• 中国核心期刊(遴选)数据库收录期刊
  • 中文科技期刊数据库收录期刊
  • 中国期刊全文数据库收录期刊
  • 中国学术期刊综合评价数据库统计源期刊等
药物研究

石菖蒲化学成分、药理作用及毒理学研究进展

展开
  • 国家药品监督管理局信息中心, 北京 100163
温庆辉,女,硕士,研究方向:药物评价,生物化学

收稿日期: 2025-12-22

  修回日期: 2025-12-29

  录用日期: 2026-04-01

  网络出版日期: 2026-04-01

Research Progress on the Chemical Composition, Pharmacological Effects and Toxicology of Acorus tatarinowii Schott

Expand
  • Center for Information, National Medical Products Administration, Beijing 100163, China

Received date: 2025-12-22

  Revised date: 2025-12-29

  Accepted date: 2026-04-01

  Online published: 2026-04-01

摘要

石菖蒲(Acorus tatarinowii Schott)作为传统中药材,具有悠久的药用历史。近年来,其化学成分、药理作用及毒理学研究取得显著进展。本研究系统综述了石菖蒲的化学成分、多靶点药理作用机制及毒理学研究现状,旨在为其临床合理应用与质量标准化提供科学依据。化学成分分析表明,石菖蒲主要活性成分为挥发油,其中β-细辛醚含量最高,并含有黄酮类、生物碱类、多糖等多种活性物质。药理研究显示,石菖蒲具有显著的神经保护作用,可通过调节神经递质、抗氧化、抗炎及抑制细胞凋亡等多途径改善认知功能;其心血管保护作用涉及抑制炎症反应、促进血管新生及改善能量代谢等机制;此外,石菖蒲还具有抗菌、抗氧化、抗肿瘤及免疫调节等多重药理活性。毒理学研究表明,石菖蒲短期使用安全性较高,但其主要活性成分β-细辛醚存在一定剂量依赖性毒性,潜在风险需进一步系统评估。未来研究应聚焦于成分标准化、药效物质基础阐释及临床转化,推动石菖蒲在神经系统与心血管疾病等领域的合理应用与开发。

本文引用格式

温庆辉, 郭述金 . 石菖蒲化学成分、药理作用及毒理学研究进展[J]. 中国药物评价, 2026 , 43(1) : 50 -50-55 . DOI: 10.2095-3593.2026.030006

Abstract

Acorus tatarinowii Schott, as a traditional Chinese medicinal material, has a long history of medical use. In recent years, significant progress has been made in the research on its chemical composition, pharmacological effects, and toxicology. This paper systematically reviews the chemical composition, multi-target pharmacological mechanisms, and current status of toxicological research on Acorus tatarinowii Schott, aiming to provide a scientific basis for its clinical rational application and quality standardization. Chemical composition analysis shows that the main active component of Acorus tatarinowii Schott is volatile oil, with the highest content of β-asarone, and it also contains various active substances such as flavonoids, alkaloids, and polysaccharides. Pharmacological research shows that Acorus tatarinowii Schott has significant neuroprotective effects and can improve cognitive function by regulating neurotransmitters, antioxidant, anti-inflammatory, and inhibiting cell apoptosis. Its cardiovascular protective effects involve inhibiting inflammatory responses, promoting angiogenesis, and improving energy metabolism. In addition, Acorus tatarinowii Schott also has multiple pharmacological activities such as antimicrobial, antioxidant, anticancer, and immunomodulatory effects. Toxicological studies have shown that Acorus tatarinowii Schott has high safety in short-term use, but its main active component, β-asarone, has a certain dose-dependent toxicity, and further systematic assessment is needed to identify potential risks. Future research should focus on standardizing the composition, elucidating the material basis of pharmacological effects of Acorus tatarinowii Schott, and promoting the clinical translation, thereby advancing its rational application and development in the fields of nervous system and cardiovascular diseases.

参考文献

 [1] 国家药典委员会. 中华人民共和国药典(2025年版)[S]. 北京:中国医药科技出版社, 2025.
     [2] 支晓娟校. 神农本草经 [M]. 广州:广东科技出版社, 2022:8.
     [3] 邱路雅, 杨刚, 金琼, 等. 石菖蒲根茎化学成分及抗炎活性研究[J]. 中草药, 2022, 53(15):4617-4624.
     [4] 李鹏辉,孙瑜,冯小龙, 等. 石菖蒲抗癫痫的药理机制研究进展[J]. 中国实验方剂学杂志, 2022, 28(18):261268.
     [5] 石坚宏, 姬丽婷, 骆启晗, 等. 石菖蒲化学成分、药理作用及质量标志物预测分析研究进展[J]. 中成药, 2021, 43(5):1286-1290.
     [6] 郑甜甜, 谭娟娟, 张惠钰. 基于网络药理学和实验验证探究石菖蒲挥发油抗抑郁的作用机制[J]. 天然产物研究与开发, 2025, 37(1):159.
     [7] 谢芳, 刘智勇, 陈惠云. 石菖蒲挥发油成分的气相色谱-质谱实验结果分析[J]. 北方药学, 2024, 21(8):7-9.
     [8] Uebel T, Hermes L, Haupenthal S, et al. α-Asarone, β-asarone, and γ-asarone: current status of toxicological evaluation[J]. J Appl Toxicol, 2021, 41(8):1166-1179.
     [9] 乐颖娜,张金莲,钟凌云,等. 石菖蒲炮制的历史沿革、化学成分及神经药理作用研究进展[J]. 2025, 56 (11):4115-4120.
     [10] Al-Mijalli SH, Mrabti HN, Abdallah EM, et al. Acorus calamus as a promising source of new antibacterial agent against Pseudomonas aeruginosa and Staphylococcus aureus: deciphering volatile compounds and mode of action[J]. Microb Pathog, 2025, 200:107357.
     [11] Hu Y, Zhao Y, Mao Z, et al. Inhalation of Acori tatarinowii Rhizoma essential oil alleviates dyskinesia in Parkinson′s disease rats through the regulation of neuroinflammation[J]. J Ethnopharmacol, 348:119705.
     [12] Assaggaf H, Jeddi M, Mrabti HN, et al. Design of three-component essential oil extract mixture from Cymbopogon flexuosus, Carum carvi, and Acorus calamus with enhanced antioxidant activity[J]. Sci Rep, 2024, 14(1):9195.
     [13] Ibdah M, Hino S, Nawade B, et al. Identification and characterization of three nearly identical linalool/nerolidol synthase from Acorus calamus[J]. Phytochemistry, 2022, 202:113318.
     [14] Huang L, Feng Z, Xiang J, et al. Anti-inflammatory compounds from the rhizome of Acorus calamus var. angustatus Besser and their mechanism[J]. Nat Prod Res, 2024, 38(20):3669-3675.
     [15] Wang J, Zhang Y, Xu X, et al. ASP2-1, a polysaccharide from Acorus tatarinowii Schott, inhibits osteoclastogenesis via modulation of NFATc1 and attenuates LPS-induced bone loss in mice[J]. Int J Biol Macromol, 2020, 165(Pt B):2219-2230.
     [16] Zhong J, Qiu X, Yu Q, et al. A novel polysaccharide from Acorus tatarinowii protects against LPS-induced neuroinflammation and neurotoxicity by inhibiting TLR4-mediated MyD88/NF-κB and PI3K/Akt signaling pathways[J]. Int J Biol Macromol, 2020, 163:464-475.
     [17] Yu Q, Qiu X, Zhong J, et al. Structural identification and anti-neuroinflammatory effect of a heteropolysaccharide ATP50-3 from Acorus tatarinowii rhizome[J]. Int J Biol Macromol, 2024, 266(Pt 2):131254.
     [18] Wu J, Zhang HL, Guo S, et al. Acori Tatarinowii Rhizoma prevents the fluoxetine-induced multiple-drug resistance of Escherichia coli against antibiotics[J]. Phytomedicine, 123:155232.
     [19] 洪永福, 郭学敏, 孙连娜, 等. 石菖蒲中多糖成分的分析[J]. 药学实践杂志, 1998, (3): 149-151.
     [20] Kalra S, Sachdeva H, Bhushan Pant A, et al. Acorus calamus Linn.: a novel neuroprotective approach for traumatic brain injury in Drosophila melanogaster[J]. Brain Res, 2024, 1836:148953.
     [21] Venkatesan K. Anti-amnesic and anti-cholinesterase activities of α-asarone against scopolamine-induced memory impairments in rats[J]. Eur Rev Med Pharmacol Sci, 2022, 26(17):6344-6350.
     [22] Kalra S, Sachdeva H, Pant AB, et al. Neuroprotection in traumatic brain injury: effects of alpha-asarone and Acorus calamus extract in mice using weight drop model[J]. Naunyn Schmiedebergs Arch Pharmacol, 2025, 398(9):11855-11867.
     [23] Ukkirapandian K, Kayalvizhi E, Udaykumar KP, et al. The neuroprotective role of acorus calamus in developmental and histopathological changes in autism-induced wistar rats[J]. Cureus, 2022, 14(9):e29717.
     [24] Zang ZZ, Chen LM, Liu Y, et al. Uncovering the protective mechanism of the volatile oil of Acorus tatarinowii against acute myocardial ischemia injury using network pharmacology and experimental validation[J]. Evid Based Complement Alternat Med, 2021:6630795.
     [25] Lee J, Shin S, Park J, et al. Vasorelaxant effects and its mechanisms of the rhizome of Acorus gramineus on isolated rat thoracic aorta[J]. Sci Rep, 2025, 15(1):4386.
     [26] Xiao B, Huang X, Wang Q, et al. Beta-asarone alleviates myocardial ischemia-reperfusion injury by inhibiting inflammatory response and NLRP3 inflammasome mediated pyroptosis[J]. Biol Pharm Bull, 2020, 43(7):1046-1051.
     [27] Qiu Y, Zhao P, Xu L, et al. Therapeutic mechanisms of Acorus tatarinowii and its bioactive compounds in cardiovascular diseases: a comprehensive review[J]. Phytomedicine, 145:156988.
     [28] Sytykiewicz H, ukasik I, Goawska S. Chemical composition, anti-tyrosinase and antioxidant potential of essential oils from Acorus calamus (L.) and Juniperus communis (L.) [J]. Molecules, 2025, 30(11):2417.
     [29] Vinotha V, Yazhiniprabha M, Jeyavani J, et al. Synthesis and characterization of cry protein coated zinc oxide nanocomposites and its assessment against bacterial biofilm and mosquito vectors[J]. Int J Biol Macromol, 2022, 208:935-947.
     [30] Mikami M, Takuya O, Yoshino Y, et al. Acorus calamus extract and its component α-asarone attenuate murine hippocampal neuronal cell death induced by l-glutamate and tunicamycin[J]. Biosci Biotechnol Biochem, 2021, 85(3):493-501.
     [31] Bari MU, Hussain A, Aslam B, et al. Anti-arthritic appraisal of Acorus calamus L. extracts in complete Freund′s adjuvant-induced arthritic Wistar rats via regulating inflammatory cytokines and OPG/RANKL pathway[J]. Inflammopharmacology, 2026, 34(1):381-398.
     [32] Chang H, Shao L, Tao K, et al. Exploring CCND1 as a key target of Acorus calamus against RSV infection: network pharmacology, molecular docking, and bioinformatics analysis[J]. Curr Issues Mol Biol, 2025, 47(9):695.
     [33] Schnknecht K, Surdacka A, Rudenko L. Effectiveness of composed herbal extract in the treatment of gingivitis and oral and pharyngeal mucosa-review of studies[J]. Wiad Lek, 2021, 74(7):1737-1749.
     [34] Liu FX, Zhang DP, Ma YM, et al. Effect of Jiawei Tongqiao Huoxue decoction in basilar artery dolichoectasia mice through yes-associated protein/transcriptional co-activator with PDZ-binding motif pathway[J]. J Ethnopharmacol, 2023, 314:116599.
     [35] Chen J, Hao W, Zhang C, et al. Explore the therapeutic composition and mechanism of schisandra chinensis-Acorus tatarinowii Schott on Alzheimer′s disease by using an integrated approach on chemical profile, network pharmacology, and UPLC-QTOF/MS-based metabolomics analysis[J]. Oxid Med Cell Longev, 2022, 7(11):6362617.
     [36] Huang J, Xu Z, Yu C, et al. The volatile oil of Acorus tatarinowii Schott ameliorates Alzheimer′s disease through improving insulin resistance via activating the PI3K/AKT pathway[J]. Phytomedicine, 2024, 135:156168.
     [37] Malik R, Kalra S, Pooja, et al. Antioxidative and neuroprotective potential of Acorus calamus linn. and Cordia dichotoma G. Forst. In Alzheimer’s type dementia in rodent[J]. Brain Res, 2024, 1822:148616.
     [38] Zaheri AZ, Vafamand Y, Malayeri A, et al. The evaluation of the anti-inflammatory effects of Acorus calamus L. ethanolic extract on ovalbumin-induced allergic asthma in mice[J]. J Ethnopharmacol, 2025, 354:120033.
     [39] Sun Y, Bai Y, Li B, et al. β-Asaronol, the neuroactive component of Acorus tatarinowii: mitigating seizures with minimal developmental risk in dravet syndrome[J]. ACS Chem Neurosci, 2025, 16(18):3577-3590.
     [40] Narayana DBA, Mukne A. Reporting negative Ames test results for Indian Acorus calamus L., rhizome, extracts, and beta asarone[J]. Indian J Pharmacol, 2025, 57(5):302-307.
     [41] He X, Chen X, Yang Y, et al. Acorus calamus var. angustatus Besser: Insight into current research on ethnopharmacological use, phytochemistry, pharmacology, toxicology, and pharmacokinetics[J]. Phytochemistry, 2023, 210:113626.
     [42] Szczeblewski P, Wróblewski M, Borzyszkowska-Bukowska J, et al. The role of centrifugal partition chromatography in the removal of β-asarone from Acorus calamus essential oil[J]. Sci Rep, 2022, 12(1):22217.
文章导航

/