Identifying cysteine residues susceptible to oxidation by photoactivatable atomic oxygen precursors using a proteome-wide analysis
Literature Information
Ankita Isor, Benjamin V. Chartier, Masahiro Abo, Emily R. Currens, Eranthie Weerapana, Ryan D. McCulla
The reactivity profile of atomic oxygen [O(3P)] in the condensed phase has shown a preference for the thiol group of cysteines. In this work, water-soluble O(3P)-precursors were synthesized by adding aromatic burdens and water-soluble sulphonic acid groups to the core structure of dibenzothiophene-S-oxide (DBTO) to study O(3P) reactivity in cell lysates and live cells. The photodeoxygenation of these compounds was investigated using common intermediates, which revealed that an increase in aromatic burdens to the DBTO core structure decreases the total oxidation yield due to competitive photodeoxygenation mechanisms. These derivatives were then tested in cell lysates and live cells to profile changes in cysteine reactivity using the isoTOP-ABPP chemoproteomics platform. The results from this analysis indicated that O(3P) significantly affects cysteine reactivity in the cell. Additionally, O(3P) was found to oxidize cysteines within peptide sequences with leucine and serine conserved at the sites surrounding the oxidized cysteine. O(3P) was also found to least likely oxidize cysteines among membrane proteins.
Recommended Journals

Organic Preparations and Procedures International

Journal of Medicinal Chemistry

Russian Chemical Reviews

Israel Journal of Chemistry

European Journal of Wood and Wood Products

Molecular Pharmacology

Pure and Applied Chemistry

Journal of Heterocyclic Chemistry

Journal of Physics and Chemistry of Solids

Planta Medica
Related Literature
Impact of lipid composition and photosensitizer hydrophobicity on the efficiency of light-triggered liposomal release
Julien Massiot, Ali Makky, Florent Di Meo, David Chapron, Véronique Rosilio
DOI: 10.1039/C7CP00983F
Identifying electrochemical effects in a thermal–electrochemical co-driven system for CO2 capture
Guang X. Liu, Yun S. Yu, Ying T. Hong, Geoff G. X. Wang
DOI: 10.1039/C7CP01035D
Growth of low doped monolayer graphene on SiC(0001) via sublimation at low argon pressure
Périne Landois, Tianlin Wang, Abir Nachawaty, Maxime Bayle, Jean-Manuel Decams, Wilfried Desrat, Ahmed-Azmi Zahab, Benoît Jouault, Matthieu Paillet, Sylvie Contreras
DOI: 10.1039/C7CP01012E
Increased substrate affinity in the Escherichia coli L28R dihydrofolate reductase mutant causes trimethoprim resistance
Haleh Abdizadeh, Yusuf Talha Tamer, Omer Acar, Erdal Toprak, Ali Rana Atilgan, Canan Atilgan
DOI: 10.1039/C7CP01458A
Molecular organization in the twist–bend nematic phase by resonant X-ray scattering at the Se K-edge and by SAXS, WAXS and GIXRD
W. D. Stevenson, Z. Ahmed, X. B. Zeng, C. Welch, G. H. Mehl
DOI: 10.1039/C7CP01404J
Editorial of the PCCP themed issue on “Physical Chemistry for Life Sciences”
Christoph van Wüllen, Kirsten Schwing, Christoph Riehn, Markus Gerhards
DOI: 10.1039/C7CP90069D
Study of antiradical mechanisms with dihydroxybenzenes using reaction force and reaction electronic flux
Cristina Ortega-Moo, Rocio Durán, Bárbara Herrera, Soledad Gutiérrez-Oliva, Rubicelia Vargas
DOI: 10.1039/C7CP01304C
Phase diagram of water–methane by first-principles thermodynamics: discovery of MH-IV and MH-V hydrates
Xiaoxiao Cao, Yingying Huang, Xue Jiang, Yan Su, Jijun Zhao
DOI: 10.1039/C7CP01147D
Buckling behaviour of composites with double walled nanotubes from carbon and phosphorus
Jing Wan, Likui Yang, Ning Wei, Jiao Shi, Qing-Hua Qin
DOI: 10.1039/C7CP01274H
Ab initio calculation of the attempt frequency of oxygen diffusion in pure and samarium doped ceria
Julius Koettgen, Tobias Zacherle
DOI: 10.1039/C6CP04802A
You might also like
How should waste containing N-Methoxy-N-methyl-1,3-thiazole-5-carboxamide (CAS: 898825-89-3) be handled?
Waste containing N-Methoxy-N-methyl-1,3-thiazole-5-carboxamide (CAS: 898825-89-3...
How should N-(4-Biphenylyl)dibenzo[b,d]furan-4-amine (CAS: 1318338-47-4) be stored?
N-(4-Biphenylyl)dibenzo[b,d]furan-4-amine should be stored in a tightly sealed c...
What is the market or research trend for 3-Acetamido-5-amino-2,4,6-triiodobenzoic acid (CAS: 1713-07-1)?
The market for 3-Acetamido-5-amino-2,4,6-triiodobenzoic acid (CAS: 1713-07-1) is...
How should Benzyl 2-O-acetyl-3,4,6-tri-O-benzyl-beta-D-galactopyranoside (CAS: 61820-03-9) be stored?
Benzyl 2-O-acetyl-3,4,6-tri-O-benzyl-beta-D-galactopyranoside (CAS: 61820-03-9) ...
What regulatory guidelines apply to 2-Ethylpiperazine dihydrochloride (CAS: 438050-52-3)?
2-Ethylpiperazine dihydrochloride (CAS: 438050-52-3) is regulated under the Glob...
What regulatory guidelines apply to 1,1'-[1,3-Phenylenebis(methylene)]bis(3-methyl-1H-pyrrole-2,5-dione) (CAS: 119462-56-5)?
1,1'-[1,3-Phenylenebis(methylene)]bis(3-methyl-1H-pyrrole-2,5-dione) (CAS: 11946...
Are there alternatives to 5-Fluoro-2-(1-pyrrolidinyl)pyridine (CAS: 1287217-79-1) in synthesis?
Several alternatives can be used in the synthesis of 5-Fluoro-2-(1-pyrrolidinyl)...
What precautions should be taken when handling 1-((2R,3R,4R,5R)-5-((bis(4-methoxyphenyl)(phenyl)methoxy)methyl)-4-hydroxy-3-methoxytetrahydrofuran-2-yl)-5-methylpyrimidine-2,4(1H,3H)-dione (CAS: 153631-19-7)?
Proper personal protective equipment (PPE) must be worn when handling this compo...
What precautions should be taken when handling 6-Bromoimidazo[1,2-a]pyridin-8-amine (CAS: 676371-00-9)?
When handling 6-Bromoimidazo[1,2-a]pyridin-8-amine, it is important to wear appr...
Are there alternatives to (2S,4R)-4-(4-Nitrobenzyl)pyrrolidine-2-carboxylic acid hydrochloride (CAS: 1049740-22-8) in synthesis?
Alternatives to (2S,4R)-4-(4-Nitrobenzyl)pyrrolidine-2-carboxylic acid hydrochlo...




![[4-(Heptyloxy)phenyl]boronic acid structure [4-(Heptyloxy)phenyl]boronic acid structure](https://static.chemtradehub.com/structs/136/136370-19-9-ad33.webp)
