The G protein coupled receptor CXCR4 designed by the QTY code becomes more hydrophilic and retains cell signaling activity

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作者
Lotta Tegler
Karolina Corin
Horst Pick
Jennifer Brookes
Michael Skuhersky
Horst Vogel
Shuguang Zhang
机构
[1] Massachusetts Institute of Technology,Center for Bits and Atoms
[2] Linköping University,Molecular Biotechnology/IFM
[3] University of the Witwatersrand,Biomedical Engineering Research Group, School of Electrical and Information Engineering, and Department of Molecular Medicine and Haematology
[4] Ecole Polytechnique Fédérale de Lausanne (EPFL),Institut des Sciences et Ingénierie Chimiques
[5] Massachusetts Institute of Technology,Synthetic Neurobiology Group, Media Lab
[6] University of California,Department of Chemistry and Biochemistry
[7] University College London,London Centre for Nanotechnology
[8] University College London,Biophysics, Computational Physics, Quantum Physics
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摘要
G protein-coupled receptors (GPCRs) are vital for diverse biological functions, including vision, smell, and aging. They are involved in a wide range of diseases, and are among the most important targets of medicinal drugs. Tools that facilitate GPCR studies or GPCR-based technologies or therapies are thus critical to develop. Here we report using our QTY (glutamine, threonine, tyrosine) code to systematically replace 29 membrane-facing leucine, isoleucine, valine, and phenylalanine residues in the transmembrane α-helices of the GPCR CXCR4. This variant, CXCR4QTY29, became more hydrophilic, while retaining the ability to bind its ligand CXCL12. When transfected into HEK293 cells, it inserted into the cell membrane, and initiated cellular signaling. This QTY code has the potential to improve GPCR and membrane protein studies by making it possible to design functional hydrophilic receptors. This tool can be applied to diverse α-helical membrane proteins, and may aid in the development of other applications, including clinical therapies.
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