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Cytotoxic and apoptotic effect of Lemna minor L. extract on human osteosarcoma (Saos-2)

Year 2025, Volume: 12 Issue: 2, 321 - 330

Abstract

Osteosarcoma is a malignant form of bone cancer that responds poorly to chemotherapy and has a significant incidence of recurrence. Recent studies suggest the need for new natural agents to support treatment. Lemna minor is a macrophyte frequently used in traditional treatments and is known to have high antioxidant and antimicrobial properties due to the phenolic compounds it contains. This study investigated the anticancer activity of the L. minor on Saos-2 cancer cells and the apoptosis pathways. L. minor was extracted in ethanol by microwave technique. The extract showed cytotoxic activity (59-79%) on Saos-2 cells but did not harm healthy human bone cells (hFOB). Expression of bax, bcl-2, caspase-3, and caspase-8 genes was investigated by RT-PCR to examine the apoptosis-inducing pathways. RT-PCR analysis revealed that L. minor induced apoptosis via a mitochondria-dependent pathway by affecting the bax/bcl-2 ratio. The study suggests L. minor as a promising natural agent for bone cancer treatment.

Supporting Institution

Ankara University BAP

Project Number

21L0430004

Thanks

This study was supported by Ankara University Scientific Research Projects within the scope of project number 21L0430004.

References

  • Abdelrheem, D.A., Rahman, A. A., Elsayed, K.N., Abd El-Mageed, H.R., Mohamed, H.S., & Ahmed, S.A. (2021). Isolation, characterization, in vitro anticancer activity, DFT calculations, molecular docking, bioactivity score, drug-likeness, and admet studies of eight phytoconstituents from brown alga Sargassum platycarpum. Journal of Molecular Structure, 1225, 129245. https://doi.org/10.1016/j.molstruc.2020.129245
  • Abraham, J., Chakraborty, P., Chacko, A.M., & Khare, K. (2014). Cytotoxicity and antimicrobial effects of Pistia stratiotes leaves. International Journal of Drug Development and Research, 6(4), 208-215.
  • Agan, K., Zarringhalami, R., Agan, A.F., & Yasar, M. (2020). Anticancer effect of food supplements on Saos-2 Osteosarcoma cell. International Journal of Traditional and Complementary Medicine Research, 1(1), 18-24.
  • Alkimin, G.D., Daniel, D., Frankenbach, S., Serôdio, J., Soares, A.M., Barata, C., & Nunes, B. (2019). Evaluation of pharmaceutical toxic effects of non-standard endpoints on the macrophyte species Lemna minor and Lemna gibba. Science of The Total Environment, 657, 926-937. https://doi.org/10.1016/j.scitotenv.2018.12.002
  • Al-Snafi, A.E. (2019). Lemna minor: Traditional uses, chemical constituents, and pharmacological effects-A review. IOSR Journal of Pharmacy, 9(8), 6-11.
  • Beird, H.C., Bielack, S.S., Flanagan, A.M., Gill, J., Heymann, D., Janeway, K.A., & Gorlick, R. (2022). Osteosarcoma. Nature Reviews Disease Primers, 8(1), 77. https://doi.org/10.1038/s41572-022-00409-y
  • Bernardini, G., Minetti, M., Polizzotto, G., Biazzo, M. & Santucci, A. (2018). Pro-apoptotic activity of French Polynesian Padina pavonica extract on human osteosarcoma cells. Marine Drugs, 16(12), 504. https://doi.org/10.3390/md16120504
  • Bog, M., Appenroth, K.J., & Sree, K.S. (2019). Duckweed (Lemnaceae): its molecular taxonomy. Frontiers in Sustainable Food Systems, 3, 117. https://doi.org/10.3389/fsufs.2019.00117
  • Boice, A., & Bouchier-Hayes, L. (2020). Targeting apoptotic caspases in cancer. Biochimica et Biophysica Acta (BBA) Molecular Cell Research, 1867(6), 118688. https://doi.org/10.1016/j.bbamcr.2020.118688
  • Ceschin, S., Crescenzi, M., & Iannelli, M.A. (2020). Phytoremediation potential of the duckweed Lemna minuta and Lemna minor to remove nutrients from treated waters. Environmental Science and Pollution Research, 27(13), 15806 15814. https://doi.org/10.1007/s11356-020-08045-3
  • Chai, T.T., Ooh, K.F., Quah, Y., & Wong, FC. (2015). Edible freshwater macrophytes: a source of anticancer and antioxidative natural products - a mini-review. Phytochemistry Reviews, 14(3), 443-457. https://doi.org/10.1007/s11101-015-9399-z
  • Dafalla H.A. (2015). Antibacterial activity of methanol extracts of the leaves of Lemna minor against eight different bacterial species. International Journal of Pharmaceutics, 5, 46-50. https://doi.org/10.1186/s12906-020-03183-0
  • Doğan, Y.S. (2011). Lactobacillus, Propionibacterium ve Bifidobacterium türlerinin farklı türlerinin konjuge linoleik asit üretiminin probiyotik önemi [Probiotic importance of conjugated linoleic acid production of different species of Lactobacillus, Propionibacterium and Bifidobacterium species] [Unpublished master thesis]. Gazi University.
  • Doğan, Y.S., Atasagun, S., & Ergönül, M.B. (2022). Determination of chemical content of Lemna minor L. by GC-MS and investigation of antioxidant activity. Communications Faculty of Sciences University of Ankara Series C Biology, 31(1), 53 64. https://doi.org/10.53447/communc.1122558
  • Du, Y., Wang, R., Zhang, H., & Liu, J. (2015). Antitumor constituents of the wetland plant Nymphoides peltata: a case study for the potential utilization of constructed wetland plant resources. Natural Product Communications, 10(2), 233 236. https://doi.org/10.1177/1934578X1501000203
  • Durfee, R.A, Mohammed, M., & Luu, H.H. (2016). Review of osteosarcoma and current management. Rheumatology and Therapy, 3(2), 221-43. https://doi.org/10.1007/s40744-016-0046-y
  • Ergönül, M.B., Nassouhi, D., & Atasağun, S. (2019). Modeling of the bioaccumulative efficiency of Pistia stratiotes exposed to Pb, Cd, and Pb+ Cd mixtures in nutrient-poor media. International Journal of Phytoremediation, 22, 201 209. https://doi.org/10.1080/15226514.2019.1652566
  • Erkekoğlu, P., & Baydar, T. (2021). Current in vitro cytotoxicity tests. Hacettepe University Journal of the Faculty of Pharmacy, 41(1), 45-63.
  • González-Renteria, M., Del Carmen Monroy-Dosta, M., Guzmán-García, X., & Hernández-Calderas, I. (2020). Antibacterial activity of Lemna minor extracts against Pseudomonas fluorescens and safety evaluation in a zebrafish model. Saudi Journal of Biological Sciences, 27(12), 3465-3473. https://doi.org/10.1016/j.sjbs.2020.09.043
  • Gulcin, I., Kirecci, E., Akkemik, E., Topal, F., & Hisar, O. (2010). Antioxidant, antibacterial, and anticandidal activities of an aquatic plant: duckweed (Lemna minor L. Lemnaceae). Turkish Journal of Biology, 34(2), 175-188.
  • Guner, A., & Ekim, T. (2014). Resimli Türkiye Florası [Illustrated Flora of Turkey]. Türkiye İş Bankası Yayınları, İstanbul.
  • Iskandar, I., Kurnia, D., Mulyani, Y., Zidni, I., Riyanto, A., & Andriani, Y. (2021). Use of Lemna sp as antioxidant in feed and its effect on Nile Tilapia (Oreochromis niloticus) performance. 1st International Conference on Islam, Science, and Technology, Indonesia, 11-12 July 2019, Bandung, Indonesia. https://doi.org/10.4108/eai.11-7-2019.2297619
  • Janani K.S., Gayatri Devi.R., & Selvaraj, J. (2022). Antiproliferative effect of Merremia emarginata (Burm. f.) leaf extract on Saos-2 cell line. Journal of Pharmaceutical Negative Results, 13 (6), 1805-1810. https://doi.org/10.47750/pnr.2022.13.S06.237
  • Justin, L.D., Olukanni, D.O., & Babaremu, K.O. (2022). Performance assessment of local aquatic macrophytes for domestic wastewater treatment in Nigerian communities: A review. Heliyon, e10093. https://doi.org/10.1016/j.heliyon.2022.e10093
  • Kamran, S., Sinniah, A., Abdulghani, M.A., & Alshawsh, M.A. (2022). Therapeutic potential of certain terpenoids as anticancer agents: A scoping review. Cancers, 14(5), 1100-1115. https://doi.org/10.3390/cancers14051100
  • Karami, Z., Emam-Djomeh, Z., Mirzaee, H.A., Khomeiri, M., Mahoonak, A.S., & Aydani, E. (2015). Optimization of microwave-assisted extraction (MAE) and soxhlet extraction of phenolic compound from licorice root. Journal of Food Science and Technology, 52(6), 3242-3253. https://doi.org/10.1007/s13197-014-1384-9
  • Kazantseva, L., Becerra, J., & Santos-Ruiz, L. (2022). Traditional medicinal plants as a source of inspiration for osteosarcoma therapy. Molecules, 27(15), 5008. https://doi.org/10.3390/molecules27155008
  • Khan, M.A., Wani, G.A., Majid, H., Farooq, F.U., Reshi, Z.A., Husaini, A.M., & Shah, M.A. (2020). Diferential bioaccumulation of select heavy metals from wastewater by Lemna minor. Bull Environ Contam Toxicol, 105(5), 777–783. https://doi.org/10.1007/s00128-020-03016-3
  • Kim, J., & Gilbert, J.L. (2019). In vitro cytotoxicity of galvanically coupled magnesium‐titanium particles on human osteosarcoma SAOS2 cells: A potential cancer therapy.Jo urnal of Biomedical Materials Research Part B: Applied Biomaterials, 107(1), 178-189. https://doi.org/10.1002/jbm.b.34109
  • Kim, Y., Hyun, S.H., Park, H.E., & Choi, H.K. (2012). Metabolic profiling, free-radical scavenging, and tyrosinase inhibitory activities of Lemna minor whole plants cultivated in various concentrations of proline and sucrose. Process Biochemistry, 47(1), 62-68. https://doi.org/10.1016/j.procbio.2011.10.010
  • Klaus, J., Nikolai, B., & Eric, L. (2013). Telling duckweed apart: genotyping technologies for the Lemnaceae. Chinese Journal of Applied Environmental Biology, 19, 1-10. https://doi.org/10.3724/SP.J.1145.2013.00001
  • Kuang, J., Yan, X., Genders, A.J., Granata, C., & Bishop, D.J. (2018). An overview of technical considerations when using quantitative real-time PCR analysis of gene expression in human exercise research. PloS One, 13(5), e0196438. https://doi.org/10.1371/journal.pone.0196438
  • Kumar, S., Kumar, R., Dwivedi, A., & Pandey, A.K. (2014). In vitro antioxidant, antibacterial, and cytotoxic activity and in vivo effect of Syngonium podophyllum and Eichhornia crassipes leaf extracts on isoniazid induced oxidative stress and hepatic markers. BioMed Research International, 1-11. https://doi.org/10.1155/2014/459452
  • Li, W.H., Wu, H.J., Li, Y.X., Pan, H.G., Meng, T., & Wang, X. (2016). MicroRNA-143 promotes apoptosis of osteosarcoma cells by caspase-3 activation via targeting Bcl-2. Biomedicine & Pharmacotherapy, 80, 8-15. https://doi.org/10.1016/j.biopha.2016.03.001
  • Luca, A., Bellavia, D., Raimondi, L., Carina, V., Costa, V., Fini, M., & Giavaresi, G. (2022). Multiple Effects of Resveratrol on Osteosarcoma Cell Lines. Pharmaceuticals, 15(3), 342. https://doi.org/10.3390/ph15030342
  • Majeed, S., Danish, M., Zakariya, N.A., Hashim, R., Ansari, M.T., & Sisinthy, S.P. (2022). Tailored silver nanoparticles capped with gallic acid and its potential toxicity via ROS-mediated pathway against osteosarcoma cells. Materials Today Communications, 32, 103844. https://doi.org/10.1016/j.mtcomm.2022.103844
  • Mintz, M.B., Sowers, R., Brown, K.M., Hilmer, S.C., Mazza, B., Huvos, A.G., & Stephan, D.A. (2005). An expression signature classifies chemotherapy-resistant pediatric osteosarcoma. Cancer Research, 65(5), 1748-1754. https://doi.org/10.1158/0008-5472.CAN-04-2463
  • Nassouhi, D., Ergönül, M.B., Fikirdeşici, Ş., Karacakaya, P., & Atasağun, S. (2018). Ağır metal kirliliğinin biyoremediasyonunda sucul makrofitlerin kullanımı [Use of aquatic macrophytes in bioremediation of heavy metal pollution]. Süleyman Demirel Üniversitesi Eğirdir Su Ürünleri Fakültesi Dergisi, 14(2), 148-165. https://doi.org/10.22392/egirdir.371340
  • Panfili, I., Bartucca, M.L., & Del Buono, D. (2019). The treatment of duckweed with a plant biostimulant or a safener improves the plant capacity to clean water polluted by terbuthylazine. Science of The Total Environment, 646, 832 840. https://doi.org/10.1016/j.scitotenv.2018.07.356
  • Petrova-Tacheva, V., Ivanov, V., & Atanasov, A. (2020). Lemna minor L. as a source of antioxidants. Trakia Journal of Sciences, 18(1), 157 162. https://doi.org/10.15547/tjs.2020.s.01.029
  • Prakash, D., Suri, S., Upadhyay, G., & Singh, B.N. (2007). Total phenol, antioxidant and free radical scavenging activities of some medicinal plants. International Journal of Food Sciences and Nutrition, 58(1), 18-28. https://doi.org/10.1080/09637480601093269
  • Rejmankova, E. (2011). The role of macrophytes in wetland ecosystems. Journal of Ecology and Environment, 34(4), 333-345. https://doi.org/10.5141/JEFB.2011.044
  • Saritha, K., & Saraswathi, U. (2014). Antioxidant activity of gold nanoparticles synthesized using Lemna minor. World Journal of Pharmaceutical Sciences, 1545-1551.
  • Tan L.P., Hamdan R.H., Mohamed M., Choong S.S., Chan Y.Y., & Lee S.H. (2018). Antibacterial activity and toxicity of Duckweed, Lemna minor L. (Arales: Lemnaceae) from Malaysia. Malaysian Journal of Microbiology, 14(5), 387-392. 10.21161/mjm.114417
  • Tarkang, P.A., Agbor, G.A., Ayong, L.S., Okalebo, F.A., & Guantai, A.N. (2015). Cytotoxicity and in vivo toxicological screening of a polyherbal product, nefang. World Journal of Pharmaceutical, Research, 4, 82-101.
  • Tran, H.C., Le, H.A. T., & Le, T.T. (2021). Effects of Enzyme Types and Extraction Conditions on Protein Recovery and Antioxidant Properties of Hydrolysed Proteins Derived from Defatted Lemna minor. Applied Science and Engineering Progress, 14(3), 360-369. https://doi.org/10.14416/j.asep.2021.05.003
  • Unadkat, K., & Parikh, P. (2021). Therapeutic potential of some aquatic macrophytes: An overview. Trends in Medical Research, 16 (1), 1-6. https://doi.org/10.3923/tmr.2021.1.6
  • Wang, Z., Li, H., Yan, J., & Liu, Y. (2021). Flavonoid compound breviscapine suppresses human osteosarcoma Saos‐2 progression property and induces apoptosis by regulating mitochondria‐dependent pathways. Journal of Biochemical and Molecular Toxicology, 35(1), e22633. https://doi.org/10.1002/jbt.22633
  • Yağcıoğlu, P. (2015). Farklı ekstraksiyon metotları ile adaçayı (Salvia officinalis L.) bitkisinden antioksidan ekstraksiyonunun optimizasyonu [Optimization of antioxidant extraction from sage (Salvia officinalis L.) plant with different extraction methods] [Unpublished master thesis]. İstanbul Technic University.
  • Yahaya, N., Hamdan, N.H., Zabidi, A.R., Mohamad, A.M., Suhaimi, M.L.H., Johari, M.A.A. M., & Yahya, H. (2022). Duckweed as a future food: Evidence from metabolite profile, nutritional and microbial analyses. Future Foods, 5, 100128. https://doi.org/10.1016/j.fufo.2022.100128

Cytotoxic and apoptotic effect of Lemna minor L. extract on human osteosarcoma (Saos-2)

Year 2025, Volume: 12 Issue: 2, 321 - 330

Abstract

Osteosarcoma is a malignant form of bone cancer that responds poorly to chemotherapy and has a significant incidence of recurrence. Recent studies suggest the need for new natural agents to support treatment. Lemna minor is a macrophyte frequently used in traditional treatments and is known to have high antioxidant and antimicrobial properties due to the phenolic compounds it contains. This study investigated the anticancer activity of the L. minor on Saos-2 cancer cells and the apoptosis pathways. L. minor was extracted in ethanol by microwave technique. The extract showed cytotoxic activity (59-79%) on Saos-2 cells but did not harm healthy human bone cells (hFOB). Expression of bax, bcl-2, caspase-3, and caspase-8 genes was investigated by RT-PCR to examine the apoptosis-inducing pathways. RT-PCR analysis revealed that L. minor induced apoptosis via a mitochondria-dependent pathway by affecting the bax/bcl-2 ratio. The study suggests L. minor as a promising natural agent for bone cancer treatment.

Project Number

21L0430004

References

  • Abdelrheem, D.A., Rahman, A. A., Elsayed, K.N., Abd El-Mageed, H.R., Mohamed, H.S., & Ahmed, S.A. (2021). Isolation, characterization, in vitro anticancer activity, DFT calculations, molecular docking, bioactivity score, drug-likeness, and admet studies of eight phytoconstituents from brown alga Sargassum platycarpum. Journal of Molecular Structure, 1225, 129245. https://doi.org/10.1016/j.molstruc.2020.129245
  • Abraham, J., Chakraborty, P., Chacko, A.M., & Khare, K. (2014). Cytotoxicity and antimicrobial effects of Pistia stratiotes leaves. International Journal of Drug Development and Research, 6(4), 208-215.
  • Agan, K., Zarringhalami, R., Agan, A.F., & Yasar, M. (2020). Anticancer effect of food supplements on Saos-2 Osteosarcoma cell. International Journal of Traditional and Complementary Medicine Research, 1(1), 18-24.
  • Alkimin, G.D., Daniel, D., Frankenbach, S., Serôdio, J., Soares, A.M., Barata, C., & Nunes, B. (2019). Evaluation of pharmaceutical toxic effects of non-standard endpoints on the macrophyte species Lemna minor and Lemna gibba. Science of The Total Environment, 657, 926-937. https://doi.org/10.1016/j.scitotenv.2018.12.002
  • Al-Snafi, A.E. (2019). Lemna minor: Traditional uses, chemical constituents, and pharmacological effects-A review. IOSR Journal of Pharmacy, 9(8), 6-11.
  • Beird, H.C., Bielack, S.S., Flanagan, A.M., Gill, J., Heymann, D., Janeway, K.A., & Gorlick, R. (2022). Osteosarcoma. Nature Reviews Disease Primers, 8(1), 77. https://doi.org/10.1038/s41572-022-00409-y
  • Bernardini, G., Minetti, M., Polizzotto, G., Biazzo, M. & Santucci, A. (2018). Pro-apoptotic activity of French Polynesian Padina pavonica extract on human osteosarcoma cells. Marine Drugs, 16(12), 504. https://doi.org/10.3390/md16120504
  • Bog, M., Appenroth, K.J., & Sree, K.S. (2019). Duckweed (Lemnaceae): its molecular taxonomy. Frontiers in Sustainable Food Systems, 3, 117. https://doi.org/10.3389/fsufs.2019.00117
  • Boice, A., & Bouchier-Hayes, L. (2020). Targeting apoptotic caspases in cancer. Biochimica et Biophysica Acta (BBA) Molecular Cell Research, 1867(6), 118688. https://doi.org/10.1016/j.bbamcr.2020.118688
  • Ceschin, S., Crescenzi, M., & Iannelli, M.A. (2020). Phytoremediation potential of the duckweed Lemna minuta and Lemna minor to remove nutrients from treated waters. Environmental Science and Pollution Research, 27(13), 15806 15814. https://doi.org/10.1007/s11356-020-08045-3
  • Chai, T.T., Ooh, K.F., Quah, Y., & Wong, FC. (2015). Edible freshwater macrophytes: a source of anticancer and antioxidative natural products - a mini-review. Phytochemistry Reviews, 14(3), 443-457. https://doi.org/10.1007/s11101-015-9399-z
  • Dafalla H.A. (2015). Antibacterial activity of methanol extracts of the leaves of Lemna minor against eight different bacterial species. International Journal of Pharmaceutics, 5, 46-50. https://doi.org/10.1186/s12906-020-03183-0
  • Doğan, Y.S. (2011). Lactobacillus, Propionibacterium ve Bifidobacterium türlerinin farklı türlerinin konjuge linoleik asit üretiminin probiyotik önemi [Probiotic importance of conjugated linoleic acid production of different species of Lactobacillus, Propionibacterium and Bifidobacterium species] [Unpublished master thesis]. Gazi University.
  • Doğan, Y.S., Atasagun, S., & Ergönül, M.B. (2022). Determination of chemical content of Lemna minor L. by GC-MS and investigation of antioxidant activity. Communications Faculty of Sciences University of Ankara Series C Biology, 31(1), 53 64. https://doi.org/10.53447/communc.1122558
  • Du, Y., Wang, R., Zhang, H., & Liu, J. (2015). Antitumor constituents of the wetland plant Nymphoides peltata: a case study for the potential utilization of constructed wetland plant resources. Natural Product Communications, 10(2), 233 236. https://doi.org/10.1177/1934578X1501000203
  • Durfee, R.A, Mohammed, M., & Luu, H.H. (2016). Review of osteosarcoma and current management. Rheumatology and Therapy, 3(2), 221-43. https://doi.org/10.1007/s40744-016-0046-y
  • Ergönül, M.B., Nassouhi, D., & Atasağun, S. (2019). Modeling of the bioaccumulative efficiency of Pistia stratiotes exposed to Pb, Cd, and Pb+ Cd mixtures in nutrient-poor media. International Journal of Phytoremediation, 22, 201 209. https://doi.org/10.1080/15226514.2019.1652566
  • Erkekoğlu, P., & Baydar, T. (2021). Current in vitro cytotoxicity tests. Hacettepe University Journal of the Faculty of Pharmacy, 41(1), 45-63.
  • González-Renteria, M., Del Carmen Monroy-Dosta, M., Guzmán-García, X., & Hernández-Calderas, I. (2020). Antibacterial activity of Lemna minor extracts against Pseudomonas fluorescens and safety evaluation in a zebrafish model. Saudi Journal of Biological Sciences, 27(12), 3465-3473. https://doi.org/10.1016/j.sjbs.2020.09.043
  • Gulcin, I., Kirecci, E., Akkemik, E., Topal, F., & Hisar, O. (2010). Antioxidant, antibacterial, and anticandidal activities of an aquatic plant: duckweed (Lemna minor L. Lemnaceae). Turkish Journal of Biology, 34(2), 175-188.
  • Guner, A., & Ekim, T. (2014). Resimli Türkiye Florası [Illustrated Flora of Turkey]. Türkiye İş Bankası Yayınları, İstanbul.
  • Iskandar, I., Kurnia, D., Mulyani, Y., Zidni, I., Riyanto, A., & Andriani, Y. (2021). Use of Lemna sp as antioxidant in feed and its effect on Nile Tilapia (Oreochromis niloticus) performance. 1st International Conference on Islam, Science, and Technology, Indonesia, 11-12 July 2019, Bandung, Indonesia. https://doi.org/10.4108/eai.11-7-2019.2297619
  • Janani K.S., Gayatri Devi.R., & Selvaraj, J. (2022). Antiproliferative effect of Merremia emarginata (Burm. f.) leaf extract on Saos-2 cell line. Journal of Pharmaceutical Negative Results, 13 (6), 1805-1810. https://doi.org/10.47750/pnr.2022.13.S06.237
  • Justin, L.D., Olukanni, D.O., & Babaremu, K.O. (2022). Performance assessment of local aquatic macrophytes for domestic wastewater treatment in Nigerian communities: A review. Heliyon, e10093. https://doi.org/10.1016/j.heliyon.2022.e10093
  • Kamran, S., Sinniah, A., Abdulghani, M.A., & Alshawsh, M.A. (2022). Therapeutic potential of certain terpenoids as anticancer agents: A scoping review. Cancers, 14(5), 1100-1115. https://doi.org/10.3390/cancers14051100
  • Karami, Z., Emam-Djomeh, Z., Mirzaee, H.A., Khomeiri, M., Mahoonak, A.S., & Aydani, E. (2015). Optimization of microwave-assisted extraction (MAE) and soxhlet extraction of phenolic compound from licorice root. Journal of Food Science and Technology, 52(6), 3242-3253. https://doi.org/10.1007/s13197-014-1384-9
  • Kazantseva, L., Becerra, J., & Santos-Ruiz, L. (2022). Traditional medicinal plants as a source of inspiration for osteosarcoma therapy. Molecules, 27(15), 5008. https://doi.org/10.3390/molecules27155008
  • Khan, M.A., Wani, G.A., Majid, H., Farooq, F.U., Reshi, Z.A., Husaini, A.M., & Shah, M.A. (2020). Diferential bioaccumulation of select heavy metals from wastewater by Lemna minor. Bull Environ Contam Toxicol, 105(5), 777–783. https://doi.org/10.1007/s00128-020-03016-3
  • Kim, J., & Gilbert, J.L. (2019). In vitro cytotoxicity of galvanically coupled magnesium‐titanium particles on human osteosarcoma SAOS2 cells: A potential cancer therapy.Jo urnal of Biomedical Materials Research Part B: Applied Biomaterials, 107(1), 178-189. https://doi.org/10.1002/jbm.b.34109
  • Kim, Y., Hyun, S.H., Park, H.E., & Choi, H.K. (2012). Metabolic profiling, free-radical scavenging, and tyrosinase inhibitory activities of Lemna minor whole plants cultivated in various concentrations of proline and sucrose. Process Biochemistry, 47(1), 62-68. https://doi.org/10.1016/j.procbio.2011.10.010
  • Klaus, J., Nikolai, B., & Eric, L. (2013). Telling duckweed apart: genotyping technologies for the Lemnaceae. Chinese Journal of Applied Environmental Biology, 19, 1-10. https://doi.org/10.3724/SP.J.1145.2013.00001
  • Kuang, J., Yan, X., Genders, A.J., Granata, C., & Bishop, D.J. (2018). An overview of technical considerations when using quantitative real-time PCR analysis of gene expression in human exercise research. PloS One, 13(5), e0196438. https://doi.org/10.1371/journal.pone.0196438
  • Kumar, S., Kumar, R., Dwivedi, A., & Pandey, A.K. (2014). In vitro antioxidant, antibacterial, and cytotoxic activity and in vivo effect of Syngonium podophyllum and Eichhornia crassipes leaf extracts on isoniazid induced oxidative stress and hepatic markers. BioMed Research International, 1-11. https://doi.org/10.1155/2014/459452
  • Li, W.H., Wu, H.J., Li, Y.X., Pan, H.G., Meng, T., & Wang, X. (2016). MicroRNA-143 promotes apoptosis of osteosarcoma cells by caspase-3 activation via targeting Bcl-2. Biomedicine & Pharmacotherapy, 80, 8-15. https://doi.org/10.1016/j.biopha.2016.03.001
  • Luca, A., Bellavia, D., Raimondi, L., Carina, V., Costa, V., Fini, M., & Giavaresi, G. (2022). Multiple Effects of Resveratrol on Osteosarcoma Cell Lines. Pharmaceuticals, 15(3), 342. https://doi.org/10.3390/ph15030342
  • Majeed, S., Danish, M., Zakariya, N.A., Hashim, R., Ansari, M.T., & Sisinthy, S.P. (2022). Tailored silver nanoparticles capped with gallic acid and its potential toxicity via ROS-mediated pathway against osteosarcoma cells. Materials Today Communications, 32, 103844. https://doi.org/10.1016/j.mtcomm.2022.103844
  • Mintz, M.B., Sowers, R., Brown, K.M., Hilmer, S.C., Mazza, B., Huvos, A.G., & Stephan, D.A. (2005). An expression signature classifies chemotherapy-resistant pediatric osteosarcoma. Cancer Research, 65(5), 1748-1754. https://doi.org/10.1158/0008-5472.CAN-04-2463
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There are 50 citations in total.

Details

Primary Language English
Subjects Natural Products and Bioactive Compounds
Journal Section Articles
Authors

Sema Yiyit Doğan 0000-0003-4292-2233

Project Number 21L0430004
Early Pub Date March 19, 2025
Publication Date
Submission Date May 25, 2024
Acceptance Date October 30, 2024
Published in Issue Year 2025 Volume: 12 Issue: 2

Cite

APA Yiyit Doğan, S. (2025). Cytotoxic and apoptotic effect of Lemna minor L. extract on human osteosarcoma (Saos-2). International Journal of Secondary Metabolite, 12(2), 321-330.
International Journal of Secondary Metabolite

e-ISSN: 2148-6905