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Sulfide bonding

There are at least three possibile ways in which the inhibitor can bind to the active site (1) formation of a sulfide bond to a cysteine residue, with elimination of hydrogen bromide [Eq. (10)], (2) formation of a thiol ester bond with a cysteine residue at the active site [Eq. (11)], and (3) formation of a salt between the carboxyl group of the inhibitor and some basic side chain of the enzyme [Eq. (12)]. To distinguish between these three possibilities, the mass numbers of the enzyme and enzyme-inhibitor complex were measured with matrix-assisted laser desorption ionization time-of-flight mass spectrometry (MALDI). The mass number of the native AMDase was observed as 24766, which is in good agreement with the calculated value, 24734. An aqueous solution of a-bromo-phenylacetic acid was added to the enzyme solution, and the mass spectrum of the complex was measured after 10 minutes. The peak is observed at mass number 24967. If the inhibitor and the enzyme bind to form a sulfide with elimination of HBr, the mass number should be 24868, which is smaller by about one... [Pg.15]

If, on the other hand, a nitro group must be reduced to an amino group without reducing the sulfidic bond, hydrazine is the reagent of choice [683]. [Pg.88]

The action of zinc in increasing the efficiency and rate of crosslinking is thought to involve chelation of zinc with the accelerator as well as species XVIII and XIX. Zinc polysulfide compounds such as XX are also likely intermediates. Zinc chelated to sulfur or as zinc sulfide bonds probably facilitate cleavage of sulfur-sulfur bonds in the concerted reactions described by Eqs. 9-20 and 9-21. [Pg.741]

Due to the vast numbers and rapidity of novel developments in solid-phase synthesis over the past ten years, a number of reports currently found in the literature deal with solid-phase syntheses of lanthionine peptides. There are at least two different approaches to synthesize lanthionine peptides in which the sulfide bond links amino acid halves that are not direct neighbors within the peptide chain (Scheme 10). One obvious approach, method A, is based on the coupling of a preformed, orthogonally protected lanthionine monomer to the N-terminus of a peptide oxime resin. 48 This is then followed by acid-catalyzed cyclization and simultaneous release from the resin during amide bond formation with the C-terminal carboxy group via the peptide cyclization method on oxime resin (see Section 6.73.2.2). The alternative approach is lanthionine formation after peptide synthesis from amino acid derivatives, such as serine and cysteine (method B). [Pg.193]

Racemic thioglycerol (3-sulfanylpropane-l,2-diol) was used for the attachment of two lipid chains via ester bond formation with the hydroxy groups 82 while the free thiol group serves for selective cross-linking to other molecules via disulfide or sulfide bonds utilizing mild thiol-disulfide interchange or thiol addition reactions (Scheme 15).[163,164,167]... [Pg.363]

Some Aspects of the Nature of the Metal Sulfide Bond 523... [Pg.515]

Scheme 18 Assembly of an Antiparallel Four-Helix-Bundle TASP via Sulfide Bond Formation 109,1101... Scheme 18 Assembly of an Antiparallel Four-Helix-Bundle TASP via Sulfide Bond Formation 109,1101...
Peptide-Unit Assembly to a Four-Helix-Bundle Protein via Sulfide Bond... [Pg.47]

Oxidizing agents Disrupt sulfide bonds Hydrogen peroxide is used to clean puncture wounds potassium permanganate is used to disinfect instruments... [Pg.162]

The nitrite-induced formation of blood methemoglobin has been used successfully to treat hydrogen sulfide poisoning. Like cyanide, hydrogen sulfide bonds to iron(III) in methemoglobin so that it is not available to inhibit cytochrome oxidase.15... [Pg.263]

Based on the above discussion it was thought that the trifluoro-methyl ketones would be more polarized and thus create a great electrophilicity on the carbonyl carbon which facilitates -OH attack by the serine residue. Yet there is no carbon-oxygen bond to be cleaved In the ketone moiety, and therefore the enzyme-trifluoromethyl ketone transition state complex does not undergo catalytic conversion. The above rationale seems reasonable as trifluoromethyl ketones were found to be extraordinary selective and potent inhibitors of cholinesterases (56) of JHE from T. ni (57) and of meperidine carboxylesterases from mouse and human livers (58). Since JH homologs are alpha-beta unsaturated esters, a sulfide bond was placed beta to the carbonyl in hopes that it would mimic the 2,3-olefln of JHs and yield more powerful inhibitors (54). This empirical approach was extremely successful since it resulted in compounds that were extremely potent inhibitors of JHEs from different species (51,54,59). [Pg.150]

Aryl cyanates have activated cyano groups and undergo many reactions They are effective dehydrating and hydrogen sulfide-bonding agents in organic synthesis A-, 0-, and 5-nucleophiles (HX) add... [Pg.37]

Thiokol (and other polymers containing sulfide bonds in the main chain) (-CH2-S-S-) 77 77 R-S 39, 83, 84)... [Pg.56]


See other pages where Sulfide bonding is mentioned: [Pg.250]    [Pg.237]    [Pg.30]    [Pg.334]    [Pg.250]    [Pg.147]    [Pg.467]    [Pg.143]    [Pg.443]    [Pg.8]    [Pg.524]    [Pg.37]    [Pg.37]    [Pg.49]    [Pg.522]    [Pg.668]    [Pg.668]    [Pg.108]    [Pg.154]    [Pg.871]    [Pg.13]    [Pg.305]    [Pg.152]    [Pg.153]    [Pg.184]    [Pg.193]    [Pg.194]    [Pg.277]    [Pg.410]    [Pg.184]   


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APPLICATION OF BONDING MODELS TO SULFIDE MINERALS

C-S bond cleavages of allylic sulfides

C-S bond cleavages of other sulfides, thiols and dithioacetals

C-S bond cleavages of vinylic sulfides

Dimethyl sulfide, bond angle

Dimethyl sulfide, bond angle molecular model

Hydrogen sulfide bond

Hydrogen sulfide bond polarity

Hydrogen sulfide bonding

Hydrogen sulfide, bond angles

Metal sulfides bonding

Metal—ligand bonds hydrogen sulfide

Sulfides bond strength

Sulfides oxidative carbon-sulfur bond cleavage

Sulfides silicon-phosphorus bonds

Sulfides, bond energies

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