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10510-77-7

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10510-77-7 Usage

Description

Phenazine Ethosulfate, also known as PES, is a chemical compound that serves as an intermediate in various applications. It is known for its ability to detect nitric oxide reductase activity and is also used in the production of dyes and metabolites. PES is a versatile compound with a range of applications across different industries.

Uses

Used in Research Applications:
Phenazine Ethosulfate is used as a research tool for detecting nitric oxide reductase activity. This application is crucial in understanding the role of nitric oxide in various biological processes and its potential involvement in diseases.
Used in Dye Production:
In the dye industry, Phenazine Ethosulfate is used as a precursor in the synthesis of various dyes. Its unique chemical properties make it an essential component in creating a wide range of colors and shades.
Used in Metabolite Production:
Phenazine Ethosulfate is also utilized in the production of metabolites, which are essential for various biological processes. Its role in this application highlights its importance in the pharmaceutical and biotechnology industries.

Check Digit Verification of cas no

The CAS Registry Mumber 10510-77-7 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 1,0,5,1 and 0 respectively; the second part has 2 digits, 7 and 7 respectively.
Calculate Digit Verification of CAS Registry Number 10510-77:
(7*1)+(6*0)+(5*5)+(4*1)+(3*0)+(2*7)+(1*7)=57
57 % 10 = 7
So 10510-77-7 is a valid CAS Registry Number.
InChI:InChI=1/C14H13N2.C2H6O4S/c1-2-16-13-9-5-3-7-11(13)15-12-8-4-6-10-14(12)16;1-2-6-7(3,4)5/h3-10H,2H2,1H3;2H2,1H3,(H,3,4,5)/q+1;

10510-77-7SDS

SAFETY DATA SHEETS

According to Globally Harmonized System of Classification and Labelling of Chemicals (GHS) - Sixth revised edition

Version: 1.0

Creation Date: Aug 16, 2017

Revision Date: Aug 16, 2017

1.Identification

1.1 GHS Product identifier

Product name Phenazine ethosulfate

1.2 Other means of identification

Product number -
Other names 5-ethylphenazin-5-ium,ethyl sulfate

1.3 Recommended use of the chemical and restrictions on use

Identified uses For industry use only.
Uses advised against no data available

1.4 Supplier's details

1.5 Emergency phone number

Emergency phone number -
Service hours Monday to Friday, 9am-5pm (Standard time zone: UTC/GMT +8 hours).

More Details:10510-77-7 SDS

10510-77-7Downstream Products

10510-77-7Related news

PHENAZINE ETHOSULFATE (cas 10510-77-7) as a preferred electron acceptor to phenazine methosulfate in dye-linked enzyme assays08/02/2019

Rapid nonenzymatic reduction of 2,6-dichlorophenolindophenol by N-methyl phenazonium methosulfate has been observed in aqueous solution and has been found to increase with increasing pH and ionic strength. The instability of N-methyl phenazonium methosulfate in aqueous solution has been explored...detailed

Effects of PHENAZINE ETHOSULFATE (cas 10510-77-7) during culture of bovine embryos on pregnancy rate, prenatal and postnatal development08/01/2019

The objective was to evaluate the use of phenazine ethosulfate (PES) during culture of embryos on fetal and postnatal calf development. Oocytes collected from abbatoir-derived ovaries were matured and fertilized, and the resulting embryos were cultured in vitro by standard procedures, in a chemi...detailed

10510-77-7Relevant articles and documents

Synthesis of 5'-polyarene-tethered oligo-DNAs and the thermal stability and spectroscopic properties of their duplexes and triplexes

Puri, Nitin,Zamaratski, Edouard,Sund, Christian,Chattopadhyaya, Jyoti

, p. 10409 - 10432 (1997)

Eleven different planar hydroxy alkylated polyarenes 1-11 with different geometry, bulk and electronic characteristics were synthesised, and used for tethering to the 5'-phosphate of a 9-mer and a 18-mer DNA sequences through solid-phase synthesis. The 5'-polyarene-tethered 9-mers 30-40 were tested for their ability to form stable duplexes with four complementary target DNA-strands 25-28 of different length. The 5'-polyarene-tethered 18-mers 44-54 were tested for their ability to form stable triplexes with a 24-mer duplex target 41+42. The T(m) measurements of duplexes at low salt and pH 7.3 showed that the angular nitro phenanthrene and phenanthrene conjugates 31 and 30 gave the highest duplex stabilisations with targets 25 (ΔT(m) 13.8°C and 11.8°C) and 26 (ΔT(m), 12.3°C and 11.9°C). With the mismatch sequence 28, only 30 and 31 gave a high ΔT(m), of 11.6°C and 10.8°C respectively, while lower ΔT(m), values were observed for other conjugates (ΔT(m), -4.0-5.0°C). The T(m) measurements of triplexes between 43-54 and duplex target 41+42 at low salt and pH 7.3, 6.5 and 6.0 without Mg2+ showed that the nitro phenanthrene conjugate 45 gave the best triplex stabilisation (ΔT(m), 4.1-5.4°C). The stabilisation of nitro phenanthrene conjugate 45 compared to phenanthrene conjugate 44 increased more remarkably when Mg2+ was present: 45 (ΔT(m), 15°C), 44 (ΔT(m), 10°C). These results imply that the electron density of the chromophore influences the π-π stacking interactions between the chromophore and nucleobases, and thereby influencing the duplex and triplex stability. Fluorescence measurements on single strand to double strand transition indicated that the 5'-tethered polyarenes are stacked only on the neighbouring nucleobases of the opposite strand. In case of 5'-9-N-ethylphenazinium conjugate 36, a comparative NMR and fluorescence measurement has unambiguously shown that the tethered phenazinium ion is indeed intercalated between the nucleotides of the opposite target strand 26. Thermodynamic calculations showed the most stable ΔG°(298K) for 30, 31(+targets 25, 26, 28) and 35, 36(+targets 25, 26) compared to the blank 29 ΔΔG°(298K) ~-10kJ mol-1). The non-palindromic target 27 was shown by T(m) measurements to form a stable tertiary structure, which was very little affected by addition of any 5'-tethered conjugate, thereby showing the importance of the tertiary structures of an in vivo antisense target and its implication in regard to its bioavailablity to complementary antisense probes.

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