Metabolomic Profiling and Biological Investigation of the Marine Sponge-Derived Fungus Aspergillus sp. SYPUF29 in Response to NO Condition

Author:

Xiao Jiao1ORCID,Lin Xiuping2,Yang Yanqiu3,Yu Yingshu1,Li Yinyin1,Xu Mengjie4,Liu Yonghong1ORCID

Affiliation:

1. Wuya College of Innovation, Shenyang Pharmaceutical University, Shenyang 110016, China

2. Guangdong Key Laboratory of Marine Materia Medica, South China Sea Institute of Oceanology, Chinese Academy of Sciences, Guangzhou 510301, China

3. College of Information Science and Engineering, Northeastern University, Shenyang 110819, China

4. Department of Biological Sciences, Xinzhou Normal University, Xinzhou 034000, China

Abstract

Marine-derived fungi are assuming an increasingly central role in the search for natural leading compounds with unique chemical structures and diverse pharmacological properties. However, some gene clusters are not expressed under laboratory conditions. In this study, we have found that a marine-derived fungus Aspergillus sp. SYPUF29 would survive well by adding an exogenous nitric oxide donor (sodium nitroprusside, SNP) and nitric oxide synthetase inhibitor (L-NG-nitroarginine methyl ester, L-NAME) in culture conditions. Moreover, using the LC-MS/MS, we initially assessed and characterized the difference in metabolites of Aspergillus sp. SYPUF29 with or without an additional source of nitrogen. We have found that the metabolic pathway of Arginine and proline metabolism pathways was highly enriched, which was conducive to the accumulation of alkaloids and nitrogen-containing compounds after adding an additional source of nitrogen in the cultivated condition. Additionally, the in vitro anti-neuroinflammatory study showed that the extracts after SNP and L-NAME were administrated can potently inhibit LPS-induced NO-releasing of BV2 cells with lower IC50 value than without nitric oxide. Further Western blotting assays have demonstrated that the mechanism of these extracts was associated with the TLR4 signaling pathway. Additionally, the chemical investigation was conducted and led to nine compounds (SF1–SF9) from AS1; and six of them belonged to alkaloids and nitrogen-containing compounds (SF1–SF6), of which SF1, SF2, and SF8 exhibited stronger activities than the positive control, and showed potential to develop the inhibitors of neuroinflammation.

Funder

National Natural Science Foundation of China

Doctoral Scientific Research Foundation of Liaoning Province

Guangdong Key Laboratory of Marine Materia Medica

talent youth teacher program of Shenyang Pharmaceutical University

Guangxi Key Laboratory of Marine Drugs

Liaoning Provincial Department of Education project

Publisher

MDPI AG

Reference54 articles.

1. Neuroinflammatory Responses in Alzheimer’s Disease;Dansokho;J. Neural Transm.,2018

2. Exploration of Beneficial and Deleterious Effects of Inflammation in Stroke: Dynamics of Inflammation Cells;Chapuisat;Philos. Trans. A Math. Phys. Eng. Sci.,2009

3. The Regulation of Neuronal Autophagy and Cell Survival by MCL1 in Alzheimer’s Disease;Rezaeian;Acta Mater. Med.,2022

4. Neuroinflammation: The Devil Is in the Details;DiSabato;J. Neurochem.,2016

5. Chemical Genetics of Neuroinflammation: Natural and Synthetic Compounds as Microglial Inhibitors;Suk;Inflammopharmacology,2012

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