Antitoxic effect of herbal drugs mentioned in Ashtang Hridaya in the context of insect bites

Authors

  • Pranali Abaju Dudhe Department of Agadtantra, Mahatma Gandhi Ayurved College Hospital abd Research Center, Datta Meghe Institute of Higher Education and Research, Salod, Wardha, Maharashtra, India
  • Sonali Chalakh Department of Agadtantra, Mahatma Gandhi Ayurved College Hospital abd Research Center, Datta Meghe Institute of Higher Education and Research, Salod, Wardha, Maharashtra, India

DOI:

https://doi.org/10.18203/2349-3933.ijam20252543

Keywords:

Antitoxic effect, Ashtang Hridaya, Insect bite

Abstract

There is an immense variety of species, such as flies, bees, wasps, ants, lice, butterflies, dragonflies, and mosquitoes. These insects make up more than half of all known living organisms and could potentially account for over 90% of the distinct life forms on Earth. Insects frequently come into contact with humans, and their bites can trigger various symptoms due to their poisonous effects. Out of eight branches of Ayurveda, Agada tantra has the centre of interest in the description of various types of poison and the treatments dealing with poison, i.e., Agad (antidotes/antitoxic formulation). The Acharyas have documented various medicinal plants and Agad formulations specifically designed to treat Keet Visha (Insect bite poison) and its associated symptoms in their Samhitas. In a group of antitoxic drugs (Vishaghna Mahakashay), the drugs which are mentioned are used in various combinations or individually for the cure of poisoning or the symptoms related to poisoning. In these studies, we aim to offer an evidence-based approach to the choice of anti-toxic effect of herbal drugs, which is mentioned in the Ashtanga Hriday in the context of insect bites like Tagara, Nagkeshar, Haridra, Daruharidra, Manjishtha, and Patang. The data was sourced from Ayurvedic treatises and various textbooks on Agadatantra. Research papers published online were accessed using search engines like PubMed, Scopus, Google Scholar, AYUSH Research Portal, and DHARA. The reviewed Antitoxic drugs Haridra, Daruharidra, Patang, Manjishtha, Tagar and Nagkeshar all have antimicrobial and antibacterial activity, which may help to prevent the infection by killing the bacteria and can promote healing. Reviewed studies show most of the drugs are blood purifiers, some having antioxidant, anti-inflammatory, anti-pyretic, anti-virulence, analgesic, antihistaminic, and anti-microbial properties. The diverse pharmacological properties and actions of these ingredients make them valuable not only for treating insect bites but also for other conditions such as pain, inflammation, skin issues, gastroenteritis, and fever. Further research is essential to fully understand their efficacy in treating poisoning and related symptomatic conditions. This review aims to compile comprehensive knowledge of all antitoxic drugs with its constituents, highlighting their therapeutic, pharmacological and medicinal uses.

 

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References

Kumar P, Rajak M, Singh JK. Ethno-medicinal plant used for insect bite- A review article. World J Pharm Res. 2021;10(13):300-4.

Healthline. Identifying Bug Bites and Stings, and How to Treat Them. Available at: www.healthline. com/health/bug-bites. Accessed on 12 April 2025.

Acharya Trikamji VJ. Susrutha Samhitha of Susrutha, Kalpa Sthana; Kita Kalpa: Chapter 8, verse 3. 1st Edition. Varanasi: Chaukhambha Orientalia. 2021.

Yadav T. Agnivesha Charakasmahita. Reprint, Varanasi; Chaukhmba Publication: Sutrasthana. 2011;189.

Tripathi B. Ashtangahridayam’ Uttartantra- Keetalootavishpratishedham Adhyaya. Chaukamba Sanskrut Pratishthna, Delhi. 2012;1165.

Sharma AP. Sushruta Samhita of Maharshi Sushruta, The Chaukhamba Ayurvijan Granthamala 71, Edited with Sushrutvimarshini Hindi commentary, Varanasi. Volume 1. Sutrasthan, Chapter 1/6. Marutinandan Book Store. 2024.

Tabrizi R, Vakili S, Akbari M, Mirhosseini N, Lankarani KB, Rahimi M, et al. The effects of curcumin-containing supplements on biomarkers of inflammation and oxidative stress: A systematic review and meta-analysis of randomized controlled trials. Phytother Res. 2019;33(2):253-62. DOI: https://doi.org/10.1002/ptr.6226

Gómez-Estaca J, Balaguer M, López-Carballo G, Gavara R, Hernández-Muñoz P. Improving antioxidant and antimicrobial properties of curcumin by means of encapsulation in gelatin through electrohydrodynamic atomization. Food Hydrocoll. 2017;70:313-20. DOI: https://doi.org/10.1016/j.foodhyd.2017.04.019

Amalraj A, Varma K, Jacob J, Divya C, Kunnumakkara AB, Stohs SJ, et al. A Novel Highly Bioavailable Curcumin Formulation Improves Symptoms and Diagnostic Indicators in Rheumatoid Arthritis Patients: A Randomized, Double-Blind, Placebo-Controlled, Two-Dose, Three-Arm, and Parallel-Group Study. J Med Food. 2017;20(10):1022-30. DOI: https://doi.org/10.1089/jmf.2017.3930

Wang M, Jiang S, Zhou L, Yu F, Ding H, Li P, et al. Potential Mechanisms of Action of Curcumin for Cancer Prevention: Focus on Cellular Signaling Pathways and miRNAs. Int J Biol Sci. 2019;15(6):1200-14. DOI: https://doi.org/10.7150/ijbs.33710

Ng ZY, Wong JY, Panneerselvam J, Madheswaran T, Kumar P, Pillay V, et al. Assessing the potential of liposomes loaded with curcumin as a therapeutic intervention in asthma. Colloids Surf B Biointerfaces. 2018;172:51-9. DOI: https://doi.org/10.1016/j.colsurfb.2018.08.027

Yang QQ, Farha AK, Kim G, Gul K, Gan RY, Corke H. Antimicrobial and anticancer applications and related mechanisms of curcumin-mediated photodynamic treatments. Trends Food Sci Technol. 2020;97:341-54. DOI: https://doi.org/10.1016/j.tifs.2020.01.023

Song L, Zhang F, Yu J, Wei C, Han Q, Meng X. Antifungal effect and possible mechanism of curcumin mediated photodynamic technology against Penicillium expansum. Postharvest Biol Technol. 2020;167:111234. DOI: https://doi.org/10.1016/j.postharvbio.2020.111234

Thimmulappa RK, Mudnakudu-Nagaraju KK, Shivamallu C, Subramaniam KJT, Radhakrishnan A, Bhojraj S, et al. Antiviral and immunomodulatory activity of curcumin: A case for prophylactic therapy for COVID-19. Heliyon. 2021;7(2):e06350. DOI: https://doi.org/10.1016/j.heliyon.2021.e06350

Zeshan MQ, Ashraf M, Omer MO, Anjum AA, Ali MA, Najeeb M, et al. Antimicrobial activity of essential oils of Curcuma longa and Syzygium aromaticum against multiple drug-resistant pathogenic bacteria. Trop Biomed. 2023;40(2):174-82. DOI: https://doi.org/10.47665/tb.40.2.008

Potdar D, Hirwani RR, Dhulap S. Phyto-chemical and pharmacological applications of Berberis aristata. Fitoterapia. 2012;83(5):817-30. DOI: https://doi.org/10.1016/j.fitote.2012.04.012

Srivastava S, Srivastava M, Misra A, Pandey G, Rawat A. A review on biological and chemical diversity in Berberis (Berberidaceae). EXCLI J. 2015;14:247-67.

Kim J, Seo SM, Lee SG, Shin SC, Park IK. Nematicidal activity of plant essential oils and components from coriander (Coriandrum sativum), Oriental sweetgum (Liquidambar orientalis), and valerian (Valeriana wallichii) essential oils against pine wood nematode (Bursaphelenchus xylophilus). J Agric Food Chem. 2008;56(16):7316-20. DOI: https://doi.org/10.1021/jf800780f

Katoch O, Kaushik S, Kumar MS, Agrawala PK, Misra K. Radioprotective property of an aqueous extract from valeriana wallichii. J Pharm Bioallied Sci. 2012;4(4):327-32. DOI: https://doi.org/10.4103/0975-7406.103272

Singh V, Singh DC, Tiwari RC, Vashishtha K. A conceptual review on tagar (Valeriana wallichii DC) and it’s medicinal properties. World J Pharm Res. 2023;12(2):349-58.

Gilani AH, Khan AU, Jabeen Q, Subhan F, Ghafar R. Antispasmodic and blood pressure lowering effects of Valeriana wallichii are mediated through K+ channel activation. J Ethnopharmacol. 2005;100(3):347-52. DOI: https://doi.org/10.1016/j.jep.2005.05.010

Fosso MY, Chan KY, Gregory R, Chang CW. Library synthesis and antibacterial investigation of cationic anthraquinone analogs. ACS Comb Sci. 2012;14(3):231-5.

Winter RW, Cornell KA, Johnson LL, Ignatushchenko M, Hinrichs DJ, Riscoe MK. Potentiation of the antimalarial agent rufigallol. Antimicrob Agents Chemother. 1996;40(6):1408-11.

Tikhomirov AS, Shtil AA, Shchekotikhin AE. Advances in the Discovery of Anthraquinone-Based Anticancer Agents. Recent Pat Anticancer Drug Discov. 2018;13(2):159-83. DOI: https://doi.org/10.2174/1574892813666171206123114

Khan K, Karodi R, Siddiqui A, Thube S, Rub R. Development of anti-acne gel formulation of anthraquinones rich fraction from Rubia cordifolia (Rubiaceae). Int J Appl Res Nat Prod. 2011;4(4):28-36.

Davis RH, Agnew PS, Shapiro E. Antiarthritic activity of anthra-quinones found in aloe vera for podiatric medicine. J Am Padiatr Med Assoc. 1986;76(2):1-8. DOI: https://doi.org/10.7547/87507315-76-2-61

Wuthi-udomlert M, Kupittayanant P, Gritsanapan W. In overevaluation of antifungal activity of anthraquinone derivatives of Senna alata. J Health Res. 2010;24(3):117-22.

Fosso MY, Chan KY, Gregory R, Chang C-WT. Library synthesis and antibacterial investigation of cationic anthraquinone analogs. ACS Comb Sci. 2012;14(3):231-5. DOI: https://doi.org/10.1021/co2002075

Winter R, Cornell KA, Johnson LL, Ignatushchenko M, Hinrichs DJ, Riscoe MK. Potentiation of the antimalarial agent rufigallol. Antimicrob Agents Chemother. 1996;40(6):1408-11. DOI: https://doi.org/10.1128/AAC.40.6.1408

Watroly MN, Sekar M, Fuloria S, Gan SH, Jeyabalan S, Wu YS, et al. Chemistry. Biosynthesis, Physicochemical and Biological Properties of Rubidian: A Promising Natural Anthraquinone for New Drug Discovery and Development. 2021;15:4527-49. DOI: https://doi.org/10.2147/DDDT.S338548

Zhang X, Gao R, Liu Y, Cong Y, Zhang D, Zhang Y, et al. Anti-virulence activities of biflavonoids from Mesua ferrea L. flower. Drug Discov Ther. 2019;13(4):222-7.

Xiaochun Z, Rongrong G. Anti-virulence activities of bioflavonoids from Mesua ferrea L. flower. Drug Discov Ther. 2019;13(4):222-7. DOI: https://doi.org/10.5582/ddt.2019.01053

Joseph CR, Ilanchezhian R, Patgiri B, Harish CR. Pharmacognostical study of Nagkeshara (MESUA FERREA LINN) -An ingredient in VYAGHRIHAREETAKI AVLEHA. Int J Res Ayurved Phar. 2010;1(2):264-72.

Wu SQ, Otero M, Unger FM, Goldring MB, Phrutivorapongkul A, Chiari C, Kolb A, Viernstein H, Toegel S. Anti-inflammatory activity of an ethanolic Caesalpinia sappan extract in human chondrocytes and macrophages. J Ethnopharmacol. 2011;138(2):364-72. DOI: https://doi.org/10.1016/j.jep.2011.09.011

Nirmal NP, Panichayupakaranant P. Antioxidant, antibacterial, and anti-inflammatory activities of standardized brazilin-rich Caesalpinia sappan extract. Pharm Biol. 2015;53(9):1339-43. DOI: https://doi.org/10.3109/13880209.2014.982295

Insect bites and stings: antimicrobial prescribing. NICE guideline. 2020. Available at: www.nice.org.uk. Accessed on 11 April 2025.

Management of simple insect bites: where's the evidence? Drug Ther Bull. 2012;50(4):45-8. DOI: https://doi.org/10.1136/dtb.2012.04.0099

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Published

2025-08-21

How to Cite

Dudhe, P. A., & Chalakh, S. (2025). Antitoxic effect of herbal drugs mentioned in Ashtang Hridaya in the context of insect bites. International Journal of Advances in Medicine, 12(5), 519–523. https://doi.org/10.18203/2349-3933.ijam20252543