Phytochemistry2022,Vol.2007.DOI:10.1016/j.phytochem.2022.113229

Bioactive pulvinones from a marine algicolous fungus Aspergillus terreus NTU243

Hsiao G. Chi W.-C. Chang C.-H. Fu Y.-J. Lee T.-H. Chiang Y.-R.
Phytochemistry2022,Vol.2007.DOI:10.1016/j.phytochem.2022.113229

Bioactive pulvinones from a marine algicolous fungus Aspergillus terreus NTU243

Hsiao G. 1Chi W.-C. 2Chang C.-H. 3Fu Y.-J. 3Lee T.-H. 3Chiang Y.-R.4
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作者信息

  • 1. Graduate Institute of Medical Sciences College of Medicine Taipei Medical University
  • 2. Department of Food Science National Quemoy University
  • 3. Institute of Fisheries Science National Taiwan University
  • 4. Biodiversity Research Center Academic Sinica
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Abstract

? 2022 Elsevier LtdMarine fungi are regarded as an under-explored source of structurally interesting and bioactive natural products with the potential to provide attractive lead compounds for drug discovery. In this study, several fungal strains were isolated from marine algae collected from the northeastern coast of Taiwan. In the preliminary antimicrobial screening against bacteria and fungi, the ethyl acetate extract of the fermented products of Aspergillus terreus NTU243 derived from a green alga Ulva lactuca was found to exhibit significant antimicrobial activities. Therefore, bioassay-guided separations of the active principle from liquid and solid fermented products of A. terreus NTU243 were undertaken, which resulted in the isolation and purification of 16 compounds. Their structures were elucidated by spectroscopic analysis to be four previously undescribed aspulvinones S–V as well as twelve known compounds. All the isolates were assessed for anti-inflammatory activity by measuring the amount of nitric oxide (NO) production in lipopolysaccharide (LPS)-induced BV-2 cells, and aspulvinone V, butyrolactone I, and (+)-terrein inhibited 45.0%, 34.5%, and 49.2% of NO production, respectively, at 10 μM concentration. Additionally, zymography showed that the conditioned medium of THP-1 cells post-LPS challenged significantly enhanced matrix metalloproteinase (MMP)-9-mediated gelatinolysis, and pretreatment with aspulvinones U and V significantly attenuated MMP-9-mediated gelatinolysis by 56.0% and 67.8%, separately.

Key words

Anti-inflammation/Aspergillus terreus/Aspulvinone/MMP-9-Mediated gelatinolysis/Trichocomaceae

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出版年

2022
Phytochemistry

Phytochemistry

CCR
ISSN:0031-9422
被引量2
参考文献量28
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