PGC1α controls mitochondrial biogenesis and dynamics in lead-induced neurotoxicity

Due to its role in regulation of mitochondrial function, PGC1α is emerging as an important player in ageing and neurodegenerative disorders. PGC1α exerts its neuroprotective effects by promoting mitochondrial biogenesis (MB) and functioning. However, the precise regulatory role of PGC1α in the contr...

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Main Author: Dabrowska, Aleksandra Franciszka
Other Authors: Hajji, Nabil
Published: Imperial College London 2015
Subjects:
610
Online Access:http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.676829
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spelling ndltd-bl.uk-oai-ethos.bl.uk-6768292016-08-04T03:44:08ZPGC1α controls mitochondrial biogenesis and dynamics in lead-induced neurotoxicityDabrowska, Aleksandra FranciszkaHajji, Nabil2015Due to its role in regulation of mitochondrial function, PGC1α is emerging as an important player in ageing and neurodegenerative disorders. PGC1α exerts its neuroprotective effects by promoting mitochondrial biogenesis (MB) and functioning. However, the precise regulatory role of PGC1α in the control of mitochondrial dynamics (MD) and neurotoxicity is still unknown. Here we elucidate the role of PGC1α ?in vitro and in vivo in the regulatory context of MB and MD in response to lead (II) acetate as a relevant model of neurotoxicity. We show that there is an adaptive response (AR) to lead, orchestrated by the BAP31-calcium signalling system operating between the ER and mitochondria. We find that this hormetic response is controlled by a cell-tolerated increase of PGC1α expression, which in turn induces a balanced expression of fusion/fission genes by binding to their promoters and implying its direct role in regulation of MD. However, dysregulation of PGC1α expression through either stable downregulation or overexpression, renders cells more susceptible to lead insult leading to mitochondrial fragmentation and cell death. Our data provide novel evidence that PGC1α expression is a key regulator of MD and the maintenance of tolerated PGC1α expression may offer a promising strategy for neuroprotective therapies.610Imperial College Londonhttp://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.676829http://hdl.handle.net/10044/1/28622Electronic Thesis or Dissertation
collection NDLTD
sources NDLTD
topic 610
spellingShingle 610
Dabrowska, Aleksandra Franciszka
PGC1α controls mitochondrial biogenesis and dynamics in lead-induced neurotoxicity
description Due to its role in regulation of mitochondrial function, PGC1α is emerging as an important player in ageing and neurodegenerative disorders. PGC1α exerts its neuroprotective effects by promoting mitochondrial biogenesis (MB) and functioning. However, the precise regulatory role of PGC1α in the control of mitochondrial dynamics (MD) and neurotoxicity is still unknown. Here we elucidate the role of PGC1α ?in vitro and in vivo in the regulatory context of MB and MD in response to lead (II) acetate as a relevant model of neurotoxicity. We show that there is an adaptive response (AR) to lead, orchestrated by the BAP31-calcium signalling system operating between the ER and mitochondria. We find that this hormetic response is controlled by a cell-tolerated increase of PGC1α expression, which in turn induces a balanced expression of fusion/fission genes by binding to their promoters and implying its direct role in regulation of MD. However, dysregulation of PGC1α expression through either stable downregulation or overexpression, renders cells more susceptible to lead insult leading to mitochondrial fragmentation and cell death. Our data provide novel evidence that PGC1α expression is a key regulator of MD and the maintenance of tolerated PGC1α expression may offer a promising strategy for neuroprotective therapies.
author2 Hajji, Nabil
author_facet Hajji, Nabil
Dabrowska, Aleksandra Franciszka
author Dabrowska, Aleksandra Franciszka
author_sort Dabrowska, Aleksandra Franciszka
title PGC1α controls mitochondrial biogenesis and dynamics in lead-induced neurotoxicity
title_short PGC1α controls mitochondrial biogenesis and dynamics in lead-induced neurotoxicity
title_full PGC1α controls mitochondrial biogenesis and dynamics in lead-induced neurotoxicity
title_fullStr PGC1α controls mitochondrial biogenesis and dynamics in lead-induced neurotoxicity
title_full_unstemmed PGC1α controls mitochondrial biogenesis and dynamics in lead-induced neurotoxicity
title_sort pgc1α controls mitochondrial biogenesis and dynamics in lead-induced neurotoxicity
publisher Imperial College London
publishDate 2015
url http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.676829
work_keys_str_mv AT dabrowskaaleksandrafranciszka pgc1acontrolsmitochondrialbiogenesisanddynamicsinleadinducedneurotoxicity
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