Electronic Energy Transfer within Asymmetric Pairs of Fluorophores: Partial Donor-Donor Energy Migration (PDDEM)

A kinetic model of electronic energy migration within pairs of photophysically non-identical fluorophores has been developed. The model applies to fluorescent groups that exhibit different photophysical and spectral properties when attached to different positions in a macromolecule. The energy migra...

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Main Author: Kalinin, Stanislav
Format: Doctoral Thesis
Language:English
Published: Umeå universitet, Kemiska institutionen 2004
Subjects:
Online Access:http://urn.kb.se/resolve?urn=urn:nbn:se:umu:diva-338
http://nbn-resolving.de/urn:isbn:91-7305-765-7
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spelling ndltd-UPSALLA1-oai-DiVA.org-umu-3382013-01-08T13:06:28ZElectronic Energy Transfer within Asymmetric Pairs of Fluorophores: Partial Donor-Donor Energy Migration (PDDEM)engKalinin, StanislavUmeå universitet, Kemiska institutionenUmeå : Kemi2004Physical chemistryfluorescence resonance energy transfer (FRET)donor-donor energy migration (DDEM)homotransferfluorescence relaxationlifetimestime-resolved fluorescence anisotropytime-correlated single photon countingdistance measurementsprotein structureFysikalisk kemiPhysical chemistryFysikalisk kemiA kinetic model of electronic energy migration within pairs of photophysically non-identical fluorophores has been developed. The model applies to fluorescent groups that exhibit different photophysical and spectral properties when attached to different positions in a macromolecule. The energy migration within such asymmetric pairs is partially reversible, which leads to the case of partial donor-donor energy migration (PDDEM). The model of PDDEM is an extension of the recently developed donor-donor energy migration model (DDEM, F. Bergström et al, PNAS 96 (1999) 12477), and applies to quantitative measurements of energy migration rates and distances within macromolecules. One important distinction from the DDEM model is that the distances can be obtained from fluorescence lifetime measurements. A model of fluorescence depolarisation in the presence of PDDEM is also presented. To experimentally test the PDDEM approach, different model systems were studied. The model was applied to measure distances between rhodamine and fluorescein groups within on-purpose synthesised molecules that were solubilised in lipid bilayers. Moreover, distances were measured between BODIPY groups in mutant forms of the plasminogen activator inhibitor of type 2 (PAI-2). Measurements of both the fluorescence intensity decays and the time-resolved depolarisation were performed. The obtained distances were in good agreement with independent determinations. Finally, the PDDEM within pairs of donors is considered, for which both donors exhibit a nonexponential fluorescence decay. In this case it turns out that the fluorescence relaxation of a coupled system contains distance information even if the photophysics of the donors is identical. It is also demonstrated that the choice of relaxation model has a negligible effect on the obtained distances. The latter conclusion holds also for the case of donor-acceptor energy transfer. Doctoral thesis, comprehensive summaryinfo:eu-repo/semantics/doctoralThesistexthttp://urn.kb.se/resolve?urn=urn:nbn:se:umu:diva-338urn:isbn:91-7305-765-7application/pdfinfo:eu-repo/semantics/openAccess
collection NDLTD
language English
format Doctoral Thesis
sources NDLTD
topic Physical chemistry
fluorescence resonance energy transfer (FRET)
donor-donor energy migration (DDEM)
homotransfer
fluorescence relaxation
lifetimes
time-resolved fluorescence anisotropy
time-correlated single photon counting
distance measurements
protein structure
Fysikalisk kemi
Physical chemistry
Fysikalisk kemi
spellingShingle Physical chemistry
fluorescence resonance energy transfer (FRET)
donor-donor energy migration (DDEM)
homotransfer
fluorescence relaxation
lifetimes
time-resolved fluorescence anisotropy
time-correlated single photon counting
distance measurements
protein structure
Fysikalisk kemi
Physical chemistry
Fysikalisk kemi
Kalinin, Stanislav
Electronic Energy Transfer within Asymmetric Pairs of Fluorophores: Partial Donor-Donor Energy Migration (PDDEM)
description A kinetic model of electronic energy migration within pairs of photophysically non-identical fluorophores has been developed. The model applies to fluorescent groups that exhibit different photophysical and spectral properties when attached to different positions in a macromolecule. The energy migration within such asymmetric pairs is partially reversible, which leads to the case of partial donor-donor energy migration (PDDEM). The model of PDDEM is an extension of the recently developed donor-donor energy migration model (DDEM, F. Bergström et al, PNAS 96 (1999) 12477), and applies to quantitative measurements of energy migration rates and distances within macromolecules. One important distinction from the DDEM model is that the distances can be obtained from fluorescence lifetime measurements. A model of fluorescence depolarisation in the presence of PDDEM is also presented. To experimentally test the PDDEM approach, different model systems were studied. The model was applied to measure distances between rhodamine and fluorescein groups within on-purpose synthesised molecules that were solubilised in lipid bilayers. Moreover, distances were measured between BODIPY groups in mutant forms of the plasminogen activator inhibitor of type 2 (PAI-2). Measurements of both the fluorescence intensity decays and the time-resolved depolarisation were performed. The obtained distances were in good agreement with independent determinations. Finally, the PDDEM within pairs of donors is considered, for which both donors exhibit a nonexponential fluorescence decay. In this case it turns out that the fluorescence relaxation of a coupled system contains distance information even if the photophysics of the donors is identical. It is also demonstrated that the choice of relaxation model has a negligible effect on the obtained distances. The latter conclusion holds also for the case of donor-acceptor energy transfer.
author Kalinin, Stanislav
author_facet Kalinin, Stanislav
author_sort Kalinin, Stanislav
title Electronic Energy Transfer within Asymmetric Pairs of Fluorophores: Partial Donor-Donor Energy Migration (PDDEM)
title_short Electronic Energy Transfer within Asymmetric Pairs of Fluorophores: Partial Donor-Donor Energy Migration (PDDEM)
title_full Electronic Energy Transfer within Asymmetric Pairs of Fluorophores: Partial Donor-Donor Energy Migration (PDDEM)
title_fullStr Electronic Energy Transfer within Asymmetric Pairs of Fluorophores: Partial Donor-Donor Energy Migration (PDDEM)
title_full_unstemmed Electronic Energy Transfer within Asymmetric Pairs of Fluorophores: Partial Donor-Donor Energy Migration (PDDEM)
title_sort electronic energy transfer within asymmetric pairs of fluorophores: partial donor-donor energy migration (pddem)
publisher Umeå universitet, Kemiska institutionen
publishDate 2004
url http://urn.kb.se/resolve?urn=urn:nbn:se:umu:diva-338
http://nbn-resolving.de/urn:isbn:91-7305-765-7
work_keys_str_mv AT kalininstanislav electronicenergytransferwithinasymmetricpairsoffluorophorespartialdonordonorenergymigrationpddem
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