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Insulin and IGF-1 elicit robust transcriptional regulation to modulate autophagy in astrocytes

OBJECTIVE: Insulin is a principal metabolic hormone. It regulates a plethora of metabolic pathways in peripheral tissues. The highly homologous insulin-like growth factor 1 (IGF-1), on the other hand, is important for development and growth. Recent studies have shown that insulin and IGF-1 signaling...

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Autores principales: Geffken, Shawn J., Moon, Sohyun, Smith, Catherine O., Tang, Sharon, Lee, Hiu Ham, Lewis, Kevin, Wong, Chun Wa, Huang, Yuan, Huang, Qian, Zhao, Ying-Tao, Cai, Weikang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9731889/
https://www.ncbi.nlm.nih.gov/pubmed/36503893
http://dx.doi.org/10.1016/j.molmet.2022.101647
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author Geffken, Shawn J.
Moon, Sohyun
Smith, Catherine O.
Tang, Sharon
Lee, Hiu Ham
Lewis, Kevin
Wong, Chun Wa
Huang, Yuan
Huang, Qian
Zhao, Ying-Tao
Cai, Weikang
author_facet Geffken, Shawn J.
Moon, Sohyun
Smith, Catherine O.
Tang, Sharon
Lee, Hiu Ham
Lewis, Kevin
Wong, Chun Wa
Huang, Yuan
Huang, Qian
Zhao, Ying-Tao
Cai, Weikang
author_sort Geffken, Shawn J.
collection PubMed
description OBJECTIVE: Insulin is a principal metabolic hormone. It regulates a plethora of metabolic pathways in peripheral tissues. The highly homologous insulin-like growth factor 1 (IGF-1), on the other hand, is important for development and growth. Recent studies have shown that insulin and IGF-1 signaling plays fundamental roles in the brain. Loss of insulin or IGF-1 receptors in astrocytes leads to altered glucose handling, mitochondrial metabolism, neurovascular coupling, and behavioral abnormalities in mice. Here, we aim to investigate molecular mechanisms by which insulin and IGF-1 signaling regulates astrocyte functions. METHODS: IR-flox and IRKO primary astrocytes were treated with 100 nM insulin or IGF-1 for 6 h, and their transcriptomes were analyzed. Astrocytes with either IR deletion, IGF1R deletion or both were used to examine receptor-dependent transcriptional regulations using qPCR. Additional immunoblotting and confocal imaging studies were performed to functionally validate pathways involved in protein homeostasis. RESULTS: Using next-generation RNA sequencing, we show that insulin significantly regulates the expression of over 1,200 genes involved in multiple functional processes in primary astrocytes. Insulin-like growth factor 1 (IGF-1) triggers a similar robust transcriptional regulation in astrocytes. Thus, over 50% of the differentially expressed genes are regulated by both ligands. As expected, these commonly regulated genes are highly enriched in pathways involved in lipid and cholesterol biosynthesis. Additionally, insulin and IGF-1 induce the expression of genes involved in ribosomal biogenesis, while suppressing the expression of genes involved in autophagy, indicating a common role of insulin and IGF-1 on protein homeostasis in astrocytes. Insulin-dependent suppression of autophagy genes, including p62, Ulk1/2, and several Atg genes, is blunted only when both IR and IGF1R are deleted. CONCLUSIONS: In summary, insulin and IGF-1 potently suppress autophagy in astrocytes through transcriptional regulation. Both IR and IGF1R can elicit ligand-dependent transcriptional suppression of autophagy. These results demonstrate an important role of astrocytic insulin/IGF-1 signaling on proteostasis. Impairment of this regulation in insulin resistance and diabetes may contribute to neurological complications related to diabetes.
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spelling pubmed-97318892022-12-10 Insulin and IGF-1 elicit robust transcriptional regulation to modulate autophagy in astrocytes Geffken, Shawn J. Moon, Sohyun Smith, Catherine O. Tang, Sharon Lee, Hiu Ham Lewis, Kevin Wong, Chun Wa Huang, Yuan Huang, Qian Zhao, Ying-Tao Cai, Weikang Mol Metab Original Article OBJECTIVE: Insulin is a principal metabolic hormone. It regulates a plethora of metabolic pathways in peripheral tissues. The highly homologous insulin-like growth factor 1 (IGF-1), on the other hand, is important for development and growth. Recent studies have shown that insulin and IGF-1 signaling plays fundamental roles in the brain. Loss of insulin or IGF-1 receptors in astrocytes leads to altered glucose handling, mitochondrial metabolism, neurovascular coupling, and behavioral abnormalities in mice. Here, we aim to investigate molecular mechanisms by which insulin and IGF-1 signaling regulates astrocyte functions. METHODS: IR-flox and IRKO primary astrocytes were treated with 100 nM insulin or IGF-1 for 6 h, and their transcriptomes were analyzed. Astrocytes with either IR deletion, IGF1R deletion or both were used to examine receptor-dependent transcriptional regulations using qPCR. Additional immunoblotting and confocal imaging studies were performed to functionally validate pathways involved in protein homeostasis. RESULTS: Using next-generation RNA sequencing, we show that insulin significantly regulates the expression of over 1,200 genes involved in multiple functional processes in primary astrocytes. Insulin-like growth factor 1 (IGF-1) triggers a similar robust transcriptional regulation in astrocytes. Thus, over 50% of the differentially expressed genes are regulated by both ligands. As expected, these commonly regulated genes are highly enriched in pathways involved in lipid and cholesterol biosynthesis. Additionally, insulin and IGF-1 induce the expression of genes involved in ribosomal biogenesis, while suppressing the expression of genes involved in autophagy, indicating a common role of insulin and IGF-1 on protein homeostasis in astrocytes. Insulin-dependent suppression of autophagy genes, including p62, Ulk1/2, and several Atg genes, is blunted only when both IR and IGF1R are deleted. CONCLUSIONS: In summary, insulin and IGF-1 potently suppress autophagy in astrocytes through transcriptional regulation. Both IR and IGF1R can elicit ligand-dependent transcriptional suppression of autophagy. These results demonstrate an important role of astrocytic insulin/IGF-1 signaling on proteostasis. Impairment of this regulation in insulin resistance and diabetes may contribute to neurological complications related to diabetes. Elsevier 2022-11-26 /pmc/articles/PMC9731889/ /pubmed/36503893 http://dx.doi.org/10.1016/j.molmet.2022.101647 Text en © 2022 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Original Article
Geffken, Shawn J.
Moon, Sohyun
Smith, Catherine O.
Tang, Sharon
Lee, Hiu Ham
Lewis, Kevin
Wong, Chun Wa
Huang, Yuan
Huang, Qian
Zhao, Ying-Tao
Cai, Weikang
Insulin and IGF-1 elicit robust transcriptional regulation to modulate autophagy in astrocytes
title Insulin and IGF-1 elicit robust transcriptional regulation to modulate autophagy in astrocytes
title_full Insulin and IGF-1 elicit robust transcriptional regulation to modulate autophagy in astrocytes
title_fullStr Insulin and IGF-1 elicit robust transcriptional regulation to modulate autophagy in astrocytes
title_full_unstemmed Insulin and IGF-1 elicit robust transcriptional regulation to modulate autophagy in astrocytes
title_short Insulin and IGF-1 elicit robust transcriptional regulation to modulate autophagy in astrocytes
title_sort insulin and igf-1 elicit robust transcriptional regulation to modulate autophagy in astrocytes
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9731889/
https://www.ncbi.nlm.nih.gov/pubmed/36503893
http://dx.doi.org/10.1016/j.molmet.2022.101647
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