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The metabolic regulator Lamtor5 suppresses inflammatory signaling via regulating mTOR-mediated TLR4 degradation

Comprehensive immune responses are essential for eliminating pathogens but must be tightly controlled to avoid sustained immune activation and potential tissue damage. The engagement of TLR4, a canonical pattern recognition receptor, has been proposed to trigger inflammatory responses with different...

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Autores principales: Zhang, Wei, Zhuang, Ningtong, Liu, Xiaoyi, He, Long, He, Yan, Mahinthichaichan, Paween, Zhang, Hang, Kang, Yanhua, Lu, Yin, Wu, Qinan, Xu, Dakang, Shi, Liyun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7608472/
https://www.ncbi.nlm.nih.gov/pubmed/31467416
http://dx.doi.org/10.1038/s41423-019-0281-6
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author Zhang, Wei
Zhuang, Ningtong
Liu, Xiaoyi
He, Long
He, Yan
Mahinthichaichan, Paween
Zhang, Hang
Kang, Yanhua
Lu, Yin
Wu, Qinan
Xu, Dakang
Shi, Liyun
author_facet Zhang, Wei
Zhuang, Ningtong
Liu, Xiaoyi
He, Long
He, Yan
Mahinthichaichan, Paween
Zhang, Hang
Kang, Yanhua
Lu, Yin
Wu, Qinan
Xu, Dakang
Shi, Liyun
author_sort Zhang, Wei
collection PubMed
description Comprehensive immune responses are essential for eliminating pathogens but must be tightly controlled to avoid sustained immune activation and potential tissue damage. The engagement of TLR4, a canonical pattern recognition receptor, has been proposed to trigger inflammatory responses with different magnitudes and durations depending on TLR4 cellular compartmentalization. In the present study, we identify an unexpected role of Lamtor5, a newly identified component of the amino acid-sensing machinery, in modulating TLR4 signaling and controlling inflammation. Specifically, Lamtor5 associated with TLR4 via their LZ/TIR domains and facilitated their colocalization at autolysosomes, preventing lysosomal tethering and the activation of mTORC1 upon LPS stimulation and thereby derepressing TFEB to promote autophagic degradation of TLR4. The loss of Lamtor5 was unable to trigger the TFEB-driven autolysosomal pathway and delay degradation of TLR4, leading to sustained inflammation and hence increased mortality among Lamtor5 haploinsufficient mice during endotoxic shock. Intriguingly, nutrient deprivation, particularly leucine deprivation, blunted inflammatory signaling and conferred protection to endotoxic mice. This effect, however, was largely abrogated upon Lamtor5 deletion. We thus propose a homeostatic function of Lamtor5 that couples pathogenic insults and nutrient availability to optimize the inflammatory response; this function may have implications for TLR4-associated inflammatory and metabolic disorders.
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spelling pubmed-76084722020-11-05 The metabolic regulator Lamtor5 suppresses inflammatory signaling via regulating mTOR-mediated TLR4 degradation Zhang, Wei Zhuang, Ningtong Liu, Xiaoyi He, Long He, Yan Mahinthichaichan, Paween Zhang, Hang Kang, Yanhua Lu, Yin Wu, Qinan Xu, Dakang Shi, Liyun Cell Mol Immunol Article Comprehensive immune responses are essential for eliminating pathogens but must be tightly controlled to avoid sustained immune activation and potential tissue damage. The engagement of TLR4, a canonical pattern recognition receptor, has been proposed to trigger inflammatory responses with different magnitudes and durations depending on TLR4 cellular compartmentalization. In the present study, we identify an unexpected role of Lamtor5, a newly identified component of the amino acid-sensing machinery, in modulating TLR4 signaling and controlling inflammation. Specifically, Lamtor5 associated with TLR4 via their LZ/TIR domains and facilitated their colocalization at autolysosomes, preventing lysosomal tethering and the activation of mTORC1 upon LPS stimulation and thereby derepressing TFEB to promote autophagic degradation of TLR4. The loss of Lamtor5 was unable to trigger the TFEB-driven autolysosomal pathway and delay degradation of TLR4, leading to sustained inflammation and hence increased mortality among Lamtor5 haploinsufficient mice during endotoxic shock. Intriguingly, nutrient deprivation, particularly leucine deprivation, blunted inflammatory signaling and conferred protection to endotoxic mice. This effect, however, was largely abrogated upon Lamtor5 deletion. We thus propose a homeostatic function of Lamtor5 that couples pathogenic insults and nutrient availability to optimize the inflammatory response; this function may have implications for TLR4-associated inflammatory and metabolic disorders. Nature Publishing Group UK 2019-08-29 2020-10 /pmc/articles/PMC7608472/ /pubmed/31467416 http://dx.doi.org/10.1038/s41423-019-0281-6 Text en © CSI and USTC 2019
spellingShingle Article
Zhang, Wei
Zhuang, Ningtong
Liu, Xiaoyi
He, Long
He, Yan
Mahinthichaichan, Paween
Zhang, Hang
Kang, Yanhua
Lu, Yin
Wu, Qinan
Xu, Dakang
Shi, Liyun
The metabolic regulator Lamtor5 suppresses inflammatory signaling via regulating mTOR-mediated TLR4 degradation
title The metabolic regulator Lamtor5 suppresses inflammatory signaling via regulating mTOR-mediated TLR4 degradation
title_full The metabolic regulator Lamtor5 suppresses inflammatory signaling via regulating mTOR-mediated TLR4 degradation
title_fullStr The metabolic regulator Lamtor5 suppresses inflammatory signaling via regulating mTOR-mediated TLR4 degradation
title_full_unstemmed The metabolic regulator Lamtor5 suppresses inflammatory signaling via regulating mTOR-mediated TLR4 degradation
title_short The metabolic regulator Lamtor5 suppresses inflammatory signaling via regulating mTOR-mediated TLR4 degradation
title_sort metabolic regulator lamtor5 suppresses inflammatory signaling via regulating mtor-mediated tlr4 degradation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7608472/
https://www.ncbi.nlm.nih.gov/pubmed/31467416
http://dx.doi.org/10.1038/s41423-019-0281-6
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