Literature DB >> 1690190

Romanowsky dyes and Romanowsky-Giemsa effect. 5. Structural investigations of the purple DNA-AB-EY dye complexes of Romanowsky-Giemsa staining.

K Friedrich1, W Seiffert, H W Zimmermann.   

Abstract

A reproducible Romanowsky-Giemsa staining (RGS) can be carried out with standardized staining solutions containing the two dyes azure B (AB) and eosin Y (EY). After staining, cell nuclei have a purple coloration generated by DNA-AB-EY complexes. The microspectra of cell nuclei have a sharp and intense absorption band at 18,100 cm-1 (552 nm), the so called Romanowsky band (RB), which is due to the EY chromophore of the dye complexes. Other absorption bands can be assigned to the DNA-bound AB cations. Artificial DNA-AB-EY complexes can be prepared outside the cell by subsequent staining of DNA with AB and EY. In the first step of our staining experiments we prepared thin films of blue DNA-AB complexes on microslides with 1:1 composition: each anionic phosphodiester residue of the nucleic acid was occupied by one AB cation. Microspectrophotometric investigations of the dye preparations demonstrated that, besides monomers and dimers, mainly higher AB aggregates are bound to DNA by electrostatic and hydrophobic interactions. These DNA-AB complexes are insoluble in water. Therefore it was possible to stain the DNA-AB films with aqueous EY solutions and also to prepare insoluble DNA-AB-EY films in the second step of the staining experiments. After the reaction with EY, thin sites within the dye preparations were purple. The microspectra of the purple spots show a strong Romanowsky band at 18,100 cm-1. Using a special technique it was possible to estimate the composition of the purple dye complexes. The ratio of the two dyes was approximately EY:AB approximately 1:3. The EY anions are mainly bound by hydrophobic interaction to the AB framework of the electrical neutral DNA-AB complexes. The EY absorption is red shifted by the interaction of EY with the AB framework of DNA-AB-EY. We suppose that this red shift is caused by a dielectric polarization of the bound EY dianions. The DNA chains in the DNA-AB complexes can mechanically be aligned in a preferred direction k. Highly oriented dye complexes prepared on microslides were birefringent and dichroic. The orientation is maintained during subsequent staining with aqueous EY solutions. In this way we also prepared highly orientated purple DNA-AB-EY complexes on microslides. The light absorption of both types of dye complexes was studied by means of a microspectrophotometer equipped with a polarizer and an analyser. The sites of best orientation within the dye preparations were selected under crossed nicols according to the quality of birefringence.(ABSTRACT TRUNCATED AT 400 WORDS)

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Year:  1990        PMID: 1690190     DOI: 10.1007/bf00266385

Source DB:  PubMed          Journal:  Histochemistry        ISSN: 0301-5564


  14 in total

1.  [A SIMPLE METHOD FOR MICRODETERMINATION OF PHOSPHATE IN PAPER CHROMATOGRAPHY].

Authors:  E GERLACH; B DEUTICKE
Journal:  Biochem Z       Date:  1963-07-26

2.  [Romanowsky dyes and the Romanowsky-Giemsa effect. 4. Binding of azure B to DNA].

Authors:  R Müller-Walz; H W Zimmermann
Journal:  Histochemistry       Date:  1987

3.  [Romanowsky dyes and romanowsky-Giemsa effect. 1. Azure B, purity and content of dye samples, association (author's transl)].

Authors:  E Zipfel; J R Grezes; W Seiffert; H W Zimmermann
Journal:  Histochemistry       Date:  1981

Review 4.  On the nature of Romanowsky--Giemsa staining and its significance for cytochemistry and histochemistry: an overall view.

Authors:  D H Wittekind
Journal:  Histochem J       Date:  1983-10

5.  A standardized differential stain for hematology.

Authors:  D Lapen
Journal:  Cytometry       Date:  1982-03

6.  Microspectrophotometric studies of Romanowsky stained blood cells. II. Comparison of the performance of two standardized stains.

Authors:  P N Marshall; W Galbraith; E F Navarro; J W Bacus
Journal:  J Microsc       Date:  1981-11       Impact factor: 1.758

7.  [Model investigations on the structure of the purple dye complex of Giemsa staining].

Authors:  K Friedrich; D Hüglin; W Seiffert; H W Zimmermann
Journal:  Histochemistry       Date:  1989

8.  [Romanowsky dyes and the Romanowsky-Giemsa effect. 3. Microspectrophotometric studies of Romanowsky-Giemsa staining. Spectroscopic evidence of a DNA-azure B-eosin Y complex producing the Romanowsky-Giemsa effect].

Authors:  E Zipfel; J R Grezes; A Naujok; W Seiffert; D H Wittekind; H W Zimmermann
Journal:  Histochemistry       Date:  1984

9.  Understanding Romanowsky staining. I: The Romanowsky-Giemsa effect in blood smears.

Authors:  R W Horobin; K J Walter
Journal:  Histochemistry       Date:  1987

10.  [Spectroscopic and thermodynamic investigations on the binding of azure B to chondroitin sulfate and the structure of the metachromatic dye complex].

Authors:  D Hüglin; W Seiffert; H W Zimmermann
Journal:  Histochemistry       Date:  1986
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  6 in total

1.  X-ray microanalysis of toluidine blue stained chromosomes: a quantitative study of the metachromatic reaction of chromatin.

Authors:  J C Stockert; J Gosálvez; P Del Castillo; C Pelling; R Mezzanotte
Journal:  Histochemistry       Date:  1991

Review 2.  Standardization of biological dyes and stains: pitfalls and possibilities.

Authors:  E K Schulte
Journal:  Histochemistry       Date:  1991

Review 3.  Standardization of reagents and methods used in cytological and histological practice with emphasis on dyes, stains and chromogenic reagents.

Authors:  H O Lyon; A P De Leenheer; R W Horobin; W E Lambert; E K Schulte; B Van Liedekerke; D H Wittekind
Journal:  Histochem J       Date:  1994-07

4.  Selective fluorescence of eosinophilic structures in grasshopper and mammalian testis stained with haematoxylin-eosin.

Authors:  J Espada; P Valverde; J C Stockert
Journal:  Histochemistry       Date:  1993-05

5.  Anti-tumoral and anti-inflammatory effects of biological stains.

Authors:  F Culo; D Sabolović; L Somogyi; M Marusić; N Berbiguier; L Galey
Journal:  Agents Actions       Date:  1991-11

6.  DNA comet Giemsa staining for conventional bright-field microscopy.

Authors:  Andreyan Osipov; Ekaterina Arkhangelskaya; Alexei Vinokurov; Nadezhda Smetaninа; Alex Zhavoronkov; Dmitry Klokov
Journal:  Int J Mol Sci       Date:  2014-04-10       Impact factor: 5.923

  6 in total

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