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Chemical Compound Review

SureCN1263864     (6-dimethylaminoxanthen-3- ylidene)...

Synonyms: KSC-19-117, ZINC16186602, KUC108640N, AC1L1NZ4, NCGC00247302-01, ...
 
 
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Disease relevance of Pyronine

  • The biotinylated hybrids were visualized by means of latex particles containing the fluorescent dye pyronine G and coated with streptavidin; 1.6 and 0.3 pg of lambda-phage DNA was detected by dot blot hybridizations on nylon membrane and polyethyleneimine-cellophane, respectively [1].
 

High impact information on Pyronine

  • Surface-enhanced resonance Raman scattering (SERRS) spectra of various rhodamine dyes, of pyronine G and thiopyronine adsorbed on isolated silver clusters were recorded at the ensemble level and at the single-molecule level with a high-resolution confocal laser microscope equipped with a spectrograph and a CCD-detector [2].
  • For this purpose samples were homogenised, soluble proteins were removed by ultracentrifugation and the water-insoluble pellet was resuspended in a mixture containing urea, 16-BAC, glycerol, pyronine Y and dithiothreitol [3].
  • Iron pyronine and alcian blue for staining acid mucin in plastic-embedded sections [4].
  • The advantages and disadvantages of using DiOC1[3], AO, or pyronine Y as reticulocyte stains are discussed [5].
  • Plasma cells were not found in any of the endometrial specimens despite methyl green pyronine staining of the samples [6].
 

Biological context of Pyronine

  • The pulmonary intralobular connective tissue of albino rats stimulated by a pulverized suspension of living pneumococci is the site of an abundant cell proliferation and pyronine-plasma cell reaction, having as molecular substratum enhanced activity of Alk-Ph-ase, ATP-ase, SDH-ase and LDH-ase [7].
 

Anatomical context of Pyronine

  • Methylgreen pyronine staining revealed that approximately half of the cellular infiltrates around the vessels were plasma cells [8].
 

Gene context of Pyronine

References

  1. A novel approach to nonradioactive hybridization assay of nucleic acids using stained latex particles. Vener, T.I., Turchinsky, M.F., Knorre, V.D., Lukin YuV, n.u.l.l., Shcherbo, S.N., Zubov, V.P., Sverdlov, E.D. Anal. Biochem. (1991) [Pubmed]
  2. Surface- and resonance-enhanced micro-Raman spectroscopy of xanthene dyes: from the ensemble to single molecules. Vosgröne, T., Meixner, A.J. Chemphyschem : a European journal of chemical physics and physical chemistry. (2005) [Pubmed]
  3. Mass spectrometrical identification of brain proteins including highly insoluble and transmembrane proteins. Bierczynska-Krzysik, A., Kang, S.U., Silberrring, J., Lubec, G. Neurochem. Int. (2006) [Pubmed]
  4. Iron pyronine and alcian blue for staining acid mucin in plastic-embedded sections. Cannon, M.S., Stuth, N.R., Darcy, J.J. Am. J. Clin. Pathol. (1988) [Pubmed]
  5. Flow cytometric analysis of blood cells stained with the cyanine dye DiOC1[3]: reticulocyte quantification. Jacobberger, J.W., Horan, P.K., Hare, J.D. Cytometry. (1984) [Pubmed]
  6. Focal necrotizing endometritis: a clinicopathologic study of 15 cases. Bennett, A.E., Rathore, S., Rhatigan, R.M. Int. J. Gynecol. Pathol. (1999) [Pubmed]
  7. Lung parenchyma response of rats stimulated with living pneumococci by respiratory way. A histologic, histochemical and electron microscopic study. Gădăleanu, V., Rusu, M.A., Crăciun, C. Morphologie et embryologie. (1980) [Pubmed]
  8. A case of nodular cutaneous amyloidosis. Amyloid production by infiltrating plasma cells. Horiguchi, Y., Takahashi, C., Imamura, S. The American Journal of dermatopathology. (1993) [Pubmed]
  9. Determination of trace proteins with pyronine Y and SDS by resonance light scattering. Feng, S., Pan, Z., Fan, J. Analytical and bioanalytical chemistry. (2005) [Pubmed]
  10. Reactions of seven basic fluorochromes with unfixed cells obtained from the salivary glands of the dipteran fly Megaselia scalaris Loew (Phoridae). Curtis, S.K., Cowden, R.R., Benner, D.B. Histochemistry (1986) [Pubmed]
 
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