Journal:Molecular Cell:1
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<b>Molecular Tour</b><br> | <b>Molecular Tour</b><br> | ||
- | Upon heterologous overexpression, many proteins misfold or aggregate, thus resulting in low functional yields. Human acetylcholinesterase (hAChE), an enzyme mediating synaptic transmission, is a typical case of a human protein that necessitates mammalian systems to obtain functional expression. Using a novel computational strategy, we designed an AChE variant bearing 51 mutations that improved core packing, surface polarity, and backbone rigidity. This variant expressed at ~2,000-fold higher levels in E. coli compared to wild-type hAChE, and exhibited 20°C higher thermostability with | + | Upon heterologous overexpression, many proteins misfold or aggregate, thus resulting in low functional yields. Human acetylcholinesterase (hAChE), an enzyme mediating synaptic transmission, is a typical case of a human protein that necessitates mammalian systems to obtain functional expression. Using a novel computational strategy, we designed an AChE variant bearing 51 mutations that improved core packing, surface polarity, and backbone rigidity. This variant expressed at '''~2,000-fold higher levels''' in '''''E. coli''''' compared to wild-type hAChE, and '''exhibited 20°C higher thermostability''' with n'''o change in enzymatic properties''' or in the '''active-site configuration as determined by crystallography'''. To demonstrate broad utility, we similarly designed four other human and bacterial proteins. Testing at most three designs per protein, we obtained enhanced stability and/or higher yields of soluble protein in E. coli. '''Our algorithm requires only a 3D structure and several dozen sequences of naturally occurring homologs''', and is available at [http://pross.weizmann.ac.il http://pross.weizmann.ac.il ]. |
<scene name='72/728277/Cv/26'>The structural underpinnings of stabilization in the designed variant dAChE4</scene>. <font color='slateblue'><b>Wild type hAChE is shown in blue</b></font> and <font color='darkorange'><b>51 mutated positions, which are distributed throughout dAChE4, are indicated by orange spheres</b></font>. | <scene name='72/728277/Cv/26'>The structural underpinnings of stabilization in the designed variant dAChE4</scene>. <font color='slateblue'><b>Wild type hAChE is shown in blue</b></font> and <font color='darkorange'><b>51 mutated positions, which are distributed throughout dAChE4, are indicated by orange spheres</b></font>. |
Revision as of 15:26, 29 June 2021
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- ↑ Goldenzweig A, Goldsmith M, Hill SE, Gertman O, Laurino P, Ashani Y, Dym O, Unger T, Albeck S, Prilusky J, Lieberman RL, Aharoni A, Silman I, Sussman JL, Tawfik DS, Fleishman SJ. Automated Structure- and Sequence-Based Design of Proteins for High Bacterial Expression and Stability. Mol Cell. 2016 Jul 21;63(2):337-346. doi: 10.1016/j.molcel.2016.06.012. Epub 2016, Jul 14. PMID:27425410 doi:http://dx.doi.org/10.1016/j.molcel.2016.06.012
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