Genetically encoding unnatural amino acids for cellular and neuronal studies
- 1 July 2007
- journal article
- technical report
- Published by Springer Nature in Nature Neuroscience
- Vol. 10 (8) , 1063-1072
- https://doi.org/10.1038/nn1932
Abstract
Proteins participate in various biological processes and can be harnessed to probe and control biological events selectively and reproducibly, but the genetic code limits the building block to 20 common amino acids for protein manipulation in living cells. The genetic encoding of unnatural amino acids will remove this restriction and enable new chemical and physical properties to be precisely introduced into proteins. Here we present new strategies for generating orthogonal tRNA-synthetase pairs, which made possible the genetic encoding of diverse unnatural amino acids in different mammalian cells and primary neurons. Using this new methodology, we incorporated unnatural amino acids with extended side chains into the K+ channel Kv1.4, and found that the bulkiness of residues in the inactivation peptide is essential for fast channel inactivation, a finding that had not been possible using conventional mutagenesis. This technique will stimulate and facilitate new molecular studies using tailored unnatural amino acids for cell biology and neurobiology.Keywords
This publication has 40 references indexed in Scilit:
- A genetically encoded fluorescent amino acidProceedings of the National Academy of Sciences, 2006
- EXPANDING THE GENETIC CODEAnnual Review of Biophysics, 2006
- The Fluorescent Toolbox for Assessing Protein Location and FunctionScience, 2006
- Light Activation of Channelrhodopsin-2 in Excitable Cells of Caenorhabditis elegans Triggers Rapid Behavioral ResponsesCurrent Biology, 2005
- Crystal Structure of a Mammalian Voltage-Dependent Shaker Family K + ChannelScience, 2005
- A general approach for the generation of orthogonal tRNAsChemistry & Biology, 2001
- Dendritic potassium channels in hippocampal pyramidal neuronsThe Journal of Physiology, 2000
- NMR structure of inactivation gates from mammalian voltage-dependent potassium channelsNature, 1997
- The inactivation gate of the Shaker K+ channel behaves like an open-channel blockerNeuron, 1991
- The in vitro transcription of the 7SK RNA gene by RNA polymerase III is dependent only on the presence of an upstream promoterCell, 1987