cris.boxmetadata.label.title
Single-molecule in vivo imaging of bacterial respiratory complexes indicates delocalized oxidative phosphorylation
cris.boxmetadata.label.dateissued
01 browse.startsWith.months.january 2014
cris.boxmetadata.label.accesslevel
open access
cris.boxmetadata.label.resourcetype
journal article
cris.boxmetadata.label.authors
Llorente-Garcia I.
Lenn T.
Erhardt H.
Harriman O.L.
Liu L.N.
Robson A.
Chiu S.W.
Matthews S.
Willis N.J.
Bray C.D.
Lee S.H.
Shin J.Y.
Liphardt J.
Friedrich T.
Mullineaux C.W.
Leake M.C.
University of California
cris.boxmetadata.label.publisher
Elsevier B.V.
cris.boxmetadata.label.abstract
Chemiosmotic energy coupling through oxidative phosphorylation (OXPHOS) is crucial to life, requiring coordinated enzymes whose membrane organization and dynamics are poorly understood. We quantitatively explore localization, stoichiometry, and dynamics of key OXPHOS complexes, functionally fluorescent protein-tagged, in Escherichia coli using low-angle fluorescence and superresolution microscopy, applying single-molecule analysis and novel nanoscale co-localization measurements. Mobile 100-200 nm membrane domains containing tens to hundreds of complexes are indicated. Central to our results is that domains of different functional OXPHOS complexes do not co-localize, but ubiquinone diffusion in the membrane is rapid and long-range, consistent with a mobile carrier shuttling electrons between islands of different complexes. Our results categorically demonstrate that electron transport and proton circuitry in this model bacterium are spatially delocalized over the cell membrane, in stark contrast to mitochondrial bioenergetic supercomplexes. Different organisms use radically different strategies for OXPHOS membrane organization, likely depending on the stability of their environment. © 2014 The Authors. Published by Elsevier B.V.
cris.boxmetadata.label.citationstartpage
811
cris.boxmetadata.label.citationendpage
824
cris.boxmetadata.label.volume
1837
cris.boxmetadata.label.issue
6
cris.boxmetadata.label.language
English
cris.boxmetadata.label.ocdeknowledgeArea
BiologĂa celular, MicrobiologĂa
BioquĂmica, BiologĂa molecular
cris.boxmetadata.label.doi
cris.boxmetadata.label.scopusidentifier
2-s2.0-84896691793
cris.boxmetadata.label.pubmedidentifier
cris.boxmetadata.label.source
Biochimica et Biophysica Acta - Bioenergetics
cris.boxmetadata.label.containerissn
00052728
cris.boxmetadata.label.sponsor
We thank Abdullah Al-Mahmood for preliminary FRAP development, and Ian Dobbie for technical microscopy support. We thank Ann McEvoy and Will Draper for advice on PALM. This work was funded by an EPSRC grant EP/G061009/1 , the Biological Physical Sciences Institute (BPSI) at York University and Royal Society URF (M.C.L.) , RCUK scholarships (O.H. and A.R.) , Wellcome Trust VIP Award (T.L. and C.W.M.) , Marie Curie Intra-European Fellowship FP7-PEOPLE-2009-IEF 254575 (L.-N.L.) , NIH grant GM RO1 32543 (C.B.) , Deutsche Forschungs Gemeinschaft FOR 929 (T.F.) , and BBSRC grant BB/J016985/1 (C.W.M.) .
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