Determining radical penetration of lipid bilayers with new lipophilic spin traps

Ayelet Gamliel, Michal Afri, Aryeh A. Frimer

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46 Scopus citations

Abstract

Predicting the susceptibility of lipid moieties to radical attack requires a determination of the depth of radical penetration into a lipid membrane. We thus synthesized three homologous series of lipophilic spin traps-DMPO analogs 2-alkanoyl-2-methyl-1-pyrroline N-oxides (11) and PBN derivatives 4-alkoxyphenyl N-tert-butylnitrones (18) and 4-alkoxyphenyl N-admantylnitrones (20). The intercalation depth of these spin traps within the liposomal bilayer was determined via the previously reported NMR technique, which correlates the chemical shift and the micropolarity (measured in ET(30) units) experienced by the pivotal nitronyl carbon. Hydroxyl and α-hydroxyalkyl radicals were generated in the extraliposomal aqueous phase and the lowest depth at which a radical could be spin trapped was determined. The ESR data indicate that these radicals can exit the aqueous phase, penetrate the lipid bilayer past the head groups (ET(30) = 63 kcal/mol) and the glycerol ester (ET(30) = 52 kcal/mol), and pass down to an ET(30) polarity of at least 44 kcal/mol. The latter depth presumably corresponds to the upper portion of the lipid slab. It is likely, if not probable, that having come this far they can abstract the allylic/diallylic hydrogens resident in the midslab at ET(30) values of > 31 kcal/mol.

Original languageEnglish
Pages (from-to)1394-1405
Number of pages12
JournalFree Radical Biology and Medicine
Volume44
Issue number7
DOIs
StatePublished - 1 Apr 2008

Bibliographical note

Funding Information:
We acknowledge the kind and generous support of the U.S.–Israel Binational Science Foundation (Jerusalem, Israel, Grant 2002383) and The Ethel and David Resnick Chair in Active Oxygen Chemistry.

Funding

We acknowledge the kind and generous support of the U.S.–Israel Binational Science Foundation (Jerusalem, Israel, Grant 2002383) and The Ethel and David Resnick Chair in Active Oxygen Chemistry.

FundersFunder number
U.S.-Israel Binational Science Foundation2002383

    Keywords

    • C NMR
    • DMPC
    • DMPO derivatives
    • E(30)
    • ESR
    • Free radicals
    • Liposome
    • Membrane
    • PBN derivatives
    • Spin trap
    • Water/lipid interface

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