1786411-17-3

HKSOX-1 Chemical Structure
1786411-17-3

Chemical Structure

HKSOX-1

  • CAS No.: 1786411-17-3
  • Formula:C23H6F10O11S2
  • Molecular Weight:712.40

IUPAC Name: 2',4',5',7'-tetrafluoro-3-oxo-3',6'-bis(((trifluoromethyl)sulfonyl)oxy)-3H-spiro[isobenzofuran-1,9'-xanthene]-5-carboxylic acid

InChIKey: XSHHIFZGVZWRBI-UHFFFAOYSA-N

SMILES: O=C(C1=CC=C2C(C(OC23C4=CC(F)=C(C(F)=C4OC5=C(C(OS(=O)(C(F)(F)F)=O)=C(C=C53)F)F)OS(=O)(C(F)(F)F)=O)=O)=C1)O

Biological Activity: HKSOX-1 and its derivatives (HKSOX-1r and HKSOX-1m) are novel fluorescent probes designed for highly sensitive and selective detection of the superoxide anion radical (O2•−) in cellular environments. These probes utilize an aryl trifluoromethanesulfonate group that undergoes O2•−-mediated cleavage, releasing a free phenol and emitting fluorescence. They demonstrate excellent specificity and sensitivity across various pH ranges, withstand interference from strong oxidants and reductants typical in cellular contexts. HKSOX-1r, optimized for cellular retention, has been effectively employed in diverse assays including confocal imaging, flow cytometry, and zebrafish embryo studies, highlighting its utility in investigating O2•− roles in inflammation, mitochondrial stress, and other physiological processes[1].

Cat. No. Product Name Purity Description Pricing
HY-150175
HKSOX-1 HKSOX-1 and its derivatives (HKSOX-1r and HKSOX-1m) are novel fluorescent probes designed for highly sensitive and selective detection of the superoxide anion radical (O2•−) in cellular environments. These probes utilize an aryl trifluoromethanesulfonate group that undergoes O2•−-mediated cleavage, releasing a free phenol and emitting fluorescence. They demonstrate excellent specificity and sensitivity across various pH ranges, withstand interference from strong oxidants and reductants typical in cellular contexts. HKSOX-1r, optimized for cellular retention, has been effectively employed in diverse assays including confocal imaging, flow cytometry, and zebrafish embryo studies, highlighting its utility in investigating O2•− roles in inflammation, mitochondrial stress, and other physiological processes.
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