CORE
CO
nnecting
RE
positories
Services
Services overview
Explore all CORE services
Access to raw data
API
Dataset
FastSync
Content discovery
Recommender
Discovery
OAI identifiers
OAI Resolver
Managing content
Dashboard
Bespoke contracts
Consultancy services
Support us
Support us
Membership
Sponsorship
Research partnership
About
About
About us
Our mission
Team
Blog
FAQs
Contact us
Community governance
Governance
Advisory Board
Board of supporters
Research network
Innovations
Our research
Labs
unknown
Bcl-xL regulates metabolic efficiency of neurons through interaction with the mitochondrial F1FO ATP synthase
Authors
Kambiz N. Alavian
Laura Bonanni
+17 more
Yingbei Chen
Leon P. Collis
Benjamin Flaherty
Morven Graham
J. Marie Hardwick
Elizabeth A. Jonas
Emma Lazrove
Hongmei Li
Maria A. Mariggio
Ewan McNay
Shanta M. Messerli
Panah Nabili
Christoph Rahner
Silvio Sacchetti
Gordon Shore
Peter J. S. Smith
Lu Zeng
Publication date
1 June 2011
Publisher
'Springer Science and Business Media LLC'
Doi
Cite
View
on
PubMed
Abstract
Author Posting. © The Author(s), 2011. This is the author's version of the work. It is posted here by permission of Nature Publishing Group for personal use, not for redistribution. The definitive version was published in Nature Cell Biology 13 (2011): 1224–1233, doi:10.1038/ncb2330.Anti-apoptotic BCL-2 family proteins such as Bcl-xL protect cells from death by sequestering apoptotic molecules, but also contribute to normal neuronal function. We find in hippocampal neurons that Bcl-xL enhances the efficiency of energy metabolism. Our evidence suggests that Bcl-xL interacts directly with the beta subunit of the F1FO ATP synthase, decreasing an ion leak within the F1FO ATPase complex and thereby increasing net transport of H+ by F1FO during F1FO ATPase activity. By patch clamping submitochondrial vesicles enriched in F1FO ATP synthase complexes, we find that, in the presence of ATP, pharmacological or genetic inhibition of Bcl-xL increases the membrane leak conductance. In addition, recombinant Bcl-xL protein directly increases ATPase activity of purified synthase complexes, while inhibition of endogenous Bcl-xL decreases F1FO enzymatic activity. Our findings suggest that increased mitochondrial efficiency contributes to the enhanced synaptic efficacy found in Bcl-xL expressing neurons.This work was supported by NIH NS064967 (E.A.J.) and NS37402 (JMH)
Similar works
Full text
Open in the Core reader
Download PDF
Available Versions
Crossref
See this paper in CORE
Go to the repository landing page
Download from data provider
info:doi/10.1038%2Fncb2330
Last time updated on 01/04/2019
Supporting member
Spiral - Imperial College Digital Repository
See this paper in CORE
Go to the repository landing page
Download from data provider
oai:spiral.imperial.ac.uk:1004...
Last time updated on 04/05/2023
Southampton (e-Prints Soton)
See this paper in CORE
Go to the repository landing page
Download from data provider
oai:eprints.soton.ac.uk:195555
Last time updated on 05/04/2012
Woods Hole Open Access Server
See this paper in CORE
Go to the repository landing page
Download from data provider
oai:darchive.mblwhoilibrary.or...
Last time updated on 08/06/2012