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Shixin Ye-Lehmann
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Found 26 results
Filters: Author is Laskina, Sofya [Clear All Filters]
Photosensitive tyrosine analogues unravel site-dependent phosphorylation in TrkA initiated MAPK/ERK signaling. Communications Biology. 3(1), pp.706 (2020).
. Control of Protein Activity and Gene Expression by Cyclofen-OH Uncaging. Chembiochem. 19(12), pp.1232-1238 (2018).
. Engineering light sensitive NMDARs. in Methods in Molecular Biology. Edited by: Szepetowski P. and Burnashev N. John Wiley & Sons, Inc. (2018)
Design of Light-Sensitive NMDARs by Genetically Encoded Photo-Cross-Linkers. Methods Mol Biol. 1677, pp.185-197 (2017).
. Elucidating GPCR structural function relationship through genetic code expansion. in Topics in Medicinal Chemistry. Edited by: Granier S. and Lebon G. 30, Springer. (2017)
Genetic Code Expansion and Optoproteomics. Yale J Biol Med. 90(4), pp.599-610 (2017).
. Optocontrol of glutamate receptor activity by single side-chain photoisomerization. Elife. 6, (2017).
. Structure and Function Studies of GPCRs by Site-Specific Incorporation of Unnatural Amino Aci. in Topics in Medicinal Chemistry. Springer. Berlin, Heidelberg. Springer,. (2017)
Allosteric regulation in NMDA receptors revealed by the genetically encoded photo-cross-linkers. Scientific Reports. 6, pp.34751 (2016).
. Generation of obese rat model by transcription activator-like effector nucleases targeting the leptin receptor gene. Sci China Life Sci. (2016).
. Heritable expansion of the genetic code in mouse and zebrafish. Cell Res. (2016).
. Redesigning the stereospecificity of tyrosyl-tRNA synthetase. Proteins. 84(2), pp.240-53 (2016).
. Development of a new method to identify aminoacylated RNA. BIO Web of Conferences. 2, pp.05003 (2014).
. Genetically encoding a light switch in an ionotropic glutamate receptor reveals subunit-specific interfaces. Proc Natl Acad Sci U S A. 111(16), pp.6081-6 (2014).
. Expanding the genetic code in Xenopus laevis oocytes. Chembiochem. 14(2), pp.230-5 (2013).
. Site-specific epitope tagging of G protein-coupled receptors by bioorthogonal modification of a genetically encoded unnatural amino acid. Biochemistry. 52(6), pp.1028-36 (2013).
. Unnatural amino acid mutagenesis of GPCRs using amber codon suppression and bioorthogonal labeling. Methods Enzymol. 520, pp.281-305 (2013).
. Chemical aminoacylation of tRNAs with fluorinated amino acids for in vitro protein mutagenesis. (Eds.). Beilstein Journal of Organic Chemistry. 6, pp.40 (2010).
. Tracking G-protein-coupled receptor activation using genetically encoded infrared probes. Nature. 464(7293), pp.1386-9 (2010).
. FTIR analysis of GPCR activation using azido probes. Nat Chem Biol. 5(6), pp.397 - 399 (2009).
. Site-specific incorporation of keto amino acids into functional G protein-coupled receptors using unnatural amino acid mutagenesis. J Biol Chem. 283(3), pp.1525-33 (2008).
. Amphiphilic four-helix bundle peptides designed for light-induced electron transfer across a soft interface. Nano Lett. 5(9), pp.1658-67 (2005).
. Design of amphiphilic protein maquettes: controlling assembly, membrane insertion, and cofactor interactions. Biochemistry. 44(37), pp.12329-43 (2005).
. Amphiphilic 4-helix bundles designed for biomolecular materials applications. Langmuir. 20(14), pp.5897-904 (2004).
. A model membrane protein for binding volatile anesthetics. Biophys J. 87(6), pp.4065-74 (2004).
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