Cargando…

ATP-citrate lyase controls endothelial gluco-lipogenic metabolism and vascular inflammation in sepsis-associated organ injury

Sepsis involves endothelial cell (EC) dysfunction, which contributes to multiple organ failure. To improve therapeutic prospects, elucidating molecular mechanisms of vascular dysfunction is of the essence. ATP-citrate lyase (ACLY) directs glucose metabolic fluxes to de novo lipogenesis by generating...

Descripción completa

Detalles Bibliográficos
Autores principales: Li, Ranran, Meng, Mei, Chen, Ying, Pan, Tingting, Li, Yinjiaozhi, Deng, Yunxin, Zhang, Ruyuan, Tian, Rui, Xu, Wen, Zheng, Xiangtao, Gong, Fangchen, Liu, Jie, Tang, Haiting, Ding, Xiaowei, Tang, Yaoqing, Annane, Djillali, Chen, Erzhen, Qu, Hongping, Li, Lei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10325983/
https://www.ncbi.nlm.nih.gov/pubmed/37414769
http://dx.doi.org/10.1038/s41419-023-05932-8
_version_ 1785069332216152064
author Li, Ranran
Meng, Mei
Chen, Ying
Pan, Tingting
Li, Yinjiaozhi
Deng, Yunxin
Zhang, Ruyuan
Tian, Rui
Xu, Wen
Zheng, Xiangtao
Gong, Fangchen
Liu, Jie
Tang, Haiting
Ding, Xiaowei
Tang, Yaoqing
Annane, Djillali
Chen, Erzhen
Qu, Hongping
Li, Lei
author_facet Li, Ranran
Meng, Mei
Chen, Ying
Pan, Tingting
Li, Yinjiaozhi
Deng, Yunxin
Zhang, Ruyuan
Tian, Rui
Xu, Wen
Zheng, Xiangtao
Gong, Fangchen
Liu, Jie
Tang, Haiting
Ding, Xiaowei
Tang, Yaoqing
Annane, Djillali
Chen, Erzhen
Qu, Hongping
Li, Lei
author_sort Li, Ranran
collection PubMed
description Sepsis involves endothelial cell (EC) dysfunction, which contributes to multiple organ failure. To improve therapeutic prospects, elucidating molecular mechanisms of vascular dysfunction is of the essence. ATP-citrate lyase (ACLY) directs glucose metabolic fluxes to de novo lipogenesis by generating acetyl-Co-enzyme A (acetyl-CoA), which facilitates transcriptional priming via protein acetylation. It is well illustrated that ACLY participates in promoting cancer metastasis and fatty liver diseases. Its biological functions in ECs during sepsis remain unclear. We found that plasma levels of ACLY were increased in septic patients and were positively correlated with interleukin (IL)-6, soluble E-selectin (sE-selectin), soluble vascular cell adhesion molecule 1 (sVCAM-1), and lactate levels. ACLY inhibition significantly ameliorated lipopolysaccharide challenge-induced EC proinflammatory response in vitro and organ injury in vivo. The metabolomic analysis revealed that ACLY blockade fostered ECs a quiescent status by reducing the levels of glycolytic and lipogenic metabolites. Mechanistically, ACLY promoted forkhead box O1 (FoxO1) and histone H3 acetylation, thereby increasing the transcription of c-Myc (MYC) to facilitate the expression of proinflammatory and gluco-lipogenic genes. Our findings revealed that ACLY promoted EC gluco-lipogenic metabolism and proinflammatory response through acetylation-mediated MYC transcription, suggesting ACLY as the potential therapeutic target for treating sepsis-associated EC dysfunction and organ injury.
format Online
Article
Text
id pubmed-10325983
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Nature Publishing Group UK
record_format MEDLINE/PubMed
spelling pubmed-103259832023-07-08 ATP-citrate lyase controls endothelial gluco-lipogenic metabolism and vascular inflammation in sepsis-associated organ injury Li, Ranran Meng, Mei Chen, Ying Pan, Tingting Li, Yinjiaozhi Deng, Yunxin Zhang, Ruyuan Tian, Rui Xu, Wen Zheng, Xiangtao Gong, Fangchen Liu, Jie Tang, Haiting Ding, Xiaowei Tang, Yaoqing Annane, Djillali Chen, Erzhen Qu, Hongping Li, Lei Cell Death Dis Article Sepsis involves endothelial cell (EC) dysfunction, which contributes to multiple organ failure. To improve therapeutic prospects, elucidating molecular mechanisms of vascular dysfunction is of the essence. ATP-citrate lyase (ACLY) directs glucose metabolic fluxes to de novo lipogenesis by generating acetyl-Co-enzyme A (acetyl-CoA), which facilitates transcriptional priming via protein acetylation. It is well illustrated that ACLY participates in promoting cancer metastasis and fatty liver diseases. Its biological functions in ECs during sepsis remain unclear. We found that plasma levels of ACLY were increased in septic patients and were positively correlated with interleukin (IL)-6, soluble E-selectin (sE-selectin), soluble vascular cell adhesion molecule 1 (sVCAM-1), and lactate levels. ACLY inhibition significantly ameliorated lipopolysaccharide challenge-induced EC proinflammatory response in vitro and organ injury in vivo. The metabolomic analysis revealed that ACLY blockade fostered ECs a quiescent status by reducing the levels of glycolytic and lipogenic metabolites. Mechanistically, ACLY promoted forkhead box O1 (FoxO1) and histone H3 acetylation, thereby increasing the transcription of c-Myc (MYC) to facilitate the expression of proinflammatory and gluco-lipogenic genes. Our findings revealed that ACLY promoted EC gluco-lipogenic metabolism and proinflammatory response through acetylation-mediated MYC transcription, suggesting ACLY as the potential therapeutic target for treating sepsis-associated EC dysfunction and organ injury. Nature Publishing Group UK 2023-07-06 /pmc/articles/PMC10325983/ /pubmed/37414769 http://dx.doi.org/10.1038/s41419-023-05932-8 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 license, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons license 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 license, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Article
Li, Ranran
Meng, Mei
Chen, Ying
Pan, Tingting
Li, Yinjiaozhi
Deng, Yunxin
Zhang, Ruyuan
Tian, Rui
Xu, Wen
Zheng, Xiangtao
Gong, Fangchen
Liu, Jie
Tang, Haiting
Ding, Xiaowei
Tang, Yaoqing
Annane, Djillali
Chen, Erzhen
Qu, Hongping
Li, Lei
ATP-citrate lyase controls endothelial gluco-lipogenic metabolism and vascular inflammation in sepsis-associated organ injury
title ATP-citrate lyase controls endothelial gluco-lipogenic metabolism and vascular inflammation in sepsis-associated organ injury
title_full ATP-citrate lyase controls endothelial gluco-lipogenic metabolism and vascular inflammation in sepsis-associated organ injury
title_fullStr ATP-citrate lyase controls endothelial gluco-lipogenic metabolism and vascular inflammation in sepsis-associated organ injury
title_full_unstemmed ATP-citrate lyase controls endothelial gluco-lipogenic metabolism and vascular inflammation in sepsis-associated organ injury
title_short ATP-citrate lyase controls endothelial gluco-lipogenic metabolism and vascular inflammation in sepsis-associated organ injury
title_sort atp-citrate lyase controls endothelial gluco-lipogenic metabolism and vascular inflammation in sepsis-associated organ injury
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10325983/
https://www.ncbi.nlm.nih.gov/pubmed/37414769
http://dx.doi.org/10.1038/s41419-023-05932-8
work_keys_str_mv AT liranran atpcitratelyasecontrolsendothelialglucolipogenicmetabolismandvascularinflammationinsepsisassociatedorganinjury
AT mengmei atpcitratelyasecontrolsendothelialglucolipogenicmetabolismandvascularinflammationinsepsisassociatedorganinjury
AT chenying atpcitratelyasecontrolsendothelialglucolipogenicmetabolismandvascularinflammationinsepsisassociatedorganinjury
AT pantingting atpcitratelyasecontrolsendothelialglucolipogenicmetabolismandvascularinflammationinsepsisassociatedorganinjury
AT liyinjiaozhi atpcitratelyasecontrolsendothelialglucolipogenicmetabolismandvascularinflammationinsepsisassociatedorganinjury
AT dengyunxin atpcitratelyasecontrolsendothelialglucolipogenicmetabolismandvascularinflammationinsepsisassociatedorganinjury
AT zhangruyuan atpcitratelyasecontrolsendothelialglucolipogenicmetabolismandvascularinflammationinsepsisassociatedorganinjury
AT tianrui atpcitratelyasecontrolsendothelialglucolipogenicmetabolismandvascularinflammationinsepsisassociatedorganinjury
AT xuwen atpcitratelyasecontrolsendothelialglucolipogenicmetabolismandvascularinflammationinsepsisassociatedorganinjury
AT zhengxiangtao atpcitratelyasecontrolsendothelialglucolipogenicmetabolismandvascularinflammationinsepsisassociatedorganinjury
AT gongfangchen atpcitratelyasecontrolsendothelialglucolipogenicmetabolismandvascularinflammationinsepsisassociatedorganinjury
AT liujie atpcitratelyasecontrolsendothelialglucolipogenicmetabolismandvascularinflammationinsepsisassociatedorganinjury
AT tanghaiting atpcitratelyasecontrolsendothelialglucolipogenicmetabolismandvascularinflammationinsepsisassociatedorganinjury
AT dingxiaowei atpcitratelyasecontrolsendothelialglucolipogenicmetabolismandvascularinflammationinsepsisassociatedorganinjury
AT tangyaoqing atpcitratelyasecontrolsendothelialglucolipogenicmetabolismandvascularinflammationinsepsisassociatedorganinjury
AT annanedjillali atpcitratelyasecontrolsendothelialglucolipogenicmetabolismandvascularinflammationinsepsisassociatedorganinjury
AT chenerzhen atpcitratelyasecontrolsendothelialglucolipogenicmetabolismandvascularinflammationinsepsisassociatedorganinjury
AT quhongping atpcitratelyasecontrolsendothelialglucolipogenicmetabolismandvascularinflammationinsepsisassociatedorganinjury
AT lilei atpcitratelyasecontrolsendothelialglucolipogenicmetabolismandvascularinflammationinsepsisassociatedorganinjury