Alexander R Goldberg, Athanassios Dovas, Daniela Torres, Brianna Pereira, Ashwin Viswanathan, Sohani Das Sharma, Angeliki Mela, Edward M Merricks, Cristina Megino-Luque, Julie J McInvale, Markel Olabarria, Leila Abrishami Shokooh, Hanzhi T Zhao, Cady Chen, Corina Kotidis, Peter Calvaresi, Matei A Banu, Aida Razavilar, Tejaswi D Sudhakar, Ankita Saxena, Cole Chokran, Nelson Humala, Aayushi Mahajan, Weihao Xu, Jordan B Metz, Eric A Bushong, Daniela Boassa, Mark H Ellisman, Elizabeth M C Hillman, Gunnar Hargus, Jose Javier Bravo-Cordero, Guy M McKhann, Brian J A Gill, Steven S Rosenfeld, Catherine A Schevon, Jeffrey N Bruce, Peter A Sims, Darcy S Peterka, Peter Canoll
{"title":"胶质瘤诱导的兴奋性神经元的改变可通过mTOR抑制逆转。","authors":"Alexander R Goldberg, Athanassios Dovas, Daniela Torres, Brianna Pereira, Ashwin Viswanathan, Sohani Das Sharma, Angeliki Mela, Edward M Merricks, Cristina Megino-Luque, Julie J McInvale, Markel Olabarria, Leila Abrishami Shokooh, Hanzhi T Zhao, Cady Chen, Corina Kotidis, Peter Calvaresi, Matei A Banu, Aida Razavilar, Tejaswi D Sudhakar, Ankita Saxena, Cole Chokran, Nelson Humala, Aayushi Mahajan, Weihao Xu, Jordan B Metz, Eric A Bushong, Daniela Boassa, Mark H Ellisman, Elizabeth M C Hillman, Gunnar Hargus, Jose Javier Bravo-Cordero, Guy M McKhann, Brian J A Gill, Steven S Rosenfeld, Catherine A Schevon, Jeffrey N Bruce, Peter A Sims, Darcy S Peterka, Peter Canoll","doi":"10.1016/j.neuron.2024.12.026","DOIUrl":null,"url":null,"abstract":"<p><p>Gliomas are aggressive neoplasms that diffusely infiltrate the brain and cause neurological symptoms, including cognitive deficits and seizures. Increased mTOR signaling has been implicated in glioma-induced neuronal hyperexcitability, but the molecular and functional consequences have not been identified. Here, we show three types of changes in tumor-associated neurons: (1) downregulation of transcripts encoding excitatory and inhibitory postsynaptic proteins and dendritic spine development and upregulation of cytoskeletal transcripts via neuron-specific profiling of ribosome-bound mRNA, (2) marked decreases in dendritic spine density via light and electron microscopy, and (3) progressive functional alterations leading to neuronal hyperexcitability via in vivo calcium imaging. A single acute dose of AZD8055, a combined mTORC1/2 inhibitor, reversed these tumor-induced changes. These findings reveal mTOR-driven pathological plasticity in neurons at the infiltrative margin of glioma and suggest new strategies for treating glioma-associated neurological symptoms.</p>","PeriodicalId":19313,"journal":{"name":"Neuron","volume":" ","pages":"858-875.e10"},"PeriodicalIF":14.7000,"publicationDate":"2025-03-19","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://www.ncbi.nlm.nih.gov/pmc/articles/PMC11925689/pdf/","citationCount":"0","resultStr":"{\"title\":\"Glioma-induced alterations in excitatory neurons are reversed by mTOR inhibition.\",\"authors\":\"Alexander R Goldberg, Athanassios Dovas, Daniela Torres, Brianna Pereira, Ashwin Viswanathan, Sohani Das Sharma, Angeliki Mela, Edward M Merricks, Cristina Megino-Luque, Julie J McInvale, Markel Olabarria, Leila Abrishami Shokooh, Hanzhi T Zhao, Cady Chen, Corina Kotidis, Peter Calvaresi, Matei A Banu, Aida Razavilar, Tejaswi D Sudhakar, Ankita Saxena, Cole Chokran, Nelson Humala, Aayushi Mahajan, Weihao Xu, Jordan B Metz, Eric A Bushong, Daniela Boassa, Mark H Ellisman, Elizabeth M C Hillman, Gunnar Hargus, Jose Javier Bravo-Cordero, Guy M McKhann, Brian J A Gill, Steven S Rosenfeld, Catherine A Schevon, Jeffrey N Bruce, Peter A Sims, Darcy S Peterka, Peter Canoll\",\"doi\":\"10.1016/j.neuron.2024.12.026\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p><p>Gliomas are aggressive neoplasms that diffusely infiltrate the brain and cause neurological symptoms, including cognitive deficits and seizures. 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Glioma-induced alterations in excitatory neurons are reversed by mTOR inhibition.
Gliomas are aggressive neoplasms that diffusely infiltrate the brain and cause neurological symptoms, including cognitive deficits and seizures. Increased mTOR signaling has been implicated in glioma-induced neuronal hyperexcitability, but the molecular and functional consequences have not been identified. Here, we show three types of changes in tumor-associated neurons: (1) downregulation of transcripts encoding excitatory and inhibitory postsynaptic proteins and dendritic spine development and upregulation of cytoskeletal transcripts via neuron-specific profiling of ribosome-bound mRNA, (2) marked decreases in dendritic spine density via light and electron microscopy, and (3) progressive functional alterations leading to neuronal hyperexcitability via in vivo calcium imaging. A single acute dose of AZD8055, a combined mTORC1/2 inhibitor, reversed these tumor-induced changes. These findings reveal mTOR-driven pathological plasticity in neurons at the infiltrative margin of glioma and suggest new strategies for treating glioma-associated neurological symptoms.
期刊介绍:
Established as a highly influential journal in neuroscience, Neuron is widely relied upon in the field. The editors adopt interdisciplinary strategies, integrating biophysical, cellular, developmental, and molecular approaches alongside a systems approach to sensory, motor, and higher-order cognitive functions. Serving as a premier intellectual forum, Neuron holds a prominent position in the entire neuroscience community.