Genetically Encoding Quinoline Reverses Chromophore Charge and Enables Fluorescent Protein Brightening in Acidic Vesicles

scientific article published on 22 August 2018

Genetically Encoding Quinoline Reverses Chromophore Charge and Enables Fluorescent Protein Brightening in Acidic Vesicles is …
instance of (P31):
scholarly articleQ13442814

External links are
P356DOI10.1021/JACS.8B05814
P932PMC publication ID6145950
P698PubMed publication ID30132658

P50authorLei WangQ44147377
Cai Y FuQ80666635
P2093author name stringBing Yang
Roshanak Irannejad
Christian Hoppmann
Tomonori Kobayashi
Nanxi Wang
P2860cites workGenetically encoding unnatural amino acids for cellular and neuronal studiesQ24650206
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Genetically encoding unnatural amino acids in neural stem cells and optically reporting voltage-sensitive domain changes in differentiated neuronsQ38968081
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Persistent signaling induced by FTY720-phosphate is mediated by internalized S1P1 receptors.Q46017179
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Functional selectivity of GPCR-directed drug action through location biasQ46765399
Genetically Encoding Fluorosulfate-l-tyrosine To React with Lysine, Histidine, and Tyrosine via SuFEx in Proteins in Vivo.Q52619354
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P433issue35
P407language of work or nameEnglishQ1860
P304page(s)11058-11066
P577publication date2018-08-22
P1433published inJournal of the American Chemical SocietyQ898902
P1476titleGenetically Encoding Quinoline Reverses Chromophore Charge and Enables Fluorescent Protein Brightening in Acidic Vesicles
P478volume140

Reverse relations

cites work (P2860)
Q99418921A general strategy to red-shift green fluorescent protein-based biosensors
Q92639948A straightforward approach for bioorthogonal labeling of proteins and organelles in live mammalian cells, using a short peptide tag
Q92050917Using genetically incorporated unnatural amino acids to control protein functions in mammalian cells

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