一株太子参植物内生真菌链格孢菌次生代谢产物的研究

陆冰云 ,  冯力 ,  杨雯慧 ,  龚远翔 ,  汪哲 ,  郝利君

中国药科大学学报 ›› 2026, Vol. 57 ›› Issue (3) : 322 -331.

PDF (865KB)
中国药科大学学报 ›› 2026, Vol. 57 ›› Issue (3) : 322 -331. DOI: 10.11665/j.issn.1000−5048.2026022802
论文

一株太子参植物内生真菌链格孢菌次生代谢产物的研究

作者信息 +

Secondary metabolites of the endophytic fungus Alternaria alstroemeriae from Pseudostellariae Radix

Author information +
文章历史 +
PDF (885K)

摘要

采用硅胶、ODS 反相、Sephadex LH-20 凝胶柱色谱及制备型 HPLC 等分离纯化手段,对太子参内生真菌链格孢菌Alternaria alstroemeriae WZ-419 大米固体发酵物进行系统化学成分研究,共分离获得 16 个化合物。根据其理化性质及波谱数据,上述化合物被鉴定为 alterpenoid A(1)、tricycloalternarene A(2)、细格菌素(3)、4′-表细链格孢烯(4)、交链孢烯(5)、交链孢醇(6)、细链格孢甲醚醇(7)、3-hydroxyalternariol-5-O-methylether(8)、alternariol-9-methyl ether(9)、alternariol 1′-hydroxy-9-methyl ether(10)、百叶酚(11)、dihydroalterperylenol(12)、alterinone A(13)、4-hydroxy-3-methoxy-5-(2E,6E-3,7,11-trimethyldodeca-2,6,10-trien-1-yl) benzoic acid(14)、hexylitaconic acid(15)和 altechromone A(16)。其中化合物 113 为新化合物,化合物 1415 为首次从 Alternaria 属中分离获得。体外活性实验对化合物1~16 的抗菌活性进行了初步评价。结果显示,化合物 36~810111314 对革兰氏阳性菌表现出较好的抑制作用,最小抑菌浓度为 8~64 µg/mL。本研究从太子参内生真菌中分离获得了一系列具有抗菌活性的代谢产物,为阐明其活性物质基础及开展药理活性研究提供了参考。

Abstract

Sixteen compounds were isolated from the solid rice culture of the endophytic fungusAlternaria alstroemeriae WZ-419 derived from Pseudostellariae Radix, using silica gel, ODS, Sephadex LH-20 column chromatography, and preparative HPLC. Their structures were elucidated based on physicochemical properties and comprehensive spectroscopic analyses, and identified as alterpenoid A (1), tricycloalternarene A (2), altenusin (3), 4'-epialtenuene (4), altenuene (5), alternariol (6), altenuisol (7), 3-hydroxyalternariol-5-O-methylether (8), alternariol-9-methyl ether (9), alternariol 1′-hydroxy-9-methyl ether (10), stemphyperylenol (11), dihydroalterperylenol (12), alterinone A (13), 4-hydroxy-3-methoxy-5-(2E,6E-3,7,11-trimethyldodeca-2,6,10-trien-1-yl) benzoic acid (14), hexylitaconic acid (15), and altechromone A (16). Among them, compound 1 and 13 were new, and compounds 14 and 15 were isolated from the genus Alternaria for the first time. The antibacterial activities of compounds 116 were evaluated in vitro. Compounds 3, 68, 10, 11, 13, and 14 exhibited notable inhibitory effects against Gram-positive bacteria, with minimal inhibitory concentrations ranging from 8 to 64 µg/mL.This study isolated a series of antimicrobial metabolites from the endophytic fungi of Pseudostellariae Radix, providing new insights into their bioactive constituents and laying a foundation for further pharmacological investigations.

关键词

太子参 / 内生真菌 / 链格孢菌 / 代谢产物 / 分离鉴定 / 抗菌活性

Key words

Pseudostellariae Radix / endophytic fungus / Alternaria alstroemeriae / secondary metabolites / isolation and identification / antimicrobial activity

引用本文

引用格式 ▾
陆冰云,冯力,杨雯慧,龚远翔,汪哲,郝利君. 一株太子参植物内生真菌链格孢菌次生代谢产物的研究[J]. 中国药科大学学报, 2026, 57(3): 322-331 DOI:10.11665/j.issn.1000−5048.2026022802

登录浏览全文

4963

注册一个新账户 忘记密码

参考文献

[1]

Hashem AH, Attia MS, Kandil EK, et al. Bioactive compounds and biomedical applications of endophytic fungi: a recent review[J]. Microb Cell Fact, 2023, 22(1): 107-130.

[2]

Gao Y, Xu Y, Dong ZJ, et al. Endophytic fungal diversity and its interaction mechanism with medicinal plants[J]. Molecules, 2025, 30(5): 1028.

[3]

Anand K, Kumar V, Prasher IB, et al. Bioactive molecules from fungal endophytes and their applications in pharmaceutical industries: challenges and future scope[J]. J Basic Microbiol, 2023, 63(7): 690-708.

[4]

Luo ZW, Yin FC, Wang XB, et al. Progress in approved drugs from natural product resources[J]. Chin J Nat Med, 2024, 22(3): 195-211.

[5]

Liu R, Peng XP, Newman DJ, et al. Unlocking the metabolic potential of endophytic fungi through epigenetics: a paradigm shift for natural product discovery and plant—microbe interactions[J]. Nat Prod Rep, 2025, 42(10): 1690-1716.

[6]

Feng L, Wang XJ, Guo XR, et al. Identification of novel target DCTPP1 for colorectal cancer therapy with the natural small—molecule inhibitors regulating metabolic reprogramming[J]. Angew Chem Int Ed, 2024, 63(47): e202402543.

[7]

Feng L, Wu TZ, Guo XR, et al. Discovery of natural resorcylic acid lactones as novel potent copper ionophores covalently targeting PRDX1 to induce cuproptosis for triple—negative breast cancer therapy[J]. ACS Cent Sci, 2025, 11(2): 357-370.

[8]

Li PS, Liu XN, Cui HH, et al. Ascomycotols A—C: rare sulfur/sulfone—containing scaffolds from mushroom endophytes with dual anti—inflammatory and antirenal fibrosis effects[J]. Org Lett, 2025, 27(24): 6474-6479.

[9]

Ban ZW, Yao FH, Luo LX, et al. Antibacterial and cytotoxic decahydrofluorene—class alkaloids from the marine—derived fungus Penicillium sp. SCSIO 41512[J]. J Nat Prod, 2026, 89(1): 128-138.

[10]

Singh VK, Kumar A. Secondary metabolites from endophytic fungi: production, methods of analysis, and diverse pharmaceutical potential[J]. Symbiosis, 2023, 90(2): 111-125.

[11]

Li XY, Li ZL. Dynamics and functional roles of fungal communities in Pseudostellaria heterophylla soil under continuous cropping[J]. Sci Rep, 2025, 15: 36758.

[12]

Lodewyk MW, Siebert MR, Tantillo DJ. Computational prediction of 1H and 13C chemical shifts: a useful tool for natural product, mechanistic, and synthetic organic chemistry[J]. Chem Rev, 2012, 112(3): 1839-1862.

[13]

Xing CP, Yang HT, Lv KJ, et al. Genome mining and heterologous expression—guided discovery of mangicol sesterterpenoids with antimicrobial and antineuroinflammatory activities[J]. J Agric Food Chem, 2025, 73(31): 19474-19483.

[14]

Yuan L, Zhao PJ, Ma J, et al. Tricycloalternarenes A—E: five new mixed terpenoids from the endophytic fungal strain Alternaria alternata Ly83[J]. Helv Chim Acta, 2008, 91(8): 1588-1594.

[15]

Chen YS, Leng JR, Lin ST, et al. Research on the antioxidant activity of metabolites from a sponge—derived fungus Alternaria sp. F49[J]. Acta Pharm Sin (药学学报), 2022, 57(7): 2120—2125.

[16]

Aly AH, Edrada—Ebel R, Indriani ID, et al. Cytotoxic metabolites from the fungal endophyte Alternaria sp. and their subsequent detection in its host plant Polygonum senegalense[J]. J Nat Prod, 2008, 71(6): 972-980.

[17]

Takahashi R, Isshiki SN, Hakozaki M, et al. Altenuene derivatives produced by an endophyte Alternaria alternata[J]. Nat Prod Res, 2025, 39(19): 5444-5451.

[18]

Wang LN, Han XH, Li XH, et al. Chemical constituents of n—butanol extract from Sanguisorba officinalis[J]. J Chin Med Mater (中药材), 2018, 41(9): 2108—2111.

[19]

Liu Y, Zhang XY, Cheng X, et al. Antibacterial compounds in the intestinal fungus Alternaria tenuissima SCSIO41701 of Nile tilapia[J]. Nat Prod Res Dev (天然产物研究与开发), 2021, 33(10): 1713—1719.

[20]

Mahmoud MM, Abdel—Razek AS, Soliman HSM, et al. Diverse polyketides from the marine endophytic Alternaria sp. LV52: structure determination and cytotoxic activities[J]. Biotechnol Rep, 2021, 33: e00628.

[21]

Zeng HT, Ye L, Yi WT. Study on secondary metabolites of endophytic fungus Talaromyces sp. from Uncaria rhynchophylla[J]. Nat Prod Res Dev (天然产物研究与开发), 2022, 34(10): 1707—1712.

[22]

Hou ZX, Sun CX, Chen XD, et al. Xanalterate A, altertoxin VIII and IX, perylenequinone derivatives from Antarctica—sponge—derived fungus Alternaria sp. HDN19—690[J]. Tetrahedron Lett, 2022, 96: 153778.

[23]

Zhang SY, Li ZL, Bai J, et al. A new perylenequinone from a halotolerant fungus, Alternaria sp. M6[J]. Chin J Nat Med, 2012, 10(1): 68-71.

[24]

Wang B, Bai ZQ, Lin XP, et al. Study on the chemical constituents of the endophytic fungus Aspergillus flavipes AIL8 from the mangrove plant Roussea[J]. Nat Prod Res Dev (天然产物研究与开发), 2016, 28(6): 860—863.

[25]

Zhang GJ, Dai LM, Zhang B, et al. Study on the chemical constituents of Clerodendrum bungei[J]. Chin J Chin Mater Med (中国中药杂志), 2017, 42(24): 4788—4793.

[26]

Ruan W, Ma QY, Guo JC, et al. A new cyclic peptide from betel nut endophytic fungus Alternaria sp. RW—AL[J]. Chem Nat Compd, 2024, 60(4): 693-696.

基金资助

国家自然科学基金项目(32300338)

国家自然科学基金项目(32470426)

AI Summary AI Mindmap
PDF (865KB)

0

访问

0

被引

详细

导航
相关文章

AI思维导图

/