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Sigma-Aldrich

Hoechst 33258 solution

1 mg/mL in H2O, ≥98.0% (HPLC)

Synonyme(s) :

bisBenzimide H 33258 solution

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About This Item

Formule empirique (notation de Hill):
C25H24N6O · 3HCl
Numéro CAS:
Poids moléculaire :
533.88
Code UNSPSC :
12171500
ID de substance PubChem :
Nomenclature NACRES :
NA.32

Niveau de qualité

Pureté

≥98.0% (HPLC)

Forme

liquid

Concentration

1 mg/mL in H2O

Solubilité

DMF: soluble
H2O: soluble

Fluorescence

λex 355 nm; λem 465 nm in TE buffer; DNA

Température de stockage

2-8°C

Chaîne SMILES 

Cl.Cl.Cl.CN1CCN(CC1)c2ccc3[nH]c(nc3c2)-c4ccc5nc([nH]c5c4)-c6ccc(O)cc6

InChI

1S/C25H24N6O.3ClH/c1-30-10-12-31(13-11-30)18-5-9-21-23(15-18)29-25(27-21)17-4-8-20-22(14-17)28-24(26-20)16-2-6-19(32)7-3-16;;;/h2-9,14-15,32H,10-13H2,1H3,(H,26,28)(H,27,29);3*1H

Clé InChI

SMNPLAKEGAEPJD-UHFFFAOYSA-N

Description générale

Hoechst 33258, also known as bisbenzimide, is a fluorescent blue dye. It is categorized as a chromosomal stain that binds to the minor groove of the DNA double helix recognizing a run of four A-T base pairs.

Application

Hoechst 33258 is used to estimate DNA concentration in samples by fluorometry which is better than spectrophotometry, allowing the determination of nanogram quantities of DNA. Also, Hoechst 33258 is suitable to detect mycoplasma contamination in cell cultures due to its high fluorescence ability.

Code de la classe de stockage

10 - Combustible liquids

Point d'éclair (°F)

Not applicable

Point d'éclair (°C)

Not applicable


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Michael R Green et al.
Cold Spring Harbor protocols, 2017(5) (2017-05-04)
Measuring the concentration of DNA using fluorometry is more sensitive than spectrophotometry, allowing the detection of nanogram quantities of DNA. In this assay, DNA preparations of known and unknown concentrations are incubated with the fluorochrome Hoechst 33258. Absorption values for
Natalia Busto et al.
The journal of physical chemistry. B, 119(13), 4575-4581 (2015-03-12)
The functionality of the bisbenzimide Hoechst 33258 in solution has been largely exploited in the quantification of DNA. Understanding of its behavior is essential to promote its widespread application and learning of biological processes. A detailed study of the dimerization
Cornelia Fritsch et al.
PLoS genetics, 15(7), e1008269-e1008269 (2019-07-13)
Development of eye tissue is initiated by a conserved set of transcription factors termed retinal determination network (RDN). In the fruit fly Drosophila melanogaster, the zinc-finger transcription factor Glass acts directly downstream of the RDN to control identity of photoreceptor
A Fede et al.
Structure (London, England : 1993), 1(3), 177-186 (1993-11-15)
The chromosomal stain, Hoechst 33258, binds to the minor groove of the DNA double helix and specifically recognizes a run of four A-T base pairs. Extensive biochemical and biophysical studies have been aimed at understanding the binding of the dye
Hongliang Wang et al.
PLoS genetics, 15(8), e1008377-e1008377 (2019-08-30)
Intercellular communication in adjacent cell layers determines cell fate and polarity, thus orchestrating tissue specification and differentiation. Here we use the maize stomatal apparatus as a model to investigate cell fate determination. Mutations in ZmBZU2 (bizui2, bzu2) confer a complete

Protocoles

Cultivate ReNcell® human neural stem cells in 3D hydrogels for high-throughput screening using the TrueGel3D® HTS Hydrogel Plate with this protocol.

Cultivate ReNcell® human neural stem cells in 3D hydrogels for high-throughput screening using the TrueGel3D® HTS Hydrogel Plate with this protocol.

Cultivate ReNcell® human neural stem cells in 3D hydrogels for high-throughput screening using the TrueGel3D® HTS Hydrogel Plate with this protocol.

Cultivate ReNcell® human neural stem cells in 3D hydrogels for high-throughput screening using the TrueGel3D® HTS Hydrogel Plate with this protocol.

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