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Glioblastoma cytotoxicity conferred through dual disruption of endolysosomal homeostasis by Vacquinol-1

BACKGROUND: Increased membrane trafficking is observed in numerous cancer types, including glioblastoma. Targeting the oncogenic driven acquired alterations in membrane trafficking by synthetic cationic amphiphilic small molecules has recently been shown to induce death of glioblastoma cells, althou...

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Detalles Bibliográficos
Autores principales: Kwak, Dongoh, Hammarström, Lars G J, Haraldsson, Martin, Ernfors, Patrik
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8577523/
https://www.ncbi.nlm.nih.gov/pubmed/34765974
http://dx.doi.org/10.1093/noajnl/vdab152
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author Kwak, Dongoh
Hammarström, Lars G J
Haraldsson, Martin
Ernfors, Patrik
author_facet Kwak, Dongoh
Hammarström, Lars G J
Haraldsson, Martin
Ernfors, Patrik
author_sort Kwak, Dongoh
collection PubMed
description BACKGROUND: Increased membrane trafficking is observed in numerous cancer types, including glioblastoma. Targeting the oncogenic driven acquired alterations in membrane trafficking by synthetic cationic amphiphilic small molecules has recently been shown to induce death of glioblastoma cells, although the molecular targets are unknown. METHODS: The mechanism of action of the cationic amphiphilic drug Vacquinol-1 (Vacq1)-induced cytotoxicity was investigated using cell biology, biochemistry, functional experiments, chemical biology, unbiased antibody-based post-translation modification profiling, and mass spectrometry-based chemical proteomic analysis on patient-derived glioblastoma cells. RESULTS: Vacq1 induced two types of abnormal endolysosomal vesicles, enlarged vacuoles and acidic vesicle organelles (AVOs). Mechanistically, enlarged vacuoles were formed by the impairment of lysosome reformation through the direct interaction and inhibition of calmodulin (CaM) by Vacq1, while AVO formation was induced by Vacq1 accumulation and acidification in the endosomal compartments through its activation of the v-ATPase. As a consequence of v-ATPase activation, cellular ATP consumption markedly increased, causing cellular energy shortage and cytotoxicity. This effect of Vacq1 was exacerbated by its inhibitory effects on calmodulin, causing lysosomal depletion and a failure of acidic vesicle organelle clearance. CONCLUSION: Our study identifies the targets of Vacq1 and the mechanisms underlying its selective cytotoxicity in glioblastoma cells. The dual function of Vacq1 sets in motion a glioblastoma-specific vicious cycle of ATP consumption resulting in cellular energy crisis and cell death.
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spelling pubmed-85775232021-11-10 Glioblastoma cytotoxicity conferred through dual disruption of endolysosomal homeostasis by Vacquinol-1 Kwak, Dongoh Hammarström, Lars G J Haraldsson, Martin Ernfors, Patrik Neurooncol Adv Basic and Translational Investigations BACKGROUND: Increased membrane trafficking is observed in numerous cancer types, including glioblastoma. Targeting the oncogenic driven acquired alterations in membrane trafficking by synthetic cationic amphiphilic small molecules has recently been shown to induce death of glioblastoma cells, although the molecular targets are unknown. METHODS: The mechanism of action of the cationic amphiphilic drug Vacquinol-1 (Vacq1)-induced cytotoxicity was investigated using cell biology, biochemistry, functional experiments, chemical biology, unbiased antibody-based post-translation modification profiling, and mass spectrometry-based chemical proteomic analysis on patient-derived glioblastoma cells. RESULTS: Vacq1 induced two types of abnormal endolysosomal vesicles, enlarged vacuoles and acidic vesicle organelles (AVOs). Mechanistically, enlarged vacuoles were formed by the impairment of lysosome reformation through the direct interaction and inhibition of calmodulin (CaM) by Vacq1, while AVO formation was induced by Vacq1 accumulation and acidification in the endosomal compartments through its activation of the v-ATPase. As a consequence of v-ATPase activation, cellular ATP consumption markedly increased, causing cellular energy shortage and cytotoxicity. This effect of Vacq1 was exacerbated by its inhibitory effects on calmodulin, causing lysosomal depletion and a failure of acidic vesicle organelle clearance. CONCLUSION: Our study identifies the targets of Vacq1 and the mechanisms underlying its selective cytotoxicity in glioblastoma cells. The dual function of Vacq1 sets in motion a glioblastoma-specific vicious cycle of ATP consumption resulting in cellular energy crisis and cell death. Oxford University Press 2021-10-15 /pmc/articles/PMC8577523/ /pubmed/34765974 http://dx.doi.org/10.1093/noajnl/vdab152 Text en © The Author(s) 2021. Published by Oxford University Press, the Society for Neuro-Oncology and the European Association of Neuro-Oncology. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Basic and Translational Investigations
Kwak, Dongoh
Hammarström, Lars G J
Haraldsson, Martin
Ernfors, Patrik
Glioblastoma cytotoxicity conferred through dual disruption of endolysosomal homeostasis by Vacquinol-1
title Glioblastoma cytotoxicity conferred through dual disruption of endolysosomal homeostasis by Vacquinol-1
title_full Glioblastoma cytotoxicity conferred through dual disruption of endolysosomal homeostasis by Vacquinol-1
title_fullStr Glioblastoma cytotoxicity conferred through dual disruption of endolysosomal homeostasis by Vacquinol-1
title_full_unstemmed Glioblastoma cytotoxicity conferred through dual disruption of endolysosomal homeostasis by Vacquinol-1
title_short Glioblastoma cytotoxicity conferred through dual disruption of endolysosomal homeostasis by Vacquinol-1
title_sort glioblastoma cytotoxicity conferred through dual disruption of endolysosomal homeostasis by vacquinol-1
topic Basic and Translational Investigations
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8577523/
https://www.ncbi.nlm.nih.gov/pubmed/34765974
http://dx.doi.org/10.1093/noajnl/vdab152
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