Publication Cover
Natural Product Research
Formerly Natural Product Letters
Volume 37, 2023 - Issue 24
113
Views
0
CrossRef citations to date
0
Altmetric
Research Articles

Antiproliferative p-terphenyl derivatives isolated from the fungus Sarcodon scabripes

, , &
Pages 4199-4209 | Received 03 Dec 2022, Accepted 29 Jan 2023, Published online: 09 Feb 2023

References

  • Barad A, Mackedenski S, Li WM, Li XJ, Lim BCC, Rashid F, Tackaberry LE, Massicotte HB, Egger KN, Reimer K, et al. 2018. Antiproliferative activity of a purified polysaccharide isolated from the basidiomycete fungus Paxillus involutus. Carbohydr Polym. 181:923–930.
  • Bowen L, Li C, Bin L, Ying T, Shijun L, Junxing D. 2020. Chemical constituents, cytotoxic and antioxidant activities of extract from the rhizomes of Osmunda japonica Thunb. Nat Prod Res. 34(6):847–850.
  • Burk WR. 1983. Puffball usages among North American Indians. J Ethnobiol. 3(1):55–62.
  • Calì V, Spatafora C, Tringali C. 2004. Sarcodonins and sarcoviolins, bioactive polyhydroxy-p-terphenyl pyrazinediol dioxide conjugates from fruiting bodies of the Basidiomycete Sarcodon leucopus. Eur J Org Chem. 2004(3):592–599.
  • Curini M, Maltese F, Marcotullio MC, Menghini L, Pagiotti R, Rosati O, Altinier G, Tubaro A. 2005. Glaucopines A and B, new cyathane diterpenes from the fruiting bodies of Sarcodon glaucopus. Planta Med. 71(2):194–196.
  • Deo GS, Khatra J, Buttar S, Li WM, Tackaberry LE, Massicotte HB, Egger KN, Reimer K, Lee CH. 2019. Antiproliferative, immunostimulatory, and anti-inflammatory activities of extracts derived from mushrooms collected in Haida Gwaii, British Columbia (Canada). Int J Med Mushrooms. 21(7):629–643.
  • Hawksworth DL. 2001. Mushrooms: the extent of the unexplored potential. Int J Med Mushr. 3(4):5.
  • Hiort J, Maksimenka K, Reichert M, Perović-Ottstadt S, Lin WH, Wray V, Steube K, Schaumann K, Weber H, Proksch P, et al. 2004. New natural products from the sponge-derived fungus Aspergillus niger. J Nat Prod. 67(9):1532–1543.
  • Hirota M, Morimura K, Shibata H. 2002. Anti-inflammatory compounds from the bitter mushroom, Sarcodon scabrosus. Biosci Biotechnol Biochem. 66(1):179–184.
  • Jägers E, Hillen-Maske E, Schmidt H, Steglich W, Horak E. 1987. Acetylierte terphenylchinon-derivate aus Anthracophyllum-arten (Agaricales). Z Naturforsch B. 42(10):1354–1360.
  • Jägers E, Hillen-Maske E, Steglich W. 1987. Inhaltsstoffe von Boletopsis leucomelaena (Basidiomycetes): Klärung der chemischen Natur von “Leucomelon” und “Protoleucomelon”. Z Naturforsch B. 42b:1349–1353.
  • Kaneko A, Tsukada M, Fukai M, Suzuki T, Nishio K, Miki K, Kinoshita K, Takahashi K, Koyama K. 2010. KDR kinase inhibitor isolated from the mushroom Boletopsis leucomelas. J Nat Prod. 73(5):1002–1004.
  • Kang HS, Choi JH, Cho WK, Park JC, Choi JS. 2004. A sphingolipid and tyrosinase inhibitors from the fruiting body of Phellinus linteus. Arch Pharm Res. 27(7):742–750.
  • Kang H-C, Yun B-S, Yu S-H, Yoo I-D. 2000. Chemical structures of the compounds isolated from the edible mushroom Sarcodon aspratus. Appl Biol Chem. 43(4):298–302.
  • Kim J-B, Jeong JI. 2013. Immunomodulating activities of Sarcodon aspratus. J Mushrooms. 11(2):92–98.
  • Kim K-J, Kim M-A, Jung J-H. 2008. Antitumor and antioxidant activity of protocatechualdehyde produced from Streptomyces lincolnensis M-20. Arch Pharm Res. 31(12):1572–1577.
  • Lee I-K, Jung J-Y, Seok S-J, Kim W-G, Yun B-S. 2006. Free radical scavengers from the medicinal mushroom Inonotus xeranticus and their proposed biogenesis. Bioorg Med Chem Lett. 16(21):5621–5624.
  • Lin H, Ji-Kai L. 2001. Two novel phenylacetoxylated p-terphenyls from Thelephora ganbajun Zang. Z Naturforsch C J Biosci. 56(11-12):983–987.
  • Liu L, Shi X-W, Zong S-C, Tang J-J, Gao J-M. 2012. Scabronine M, a novel inhibitor of NGF-induced neurite outgrowth from PC12 cells from the fungus Sarcodon scabrosus. Bioorg Med Chem Lett. 22(7):2401–2406.
  • Ma K, Han J, Bao L, Wei T, Liu H. 2014. Two sarcoviolins with antioxidative and α-glucosidase inhibitory activity from the edible mushroom Sarcodon leucopus collected in Tibet. J Nat Prod. 77(4):942–947.
  • Ma BJ, Hu Q, Liu JK. 2006. A new p‐terphenyl derivative from fruiting bodies of the basidiomycete Sarcodon laevigatum. J Basic Microbiol. 46(3):239–242.
  • Ma B-J, Liu J-K. 2005. An unusual nitrogenous terphenyl derivative from fruiting bodies of the basidiomycete Sarcodon scabrosus. Z Naturforsch B. 60(5):565–568.
  • Marcotullio MC. 2011. Sarcodon mushrooms: biologically active metabolites. In: Rasooli I, editor. Phytochemicals: bioactivities and impact on health. Rejika, Croatia: InTech Europe; p. 77–94.
  • Marcotullio MC, Mwankie G-M, Cossignani L, Tirillini B, Pagiotti R. 2008. Phytochemical analysis and antiradical properties of Sarcodon imbricatus (L.:Fr) Karsten. Nat Prod Commun. 3(11):1934578X0800301.
  • Marcotullio MC, Pagiotti R, Campagna V, Maltese F, Fardella G, Altinier G, Tubaro A. 2006. Glaucopine C, a new diterpene from the fruiting bodies of Sarcodon glaucopus. Nat Prod Res. 20(10):917–921.
  • Sakemi Y, Hagiwara M, Oikawa A, Sato M, Sato S, Sawa N, Nishizawa H, Shindo K. 2021. Antioxidant p-terphenyl compounds in the mushroom Boletopsis leucomelas (PERS.) FAYOD and how they change via cooking. Food Chem. 363:130281.
  • Shi X-W, Zhang A-L, Pescitelli G, Gao J-M. 2012. Secoscabronine M, a novel diterpenoid from the Chinese bitter mushroom Sarcodon scabrosus. Chirality. 24(5):386–390.
  • Shibata H, Irie A, Morita Y. 1998. New antibacterial diterpenoids from the Sarcodon scabrosus fungus. Biosci Biotechnol Biochem. 62(12):2450–2452.
  • Smith A, Javed S, Barad A, Myhre V, Li WM, Reimer K, Massicotte HB, Tackaberry LE, Payne GW, Egger KN, et al. 2017. Growth-inhibitory and immunomodulatory activities of wild mushrooms from North-Central British Columbia (Canada). Int J Med Mushrooms. 19(6):485–497.
  • Takahashi A, Kudo R, Kusano G, Nozoe S. 1992. 5-Lipoxygenase inhibitors isolated from the mushroom Boletopsis leucomelas (PERS.) FAYOD. Chem Pharm Bull (Tokyo). 40(12):3194–3196.
  • Takei T, Yoshida M, Ohnishi-Kameyama M, Kobori M. 2005. Ergosterol peroxide, an apoptosis-inducing component isolated from Sarcodon aspratus (Berk.) S. Ito. Biosci Biotechnol Biochem. 69(1):212–215.
  • Tringali C, Piattelli M, Geraci C, Nicolosi G, Rocco C. 1987. Previously unreported p-terphenyl derivatives with antibiotic properties from the fruiting bodies of Sarcodon leucopus (Basidiomycetes). A two-dimensional nuclear magnetic resonance study. Can J Chem. 65(10):2369–2372.
  • Wossa SW, Beekman AM, Ma P, Kevo O, Barrow RA. 2013. Identification of Boletopsin 11 and 12, antibiotics from the traditionally used fungus Boletopsis sp. Asian J Org Chem. 2(7):565–567.
  • Xie C, Koshino H, Esumi Y, Takahashi S, Onose J-i, Yoshikawa K, Abe N. 2008. Chapter 41, Vialinins A and B: novel bioactive compounds from Thelephora vialis, an edible mushroom in China. In: Shibamoto T, Kanazawa K, Shahidi F, et al., editors. Functional food and health. Washington, DC: American Chemical Society; p. 465–472.
  • Yaoita Y, Kohata R, Kakuda R, Machida K, Kikuchi M. 2002. Ceramide constituents from five mushrooms. Chem Pharm Bull (Tokyo). 50(5):681–684.
  • Zan L-f, Qin J-c, Zhang Y-m, Yao Y-h, Bao H-y, Li X. 2011. Antioxidant hispidin derivatives from medicinal mushroom Inonotus hispidus. Chem Pharm Bull (Tokyo). 59(6):770–772.
  • Zeb M, Lee CH. 2021. Medicinal properties and bioactive compounds from wild mushrooms native to North America. Molecules. 26(2):251.
  • Zhang H, Shao Q, Wang W, Zhang J, Zhang Z, Liu Y, Yang Y. 2017. Characterization of compounds with tumor–cell proliferation inhibition activity from mushroom (Phellinus baumii) mycelia produced by solid-state fermentation. Molecules. 22(5):698.
  • Zhang F-M, Wang Y-H, Zhao P, Yu F-Q. 2021. A new p-terphenyl derivative from the fruiting bodies of Sarcodon imbricatus (L.) P. Karst. Nat Prod Res. 35(15):2482–2488.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.