PubMed HealthSearch

PubMed · 2604956

[(Z)-broparestrol].

Abstract

(Z)-1-(2-Bromo-1,2-diphenylethenyl)-4-ethylbenzene, C22H19Br, Mr = 363.3, triclinic, P1, a = 8.0838 (8), b = 9.4510 (8), c = 11.565 (1) A, alpha = 91.464 (8), beta = 89.563 (9), gamma = 90.828 (8) degrees, V = 883.2 (2) A3, Z = 2, Dx = 1.366 Mg m-3, lambda(Cu K alpha) = 1.5418 A, mu = 3.13 mm-1, F(000) = 372, T = 294 (1) K, R = 0.031 for 2764 independent reflections. All the bond distances and angles are normal. To avoid steric hindrance, the three phenyl rings are twisted out of the plane calculated for the two atoms involved in the ethylenic bond and the four atoms linked to them. The dihedral angles of their least-squares planes with that of the ethylene group are in the range 47.77 (7)-57.86 (7) degrees. The cohesion of the structure is due to van der Waals interactions. A mixture of the (Z)- and (E)-isomers (Broparestrol, INN) is used in dermatology. The (Z)-isomer exhibits some aspects of the antiestrogenic activity and other actions that may be connected to the estrogenic properties. Therefore information on the (Z)-isomer geometry was required to understand the structure-activity relationship.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

P N Rodier, R Ceolin, P Dubois, J L Fournival. 1989-09-15. [(Z)-broparestrol].. https://doi.org/10.1107/s0108270189000922

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

High-performance liquid chromatographic-fluorometric determination of glyoxal, methylglyoxal, and diacetyl in urine by prederivatization to pteridinic rings.

A sensitive and simple liquid chromatographic method to determine glyoxal, methylglyoxal, and diacetyl is reported. The method is based on the conversion to the corresponding pteridin derivatives (pterin, 6-methylpterin, and 6,7-dimethylpterin). The proposed method using fluorometric detection has been applied to the determination of the three alpha-dicarbonyl compounds in human urine. Linearity (peak area vs concentration of alpha-dicarbonyl) was observed at least up to 43 microM. Detection limits of 32 pmol for glyoxal, 11 pmol for methylglyoxal, and 99 pmol for diacetyl were calculated (20 microliters was injected). Levels of 132 microM for glyoxal and 15 microM for methylglyoxal were determined in normal urine samples, while diacetyl was not detected.

Chemical Phenomena

Synthesis and evaluation of some properties of chimeric oligomers containing PNA and phosphono-PNA residues.

In an attempt to improve physico-chemical and biological properties of peptide nucleic acids (PNAs), particularly water solubility and cellular uptake, the synthesis of chimeric oligomers consisted of PNA and phosphono-PNA analogues (pPNAs) bearing the four natural nucleobases has been accomplished. To produce these chimeras, pPNA monomers of two types containing N-(2-hydroxyethyl)phosphonoglycine, or N-(2-aminoethyl)phosphonoglycine backbone, were used in conjunction with PNA monomers representing derivatives of N-(2-aminoethyl)glycine, or N-(2-hydroxyethyl)glycine. The oligomers obtained were composed of either PNA and pPNA stretches or alternating PNA and pPNA monomers. The examination of hybridization properties of PNA-pPNA chimeras to DNA and RNA complementary strands in comparison with pure PNAs, and pPNAs as well as DNA-pPNA hybrids and DNA fragments confirmed that these chimeras form stable complexes with complementary DNA and RNA fragments. They were found to be resistant to degradation by nucleases. All these properties together with good solubility in water make PNA-pPNA hybrids promising for further evaluation as potential therapeutic agents.

Chemical Phenomena

Light scattering and viscosity study of heat aggregation of insulin.

Aggregation behavior and hydrodynamic parameters of insulin have been determined from static and dynamic light scattering experiments and intrinsic viscosity measurements carried out at pH 4.0, 7.5, and 9.0 in the temperature range 20-40 degrees C in aqueous solutions. The protein aggregated extensively at elevated temperatures in the acidic solutions. Intermolecular interactions were found to be attractive and to increase with temperature. The measured intrinsic viscosity [eta], diffusion coefficient D0, molecular weight M, and radius of gyration Rg exhibited the universal behavior: M[eta] = (2.4 +/- 02) x 10(-27) (Re, eta/Re, D)3(D0 eta 0/T)-3 and (D0 square root of n)-1 approximately equal to (square root of pi eta 0 xi beta/kBT) [1 + 0.201)(v/beta 3) square root of n], where n is the number of segments in the polypeptide. The effective hydrodynamic radii deduced from [eta], (Re, eta) and the same deduced from D0, (Re, D) showed a constant ratio, (Re, eta/Re, D = 1.1 +/- 0.1). Re, D/Rg = xi was found to be (0.76 +/- 0.07). From the known solvent viscosity eta 0, the segment length beta was deduced to be (10 +/- 1) A. The excluded volume was deduced to be (5 A)3 regardless of pH. The Flory-Huggins interaction parameter was found to be chi = 0.45 +/- 0.04, independent of pH and temperature.

Chemical Phenomena