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I N Alieva

Publications and source records attributed to I N Alieva.

6 recordsLinked to original sources

[Amphotericin B channel conductance inactivation].

Effects induced in bilayer lipid membranes by amphotericin B and its alkyl derivatives was analysed. Inactivation of the antibiotic-dependent multichannel membrane conductance was discovered. Kinetics of membrane conductivity was shown to depend on the antibiotic concentration in the membrane. At concentrations between 10(-8) and 10(-7) M, the resulting conductance appeared to the transient. We suggest that the phenomenon of biphasic kinetics of membrane conductance is the result of a consecutive transformation of polyene channels in the membrane: half-pores are assembled on either side of membrane-nonconducting 1; two half-pores combine to build up a conducting channels-conducting 2, and the conducting channels are disassemled to monomers and nonconducting self-associated forms inside the membrane-disassembled state (nonconducting 3). To explain the transient characteristics of the induced conductance, it is proposed that the antibiotic, present in the solution under self-associated form, binds the membrane and forms pores, then dissociates in the bilayer in a non-active monomeric form. The existence of definite monomers and nonconducting self-associated forms of amphotericin B molecules inside the membrane was estimated from the dependence of kinetic conductance of lipid membranes of amphotericin B and its alkyl derivatives, when the antibiotics are washed out from aqueous medium. Equilibrium between different antibiotic assemblies inside the membrane was demonstrated by the kinetics of conductance decrease following washing the antibiotic. Using circular dichroism measurements, we observed that amphotericin B alkyl derivatives were in self-associated form being susceptible to form pores across cholesterol-containing membranes. The phenomenon of biophasic kinetics was observed only in the cholesterol-containing membrane. The substitution of membrane cholesterol for ergosterol provides monotonic kinetics of membrane conductance at any antibiotic concentration.

Amphotericin B↗

Spatial organization and conformational peculiarities of the callatostatin family of neuropeptides.

The structures and conformational peculiarities of five members of the callatostatin family of neuropeptides, i.e. Leu- and Met-callatostatins, ranging in size from 8 to 16 amino acid residues have been investigated by a theoretical conformational analysis method. A comparative analysis of the conformational flexibilities of Met-callatostatin with those of the hydroxylated analogues, [Hyp2]- and [Hyp3]-Met-callatostatin has been carried out. Helically packed C-terminal pentapeptide in the structure of all investigated Leu-callatostatins are shown to be possible. The reason for the great number low-energy conformers for the callatostatin N-terminus is discussed.

Amino Acid Sequence↗

[Biophysical and medical and biological aspects of use of polyene antibiotics in combination with dimethylsulfoxide].

Modern conceptions of the physicochemical properties of dimethylsulfoxide and polyene antibiotics are reviewed. The results of investigations of independent and mutual effects of polyene antibiotics and dimethylsulfoxide on membrane permeability were analysed. The own experimental data of radioprotective and antitumour action of complex dimethylsulfoxide-polyene antibiotics are presented, and the perspectives of their use in medicine are described.

Animals↗

[Conformational properties of neuromedin NmU-8 and its modified analogs].

The comparative study of the spatial organization and conformational properties of NmU-8 neuropeptide and its modified analogs with available experimental data has been carried out. The effect of amino acids point mutation on conformational states of native neuropeptide has been discussed. The low-energy conformations responsible for neuropeptide contractile activity was revealed.

Models, Molecular↗

[The spatial organization and conformational flexibility of neuropeptides of the gallatostatin family].

The spatial organization and conformational flexibility of neuropeptides of the gallatostatin family was studied by the method of theoretical conformational analysis. It was found that the spatial organization of neuropeptides allows the realization of folded helical structures of the C-terminal pentapeptide, and the flexibility of neuropeptides is due to a great number of low-energy states in the N-terminal fragment of the molecule.

Amino Acid Sequence↗