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PEGylation has turned proteins into important new biopharmaceuticals. The fundamental problems with the existing approaches to PEGylation are inefficient conjugation and the formation of heterogeneous mixtures. This is because poly(ethylene glycol) (PEG) is usually conjugated to nucleophilic amine residues. Our PEGylation protocol solves these problems by exploiting the chemical reactivity of both of the sulfur atoms in the disulfide bond of many biologically relevant proteins. An accessible disulfide bond is mildly reduced to liberate the two cysteine sulfur atoms without disturbing the protein's tertiary structure. Site-specific PEGylation is achieved with a bis-thiol alkylating PEG reagent that sequentially undergoes conjugation to form a three-carbon bridge. The two sulfur atoms are re-linked with PEG selectively conjugated to the bridge. PEGylation of a protein can be completed in 24 h and purification of the PEG-protein conjugate in another 3 h. We have successfully applied this approach to PEGylation of cytokines, enzymes, antibody fragments and peptides, without destroying their tertiary structure or abolishing their biological activity.
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http://dx.doi.org/10.1038/nprot.2006.346 | DOI Listing |
ACS Appl Mater Interfaces
March 2025
State Key Laboratory of Organic-Inorganic Composites, Beijing University of Chemical Technology, Beijing 100029, China.
Perovskite solar cells (PSCs) have made significant progress in efficiency, but their long-term operational stability remains an important yet challenging issue. Here, a dual-site passivation coupling internal encapsulation strategy is developed by introducing 3,5-bis(trifluoromethyl)-benzenethiol (35BBT) at the perovskite (PVK)/hole transport layer (HTL) interface. 35BBT provides dual active sites containing sulfur (S) atoms and fluorine (F) atoms, where the S atoms in the sulfhydryl group and the F atoms in the trifluoromethyl group coordinate with unpaired Pb to form coordinate bonds, meanwhile the F atoms in the trifluoromethyl group form hydrogen bonds with organic cations.
View Article and Find Full Text PDFAngew Chem Int Ed Engl
March 2025
Jiangsu University, School of material science and engineering, CHINA.
The commercial deployment of Aqueous Zinc Ion Batteries (AZIBs) is hampered by dendrites, the hydrogen evolution reaction (HER) and corrosion reactions. To tackle these challenges, we have introduced 3,3'-dithiobis-1-propanesulfonic acid disodium salt (SPS), a symmetrical sulfur-based organic salt, as an electrolyte additive for AZIBs. Unlike conventional electrolyte additives that favour (002) deposition, SPS enables dense (100) growth through a unique symmetrically aligned concentration-controlled adsorption network, affording structural uniformity and compactness to the Zn deposit layer.
View Article and Find Full Text PDFChemistry
March 2025
Philipps-Universität Marburg, Fachbereich Chemie, Hans-Meerwein-Straße 4, 35032, Marburg, GERMANY.
Investigation of tris(di-iso-propylphosphanylmethyl)phenylborate ([TP(iPr)]-) organo-beryllium complexes [TP(iPr)]BeR with R = Ph, nBu, Cp, Cp* revealed transmetalation of [CH2P(iPr)2]- groups from boron onto beryllium. This reaction is caused by partial dissociation of the scorpionate, which can be triggered through steric overcrowding of the beryllium atom or reducing the ligand beryllium bond strength through oxidation of the phosphorus atoms with selenium. Oxidation with oxygen or sulfur results in the formation of stable phosphine oxide and sulfide scorpionates.
View Article and Find Full Text PDFJ Am Chem Soc
March 2025
Graduate School of Engineering, Tokai University, Kitakaname 4-1-1, Hiratsuka 259-1292, Kanagawa, Japan.
Glycoproteins are often considered as drug candidates. However, the regulation of post-translational glycan attachment remains an issue. We hypothesized that replacing the oxygen atom in the glycosidic linkage with sulfur atoms would stabilize the labile linkage against glycosidases, resulting in improved pharmacokinetics.
View Article and Find Full Text PDFChemSusChem
March 2025
University Jaume I, Institute of Advanced Materials, Av. de Vicent Sos Baynat, 12071, Castellón de la Plana, SPAIN.
The borrowing hydrogen thioetherification of alcohols over heterogeneous catalysts has emerged as an attractive and practical synthetic strategy to prepare thioethers from the perspective of green and sustainable chemistry. Developing efficient catalysts is the key to improve this carbon-sulfur (C-S) bond formation process. Herein, a novel catalyst, namely {Mo2.
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