Open Access
| Issue |
BIO Web Conf.
Volume 233, 2026
9th International Conference on Advances in Biosciences and Biotechnology: Emerging Innovations in Biomedical and Bioengineering Sciences (ICABB 2026)
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|---|---|---|
| Article Number | 02006 | |
| Number of page(s) | 13 | |
| Section | Environmental Biotechnology and Sustainable Agriculture | |
| DOI | https://doi.org/10.1051/bioconf/202623302006 | |
| Published online | 23 April 2026 | |
- R.Chavan, Yogesh & Thite, Sachin & Aparadh, Vishal & Kore DB. Phytochemical analysis of some weeds. Glob J Pharm Res [Internet] 2013;2. Available from: https://www.researchgate.net/publication/235920522Phytochemicalanalysisofsomeweeds. [Google Scholar]
- Zahara K, Ahmad N, Bibi Y, Bibi F, Sadaf HM, Sardar N. An insight to therapeutic potential and phytochemical profile of Solanum villosum (L). Medicine in Drug Discovery. 2019;2:100007. doi:10.1016/j.medidd.2019.100007. [Google Scholar]
- Gupta S, Sakshi Gupta C, Srivastava A, Lal EP. Food and nutritional security through wild edible vegetables or weeds in two district of Jharkhand, India. Journal of Pharmacognosy and Phytochemistry. 2017;6(6):1402–1409. [Google Scholar]
- Savage G, Vanhanen L. Oxalate contents of raw, boiled, wok-fried and pesto and juice made from fat hen (Chenopodium album) leaves. Foods. 2019;8(1):2. doi:10.3390/foods8010002. [Google Scholar]
- Singh S, Singh A, Hallan SS, Brangule A, Kumar B, Bhatia R. A compiled update on nutrition, phytochemicals, processing effects, analytical testing and health effects of Chenopodium album: A non-conventional edible plant (NCEP). Molecules. 2023;28(13):4902. doi:10.3390/molecules28134902. [Google Scholar]
- Singh R, Sharma P, Kumar N, et al. Phytochemical profiling and pharmacological potential of Chenopodium album. J Ethnopharmacol 2021;268:113579. doi:10.1016/jjep.2020.113579 [Google Scholar]
- Amodeo V, Marrelli M, Pontieri V, Cassano R, Trombino S, Conforti F, et al. Chenopodium album L. and sisymbrium officinale (L.) scop.: Phytochemical content and in vitro antioxidant and anti-inflammatory potential. Plants 2019;8(11):505. https://doi.org/10.3390/plants8110505. [Google Scholar]
- Saini R, Kumar D, Mittal A. Antimicrobial and phytochemical potential of chenopodium album linn. Int J Sci Technol Res 2019;8(7): 877–880. [Google Scholar]
- Arora SK, Itankar PR, Verma PR, Bharne AP, Kokare DM. Involvement of NFkB in the antirheumatic potential of Chenopodium album L., aerial parts extracts. J Ethnopharmacol 2014;155(1):222–9. [Google Scholar]
- Sharifi-Rad J, Sureda A, Tenore GC, et al. Biological activities of medicinal plants and their bioactive compounds. Biomolecules 2020;10(1):130. [Google Scholar]
- Rana S, Rahman S, Sana S, Biswas TK, Hashem AKM, Parvin S, et al. Anticancer potential of Chenopodium album leaf extract against Ehrlich ascites carcinoma cells in Swiss albino mice. Futur J Pharm Sci 2020;6(1):1–9. [Google Scholar]
- Ferreira LE, Castro PM, Chagas AC, et al. Anthelmintic activity of plant extracts: recent advances. Vet Parasitol 2020;283:109162. [Google Scholar]
- Salehi B, Sharifi-Rad J, Capanoglu E, et al. Plant-derived compounds in gastric ulcer prevention and treatment. Front Pharmacol 2021;12:708395. [Google Scholar]
- Almatroodi SA, Alsahli MA, Almatroudi A, et al. Hepatoprotective effects of natural compounds: a review. Front Pharmacol 2020;11:588387. [Google Scholar]
- Sharifi-Rad J, Rodrigues CF, Sharopov F, et al. Anti-inflammatory properties of natural products. Biomolecules 2020;10(1):100. [Google Scholar]
- Nepal A, Chakraborty M. An overview on medicinal plants of Sikkim Himalayas region with emphasis on antidiabetic: A review. J Pharmacogn Phytochem 2021;10(4):215–217. [Google Scholar]
- Mishra V, Chugh V, Dwivedi S V, Sharma KD. Food and nutraceuticals value of purslane (Portulaca oleracea L.): An overview. Pharma Innov J 2020;9(7):419–424. [Google Scholar]
- Zhou YX, Xin HL, Rahman K, et al. Portulaca oleracea: a review of phytochemistry and pharmacological effects. Biomed Pharmacother 2021;136:111240. [Google Scholar]
- Petropoulos SA, Fernandes A, Dias MI, Vasilakoglou IB, Petrotos K, Barros L, et al. Nutritional value, chemical composition and cytotoxic properties of common purslane (Portulaca oleracea L.) in relation to harvesting stage and plant part. Antioxidants 2019;8(8):293. [Google Scholar]
- Iranshahy M, Javadi B, Iranshahi M, et al. A review of pharmacological properties of purslane (Portulaca oleracea). J Ethnopharmacol 2022;290:115028.. [Google Scholar]
- Mishra V, Chugh V, Vishal Chugh C, Dwivedi S, Sharma K. Purslane (Portulaca oleracea L.): An underutilized wonder plant with potential pharmacological value. Pharma Innov J 2019;8(6): 236–246. [Google Scholar]
- El-Sayed NS, et al. Natural products as nephroprotective agents: mechanisms and therapeutic potential. Front Pharmacol 2022;13:839821. [Google Scholar]
- Abdel Moneim AE, Dkhil MA, Al-Quraishy S. The potential role of Portulaca oleracea as a neuroprotective agent in rotenone-induced neurotoxicity and apoptosis in the brain of rats. Pestic Biochem Physiol 2013;105(3):203–212. [Google Scholar]
- Olas B. New Perspectives on the Effect of Dandelion, Its Food Products and Other Preparations on the Cardiovascular System and Its Diseases. Nutrients 2022;14(7):1350. [Google Scholar]
- Wirngo FE, Lambert MN, Jeppesen PB. The physiological effects of Taraxacum officinale. J Ethnopharmacol 2022;292:115164. [Google Scholar]
- Li W, Luo F, Wu X, Fan B, Yang M, Zhong W, et al. Anti-Inflammatory Effects and Mechanisms of Dandelion in RAW264.7 Macrophages and Zebrafish Larvae. Front Pharmacol 2022;13: 906927. [Google Scholar]
- Olas B. New perspectives on the effect of dandelion on the cardiovascular system and its diseases. Nutrients 2022;14(7):1350. [Google Scholar]
- Kania-Dobrowolska M, Baraniak J. Dandelion (Taraxacum officinale L.) as a Source of Biologically Active Compounds Supporting the Therapy of Co-Existing Diseases in Metabolic Syndrome. Foods 2022; 11(18):2858. [Google Scholar]
- Gonzalez-Castejon M, Rodriguez-Casado A. Dietary phytochemicals and their anti-inflammatory activity. Nutrients 2021;13(1):305. [Google Scholar]
- Baraniak J, Kania-Dobrowolska M. The Dual Nature of Amaranth—Functional Food and Potential Medicine. Foods 2022;11(4):618. [Google Scholar]
- Peter EL, Nagendrappa PB, et al. Antidiabetic properties of Amaranthus species: a review. Biomed Pharmacother 2021;138:111522. [Google Scholar]
- Kumari S, Elancheran R, Devi R. Phytochemical screening, antioxidant, antityrosinase, and antigenotoxic potential of Amaranthus viridis extract. Indian J Pharmacol 2018;50(3):130–138. [Google Scholar]
- Sarker U, Oba S. Nutritional and pharmacological importance of Amaranthus. Food Chem 2020;311:125915. [Google Scholar]
- Sarker U, Hossain MN. Antioxidant and antimicrobial potential of leafy vegetables. Plants 2021;10(1):125. [Google Scholar]
- Ferreira LE, Castro PM, Chagas AC, et al. Plant-based anthelmintic compounds: advances and prospects. Vet Parasitol 2020;283:109162. [Google Scholar]
- Peter EL, et al. Medicinal plants in diabetes management: mechanisms and evidence. Biomed Pharmacother 2021;138:111522. [Google Scholar]
- Shreya Talreja, Shashank Tiwari. A Comprehensive Review of Achyranthes Aspera: Ethnopharmacology, Phytochemistry, and Therapeutic Potential. AYUSHDHARA 2023; 10(5):270–8. [Google Scholar]
- Kumar S, Pandey AK. Medicinal plants in wound healing: recent advances. J Ethnopharmacol 2020;257:112873. [Google Scholar]
- Rather MA, Dar BA, Sofi SN, et al. Antibacterial activity of plant-derived compounds. Microb Pathog 2021;149:104511. [Google Scholar]
- Batra P, Sharma AK. Anti-cancer potential of flavonoids: recent trends. Cancers 2021;13(5): 1203. [Google Scholar]
- Ahmad H, Gohar UF, Mukhtar H, Zia-UI-Haq M, Marc RA, Irimie M, et al. Achyranthes aspera Extracts as Adjuvants for the Redressal of Antibiotic Resistance. Pharmaceutics 2022;14(10):2219. [Google Scholar]
- Batiha GE, Beshbishy AM, Wasef LG, et al. Diuretic activity of medicinal plants: mechanisms and evidence. Biomed Pharmacother 2020; 131:110651. [Google Scholar]
- Wani SA, Kumar P Fenugreek: A review on its nutraceutical properties and utilization in various food products. J. Saudi Soc. Agric. Sci. 2018;17(2):97–106. [Google Scholar]
- Kim J, Noh W, Kim A, Choi Y, Kim YS. The Effect of Fenugreek in Type 2 Diabetes and Prediabetes: A Systematic Review and Meta-Analysis of Randomized Controlled Trials. Int. J. Mol. Sci. 2023;24(18):1–24. [Google Scholar]
- Myo H, Liana D, Phanumartwiwath A. Unlocking Therapeutic Potential: Comprehensive Extraction, Profiling, and Pharmacological Evaluation of Bioactive Compounds from Eclipta alba (L.) Hassk. for Dermatological Applications. Plants 2024;13(1):33. [Google Scholar]
- Nakbanpote W, Ruttanakorn M, Sukadeetad K, Sakkayawong N, Damrianant S. Effects of drying and extraction methods on phenolic compounds and in vitro assays of Eclipta prostrata Linn leaf extracts. ScienceAsia 2019;45(2):127–37. [Google Scholar]
- Helmy AS, Sherif NM, Ghanem HZ, Ibrahim NA, El Gendy ANG, Hussein NS, et al. Targeted metabolomics reveals the therapeutic impact of Eclipta prostrata on diet-induced non-alcoholic fatty liver disease in rats. J Appl Pharm Sci 2019;9:77–90. [Google Scholar]
- Chung IM, et al. Eclipta prostrata: phytochemistry and pharmacological activities. Plants 2021;10(1):123. [Google Scholar]
- Zhao Y, et al. Nutritional and pharmacological importance of medicinal plants. Front Pharmacol 2022;13:826998. [Google Scholar]
- Bhandirge SK, Patel V, Patidar A, Pasi A, Sharma V. An overview on phytochemical and pharmacological profile of Cassia tora Linn. Int J Herb Med 2016;4(6):50–5. [Google Scholar]
- Zhao Y, et al. Pharmacological activities of Cassia tora: a comprehensive review. Front Pharmacol 2022;13:826998. [Google Scholar]
- Gulia Y, Choudhary M. Antiulcer activity of hydroalcoholic extract of Cassia tora linn using ethanol induced ulcer. Int J Pharm Pharm Sci 2012;4(2):160–163. [Google Scholar]
- Tamhane AS, Mute VM, Takawale H, Awari DM. Preclinical evaluation and antiasthmatic activity of Cassia tora Linn. leaves. Int J Res Ayurveda Pharm 2012;3(2): 273–275. [Google Scholar]
- Chandrika UG, Prasad Kumara PAAS. Gotu Kola (Centella asiatica): Nutritional Properties and Plausible Health Benefits. In: Advances in Food and Nutrition Research. 2015; 76:125–57. [Google Scholar]
- CU ON, FU I, J ,, OJ P, PH W. Nutrient and Phytochemical Composition of Centella asiatica Leaves. Med Aromat Plants 2020;9(2):346. [Google Scholar]
- Kandasamy A, Aruchamy K, Rangasamy P, Varadhaiyan D, Gowri C, Oh TH, et al. Phytochemical Analysis and Antioxidant Activity of Centella Asiatica Extracts: An Experimental and Theoretical Investigation of Flavonoids. Plants 2023;12(20):3547. [Google Scholar]
- Krupa Samuel, Anuradha Medikeri, Tanveer Pasha, Moh. Faruque Ansari, Ashafaq Saudagar. Centella asiatica: A traditional herbal medicine. World J Adv Res Rev 2022;15(1):512–524. [Google Scholar]
- Umate SK, Marathe VR. Nutraceutical evaluation of Acalypha indica L. - A potential wild edible plant. Int J Green Pharm 2018;12(3): S510-S517. [Google Scholar]
- Sahukari R, Punabaka J, Bhasha S, Ganjikunta VS, Ramudu SK, Kesireddy SR, et al. Phytochemical profile, free radical scavenging and anti-inflammatory properties of Acalypha Indica root extract: Evidence from in vitro and in vivo studies. Molecules 2021;26(20):6251. [Google Scholar]
- Chekuri S, Panjala S, Anupalli RR. Cytotoxic activity of Acalypha indica L. hexane extract on breast cancer cell lines (MCF-7). J Phytopharm 2017;6(5): 264–268. [Google Scholar]
- Pradoo A, Sriapha C, Trakulsrichai S, Tongpoo A, Kheiawsawang M, Wananukul W. Clinical characteristics of acalypha indica poisoning. Int J Gen Med 2020;13: 539–545. [Google Scholar]
- Nunez-Estevez B, Finimundy TC, Carpena M, Barral-Martinez M, Calhelha R, Pires TCSP, et al. Bioactive Compound Profiling and Nutritional Composition of Three Species from the Amaranthaceae Family. 2021;5:20. [Google Scholar]
- Sravani VL, Abbas Z, Surya P A Review on Alternanthera sessilis. Indo Am J Pharm Sci 2017;4(9): 28452852.. [Google Scholar]
- Bhuyan B, Baishya K, Rajak P Effects of Alternanthera sessilis on Liver Function in Carbon Tetra Chloride Induced Hepatotoxicity in Wister Rat Model. Indian J Clin Biochem 2018;33(2):190–195. [Google Scholar]
- Mondal H, Saha S, Awang K, Hossain H, Ablat A, Islam MK hiru., et al. Central-stimulating and analgesic activity of the ethanolic extract of Alternanthera sessilis in mice. BMC Complement Altern Med 2014;14:398. [Google Scholar]
- Ganjare A, Raut Ni. Nutritional and medicinal potential of Amaranthus spinosus. J Pharmacogn Phytochem 2019;8(3):3149–3156. [Google Scholar]
- Potllapalli S, Narumalla J, Pavani A. NT, Govindadas D, Chikkannasetty SS. Study of diuretic activity of aqueous extract of amaranthus spinosus linn on rats. Int J Basic Clin Pharmacol 2016;6(1):141–144. [Google Scholar]
- Elangovan A, Ramachandran J, Lakshmanan DK, Ravichandran G, Thilagar S. Ethnomedical, phytochemical and pharmacological insights on an Indian medicinal plant: The balloon vine (Cardiospermum halicacabum Linn.). J. Ethnopharmacol. 2022;291: 115143. [Google Scholar]
- Savitha Basker G, Vishnupriya V, Krishnamohan S. Cardiospermum halicacabum Linn. - A review. Asian J. Pharm. Clin. Res.2017;10(10):23–6. [Google Scholar]
- Kukkar MR, Saluja AK, Sachdeva PD, Kukkar RR. In vivo investigation of the neuroprotective potential of Cardiospermum halicacabum linn. Int J Pharm Pharm Sci 2014;6(4):64–6. [Google Scholar]
- Sahoo J, Kumari P, Das D, Singh U. Nutritional Composition of Cassia Auriculata Flowers. Asian J Dairy Food Res 2023;9:1–5. [Google Scholar]
- Prasathkumar M, Raja K, Vasanth K, Khusro A, Sadhasivam S, Sahibzada MUK, et al. Phytochemical screening and in vitro antibacterial, antioxidant, anti-inflammatory, anti-diabetic, and wound healing attributes of Senna auriculata (L.) Roxb. leaves. Arab J Chem 2021;14(9):103345. [Google Scholar]
- Rajagopal A, Rajakannu S. Cassia auriculata Linn. extracts induce apoptosis and cell cycle arrest of A549 lung cancer cell lines: An in vitro approach. South African J Bot 2022;147:275–85. [Google Scholar]
- Vijayakumar R, Nachiappan V. Cassia auriculata flower extract attenuates hyperlipidemia in male Wistar rats by regulating the hepatic cholesterol metabolism. Biomed Pharmacother 2017;95:394–401. [Google Scholar]
- Nambirajan G, Karunanidhi K, Ganesan A, Rajendran R, Kandasamy R, Elangovan A, et al. Evaluation of antidiabetic activity of bud and flower of Avaram Senna (Cassia auriculata L.) In high fat diet and streptozotocin induced diabetic rats. Biomed Pharmacother 2018;108:1495–506. [Google Scholar]
- Adeku E, Osundahunsi OF, Malomo SA, Asasile II, Owolabi OM, Oyewole G. Phytochemical constituents and assessment of crude extracts from Boerhavia diffusa L. and Lonchocarpus sericeus (Poir.) Kunth ex DC. leaves for antioxidant and antibacterial activities. Meas Food 2022;5:100018. [Google Scholar]
- Vs S, Ts S, Lekshmi S. In vitro antidiabetic potential of Euphorbia hirta Linn.: A nutritionally significant plant. J Pharmacogn Phytochem [Internet] 2020;9(1):1–4. [Google Scholar]
- Ghosh P, Ghosh C, Das S, Das C, Mandal S, Chatterjee S. Botanical Description, Phytochemical Constituents and Pharmacological Properties of Euphorbia hirta Linn: A Review. Int J Heal Sci Res [Internet] 2019;9(March):273–286. [Google Scholar]
- Basma AA, Zakaria Z, Latha LY, Sasidharan S. Antioxidant activity and phytochemical screening of the methanol extracts of Euphorbia hirta L. Asian Pac J Trop Med 2011;4(5):386–90. [Google Scholar]
- Pioro-Jabrucka E, Pawelczak A, Przybyl JL, Baczek K, Wcglarz Z. Accumulation of phenolic and sterol compounds in Euphorbia hirta (L.). Herba Pol 2011;57(2):30–7. [Google Scholar]
- Rashmi SK, Kumar D. Antidiabetic effect of Euphorbia hirta leaves in alloxan induced diabetic mice. Pharmacologyonline 2010;1:61–9. [Google Scholar]
- Ahmad SF, Khan B, Bani S, Kaul A, Sultan P, Ali SA, et al. Immunosuppressive effects of Euphorbia hirta in experimental animals. Inflammopharmacology 2013;21(2):161–8. [Google Scholar]
- J. Abiodun D, E. Mark A, M. Umar A, G. Wilson O, R. Olufunke N. Nutritional Composition and Antioxidant Analyses of Ageratum Conyzoides Whole Plant. Int J Sci Res Publ 2020;10(8):922–8. [Google Scholar]
- Singh SB, Devi WR, Marina A, Devi WI, Swapana N, Singh CB. Ethnobotany , phytochemistry and pharmacology of Ageratum conyzoides Linn ( Asteraceae ). J Med Plants Res 2013;7(8):371–85. [Google Scholar]
- Agunbiade OS, Ojezele OM, Ojezele JO, Ajayi AY. Hypoglycaemic activity of commelina Africana and ageratum conyzoides in relation to their mineral composition. Afr Health Sci 2012;12(2):198–203. [Google Scholar]
- Ojewale AO, Akpan HB, Faduyile FA, Shallie PD, Akande AA, Adefule AK. Hepatoprotective activities of ethanolic roots extract of ageratum conyzoides on alloxan-induced hepatic damage in diabetic Wistar rats. J Morphol Sci 2019;36(1):39–45. [Google Scholar]
- Olufayo OO, Tayo GO, Akintunde AO. Assessment of the nutritive value of Phyllanthus niruri Linn. (stonebreaker) leaves. Niger J Anim Sci 2021;3(23):108–15. [Google Scholar]
- Bhushan V, Bharti SK, Krishnan S, Kumar A, Kumar A. Antidiabetic effectiveness of Phyllanthus niruri bioactive compounds via targeting DPP-I. Nat Prod Res 2024;1-7. [Google Scholar]
- Kumar S, Khan HM, Khan MA, Jalal M, Ahamad S, Shahid M, et al. Broad-spectrum antibacterial and antibiofilm activity of biogenic silver nanoparticles synthesized from leaf extract of Phyllanthus niruri. J King Saud Univ - Sci 2023;35(8):102904. [Google Scholar]
- Cheriose Nzien Alikwe P. Evaluation of the Proximate, Mineral, Phytochemical and Amino Acid Composition of Bidens Pilosa as Potential Feed/Feed Additive for Non-Ruminant Livestock. Anim Vet Sci 2014;2(2):1821. [Google Scholar]
- Abdulaziz M. Phytochemical Screening and Nutritional Constituents of Cleome Viscosa Root. J Drug Des Med Chem 2023:29–34. [Google Scholar]
- Sathiyaseelan A. KPT. and MK. LG. SC. Phytochemical analysis and in vitro antioxidant activities of cleome viscosa L. Eur J Biomed Pharm Sci 2018; 5(1):609–16. [Google Scholar]
- Bose U, Bala V, Ghosh TN, Gunasekaran K, Rahman AA. Antinociceptive, cytotoxic and antibacterial activities of Cleome viscosa leaves. Rev Bras Farmacogn 2011;21(1):165–9. [Google Scholar]
- Singh H, Ali SS, Khan NA, Mishra A, Mishra AK. Wound healing potential of Cleome viscosa Linn. seeds extract and isolation of active constituent. South African J Bot 2017;112:460–5. [Google Scholar]
- Pandharmise P, Bhadange D, Koche D. Nutritional analysis of raw seeds of crotalaria species from vidarbha region, maharashtra. World Journal of Pharmaceutical and Life Sciences 2019; 5(10):1–3. [Google Scholar]
- Lekharani C, Yanadaiah J.P, Ravindra Reddy K, Lakshman Kumar D VM. Hepatoprotective activity of aqueous ethanolic extract of aerial parts of crotalaria verrucosa linn paracetamol - induced hepatotoxicity in rats. J Pharm Biol Sci 2013;50-5. [Google Scholar]
- Billah MM, Huzaifa A, Khan MAK, Vabna NJ, Nawrin K, Rayhan MA. Suppression of inflammatory mediators by aqueous leaf extract of Crotalaria verrucosa: in vivo and in vitro analysis. Int J Basic Clin Pharmacol 2020;9(12):1897. [Google Scholar]
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