Showing posts with label lysine. Show all posts
Showing posts with label lysine. Show all posts

Tuesday, May 8, 2018

Chemo- and Regioselective Lysine Modification on Native Proteins

Maria J. Matos, Bruno L. Oliveira, Nuria Martínez-Saez,  Ana Guerreiro, Pedro M. S. D. Cal,
Jean Bertoldo, María Maneiro, Elizabeth Perkins, Julie Howard, Michael J. Deery,
Justin M. Chalker, Francisco Corzana, Gonzalo Jimenez-Oses, and Goncalo J. L. Bernardes

J. Am. Chem. Soc., 2018, 140 (11), pp 4004–4017

Site-selective chemical conjugation of synthetic molecules to proteins expands their functional and therapeutic capacity. Current protein modification methods, based on synthetic and biochemical technologies, can achieve site selectivity, but these techniques often require extensive sequence engineering or are restricted to the N- or C-terminus. Here we show the computer-assisted design of sulfonyl acrylate reagents for the modification of a single lysine residue on native protein sequences. This feature of the designed sulfonyl acrylates, together with the innate and subtle reactivity differences conferred by the unique local microenvironment surrounding each lysine, contribute to the observed regioselectivity of the reaction. Moreover, this site selectivity was predicted computationally, where the lysine with the lowest pKa was the kinetically favored residue at slightly basic pH. Chemoselectivity was also observed as the reagent reacted preferentially at lysine, even in those cases when other nucleophilic residues such as cysteine were present. The reaction is fast and proceeds using a single molar equivalent of the sulfonyl acrylate reagent under biocompatible conditions (37 °C, pH 8.0). This technology was demonstrated by the quantitative and irreversible modification of five different proteins including the clinically used therapeutic antibody Trastuzumab without prior sequence engineering. Importantly, their native secondary structure and functionality is retained after the modification. This regioselective lysine modification method allows for further bioconjugation through aza-Michael addition to the acrylate electrophile that is generated by spontaneous elimination of methanesulfinic acid upon lysine labeling. We showed that a protein–antibody conjugate bearing a site-specifically installed fluorophore at lysine could be used for selective imaging of apoptotic cells and detection of Her2+ cells, respectively. This simple, robust method does not require genetic engineering and may be generally used for accessing diverse, well-defined protein conjugates for basic biology and therapeutic studies.

Saturday, September 17, 2016

Covalent inhibitors that target lysine side chains

Inhibition of Mcl-1 through covalent modification of a noncatalytic lysine side chain

Gizem Akçay, Matthew A Belmonte, Brian Aquila, Claudio Chuaqui, Alexander W Hird, Michelle L Lamb, Philip B Rawlins, Nancy Su, Sharon Tentarelli, Neil P Grimster & Qibin Su

Nature Chemical Biology (2016) doi:10.1038/nchembio.2174

Late-stage functionalization with strain-release warheads enables tunable covalent inhibition

Zachary P. Shultz, Ansar Lee-Sam, Yun-Pu Chang, Luxin Sun, Dylan Grassie, Alessio Gabellini, Kyle Pedretty, Thomas Scattolin, Victoria Izumi...