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14317-07-8

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14317-07-8 Usage

General Description

TRIMETHYLSILYL-D(+)MANNITOL is a derivative of mannitol, a type of sugar alcohol commonly used in pharmaceuticals and food products. In this compound, three methyl groups are bonded to a silicon atom, creating a trimethylsilyl group that enhances the stability and solubility of the mannitol molecule. TRIMETHYLSILYL-D(+)MANNITOL is commonly used as a protecting group in organic synthesis to prevent unwanted reactions at specific hydroxyl groups, as well as a chiral auxiliary in asymmetric synthesis to induce stereo-selectivity. Additionally, this chemical compound is also used as a cryoprotectant in cell culture and as a stabilizer in biopharmaceutical formulations. Overall, TRIMETHYLSILYL-D(+)MANNITOL plays a crucial role in various industries due to its unique properties and versatile applications.

Check Digit Verification of cas no

The CAS Registry Mumber 14317-07-8 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 1,4,3,1 and 7 respectively; the second part has 2 digits, 0 and 7 respectively.
Calculate Digit Verification of CAS Registry Number 14317-07:
(7*1)+(6*4)+(5*3)+(4*1)+(3*7)+(2*0)+(1*7)=78
78 % 10 = 8
So 14317-07-8 is a valid CAS Registry Number.
InChI:InChI=1/C24H62O6Si6/c1-31(2,3)25-19-21(27-33(7,8)9)23(29-35(13,14)15)24(30-36(16,17)18)22(28-34(10,11)12)20-26-32(4,5)6/h21-24H,19-20H2,1-18H3

14317-07-8SDS

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 trimethyl-[1,2,4,5,6-pentakis(trimethylsilyloxy)hexan-3-yloxy]silane

1.2 Other means of identification

Product number -
Other names 1,2,3,4,5,6-hexa-O-trimethylsilyl-D-mannitol

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:14317-07-8 SDS

14317-07-8Relevant articles and documents

Harnessing the reactivity of poly(methylhydrosiloxane) for the reduction and cyclization of biomass to high-value products

Hein, Nicholas M.,Seo, Youngran,Lee, Stephen J.,Gagné, Michel R.

, p. 2662 - 2669 (2019/06/13)

Poly(methylhydrosiloxane) (PMHS) has been examined for its ability to reduce and subsequently cyclize carbohydrate substrates using catalytic tris(pentafluorophenyl)borane (BCF). The work herein is the first reported example of the direct conversion of monosaccharides to 1,4-anhydro and 2,5-anhydro products utilizing a hydrosiloxane reducing agent. PMHS is produced from waste products of the silicone industry, making it a green alternative to traditional hydrosilane reducing agents. This work thus contributes to the goal of utilizing renewable feedstocks in the production of fine-chemicals.

Time-dependent profiling of metabolites from Snf1 mutant and wild type yeast cells

Humston, Elizabeth M.,Dombek, Kenneth M.,Hoggard, Jamin C.,Young, Elton T.,Synovec, Robert E.

experimental part, p. 8002 - 8011 (2009/04/06)

The effect of sampling time in the context of growth conditions on a dynamic metabolic system was investigated in order to assess to what extent a single sampling time may be sufficient for general application, as well as to determine if useful kinetic information could be obtained. A wild type yeast strain (W) was compared to a snf1Δ mutant yeast strain (S) grown in high-glucose medium (R) and in low-glucose medium containing ethanol (DR). Under these growth conditions, different metabolic pathways for utilizing the different carbon sources are expected to be active. Thus, changes in metabolite levels relating to the carbon source in the growth medium were anticipated. Furthermore, the Snf1 protein kinase complex is required to adapt cellular metabolism from fermentative R conditions to oxidative DR conditions. So, differences in intracellular metabolite levels between the W and S yeast strains were also anticipated. Cell extracts were collected at four time points (0.5, 2, 4, 6 h) after shifting half of the cells from R to DR conditions, resulting in 16 sample classes (WR, WDR, SR, SDR) x (0.5, 2, 4, 6 h). The experimental design provided time course data, so temporal dependencies could be monitored in addition to carbon source and strain dependencies. Comprehensive two-dimensional (2D) gas chromatography coupled to time-of-flight mass spectrometry (GC x GC-TOFMS) was used with discovery-based data mining algorithms (Anal. Chem. 2006, 78, 5068-5075 (ref 1); J. Chromatogr., A 2008, 1186, 401-411 (ref 2)) to locate regions within the 2D chromatograms (i.e., metabolites) that provided chemical selectivity between the 16 sample classes. These regions were mathematically resolved using parallel factor analysis to positively identify the metabolites and to acquire quantitative results. With these tools, 51 unique metabolites were identified and quantified. Various time course patterns emerged from these data, and principal component analysis (PCA) was utilized as a comparison tool to determine the sources of variance between these 51 metabolites. The effect of sampling time was investigated with separate PCA analyses using various subsets of the data. PCA utilizing all of the time course data, averaged time course data, and each individual time point data set independently were performed to discern the differences. For the yeast strains examined in the current study, data collection at either 4 or 6 h provided information comparable to averaged time course data, albeit with a few metabolites missing using a single sampling time point.

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