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1 nalogy with the known reactivity of HNO with thiol.
2 reduction from 27.1% down to 13.0% oxidized thiol.
3 n EPR spectrum characteristic of the trapped thiol.
4 ) sensor array for the discrimination of six thiols.
5 nd reveal new, dynamic properties in SAMs of thiols.
6 te carbonyl sulfide (COS) in the presence of thiols.
7 nines' versatile photochemical behavior with thiols.
8 ane, were studied and compared with those of thiols.
9 and waste-free method to access alcohols and thiols.
10 "fingerprint" pattern identification for six thiols.
11 e core of shishijimicin A upon activation by thiols.
12 d either when BISMORX was mixed with protein thiols.
13 iols imaged by BISMORX were indeed lysosomal thiols.
14 arities among structures and reactivities of thiols.
15 espect to half-life, pH, and availability of thiols.
16 ed derivatives, NDM-1 by compounds bearing a thiol, a thiosemicarbazide or thiosemicarbazone moiety,
18 n), here we use a much more robust reaction (thiol-acrylate/thiol-ene 'double-click' chemistry) to ob
20 e Cy, required for photostabilization, or Cy-thiol adduct formation, necessary for super-resolution m
21 ties, namely, allyl, amine, carboxylic acid, thiol, aldehyde, and catechol, were prepared and chemica
22 Here we describe the ability of a binary thiol-amine solvent mixture to dissolve the bulk bournon
24 matter (NOM; Suwannee River DOM) and 15 LMM thiols, an internally consistent thermodynamic data set
25 e; H is a dissociable proton) with a pendant thiol and [Fe(NO)((TMS)PS2)((TMS)PS2CH(3))] (2) bearing
26 rheology to first characterize the effect of thiol and allyl sulfide crosslink structures on degradat
29 mplexes comprising a tridentate N(2) S donor thiol and its analogous N(4) S(2) donor disulfide ligand
32 rodes functionalized with different aromatic thiols and amines suggests that the primary role of the
33 ed with other conventional ligands including thiols and amines, metal-carbene bonds that are stable u
34 which enables the oxidative coupling between thiols and amines, two readily available and inexpensive
40 iphatic alcohols, phenols, carboxylic acids, thiols and sulfonamides were found to be competent nucle
41 substituents on aromatic nitriles and amino thiols and testing their reactivity and ability to form
46 essing and recycling abilities of a range of thiol-anhydride elastomers, glasses, composites and phot
54 ly sensitive and differentiable detection of thiols at various concentrations in human blood serums,
57 scuss the current views on the activities of thiol-based peroxidases in peroxide-mediated redox signa
58 organisms, this modification could initiate thiol-based redox relays and modify target enzymes, rece
59 uantitatively blocking surface thiols with a thiol binding ligand (qBBr), we show that surface thiols
64 lcohol (PhFOH)/BF(3).OEt(2)/K(3)PO(4), while thiols can be protected in good to excellent yield using
66 Here, we examined the role of cell surface thiols, cellular ligands with the highest affinity for H
67 evated abundance of the low molecular weight thiols coenzyme A (CoA) and glutathione in S47 cells.
77 itu derivatization of free thiol groups from thiol-containing metabolites such as glutathione and cys
79 ctrometry analyses revealed the oxidation of thiol-containing polymer chain-ends during sample prepar
82 Pd-protein OACs can cross-couple with other thiol-containing proteins to arrive at homogeneous prote
86 The Zn(II)-IMAC system selectively bound the thiol-containing Zn(II)-ACE1 inhibitors captopril and om
91 cysteine residue, preventing the subsequent thiol coupling with a reactive AlexaFluor 680 acceptor d
93 re of peptides 2a-c and 3a-c to the reactive thiol cysteamine revealed that DeltaAla-containing pepti
95 e demonstrate here that SpAhpD exhibits weak thiol-dependent peroxidase activity and, unlike the prev
96 pation of 2-Cys peroxiredoxin (2-Cys PRX), a thiol-dependent peroxidase, in the control of the reduci
97 rstanding of redox regulatory principles and thiol-dependent redox relays of Prxs in subcellular comp
98 re hydrogen peroxide sensors and the role of thiol-dependent signaling networks in the transmission o
100 s overall structure is consistent with other thiol dioxygenases, closer inspection of the active site
105 we demonstrate detection of single-molecule thiol-disulfide exchange using a label-free optoplasmoni
107 e respiratory chain, glycolysis also enables thiol/disulfide exchange-mediated folding of bacterial c
110 e classified aslow molecular weight volatile thiols (e.g. H(2)S, methanethiol) which impact the smell
112 a much more robust reaction (thiol-acrylate/thiol-ene 'double-click' chemistry) to obtain highly uni
113 re achieved by a combination of Michael-type thiol-ene addition and copper(I)-mediated alkyne-azide c
119 hogonal crosslinking mechanisms-photocurable thiol-ene reactions and condensation reactions-to exerci
120 tion, demonstrating structures 3D printed in thiol-ene resin by means of tomographic volumetric VAM.
123 ng (e.g., free-radical chain polymerization, thiol-ene, photomediated redox) of natural and synthetic
127 alpha-macroglobulin (alphaM) superfamily use thiol esters to form covalent conjugation products upon
129 However, it is difficult to discriminate one thiol from another because of the similarities among str
130 is rigid, always protecting the active-site thiols from the oxidizing environment of the periplasm.
131 ted candidate from E50C to P54C as the other thiol function site, for forming longitudinal disulfide
132 c constants for Hg(II) complexes formed with thiol functional groups in bacterial cell membranes of t
134 the stabilization of gold nanoparticles with thiol-functionalised hybrid organic-inorganic polyoxomet
137 (5 mW cm(-2) ) in the presence of a soluble thiol (glutathione at 15 x 10(-3) m), and a photoinitiat
138 amines suggests that the primary role of the thiol group in 2-ABT is to anchor the NH(2) group near t
140 tylene group is directly introduced onto the thiol group of cysteine and can be used for copper-catal
142 to its substrate peptide by connecting a Cys-thiol group to the beta-carbon of an upstream Asn residu
144 d protein solubility and induced exposure of thiol groups as well as a shift in secondary structure d
145 nding, the resulting metal surface with free thiol groups can be easily rebonded with a second hydrog
146 ted the formation of acrylamide adducts with thiol groups from both metabolites and protein residues,
147 We performed in situ derivatization of free thiol groups from thiol-containing metabolites such as g
149 e and cryo-electron microscopy, we show that thiol groups of cysteine residues undergo S-glutathionyl
153 binding ligand (qBBr), we show that surface thiols have no significant effect on Hg(II) methylation,
155 th LysoTracker Red DND-99 confirmed that the thiols imaged by BISMORX were indeed lysosomal thiols.
156 s coordinate the iron center with their free thiols in a monodentate binding mode, in sharp contrast
159 p a new analytical approach for screening of thiols in plants, using four vegetal examples and beginn
161 s a wide range of heteroaromatic halides and thiols, including alkyl and heteroaryl thiols, leading t
162 ated abundance of low molecular weight (LMW) thiols, including glutathione (GSH) and coenzyme A (CoA)
163 aperone holdase family, RidA and CnoX, whose thiol-independent activation mechanism differs from that
164 ward synthetic route to convert nucleophilic thiols into electrophilic, thiol-selective vinylphosphon
166 iscovery of >3000 reactive and/or accessible thiols labeled in their native cellular environments in
167 s and thiols, including alkyl and heteroaryl thiols, leading to a variety of thioethers in good isola
168 ent metal-thiolate bonds by exposure to free thiols, leading to the remarkable observation of the tot
172 mbining either with low molecular mass (LMM) thiols like Cys, Hg(Cys)(Mem-RS), or with neighboring O/
173 would have abnormal redox status due to bio-thiols, like glutathione (GSH), which constitute the mos
174 ts appreciable amounts of low molecular mass thiol (LMM-RSH) compounds reaching concentrations of abo
175 ry and structural biology that this cysteine-thiol lyase (C-T lyase) is a PLP-dependent enzyme that m
178 tch is rapid, reversible, and accompanied by thiol-mediated changes in the structures and activities
182 ith isotopically labeled acetyl-alanine; (3) thiol Michael addition of an isotopically labeled acetyl
185 article formulation of polymerized siRNA and thiol-modified glycol chitosan nanoparticle-was used for
186 e, we have measured the surface coverage for thiol-modified single-strand deoxyribonucleic acid (ssDN
188 sphate for neutralizing the charges and a di-thiol molecule (2,2'-(ethylenedioxy) diethanethiol (EDT)
191 g was similar to that of the original triple-thiol nonconjugated rHSA variants (0.88 and 0.25 mum for
193 erein we report that converting the terminal thiol of the E. coli ACP 4'-phosphopantetheine arm into
194 en algae were exposed to MeHg complexes with thiols of larger size and more "branched" chemical struc
196 biquity, self-assembled monolayers (SAMs) of thiols on coinage metals are difficult to study and are
198 t of antibody variants (trisulfides and free-thiols) on product qualities of different antibodies.
199 chains can be more sensitively detected than thiol ones (the low pK(a) of sulfonic acids facilitating
200 ides that were recalcitrant to reaction with thiol or amine nucleophiles under mild aqueous condition
201 approach to prepare sulfonyl fluorides using thiols or disulfides, as widely available starting mater
204 te of CblC suppressed the NO(2)Cbl-dependent thiol oxidase activity, whereas the disease-associated R
207 tion, and endotoxemia accompanied by protein thiol oxidation and downregulation of antioxidant gene e
210 he impact of several nitroxyl donors and the thiol-oxidizing agent diamide on cardiac myocyte protein
211 m identifies heterogeneous protein disulfide/thiol patterns in a de-novo fashion with artifact contro
212 as applied to characterize unknown disulfide/thiol patterns of the recombinant cyclophilin 1 monomer
213 ono were identified to contain two disulfide/thiol patterns, of which C41-C169 linkage was confirmed
214 4 was observed for a surface prepared with a thiol PEGylated aptamer HS-(CH(2))(6)-OP(O)(2)O-(CH(2)CH
220 n of 2-deoxy S-glycosides in the presence of thiols, probably by in situ generation of catalytic HNO(
221 se of the nitrodibenzofuran (NDBF) group for thiol protection and found it to exhibit a faster rate t
222 he most common photoremovable group used for thiol protection is the o-nitrobenzyl group and related
225 quently invoked mechanism of concerted amine/thiol proton transfer and C-S bond formation and instead
227 the intersection of metal-catalyzed HAT and thiol radical trapping HAT catalytic cycles to be essent
229 dergo base-promoted beta-elimination to form thiol-reactive alpha,beta-unsaturated aldehydes, which t
231 Integrating single-cell PTM analysis with thiol-reactive organoid barcoding in situ (TOBis) enable
232 that lactam analogues with muted nonspecific thiol reactivities constitute a better electrophile for
234 show good correlation at the outer limits of thiol reactivity but less so for compounds with intermed
238 A similar in vitro model that mimics the thiol redox conditions of human blood has been previousl
239 nsition from an oxidizing to a more reducing thiol redox environment in the mitochondrial matrix.
240 ne are cytosolic, the molecular basis of the thiol redox homeostasis in the single mitochondrion of t
244 nctional interplay among pathways regulating thiol-redox status, metabolic adaptation, and cellular r
245 ripheral APCs, gamma-IFN-inducible lysosomal thiol reductase (GILT) is critical for MHC class II-rest
246 tion of the glutaredoxin GRXS17, a member of thiol reductase families in the model plant Arabidopsis
247 ical conditions, providing insights on these thiol-related attributes and allowing for more informed
248 tablished to study and predict the impact of thiol-related attributes on safety or efficacy of intrao
249 ls are effective tools to monitor changes of thiol-related attributes under physiological conditions,
250 n competitive PCET activations of amides and thiols relevant to catalytic olefin hydroamidation react
256 roducts of hydrogen sulfide (H(2)S)-mediated thiol (RSH) modification, are additional potential targe
257 ofiled directly in cultured cells, achieving thiol saturation in a few minutes at submillimolar conce
258 vert nucleophilic thiols into electrophilic, thiol-selective vinylphosphonothiolates: In this protoco
261 al modification of proteins by addition of a thiol (-SH) group onto reactive cysteine residues: a pro
263 translational modification (PTM) of cysteine thiols (SNO), modulates the activity of proteins that re
265 recursor ion scan mode, after extraction and thiol-specific derivatisation with 4,4'-dithiodipyridine
268 tress required both cysteines, implying that thiol status in this protein directly influences folding
271 To identify individual operational protein thiol switches, we captured the fast release of metaboli
274 We show that mechanochemically generated thiol-terminated polymers undergo a Michael-type additio
275 is reflected by a reduction in systemic free thiols, the major components of the antioxidant machiner
277 s the possibility to monitor the presence of thiols through oxidation and chemiluminescence of the re
278 modification, the oxidation of two cysteine thiols to a disulfide bond, during the catalytic cycle o
279 philic substitution reaction in alcohols and thiols to afford 3-alkoxy- and 3-arylthio-substituted 1,
282 transient covalent modifications of cysteine thiols to modulate the activities of regulatory kinases
283 ient sulfa-Michael addition reaction of aryl thiols to trisubstituted alpha-fluoro-alpha,beta-unsatur
286 en juices, significant elevation of varietal thiols (up to 10-fold) occurred in the wines derived fro
288 ory half-life of a high hFcRn-binding triple-thiol variant conjugated with AF680 (t (1/2) = 22.4 h) c
289 ghly complicated disulfide linkages and free thiols via liquid chromatography-tandem mass spectrometr
290 dines that selectively react with biological thiols via nucleophilic aromatic substitution (S(N)Ar).
291 ntified a PEG hydrogel formulation that uses thiol-vinyl sulfone Michael addition for crosslinking.
296 drogenated to the corresponding alcohols and thiols with excellent tolerance for amide, ester, and ca
297 ch impact the smell negatively, and volatile thiols with higher boiling points that contribute positi
298 ld lead to prospecting studies that identify thiols with potential roles in metabolic pathways, nutri
299 t part of this review is devoted to volatile thiols, without considering small malodorous molecules.
300 e materials using the efficient nucleophilic thiol-yne reaction between a dipropiolamide and dithiol