Deep-Sea Coral Garden Invertebrates and Their Associated Fungi Are Genetic Resources for Chronic Disease Drug Discovery
Abstract
:1. Introduction
2. Results
2.1. Invertebrate Extract Bioactivity toward hMSCs
2.2. Fungal Extract Bioactivity toward hMSCs
2.3. Anti-Inflammatory Bioactivity
3. Discussion
4. Materials and Methods
4.1. Deep-Sea Organism Collection
4.2. Deep-Sea Benthic Invertebrate Metabolite Extraction
4.3. Deep-Sea Fungal Culture and Metabolite Extraction
4.4. Culture of Human Mesenchymal Stem Cells and THP1 Macrophages
4.5. Marine Extract Library Screening
4.6. High-Throughput Osteogenic Assay
4.7. Chondrogenic Assay
4.8. High-Throughput Anti-Inflammatory Assay
4.9. LC-MS Analysis of Extracts
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Acknowledgments
Conflicts of Interest
References
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Organism | Polarity | Bioactivity | ||||
---|---|---|---|---|---|---|
Pro-Osteogenic | Pro-Chondrogenic | Proliferative | Anti-prolif. | Cytotoxic | ||
Acanella sp.1 | + | x | ||||
Anthoptilum sp. | + | x | ||||
Anthothela sp. | − | x | ||||
Anthothela sp.1 | − | x | ||||
Anthothela sp.2 | + | x | ||||
Anthothela sp.3 | − | x | ||||
Balticina finmarchica | − | x | ||||
Candidella imbricata | + | x | ||||
Characella pachastrell. | − | x | ||||
Chrysogorgia sp.1 | − | x | ||||
Chrysogorgia sp.2 | − | x | ||||
Chrysogorgia sp.3 | + | x | ||||
Chrysogorgia sp.4 | + | x | ||||
Clavularia sp. | − | x | ||||
Demospongiae 1 | − | x | ||||
Demospongiae 2 | − | x | ||||
Hexactinellida | − | x | ||||
Keratoisinae sp.1 | − | x | ||||
Keratoisinae sp.2 | + | x | ||||
Keratoisinae sp.3 | + | x | ||||
Kophobelemnon sp.1 | − | x | ||||
Kophobelemnon sp.2 | − | x | x | |||
Leiopathes sp. | − | x | ||||
Muriceides sp. | + | x | ||||
Polymastia arctica | − | x | ||||
Radicipes sp.1 | − | x | ||||
Radicipes sp.2 | − | x | ||||
Radicipes sp.2 | + | x | ||||
Stichopathes sp.1 | − | x | ||||
Stichopathes sp.1 | + | x | ||||
Swiftia pallida | + | x | ||||
Unidentif. sponge | − | x | ||||
Zoanthid 1 | − | x | ||||
Zoanthid 1 | + | x | ||||
Zoanthid 2 | − | x | ||||
Zoanthid 2 | + | x | ||||
Zoanthid 3 | − | x | x | |||
Zoanthid 4 | − | x | x | |||
Zoanthid 5 | + | x | ||||
Zoanthid 6 | + | x | ||||
Zoanthid 7 | − | x | x | |||
Zoanthid 7 | + | x |
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Marchese, P.; Young, R.; O’Connell, E.; Afoullouss, S.; Baker, B.J.; Allcock, A.L.; Barry, F.; Murphy, J.M. Deep-Sea Coral Garden Invertebrates and Their Associated Fungi Are Genetic Resources for Chronic Disease Drug Discovery. Mar. Drugs 2021, 19, 390. https://doi.org/10.3390/md19070390
Marchese P, Young R, O’Connell E, Afoullouss S, Baker BJ, Allcock AL, Barry F, Murphy JM. Deep-Sea Coral Garden Invertebrates and Their Associated Fungi Are Genetic Resources for Chronic Disease Drug Discovery. Marine Drugs. 2021; 19(7):390. https://doi.org/10.3390/md19070390
Chicago/Turabian StyleMarchese, Pietro, Ryan Young, Enda O’Connell, Sam Afoullouss, Bill J. Baker, A. Louise Allcock, Frank Barry, and J. Mary Murphy. 2021. "Deep-Sea Coral Garden Invertebrates and Their Associated Fungi Are Genetic Resources for Chronic Disease Drug Discovery" Marine Drugs 19, no. 7: 390. https://doi.org/10.3390/md19070390