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Glioblastoma remodelling of human neural circuits decreases survival

Gliomas synaptically integrate into neural circuits(1,2). Previous research has demonstrated bidirectional interactions between neurons and glioma cells, with neuronal activity driving glioma growth(1–4) and gliomas increasing neuronal excitability(2,5–8). Here we sought to determine how glioma-indu...

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Autores principales: Krishna, Saritha, Choudhury, Abrar, Keough, Michael B., Seo, Kyounghee, Ni, Lijun, Kakaizada, Sofia, Lee, Anthony, Aabedi, Alexander, Popova, Galina, Lipkin, Benjamin, Cao, Caroline, Nava Gonzales, Cesar, Sudharshan, Rasika, Egladyous, Andrew, Almeida, Nyle, Zhang, Yalan, Molinaro, Annette M., Venkatesh, Humsa S., Daniel, Andy G. S., Shamardani, Kiarash, Hyer, Jeanette, Chang, Edward F., Findlay, Anne, Phillips, Joanna J., Nagarajan, Srikantan, Raleigh, David R., Brang, David, Monje, Michelle, Hervey-Jumper, Shawn L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10191851/
https://www.ncbi.nlm.nih.gov/pubmed/37138086
http://dx.doi.org/10.1038/s41586-023-06036-1
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author Krishna, Saritha
Choudhury, Abrar
Keough, Michael B.
Seo, Kyounghee
Ni, Lijun
Kakaizada, Sofia
Lee, Anthony
Aabedi, Alexander
Popova, Galina
Lipkin, Benjamin
Cao, Caroline
Nava Gonzales, Cesar
Sudharshan, Rasika
Egladyous, Andrew
Almeida, Nyle
Zhang, Yalan
Molinaro, Annette M.
Venkatesh, Humsa S.
Daniel, Andy G. S.
Shamardani, Kiarash
Hyer, Jeanette
Chang, Edward F.
Findlay, Anne
Phillips, Joanna J.
Nagarajan, Srikantan
Raleigh, David R.
Brang, David
Monje, Michelle
Hervey-Jumper, Shawn L.
author_facet Krishna, Saritha
Choudhury, Abrar
Keough, Michael B.
Seo, Kyounghee
Ni, Lijun
Kakaizada, Sofia
Lee, Anthony
Aabedi, Alexander
Popova, Galina
Lipkin, Benjamin
Cao, Caroline
Nava Gonzales, Cesar
Sudharshan, Rasika
Egladyous, Andrew
Almeida, Nyle
Zhang, Yalan
Molinaro, Annette M.
Venkatesh, Humsa S.
Daniel, Andy G. S.
Shamardani, Kiarash
Hyer, Jeanette
Chang, Edward F.
Findlay, Anne
Phillips, Joanna J.
Nagarajan, Srikantan
Raleigh, David R.
Brang, David
Monje, Michelle
Hervey-Jumper, Shawn L.
author_sort Krishna, Saritha
collection PubMed
description Gliomas synaptically integrate into neural circuits(1,2). Previous research has demonstrated bidirectional interactions between neurons and glioma cells, with neuronal activity driving glioma growth(1–4) and gliomas increasing neuronal excitability(2,5–8). Here we sought to determine how glioma-induced neuronal changes influence neural circuits underlying cognition and whether these interactions influence patient survival. Using intracranial brain recordings during lexical retrieval language tasks in awake humans together with site-specific tumour tissue biopsies and cell biology experiments, we find that gliomas remodel functional neural circuitry such that task-relevant neural responses activate tumour-infiltrated cortex well beyond the cortical regions that are normally recruited in the healthy brain. Site-directed biopsies from regions within the tumour that exhibit high functional connectivity between the tumour and the rest of the brain are enriched for a glioblastoma subpopulation that exhibits a distinct synaptogenic and neuronotrophic phenotype. Tumour cells from functionally connected regions secrete the synaptogenic factor thrombospondin-1, which contributes to the differential neuron–glioma interactions observed in functionally connected tumour regions compared with tumour regions with less functional connectivity. Pharmacological inhibition of thrombospondin-1 using the FDA-approved drug gabapentin decreases glioblastoma proliferation. The degree of functional connectivity between glioblastoma and the normal brain negatively affects both patient survival and performance in language tasks. These data demonstrate that high-grade gliomas functionally remodel neural circuits in the human brain, which both promotes tumour progression and impairs cognition.
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spelling pubmed-101918512023-05-19 Glioblastoma remodelling of human neural circuits decreases survival Krishna, Saritha Choudhury, Abrar Keough, Michael B. Seo, Kyounghee Ni, Lijun Kakaizada, Sofia Lee, Anthony Aabedi, Alexander Popova, Galina Lipkin, Benjamin Cao, Caroline Nava Gonzales, Cesar Sudharshan, Rasika Egladyous, Andrew Almeida, Nyle Zhang, Yalan Molinaro, Annette M. Venkatesh, Humsa S. Daniel, Andy G. S. Shamardani, Kiarash Hyer, Jeanette Chang, Edward F. Findlay, Anne Phillips, Joanna J. Nagarajan, Srikantan Raleigh, David R. Brang, David Monje, Michelle Hervey-Jumper, Shawn L. Nature Article Gliomas synaptically integrate into neural circuits(1,2). Previous research has demonstrated bidirectional interactions between neurons and glioma cells, with neuronal activity driving glioma growth(1–4) and gliomas increasing neuronal excitability(2,5–8). Here we sought to determine how glioma-induced neuronal changes influence neural circuits underlying cognition and whether these interactions influence patient survival. Using intracranial brain recordings during lexical retrieval language tasks in awake humans together with site-specific tumour tissue biopsies and cell biology experiments, we find that gliomas remodel functional neural circuitry such that task-relevant neural responses activate tumour-infiltrated cortex well beyond the cortical regions that are normally recruited in the healthy brain. Site-directed biopsies from regions within the tumour that exhibit high functional connectivity between the tumour and the rest of the brain are enriched for a glioblastoma subpopulation that exhibits a distinct synaptogenic and neuronotrophic phenotype. Tumour cells from functionally connected regions secrete the synaptogenic factor thrombospondin-1, which contributes to the differential neuron–glioma interactions observed in functionally connected tumour regions compared with tumour regions with less functional connectivity. Pharmacological inhibition of thrombospondin-1 using the FDA-approved drug gabapentin decreases glioblastoma proliferation. The degree of functional connectivity between glioblastoma and the normal brain negatively affects both patient survival and performance in language tasks. These data demonstrate that high-grade gliomas functionally remodel neural circuits in the human brain, which both promotes tumour progression and impairs cognition. Nature Publishing Group UK 2023-05-03 2023 /pmc/articles/PMC10191851/ /pubmed/37138086 http://dx.doi.org/10.1038/s41586-023-06036-1 Text en © The Author(s) 2023 https://creativecommons.org/licenses/by/4.0/Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons licence and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this licence, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Article
Krishna, Saritha
Choudhury, Abrar
Keough, Michael B.
Seo, Kyounghee
Ni, Lijun
Kakaizada, Sofia
Lee, Anthony
Aabedi, Alexander
Popova, Galina
Lipkin, Benjamin
Cao, Caroline
Nava Gonzales, Cesar
Sudharshan, Rasika
Egladyous, Andrew
Almeida, Nyle
Zhang, Yalan
Molinaro, Annette M.
Venkatesh, Humsa S.
Daniel, Andy G. S.
Shamardani, Kiarash
Hyer, Jeanette
Chang, Edward F.
Findlay, Anne
Phillips, Joanna J.
Nagarajan, Srikantan
Raleigh, David R.
Brang, David
Monje, Michelle
Hervey-Jumper, Shawn L.
Glioblastoma remodelling of human neural circuits decreases survival
title Glioblastoma remodelling of human neural circuits decreases survival
title_full Glioblastoma remodelling of human neural circuits decreases survival
title_fullStr Glioblastoma remodelling of human neural circuits decreases survival
title_full_unstemmed Glioblastoma remodelling of human neural circuits decreases survival
title_short Glioblastoma remodelling of human neural circuits decreases survival
title_sort glioblastoma remodelling of human neural circuits decreases survival
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10191851/
https://www.ncbi.nlm.nih.gov/pubmed/37138086
http://dx.doi.org/10.1038/s41586-023-06036-1
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