3 FHNW University of Applied Sciences and Arts Northwestern Switzerland School of Engineering Klosterzelgstrasse 2<br>CH-5210 Windisch</p> <p> </p> <p>Fig 1A. SEM images of (a) the carbon bare electrode (b) before and (c) after rinsing of 3 µg HPHT-O<br>Fig 1B. SEM image of (a) the carbon bare electrode (b) before and (c) after rinsing of 3 µg HPHT-H<br>Fig 1C. SEM micrographs of (a) bare carbon electrode, (b) SPE/HPHT-O, (c) SPE/HPHT-O/APTES, (d) SPE/HPHT-O/APTES/EDC NHS, (e) SPE/HPHT-O/APTES/EDC NHS/Ab, (f) SPE/HPHT-O/APTES/EDC NHS/Ab/BSA, (g) SPE/HPHT-O/APTES/EDC NHS/Ab/BSA/Ag (with original magnification 2.00KX (up) and 15.00KX (down) at 5 kV)<br>Fig 2. The preparation and immobilization step of the cortisol fabrication based on electrochemical immunosensor <br>Fig 3. Functionalization step. a) CV and b) DPV results of (1) carbon bare electrode, (2) electrode/HPHT-O, (3) electrode/HPHT-O/APTES, (4) electrode/HPHT-O/APTES/EDC NHS, at pH 7.0, containing 250 mM KCl and 5 mM K3[Fe(CN)6] and 5 mM K4[Fe(CN)6], Scan rate 0.1Vs−1<br>Fig 4. Sensing steps. a) CV and b) DPV results for (4) electrode/HPHT-O/APTES/EDC NHS, (5) electrode/HPHT-O/APTES/EDC NHS/Ab, (6) electrode/HPHT-O/APTES/EDC NHS/Ab/BSA, and (7) electrode/HPHT-O/APTES/EDC NHS/Ab/BSA/Ag in the presence of 1 ng/mL cortisol at pH 7.0, in a solution containing 250 mM KCl, 5 mM K₃[Fe(CN)₆], and 5 mM K₄[Fe(CN)₆], with a scan rate of 0.1 V/s<br>Fig 5. a) CV and b) DPV results for (1) carbon bare electrode, (2) electrode/HPHT-O, (3) electrode/HPHT-O/APTES, (4) electrode/HPHT-O/APTES/Ab, (5) electrode/HPHT-O/APTES/Ab/BSA, and (6) electrode/HPHT-O/APTES /Ab/BSA/Ag in the presence of 1 ng/mL cortisol at pH 7.0, in a solution containing 250 mM KCl, 5 mM K₃[Fe(CN)₆], and 5 mM K₄[Fe(CN)₆], with a scan rate of 0.1 V/s<br>Fig 6. a) CV and b) DPV results for (1) carbon bare electrode, (2) electrode/HPHT-O, (3) electrode/HPHT-O/EDC NHS, (4) electrode/HPHT-O/ EDC NHS /Ab, (5) electrode/HPHT-O/ EDC NHS /Ab/BSA, and (6) electrode/HPHT-O/ EDC NHS /Ab/BSA/Ag in the presence of 1 ng/mL cortisol at pH 7.0, in a solution containing 250 mM KCl, 5 mM K₃[Fe(CN)₆], and 5 mM K₄[Fe(CN)₆], with a scan rate of 0.1 V/s<br>Fig 7. a) CV and b) DPV results of (1) carbon bare electrode, (2) electrode/HPHT-H, (3) electrode/HPHT-H/APTES, (4) electrode/HPHT-H/APTES/EDC NHS, (5) electrode/HPHT-H/APTES/EDC NHS/Ab, (6) electrode/HPHT-H/APTES/EDC NHS/Ab/BSA, and (7) electrode/HPHT-H/APTES/EDC NHS/Ab/BSA/Ag in the presence of 1 ng/mL cortisol at pH 7.0, in a solution containing 250 mM KCl, 5 mM K₃[Fe(CN)₆], and 5 mM K₄[Fe(CN)₆], with a scan rate of 0.1 V/s<br>Fig 8. Variation of the immunosensor response against the cortisol concentrations in the range of 1.0 ng to 0.5 ng/mL at pH 7.0, in a solution containing 250 mM KCl, 5 mM K₃[Fe(CN)₆], and 5 mM K₄[Fe(CN)₆], with a scan rate of 0.1 V/s<br>Fig 9. Interference study involving progesterone (2430 pg/ml), β-oestradiol (32 pg/ml), cortisone (28.6 nM), and corticosterone (3.94 nM) with respect to cortisol (1 ng/mL)</p> <p><br>Fig S1. Optical images obtained for (a) before and (b) after rinsing of 3.0µg HPHT-H<br>Fig S2. Optical images obtained for (a) bare carbon electrode, (b) HPHT-O, (c) HPHT-O/APTES, (d) HPHT-O/APTES/EDC NHS, (e) HPHT-O/APTES/EDC NHS /Ab, (f) HPHT-O/APTES/EDC NHS /Ab/BSA, (g) HPHT-O/APTES/EDC NHS /Ab/BSA/Ag<br>Fig S3. a) CV and b) DPV results of (1) carbon bare electrode, (2) electrode/HPHT-H, (3) electrode/HPHT-H/APTES, (4) electrode/HPHT-H/APTES/Ab, (5) electrode/HPHT-H/APTES/ Ab/BSA, and (6) electrode/HPHT-H/APTES/Ab/BSA/Ag in the presence of 1 ng/mL cortisol at pH 7.0, in a solution containing 250 mM KCl, 5 mM K₃[Fe(CN)₆], and 5 mM K₄[Fe(CN)₆], with a scan rate of 0.1 V/S<br>Fig S4. a) CV and b) DPV results of (1) carbon bare electrode, (2) electrode/HPHT-H, (3) electrode/HPHT-H/EDC NHS, (4) electrode/HPHT-H/EDC NHS/Ab, (5) electrode/HPHT-H/EDC NHS/ Ab/BSA, and (6) electrode/HPHT-H/EDC NHS/Ab/BSA/Ag in the presence of 1 ng/mL cortisol at pH 7.0, in a solution containing 250 mM KCl, 5 mM K₃[Fe(CN)₆], and 5 mM K₄[Fe(CN)₆], with a scan rate of 0.1 V/S<br>Fig S5. a) CV and b) DPV results of (1) carbon bare electrode, (2) electrode/APTES, (3) electrode/APTES/EDC NHS, (4) electrode/APTES/EDC NHS/Ab, (5) electrode/APTES/EDC NHS/Ab /BSA, and (6) electrode/APTES/EDC NHS/Ab/Ag in the presence of 1 ng/mL cortisol at pH 7.0, in a solution containing 250 mM KCl, 5 mM K₃[Fe(CN)₆], and 5 mM K₄[Fe(CN)₆], with a scan rate of 0.1 V/S</p> <p> </p> <p><br>Table 1. Summary of the DPV electrochemical performance of the HPHT-O modified electrode using APTES and EDC-NHS as crosslinkers in cortisol immunosensor detection<br>Table 2. Summary of the DPV electrochemical performance of the HPHT-O modified electrode utilizing APTES without EDC-NHS as a crosslinker in cortisol immunosensor detection.<br>Table 3. Summary of the DPV electrochemical performance of the HPHT-O modified electrode utilizing EDC-NHS without APTES as a crosslinker in cortisol immunosensor detection<br>Table 4. Determination of cortisol in artificial human saliva.</p>
Combined Partial Oxidation of Methane to Synthesis Gas and Production of Hydrogen or Carbon Monoxide in a Fluidized Bed using Lattice Oxygen
<p>Data that was used to produce the figures in the paper.</p>
Plasma Hydrogen Sulfide, Nitric Oxide and Stress Hyperglycemia in Acute Myocardial Infarction
ClinicalTrials.gov study NCT03829605. IPD Sharing: Not stated. Countries: 0. Publications: 4.
Data from: Hydrogen sensing enhancement of zinc oxide nanorods via voltage biasing
Open the record for dataset details and reuse information.
ATom: Measurements from Airborne Tropospheric Hydrogen Oxides Sensor (ATHOS), V2
This dataset provides the mixing ratios of hydrogen oxides measured by the Airborne Tropospheric Hydrogen Oxides Sensor (ATHOS) during the ATom 1-4 campaigns. ATHOS uses laser-induced fluorescence (LIF) to measure hydroxide (OH) and hydroperoxyl (HO2) simultaneously. The measurements include OH and HO2 mixing ratios and the OH interference determined by chemical removal of OH. The reactivity of OH is measured by the OH Reactivity (OHR) instrument using the discharge flow method and is integrated into the ATHOS electronics. These data provide insights into the oxidative state of the global atmosphere. These data are useful for testing the oxidation chemistry in models and other analytical methods being developed to deduce the atmosphere's oxidative state.
Transcriptome profiling of hydrogen-oxidizing Acidithiobacillus ferrooxidans
GEO Series GSE154815. Acidithiobacillus ferrooxidans. 6 samples. Type: Expression profiling by high throughput sequencing.
Hydrogen modulates signal transduction through manipulating oxidized phospholipid mediators
GEO Series GSE62434. Homo sapiens. 12 samples. Type: Expression profiling by array.
Hydrogen peroxide positively regulates brassinosteroid signaling through oxidation of the BRASSINAZOLE-RESISTANT1 transcription factor
GEO Series GSE110488. Arabidopsis thaliana. 14 samples. Type: Expression profiling by high throughput sequencing.
High-throughput Fitness Experiments Reveal Specific Vulnerabilities of Human-Adapted Salmonella During Stress and Infection- Barseq4 (InSPI2, hydrogen peroxide (H2O2), nitric oxide (NO), sodium hypoch
GEO Series GSE261860. Salmonella enterica subsp. enterica serovar Paratyphi A str. ATCC 9150; Salmonella enterica subsp. enterica serovar Typhimurium str. D23580; Salmonella enterica subsp. enterica serovar Typhimurium str. ST4/74; Salmonella enterica subsp. enterica serovar Typhi str. Ty2. 40 samples. Type: Other.
Source data of "A synergistic Pt-Ru-nitrogen-doped-carbon hydrogen oxidation catalyst"
<p>All the electrochemical data, microscopic images, and spectroscopic data are included.</p>
Catabolite control protein C (CcpC) contributes to virulence and hydrogen peroxide-induced oxidative stress responses in Listeria monocytogenes
GEO Series GSE267669. Listeria monocytogenes serotype 4b str. F2365. 9 samples. Type: Expression profiling by high throughput sequencing.
mRNA profiling in dss1(I) and dss1(V) mutant lines of Arabidopsis thaliana under oxidative stress (hydrogen peroxide)
GEO Series GSE264581. Arabidopsis thaliana. 3 samples. Type: Expression profiling by high throughput sequencing.
The yeast Snt2 protein helps coordinate the transcriptional response to hydrogen-peroxide mediated oxidative stress
GEO Series GSE43002. Saccharomyces cerevisiae. 66 samples. Type: Expression profiling by high throughput sequencing; Genome binding/occupancy profiling by high throughput sequencing.
Injury-dependent hydrogen peroxide oxidation of IKK-alpha regulates keratinocyte migration through induction of EGF
GEO Series GSE75728. Danio rerio. 6 samples. Type: Expression profiling by high throughput sequencing.
The yeast Snt2 protein helps coordinate the transcriptional response to hydrogen-peroxide mediated oxidative stress (H2O2)
GEO Series GSE42971. Saccharomyces cerevisiae. 18 samples. Type: Genome binding/occupancy profiling by high throughput sequencing.
The yeast Snt2 protein helps coordinate the transcriptional response to hydrogen-peroxide mediated oxidative stress (rapamycin or DMSO)
GEO Series GSE43001. Saccharomyces cerevisiae. 30 samples. Type: Genome binding/occupancy profiling by high throughput sequencing.
3D printing of reversible solid oxide cell stacks for efficient hydrogen production and power generation
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The yeast Snt2 protein helps coordinate the transcriptional response to hydrogen-peroxide mediated oxidative stress (RNA-seq)
GEO Series GSE42983. Saccharomyces cerevisiae. 18 samples. Type: Expression profiling by high throughput sequencing.
Time course of oxidative stress responses in yeast, caused by Menadione or hydrogen peroxide
GEO Series GSE2239. Saccharomyces cerevisiae. 70 samples. Type: Expression profiling by array.
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Allen Brain Atlas
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DANDI Archive for NWB datasets
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International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
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