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Tryptophan-centered metabolic alterations coincides with lipid-mediated fungal response to cold stress

Tryptophan and its derived metabolites have been assumed to play important roles in the development and survival of organisms. However, the links of tryptophan and its derived metabolites to temperature change remained largely cryptic. Here we presented that a class of prenyl indole alkaloids biosyn...

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Autores principales: Chen, Yonghong, Yang, Xiaoyu, Zhang, Longlong, Wu, Qunfu, Li, Shuhong, Gou, Jianghui, He, Jiangbo, Zhang, Keqin, Li, Shenghong, Niu, Xuemei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9898655/
https://www.ncbi.nlm.nih.gov/pubmed/36747564
http://dx.doi.org/10.1016/j.heliyon.2023.e13066
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author Chen, Yonghong
Yang, Xiaoyu
Zhang, Longlong
Wu, Qunfu
Li, Shuhong
Gou, Jianghui
He, Jiangbo
Zhang, Keqin
Li, Shenghong
Niu, Xuemei
author_facet Chen, Yonghong
Yang, Xiaoyu
Zhang, Longlong
Wu, Qunfu
Li, Shuhong
Gou, Jianghui
He, Jiangbo
Zhang, Keqin
Li, Shenghong
Niu, Xuemei
author_sort Chen, Yonghong
collection PubMed
description Tryptophan and its derived metabolites have been assumed to play important roles in the development and survival of organisms. However, the links of tryptophan and its derived metabolites to temperature change remained largely cryptic. Here we presented that a class of prenyl indole alkaloids biosynthesized from tryptophan dramatically accumulated in thermophilic fungus Thermomyces dupontii under cold stress, in which lipid droplets were also highly accumulated and whose conidiophores were highly build-up. Concurrently, disruption of the key NRPS gene involved in the biosynthesis of prenyl indole alkaloids, resulted in decreased lipid and shrunken mitochondria but enlarged vacuoles. Moreover, the Fe(3+) and superoxide levels in ΔNRPS were significantly increased but the reactive oxygen species lipid peroxidation and autophagy levels decreased. Metabolomics study revealed that most enriched metabolites in ΔNRPS were mainly composed of tryptophan degraded metabolites including well known ROS scavenger kynurenamines, and lipid-inhibitors, anthranilic acid and indoleacetic acid, and free radical reaction suppressor free fatty acids. Transcriptomic analysis suggested that the key gene involved in tryptophan metabolism, coinciding with the lipid metabolic processes and ion transports were most up-regulated in ΔNRPS under stress. Our results confirmed a lipid-mediated fungal response to cold stress and unveiled a link of tryptophan-based metabolic reprogramming to the fungal cold adaption.
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spelling pubmed-98986552023-02-05 Tryptophan-centered metabolic alterations coincides with lipid-mediated fungal response to cold stress Chen, Yonghong Yang, Xiaoyu Zhang, Longlong Wu, Qunfu Li, Shuhong Gou, Jianghui He, Jiangbo Zhang, Keqin Li, Shenghong Niu, Xuemei Heliyon Research Article Tryptophan and its derived metabolites have been assumed to play important roles in the development and survival of organisms. However, the links of tryptophan and its derived metabolites to temperature change remained largely cryptic. Here we presented that a class of prenyl indole alkaloids biosynthesized from tryptophan dramatically accumulated in thermophilic fungus Thermomyces dupontii under cold stress, in which lipid droplets were also highly accumulated and whose conidiophores were highly build-up. Concurrently, disruption of the key NRPS gene involved in the biosynthesis of prenyl indole alkaloids, resulted in decreased lipid and shrunken mitochondria but enlarged vacuoles. Moreover, the Fe(3+) and superoxide levels in ΔNRPS were significantly increased but the reactive oxygen species lipid peroxidation and autophagy levels decreased. Metabolomics study revealed that most enriched metabolites in ΔNRPS were mainly composed of tryptophan degraded metabolites including well known ROS scavenger kynurenamines, and lipid-inhibitors, anthranilic acid and indoleacetic acid, and free radical reaction suppressor free fatty acids. Transcriptomic analysis suggested that the key gene involved in tryptophan metabolism, coinciding with the lipid metabolic processes and ion transports were most up-regulated in ΔNRPS under stress. Our results confirmed a lipid-mediated fungal response to cold stress and unveiled a link of tryptophan-based metabolic reprogramming to the fungal cold adaption. Elsevier 2023-01-21 /pmc/articles/PMC9898655/ /pubmed/36747564 http://dx.doi.org/10.1016/j.heliyon.2023.e13066 Text en © 2023 The Authors. Published by Elsevier Ltd. https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Article
Chen, Yonghong
Yang, Xiaoyu
Zhang, Longlong
Wu, Qunfu
Li, Shuhong
Gou, Jianghui
He, Jiangbo
Zhang, Keqin
Li, Shenghong
Niu, Xuemei
Tryptophan-centered metabolic alterations coincides with lipid-mediated fungal response to cold stress
title Tryptophan-centered metabolic alterations coincides with lipid-mediated fungal response to cold stress
title_full Tryptophan-centered metabolic alterations coincides with lipid-mediated fungal response to cold stress
title_fullStr Tryptophan-centered metabolic alterations coincides with lipid-mediated fungal response to cold stress
title_full_unstemmed Tryptophan-centered metabolic alterations coincides with lipid-mediated fungal response to cold stress
title_short Tryptophan-centered metabolic alterations coincides with lipid-mediated fungal response to cold stress
title_sort tryptophan-centered metabolic alterations coincides with lipid-mediated fungal response to cold stress
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9898655/
https://www.ncbi.nlm.nih.gov/pubmed/36747564
http://dx.doi.org/10.1016/j.heliyon.2023.e13066
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