Cryochemical Synthesis of Polymorphous Nanostructures of a Steroid Neurohormone

A new cryochemical strategy of producing nanoparticles and polymorphous nanostructures of drugs is used, which is based on the dynamic combination of high and low temperatures, gas and solid phases, and inert carrier gases. This technology is applied to the synthesis of nanoparticles of steroid neur...

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Main Authors: Yurii Morozov, Dmitry Chistyakov, Vladimir Chernyshev, Gleb Sergeev
Format: Article
Language:English
Published: MDPI AG 2017-08-01
Series:Molecules
Subjects:
Online Access:https://www.mdpi.com/1420-3049/22/8/1378
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spelling doaj-4e2518e007bb44af9cd45d7b3567783a2020-11-24T21:27:51ZengMDPI AGMolecules1420-30492017-08-01228137810.3390/molecules22081378molecules22081378Cryochemical Synthesis of Polymorphous Nanostructures of a Steroid NeurohormoneYurii Morozov0Dmitry Chistyakov1Vladimir Chernyshev2Gleb Sergeev3Department of Chemistry, M. V. Lomonosov Moscow State University, Moscow 119991, RussiaBelozersky Institute of Physico-Chemical Biology, Moscow State University, Moscow 119991, RussiaDepartment of Chemistry, M. V. Lomonosov Moscow State University, Moscow 119991, RussiaDepartment of Chemistry, M. V. Lomonosov Moscow State University, Moscow 119991, RussiaA new cryochemical strategy of producing nanoparticles and polymorphous nanostructures of drugs is used, which is based on the dynamic combination of high and low temperatures, gas and solid phases, and inert carrier gases. This technology is applied to the synthesis of nanoparticles of steroid neurohormone dehydroepiandrosterone (DHEA). We have optimized the conditions of synthesis of the new polymorphous DHEA structure, FVII. The molecules of DHEA in FVII structure are bound by hydrogen bonds via oxygen atoms. The grain size is 100 nm. It is shown that the yield and ratio of the resulting nanoforms of this hormone are determined by the nature and properties of the inert carrier gas. The highest yield and selectivity of FVII are observed when carbon dioxide is used as the carrier gas. In the case of helium, the FVII content decreases from 85 to 30% and other structures are formed. In experiments without carrier gas, nanoparticles are formed but no FVII is produced. The selectivity and the effect of carrier gas are considered on the basis of homogeneous and heterogeneous formation of nanoparticles and the relationship between particle selectivity and its activity. The synthesis of various polymorphous structures on the nanoscale is assumed to be the manifestation of the size effect in the synthesis of drugs.https://www.mdpi.com/1420-3049/22/8/1378hormonesdehydroepiandrosterone (DHEA)new structurespolymorphismnanoparticlescryosynthesis
collection DOAJ
language English
format Article
sources DOAJ
author Yurii Morozov
Dmitry Chistyakov
Vladimir Chernyshev
Gleb Sergeev
spellingShingle Yurii Morozov
Dmitry Chistyakov
Vladimir Chernyshev
Gleb Sergeev
Cryochemical Synthesis of Polymorphous Nanostructures of a Steroid Neurohormone
Molecules
hormones
dehydroepiandrosterone (DHEA)
new structures
polymorphism
nanoparticles
cryosynthesis
author_facet Yurii Morozov
Dmitry Chistyakov
Vladimir Chernyshev
Gleb Sergeev
author_sort Yurii Morozov
title Cryochemical Synthesis of Polymorphous Nanostructures of a Steroid Neurohormone
title_short Cryochemical Synthesis of Polymorphous Nanostructures of a Steroid Neurohormone
title_full Cryochemical Synthesis of Polymorphous Nanostructures of a Steroid Neurohormone
title_fullStr Cryochemical Synthesis of Polymorphous Nanostructures of a Steroid Neurohormone
title_full_unstemmed Cryochemical Synthesis of Polymorphous Nanostructures of a Steroid Neurohormone
title_sort cryochemical synthesis of polymorphous nanostructures of a steroid neurohormone
publisher MDPI AG
series Molecules
issn 1420-3049
publishDate 2017-08-01
description A new cryochemical strategy of producing nanoparticles and polymorphous nanostructures of drugs is used, which is based on the dynamic combination of high and low temperatures, gas and solid phases, and inert carrier gases. This technology is applied to the synthesis of nanoparticles of steroid neurohormone dehydroepiandrosterone (DHEA). We have optimized the conditions of synthesis of the new polymorphous DHEA structure, FVII. The molecules of DHEA in FVII structure are bound by hydrogen bonds via oxygen atoms. The grain size is 100 nm. It is shown that the yield and ratio of the resulting nanoforms of this hormone are determined by the nature and properties of the inert carrier gas. The highest yield and selectivity of FVII are observed when carbon dioxide is used as the carrier gas. In the case of helium, the FVII content decreases from 85 to 30% and other structures are formed. In experiments without carrier gas, nanoparticles are formed but no FVII is produced. The selectivity and the effect of carrier gas are considered on the basis of homogeneous and heterogeneous formation of nanoparticles and the relationship between particle selectivity and its activity. The synthesis of various polymorphous structures on the nanoscale is assumed to be the manifestation of the size effect in the synthesis of drugs.
topic hormones
dehydroepiandrosterone (DHEA)
new structures
polymorphism
nanoparticles
cryosynthesis
url https://www.mdpi.com/1420-3049/22/8/1378
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AT dmitrychistyakov cryochemicalsynthesisofpolymorphousnanostructuresofasteroidneurohormone
AT vladimirchernyshev cryochemicalsynthesisofpolymorphousnanostructuresofasteroidneurohormone
AT glebsergeev cryochemicalsynthesisofpolymorphousnanostructuresofasteroidneurohormone
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