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Amyloid Aβ(25-35) Aggregates Say ‘NO’ to Long-Term Potentiation in the Hippocampus through Activation of Stress-Induced Phosphatase 1 and Mitochondrial Na(+)/Ca(2+) Exchanger

The search for strategies for strengthening the synaptic efficiency in Aβ(25-35)-treated slices is a challenge for the compensation of amyloidosis-related pathologies. Here, we used the recording of field excitatory postsynaptic potentials (fEPSPs), nitric oxide (NO) imaging, measurements of serine/...

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Autores principales: Maltsev, Alexander V., Nikiforova, Anna B., Bal, Natalia V., Balaban, Pavel M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9570122/
https://www.ncbi.nlm.nih.gov/pubmed/36233148
http://dx.doi.org/10.3390/ijms231911848
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author Maltsev, Alexander V.
Nikiforova, Anna B.
Bal, Natalia V.
Balaban, Pavel M.
author_facet Maltsev, Alexander V.
Nikiforova, Anna B.
Bal, Natalia V.
Balaban, Pavel M.
author_sort Maltsev, Alexander V.
collection PubMed
description The search for strategies for strengthening the synaptic efficiency in Aβ(25-35)-treated slices is a challenge for the compensation of amyloidosis-related pathologies. Here, we used the recording of field excitatory postsynaptic potentials (fEPSPs), nitric oxide (NO) imaging, measurements of serine/threonine protein phosphatase (STPP) activity, and the detection of the functional mitochondrial parameters in suspension of brain mitochondria to study the Aβ(25-35)-associated signaling in the hippocampus. Aβ(25-35) aggregates shifted the kinase–phosphatase balance during the long-term potentiation (LTP) induction in the enhancement of STPP activity. The PP1/PP2A inhibitor, okadaic acid, but not the PP2B blocker, cyclosporin A, prevented Aβ(25-35)-dependent LTP suppression for both simultaneous and delayed enzyme blockade protocols. STPP activity in the Aβ(25-35)-treated slices was upregulated, which is reverted relative to the control values in the presence of PP1/PP2A but not in the presence of the PP2B blocker. A selective inhibitor of stress-induced PP1α, sephin1, but not of the PP2A blocker, cantharidin, is crucial for Aβ(25-35)-mediated LTP suppression prevention. A mitochondrial Na(+)/Ca(2+) exchanger (mNCX) blocker, CGP37157, also attenuated the Aβ(25-35)-induced LTP decline. Aβ(25-35) aggregates did not change the mitochondrial transmembrane potential or reactive oxygen species (ROS) production but affected the ion transport and Ca(2+)-dependent swelling of organelles. The staining of hippocampal slices with NO-sensitive fluorescence dye, DAF-FM, showed stimulation of the NO production in the Aβ(25-35)-pretreated slices at the dendrite-containing regions of CA1 and CA3, in the dentate gyrus (DG), and in the CA1/DG somata. NO scavenger, PTIO, or nNOS blockade by selective inhibitor 3Br-7NI partly restored the Aβ(25-35)-induced LTP decline. Thus, hippocampal NO production could be another marker for the impairment of synaptic plasticity in amyloidosis-related states, and kinase–phosphatase balance management could be a promising strategy for the compensation of Aβ(25-35)-driven deteriorations.
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spelling pubmed-95701222022-10-17 Amyloid Aβ(25-35) Aggregates Say ‘NO’ to Long-Term Potentiation in the Hippocampus through Activation of Stress-Induced Phosphatase 1 and Mitochondrial Na(+)/Ca(2+) Exchanger Maltsev, Alexander V. Nikiforova, Anna B. Bal, Natalia V. Balaban, Pavel M. Int J Mol Sci Article The search for strategies for strengthening the synaptic efficiency in Aβ(25-35)-treated slices is a challenge for the compensation of amyloidosis-related pathologies. Here, we used the recording of field excitatory postsynaptic potentials (fEPSPs), nitric oxide (NO) imaging, measurements of serine/threonine protein phosphatase (STPP) activity, and the detection of the functional mitochondrial parameters in suspension of brain mitochondria to study the Aβ(25-35)-associated signaling in the hippocampus. Aβ(25-35) aggregates shifted the kinase–phosphatase balance during the long-term potentiation (LTP) induction in the enhancement of STPP activity. The PP1/PP2A inhibitor, okadaic acid, but not the PP2B blocker, cyclosporin A, prevented Aβ(25-35)-dependent LTP suppression for both simultaneous and delayed enzyme blockade protocols. STPP activity in the Aβ(25-35)-treated slices was upregulated, which is reverted relative to the control values in the presence of PP1/PP2A but not in the presence of the PP2B blocker. A selective inhibitor of stress-induced PP1α, sephin1, but not of the PP2A blocker, cantharidin, is crucial for Aβ(25-35)-mediated LTP suppression prevention. A mitochondrial Na(+)/Ca(2+) exchanger (mNCX) blocker, CGP37157, also attenuated the Aβ(25-35)-induced LTP decline. Aβ(25-35) aggregates did not change the mitochondrial transmembrane potential or reactive oxygen species (ROS) production but affected the ion transport and Ca(2+)-dependent swelling of organelles. The staining of hippocampal slices with NO-sensitive fluorescence dye, DAF-FM, showed stimulation of the NO production in the Aβ(25-35)-pretreated slices at the dendrite-containing regions of CA1 and CA3, in the dentate gyrus (DG), and in the CA1/DG somata. NO scavenger, PTIO, or nNOS blockade by selective inhibitor 3Br-7NI partly restored the Aβ(25-35)-induced LTP decline. Thus, hippocampal NO production could be another marker for the impairment of synaptic plasticity in amyloidosis-related states, and kinase–phosphatase balance management could be a promising strategy for the compensation of Aβ(25-35)-driven deteriorations. MDPI 2022-10-06 /pmc/articles/PMC9570122/ /pubmed/36233148 http://dx.doi.org/10.3390/ijms231911848 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Maltsev, Alexander V.
Nikiforova, Anna B.
Bal, Natalia V.
Balaban, Pavel M.
Amyloid Aβ(25-35) Aggregates Say ‘NO’ to Long-Term Potentiation in the Hippocampus through Activation of Stress-Induced Phosphatase 1 and Mitochondrial Na(+)/Ca(2+) Exchanger
title Amyloid Aβ(25-35) Aggregates Say ‘NO’ to Long-Term Potentiation in the Hippocampus through Activation of Stress-Induced Phosphatase 1 and Mitochondrial Na(+)/Ca(2+) Exchanger
title_full Amyloid Aβ(25-35) Aggregates Say ‘NO’ to Long-Term Potentiation in the Hippocampus through Activation of Stress-Induced Phosphatase 1 and Mitochondrial Na(+)/Ca(2+) Exchanger
title_fullStr Amyloid Aβ(25-35) Aggregates Say ‘NO’ to Long-Term Potentiation in the Hippocampus through Activation of Stress-Induced Phosphatase 1 and Mitochondrial Na(+)/Ca(2+) Exchanger
title_full_unstemmed Amyloid Aβ(25-35) Aggregates Say ‘NO’ to Long-Term Potentiation in the Hippocampus through Activation of Stress-Induced Phosphatase 1 and Mitochondrial Na(+)/Ca(2+) Exchanger
title_short Amyloid Aβ(25-35) Aggregates Say ‘NO’ to Long-Term Potentiation in the Hippocampus through Activation of Stress-Induced Phosphatase 1 and Mitochondrial Na(+)/Ca(2+) Exchanger
title_sort amyloid aβ(25-35) aggregates say ‘no’ to long-term potentiation in the hippocampus through activation of stress-induced phosphatase 1 and mitochondrial na(+)/ca(2+) exchanger
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9570122/
https://www.ncbi.nlm.nih.gov/pubmed/36233148
http://dx.doi.org/10.3390/ijms231911848
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