Skip to main content
Top
Published in: BMC Complementary Medicine and Therapies 1/2023

Open Access 01-12-2023 | Research

Computational biology and in vitro studies for anticipating cancer-related molecular targets of sweet wormwood (Artemisia annua)

Authors: Hend Dawood, Ismail Celik, Reham S. Ibrahim

Published in: BMC Complementary Medicine and Therapies | Issue 1/2023

Login to get access

Abstract

Background

Cancer is one of the leading causes of death worldwide. Recently, it was shown that many natural extracts have positive effects against cancer, compared with chemotherapy or recent hormonal treatments. A. annua is an annual medicinal herb used in the traditional Chinese medicine. It has also been shown to inhibit the proliferation of various cancer cell lines.

Methods

Multi-level modes of action of A. annua constituents in cancer therapy were investigated using an integrated approach of network pharmacology, molecular docking, dynamic simulations and in-vitro cytotoxicity testing on both healthy and cancer cells.

Results

Network pharmacology-based analysis showed that the hit Artemisia annua constituents related to cancer targets were 3-(2-methylpropanoyl)-4-cadinene-3,11-diol, artemisinin G, O-(2-propenal) coniferaldehyde, (2-glyceryl)-O-coniferaldehyde and arteamisinin III, whereas the main cancer allied targets were NFKB1, MAP2K1 and AR. Sixty-eight significant signaling KEGG pathways with p < 0.01 were recognized, the most enriched of which were prostate cancer, breast cancer, melanoma and pancreatic cancer. Thirty-five biological processes were mainly regulated by cancer, involving cellular response to mechanical stimulus, positive regulation of gene expression and transcription. Molecular docking analysis of the top hit compounds against the most enriched target proteins showed that 3-(2-methylpropanoyl)-4-cadinene-3,11-diol and O-(2-propenal) coniferaldehyde exhibited the most stabilized interactions. Molecular dynamics simulations were performed to explain the stability of these two compounds in their protein-ligand complexes. Finally, confirmation of the potential anticancer activity was attained by in-vitro cytotoxicity testing of the extract on human prostate (PC-3), breast (MDA-MB-231), pancreatic (PANC-1) and melanoma (A375) cancerous cell lines.

Conclusion

This study presents deeper insights into A. annua molecular mechanisms of action in cancer for the first time using an integrated approaches verifying the herb’s value.
Appendix
Available only for authorised users
Literature
1.
go back to reference Sitarek P, Merecz-Sadowska A, Śliwiński T, Zajdel R, Kowalczyk T. An in vitro evaluation of the molecular mechanisms of action of medical plants from the Lamiaceae family as effective sources of active compounds against human cancer cell lines. Cancers (Basel). 2020;12:2957.PubMed Sitarek P, Merecz-Sadowska A, Śliwiński T, Zajdel R, Kowalczyk T. An in vitro evaluation of the molecular mechanisms of action of medical plants from the Lamiaceae family as effective sources of active compounds against human cancer cell lines. Cancers (Basel). 2020;12:2957.PubMed
2.
go back to reference Ali S, et al. Amomum subulatum: a treasure trove of anti-cancer compounds targeting TP53 protein using in vitro and in silico techniques. Front Chem. 2023;11:1174363 Ali S, et al. Amomum subulatum: a treasure trove of anti-cancer compounds targeting TP53 protein using in vitro and in silico techniques. Front Chem. 2023;11:1174363
3.
go back to reference Ahmad HM, et al. Characterization of fenugreek and its natural compounds targeting AKT-1 protein in cancer: Pharmacophore, virtual screening, and MD simulation techniques. J King Saud Univ - Sci. 2022;34:102186. Ahmad HM, et al. Characterization of fenugreek and its natural compounds targeting AKT-1 protein in cancer: Pharmacophore, virtual screening, and MD simulation techniques. J King Saud Univ - Sci. 2022;34:102186.
4.
go back to reference Umar HI, et al. Discovery of novel HSP27 inhibitors as prospective anti-cancer agents utilizing computer-assisted therapeutic discovery approaches. Cells. 2022;11:2412. Umar HI, et al. Discovery of novel HSP27 inhibitors as prospective anti-cancer agents utilizing computer-assisted therapeutic discovery approaches. Cells. 2022;11:2412.
5.
go back to reference Taghizadeh Rabe SZ, Mahmoudi M, Ahi A, Emami SA. Antiproliferative effects of extracts from Iranian Artemisia species on cancer cell lines. Pharm Biol. 2011;49:962–9.PubMed Taghizadeh Rabe SZ, Mahmoudi M, Ahi A, Emami SA. Antiproliferative effects of extracts from Iranian Artemisia species on cancer cell lines. Pharm Biol. 2011;49:962–9.PubMed
6.
go back to reference Ko YS, et al. Polyphenols extracted from Artemisia annua L. exhibit anti-cancer effects on radio-resistant MDA-MB-231 human breast cancer cells by suppressing stem cell phenotype, β-Catenin, and MMP-9. Molecules. 2020;25:1916. Ko YS, et al. Polyphenols extracted from Artemisia annua L. exhibit anti-cancer effects on radio-resistant MDA-MB-231 human breast cancer cells by suppressing stem cell phenotype, β-Catenin, and MMP-9. Molecules. 2020;25:1916.
7.
go back to reference Konstat-Korzenny E, Ascencio-Aragón JA, Niezen-Lugo S, Vázquez-López R. Artemisinin and its synthetic derivatives as a possible therapy for cancer. Med Sci. 2018;6:19. Konstat-Korzenny E, Ascencio-Aragón JA, Niezen-Lugo S, Vázquez-López R. Artemisinin and its synthetic derivatives as a possible therapy for cancer. Med Sci. 2018;6:19.
8.
go back to reference van Loggenberg S, et al. Evaluating in vitro cytotoxic effects of Artemisia afra and Artemisia annua infusions against selected lung cancer cell lines. South Afr J Bot. 2022;150:404–11. van Loggenberg S, et al. Evaluating in vitro cytotoxic effects of Artemisia afra and Artemisia annua infusions against selected lung cancer cell lines. South Afr J Bot. 2022;150:404–11.
9.
go back to reference Alesaeidi S, Miraj SA. Systematic review of anti-malarial Properties, Immunosuppressive properties, anti-inflammatory properties, and anti-cancer properties of Artemisia Annua. electron physician. 2016;8:3150–5.PubMedPubMedCentral Alesaeidi S, Miraj SA. Systematic review of anti-malarial Properties, Immunosuppressive properties, anti-inflammatory properties, and anti-cancer properties of Artemisia Annua. electron physician. 2016;8:3150–5.PubMedPubMedCentral
10.
go back to reference Lang SJ, et al. Antitumor activity of an Artemisia annua herbal preparation and identification of active ingredients. Phytomedicine. 2019;62:152962.PubMed Lang SJ, et al. Antitumor activity of an Artemisia annua herbal preparation and identification of active ingredients. Phytomedicine. 2019;62:152962.PubMed
11.
go back to reference Rafique Q, et al. Reviewing methods of deep learning for diagnosing COVID-19, its variants and synergistic medicine combinations. Comput Biol Med. 2023;163:107191.PubMedPubMedCentral Rafique Q, et al. Reviewing methods of deep learning for diagnosing COVID-19, its variants and synergistic medicine combinations. Comput Biol Med. 2023;163:107191.PubMedPubMedCentral
12.
go back to reference Tang Y, et al. Network pharmacology-based predictions of active components and pharmacological mechanisms of Artemisia annua L. for the treatment of the novel Corona virus disease 2019 (COVID-19). BMC Complement Med Ther. 2022;22:56.PubMedPubMedCentral Tang Y, et al. Network pharmacology-based predictions of active components and pharmacological mechanisms of Artemisia annua L. for the treatment of the novel Corona virus disease 2019 (COVID-19). BMC Complement Med Ther. 2022;22:56.PubMedPubMedCentral
13.
go back to reference Ali MK, et al. Exploring the multifunctional roles of quantum dots for unlocking the future of biology and medicine. Environ Res. 2023;232:116290.PubMed Ali MK, et al. Exploring the multifunctional roles of quantum dots for unlocking the future of biology and medicine. Environ Res. 2023;232:116290.PubMed
14.
go back to reference Mazhar T, et al. The role of machine learning and deep learning approaches for the detection of skin cancer. Healthcare. 2023;11(3):415. Mazhar T, et al. The role of machine learning and deep learning approaches for the detection of skin cancer. Healthcare. 2023;11(3):415.
15.
go back to reference Zhang S, Mo Z, Zhang S, Li XA. Network pharmacology approach to reveal the underlying mechanisms of Artemisia annua on the treatment of hepatocellular carcinoma. Evidence-Based complement. Altern. Med 2021:8947304. Zhang S, Mo Z, Zhang S, Li XA. Network pharmacology approach to reveal the underlying mechanisms of Artemisia annua on the treatment of hepatocellular carcinoma. Evidence-Based complement. Altern. Med 2021:8947304.
16.
go back to reference Gao J, Xu HL, Gao S, Zhang W, Tan YT, Rothman N, et al. Genetic polymorphism of NFKB1 and NFKBIAgenes and liver cancer risk: a nested case–control study in Shanghai, China. BMJ Open. 2014;4(2):e004427. Gao J, Xu HL, Gao S, Zhang W, Tan YT, Rothman N, et al. Genetic polymorphism of NFKB1 and NFKBIAgenes and liver cancer risk: a nested case–control study in Shanghai, China. BMJ Open. 2014;4(2):e004427.
17.
go back to reference Li D, Wu C, Cai Y, Liu B. Association of NFKB1 and NFKBIA gene polymorphisms with susceptibility of gastric cancer. Tumor Biol. 2017;39:1010428317717107. Li D, Wu C, Cai Y, Liu B. Association of NFKB1 and NFKBIA gene polymorphisms with susceptibility of gastric cancer. Tumor Biol. 2017;39:1010428317717107.
18.
go back to reference Kim G-C, et al. Upregulation of Ets1 expression by NFATc2 and NFKB1/RELA promotes breast cancer cell invasiveness. Oncogenesis. 2018;7:1–15. Kim G-C, et al. Upregulation of Ets1 expression by NFATc2 and NFKB1/RELA promotes breast cancer cell invasiveness. Oncogenesis. 2018;7:1–15.
19.
go back to reference You J, et al. MiR-449a suppresses cell invasion by inhibiting MAP2K1 in non-small cell lung cancer. Am J Cancer Res. 2015;5:2730–44.PubMedPubMedCentral You J, et al. MiR-449a suppresses cell invasion by inhibiting MAP2K1 in non-small cell lung cancer. Am J Cancer Res. 2015;5:2730–44.PubMedPubMedCentral
20.
go back to reference Chuang J, et al. MAP2K1 mutations in Advanced colorectal cancer predict poor response to anti-EGFR therapy and to vertical targeting of MAPK pathway. Clin Colorectal Cancer. 2021;20:72–8.PubMed Chuang J, et al. MAP2K1 mutations in Advanced colorectal cancer predict poor response to anti-EGFR therapy and to vertical targeting of MAPK pathway. Clin Colorectal Cancer. 2021;20:72–8.PubMed
21.
go back to reference Bu R, et al. Recurrent somatic MAP2K1 mutations in papillary thyroid cancer and colorectal cancer. Front Oncol. 2021;11:670. Bu R, et al. Recurrent somatic MAP2K1 mutations in papillary thyroid cancer and colorectal cancer. Front Oncol. 2021;11:670.
22.
go back to reference Madden KS, Szpunar MJ, Brown EB. β-Adrenergic receptors (β-AR) regulate VEGF and IL-6 production by divergent pathways in high β-AR-expressing breast cancer cell lines. Breast Cancer Res Treat. 2011;130:747–58.PubMedPubMedCentral Madden KS, Szpunar MJ, Brown EB. β-Adrenergic receptors (β-AR) regulate VEGF and IL-6 production by divergent pathways in high β-AR-expressing breast cancer cell lines. Breast Cancer Res Treat. 2011;130:747–58.PubMedPubMedCentral
23.
go back to reference Knudsen KE, Penning TM. Partners in crime: deregulation of AR activity and androgen synthesis in prostate cancer. Trends Endocrinol Metab. 2010;21:315–24.PubMedPubMedCentral Knudsen KE, Penning TM. Partners in crime: deregulation of AR activity and androgen synthesis in prostate cancer. Trends Endocrinol Metab. 2010;21:315–24.PubMedPubMedCentral
24.
go back to reference Urso L, Calabrese F, Favaretto A, Conte P, Pasello G. Critical review about MDM2 in cancer: possible role in malignant mesothelioma and implications for treatment. Crit Rev Oncol Hematol. 2016;97:220–30.PubMed Urso L, Calabrese F, Favaretto A, Conte P, Pasello G. Critical review about MDM2 in cancer: possible role in malignant mesothelioma and implications for treatment. Crit Rev Oncol Hematol. 2016;97:220–30.PubMed
25.
go back to reference Shaikh MF, et al. Emerging role of MDM2 as target for anti-cancer therapy: a review. Ann Clin Lab Sci. 2016;46:627–34.PubMed Shaikh MF, et al. Emerging role of MDM2 as target for anti-cancer therapy: a review. Ann Clin Lab Sci. 2016;46:627–34.PubMed
26.
go back to reference An J, et al. Mechanical stimuli-driven cancer therapeutics. Chem Soc Rev. 2023;52:30–46.PubMed An J, et al. Mechanical stimuli-driven cancer therapeutics. Chem Soc Rev. 2023;52:30–46.PubMed
27.
go back to reference Dasgupta I, McCollum D. Control of cellular responses to mechanical cues through YAP/TAZ regulation. J Biol Chem. 2019;294:17693–706.PubMedPubMedCentral Dasgupta I, McCollum D. Control of cellular responses to mechanical cues through YAP/TAZ regulation. J Biol Chem. 2019;294:17693–706.PubMedPubMedCentral
28.
go back to reference Liu Y-N, et al. Regulatory mechanisms controlling human E-cadherin gene expression. Oncogene. 2005;24:8277–90.PubMed Liu Y-N, et al. Regulatory mechanisms controlling human E-cadherin gene expression. Oncogene. 2005;24:8277–90.PubMed
29.
go back to reference Ge A, Liu L, Deng X, Luo J, Xu Y. Exploring the mechanism of baicalin intervention in breast cancer based on MicroRNA microarrays and bioinformatics strategies. Evidence-Based complement. Altern. Med 2021:7624415. Ge A, Liu L, Deng X, Luo J, Xu Y. Exploring the mechanism of baicalin intervention in breast cancer based on MicroRNA microarrays and bioinformatics strategies. Evidence-Based complement. Altern. Med 2021:7624415.
30.
go back to reference Lu X, et al. Bioinformatics analysis of KIF1A expression and gene regulation network in ovarian carcinoma. Int J Gen Med. 2021:3707–17. Lu X, et al. Bioinformatics analysis of KIF1A expression and gene regulation network in ovarian carcinoma. Int J Gen Med. 2021:3707–17.
31.
go back to reference Celik I, Tallei TE. A computational comparative analysis of the binding mechanism of molnupiravir’s active metabolite to RNA-dependent RNA polymerase of wild‐type and Delta subvariant AY. 4 of SARS‐CoV‐2. J Cell Biochem. 2022;123:807–18.PubMed Celik I, Tallei TE. A computational comparative analysis of the binding mechanism of molnupiravir’s active metabolite to RNA-dependent RNA polymerase of wild‐type and Delta subvariant AY. 4 of SARS‐CoV‐2. J Cell Biochem. 2022;123:807–18.PubMed
32.
go back to reference Khan MA, et al. Anti-quorum sensing, antibiofilm, and antibacterial activities of extracts of Centella asiatica L. leaves, and in vitro derived leaves-calli through tissue culture: a potential for biofouling-prevention. Biofouling. 2022;38:715–28.PubMed Khan MA, et al. Anti-quorum sensing, antibiofilm, and antibacterial activities of extracts of Centella asiatica L. leaves, and in vitro derived leaves-calli through tissue culture: a potential for biofouling-prevention. Biofouling. 2022;38:715–28.PubMed
33.
go back to reference Tabti K, et al. Profiling the structural determinants of pyrrolidine derivative as gelatinases (MMP-2 and MMP-9) inhibitors using in silico approaches. Comput Biol Chem. 2023;104:107855.PubMed Tabti K, et al. Profiling the structural determinants of pyrrolidine derivative as gelatinases (MMP-2 and MMP-9) inhibitors using in silico approaches. Comput Biol Chem. 2023;104:107855.PubMed
34.
go back to reference Paşayeva L, Fatullayev H, Celik I, Unal G, Bozkurt NM, Tugay O, Abdellattif MH. Evaluation of the chemical composition, antioxidant and antidiabetic activity of Rhaponticoides iconiensis flowers: effects on key enzymes linked to type 2 diabetes in vitro, in silico and on alloxan-induced diabetic rats in vivo. Antioxidants. 2022;11:2284.PubMedPubMedCentral Paşayeva L, Fatullayev H, Celik I, Unal G, Bozkurt NM, Tugay O, Abdellattif MH. Evaluation of the chemical composition, antioxidant and antidiabetic activity of Rhaponticoides iconiensis flowers: effects on key enzymes linked to type 2 diabetes in vitro, in silico and on alloxan-induced diabetic rats in vivo. Antioxidants. 2022;11:2284.PubMedPubMedCentral
35.
go back to reference Yadav R, et al. Identification and in-vitro analysis of potential proteasome inhibitors targeting PSMβ5 for multiple myeloma. Biomed Pharmacother. 2023;157:113963.PubMed Yadav R, et al. Identification and in-vitro analysis of potential proteasome inhibitors targeting PSMβ5 for multiple myeloma. Biomed Pharmacother. 2023;157:113963.PubMed
36.
go back to reference Bender O, et al. Discovery of oxindole-based FLT3 inhibitors as a promising therapeutic lead for acute myeloid leukemia carrying the oncogenic ITD mutation. Arch Pharm (Weinheim). 2022;356(2):e2200407. Bender O, et al. Discovery of oxindole-based FLT3 inhibitors as a promising therapeutic lead for acute myeloid leukemia carrying the oncogenic ITD mutation. Arch Pharm (Weinheim). 2022;356(2):e2200407.
37.
go back to reference Darwish RS, et al. Efficacy-directed discrimination of the essential oils of three Juniperus species based on their in-vitro antimicrobial and anti-inflammatory activities. Ethnopharmacology. 2020;259:1–12. Darwish RS, et al. Efficacy-directed discrimination of the essential oils of three Juniperus species based on their in-vitro antimicrobial and anti-inflammatory activities. Ethnopharmacology. 2020;259:1–12.
38.
go back to reference Wang Z, et al. Artesunate suppresses the growth of prostatic cancer cells through inhibiting androgen receptor. Biol Pharm Bull. 2017;40:479–85.PubMed Wang Z, et al. Artesunate suppresses the growth of prostatic cancer cells through inhibiting androgen receptor. Biol Pharm Bull. 2017;40:479–85.PubMed
39.
go back to reference Willoughby JAS, et al. Artemisinin blocks prostate cancer growth and cell cycle progression by disrupting Sp1 interactions with the cyclin-dependent kinase-4 (CDK4) promoter and inhibiting CDK4 gene expression. J Biol Chem. 2009;284:2203–13.PubMedPubMedCentral Willoughby JAS, et al. Artemisinin blocks prostate cancer growth and cell cycle progression by disrupting Sp1 interactions with the cyclin-dependent kinase-4 (CDK4) promoter and inhibiting CDK4 gene expression. J Biol Chem. 2009;284:2203–13.PubMedPubMedCentral
40.
go back to reference Worku N, et al. Evaluation of the in vitro efficacy of Artemisia annua, Rumex abyssinicus, and Catha edulis Forsk extracts in cancer and Trypanosoma brucei cells. Int Sch Res Not. 2013;2013. Worku N, et al. Evaluation of the in vitro efficacy of Artemisia annua, Rumex abyssinicus, and Catha edulis Forsk extracts in cancer and Trypanosoma brucei cells. Int Sch Res Not. 2013;2013.
41.
go back to reference Lang SJ, et al. Chrysosplenol d, a flavonol from Artemisia annua, induces ERK1/2-Mediated apoptosis in triple negative human breast cancer cells. Int J Mol Sci. 2020;21(11):4090. Lang SJ, et al. Chrysosplenol d, a flavonol from Artemisia annua, induces ERK1/2-Mediated apoptosis in triple negative human breast cancer cells. Int J Mol Sci. 2020;21(11):4090.
42.
go back to reference Ko YS, et al. Polyphenols from Artemisia annua L inhibit adhesion and EMT of highly metastatic breast cancer cells MDA-MB‐231. Phyther Res. 2016;30:1180–8. Ko YS, et al. Polyphenols from Artemisia annua L inhibit adhesion and EMT of highly metastatic breast cancer cells MDA-MB‐231. Phyther Res. 2016;30:1180–8.
43.
go back to reference Efferth T, Herrmann F, Tahrani A, Wink M. Cytotoxic activity of secondary metabolites derived from Artemisia annua L. towards cancer cells in comparison to its designated active constituent artemisinin. Phytomedicine. 2011;18:959–69.PubMed Efferth T, Herrmann F, Tahrani A, Wink M. Cytotoxic activity of secondary metabolites derived from Artemisia annua L. towards cancer cells in comparison to its designated active constituent artemisinin. Phytomedicine. 2011;18:959–69.PubMed
44.
46.
go back to reference Kanehisa M, Furumichi M, Sato Y, Kawashima M, Ishiguro-Watanabe. M. KEGG for taxonomy-based analysis of pathways and genomes. Nucleic Acids Res. 2023;51:D587–92.PubMed Kanehisa M, Furumichi M, Sato Y, Kawashima M, Ishiguro-Watanabe. M. KEGG for taxonomy-based analysis of pathways and genomes. Nucleic Acids Res. 2023;51:D587–92.PubMed
47.
go back to reference Kibble M, et al. Network pharmacology applications to map the unexplored target space and therapeutic potential of natural products. Nat Prod Rep. 2015;32:1249–66.PubMed Kibble M, et al. Network pharmacology applications to map the unexplored target space and therapeutic potential of natural products. Nat Prod Rep. 2015;32:1249–66.PubMed
48.
go back to reference Qiu Z-K, et al. A network pharmacology study with molecular docking to investigate the possibility of licorice against posttraumatic stress disorder. Metab Brain Dis. 2021;36:1763–77.PubMed Qiu Z-K, et al. A network pharmacology study with molecular docking to investigate the possibility of licorice against posttraumatic stress disorder. Metab Brain Dis. 2021;36:1763–77.PubMed
49.
go back to reference Chen G, et al. A Network Pharmacology Approach to Uncover the Potential Mechanism of Yinchensini decoction. Evidence-Based complement. Altern. Med 2018:2178610. Chen G, et al. A Network Pharmacology Approach to Uncover the Potential Mechanism of Yinchensini decoction. Evidence-Based complement. Altern. Med 2018:2178610.
50.
go back to reference Ibrahim RS, et al. Biologically guided isolation and ADMET profile of new factor Xa inhibitors from Glycyrrhiza glabra roots using in vitro and in silico approaches. RSC Adv. 2021;11:9995–10001.PubMedPubMedCentral Ibrahim RS, et al. Biologically guided isolation and ADMET profile of new factor Xa inhibitors from Glycyrrhiza glabra roots using in vitro and in silico approaches. RSC Adv. 2021;11:9995–10001.PubMedPubMedCentral
51.
go back to reference Abraham MJ, et al. High performance molecular simulations through multi-level parallelism from laptops to supercomputers. SoftwareX 1. 2015;GROMACS:19–25. Abraham MJ, et al. High performance molecular simulations through multi-level parallelism from laptops to supercomputers. SoftwareX 1. 2015;GROMACS:19–25.
52.
go back to reference Jo S, Kim T, Iyer VG, Im W. CHARMM-GUI: a web‐based graphical user interface for CHARMM. J Comput Chem. 2008;29:1859–65.PubMed Jo S, Kim T, Iyer VG, Im W. CHARMM-GUI: a web‐based graphical user interface for CHARMM. J Comput Chem. 2008;29:1859–65.PubMed
53.
go back to reference Lee J, et al. CHARMM-GUI supports the Amber force fields. J Chem Phys. 2020;153:35103. Lee J, et al. CHARMM-GUI supports the Amber force fields. J Chem Phys. 2020;153:35103.
54.
go back to reference Pettersen EF, et al. UCSF ChimeraX: structure visualization for researchers, educators, and developers. Protein Sci. 2021;30:70–82.PubMed Pettersen EF, et al. UCSF ChimeraX: structure visualization for researchers, educators, and developers. Protein Sci. 2021;30:70–82.PubMed
55.
go back to reference Mosmann T. Rapid colorimetric assay for cellular growth and survival: application to proliferation and cytotoxicity assays. J Immunol Methods. 1983;65:55–63.PubMed Mosmann T. Rapid colorimetric assay for cellular growth and survival: application to proliferation and cytotoxicity assays. J Immunol Methods. 1983;65:55–63.PubMed
56.
go back to reference Darwish RS, et al. Chemical profiling and unraveling of anti-COVID-19 biomarkers of red sage (Lantana camara L.) cultivars using UPLC-MS/MS coupled to chemometric analysis, in vitro study and molecular docking. J Ethnopharmacol. 2022;291:115038.PubMedPubMedCentral Darwish RS, et al. Chemical profiling and unraveling of anti-COVID-19 biomarkers of red sage (Lantana camara L.) cultivars using UPLC-MS/MS coupled to chemometric analysis, in vitro study and molecular docking. J Ethnopharmacol. 2022;291:115038.PubMedPubMedCentral
57.
go back to reference Skehan P, et al. New colorimetric cytotoxicity assay for anticancer-drug screening. JNCI J Natl Cancer Inst. 1990;82:1107–12.PubMed Skehan P, et al. New colorimetric cytotoxicity assay for anticancer-drug screening. JNCI J Natl Cancer Inst. 1990;82:1107–12.PubMed
58.
go back to reference Ibrahim RS, El-Banna AA. Network pharmacology-based analysis for unraveling potential cancer-related molecular targets of egyptian propolis phytoconstituents accompanied with molecular docking and in vitro studies. RSC Adv. 2021;11:11610–26.PubMedPubMedCentral Ibrahim RS, El-Banna AA. Network pharmacology-based analysis for unraveling potential cancer-related molecular targets of egyptian propolis phytoconstituents accompanied with molecular docking and in vitro studies. RSC Adv. 2021;11:11610–26.PubMedPubMedCentral
Metadata
Title
Computational biology and in vitro studies for anticipating cancer-related molecular targets of sweet wormwood (Artemisia annua)
Authors
Hend Dawood
Ismail Celik
Reham S. Ibrahim
Publication date
01-12-2023
Publisher
BioMed Central
Published in
BMC Complementary Medicine and Therapies / Issue 1/2023
Electronic ISSN: 2662-7671
DOI
https://doi.org/10.1186/s12906-023-04135-0

Other articles of this Issue 1/2023

BMC Complementary Medicine and Therapies 1/2023 Go to the issue