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Anti-cancer Effect of Hyoscyamus muticus Extract via Its Activation of Fas/FasL-ASK1-p38 Pathway

Authors
Abd El-Hafeez, Amer AliMarzouk, Hala Mohamed M.Abdelhamid, Mohamed A. A.Khalifa, Hazim O.Hasanin, Tamer H. A.Habib, Ahmed G. K.Abdelwahed, Fatma MahmoudBarakat, Fatma M.Bastawy, Eslam M.Abdelghani, Eman M. B.Hosoi, ToruOzawa, KoichiroAref, Ahmed M.Fujimura, TakashiIbrahim, Ahmed R. N.Abdelmoniem, Aalaa S. O.Elghazawy, HagarGhosh, PradiptaKawamoto, SeijiPack, Seung Pil
Issue Date
10월-2022
Publisher
KOREAN SOC BIOTECHNOLOGY & BIOENGINEERING
Keywords
Hyoscyamus muticus; apoptosis; apoptosis signal-regulating kinase 1; breast cancer; reactive oxygen species
Citation
BIOTECHNOLOGY AND BIOPROCESS ENGINEERING, v.27, no.5, pp.807 - 819
Indexed
SCIE
SCOPUS
KCI
Journal Title
BIOTECHNOLOGY AND BIOPROCESS ENGINEERING
Volume
27
Number
5
Start Page
807
End Page
819
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/146577
DOI
10.1007/s12257-022-0085-x
ISSN
1226-8372
Abstract
Hyoscyamus muticus L. is a traditional medicine used as antispasmodic and sedative. Herein, we aimed to determine the phytochemical constituents and for the first time its anti-cancer activities. The phytochemical constituents of the different extracts were evaluated by calorimetric methods. The anti-cancer activities of the extracts were tested against leukemia, breast, renal, and prostate cancers cell lines. 4, 6-Diamidino-2-phenylindole (DAPI) staining, flow cytometric analysis, knockdown of ASK1, and reactive oxygen species (ROS) production were evaluated to clarify the mechanism of action. Phytochemical screening confirmed the presence of wide range of phytoconstituents. Hyoscyamus muticus methanolic extracts (HMME) showed the highest anti-cancer activities against leukemia, breast, renal, and prostate cancers as compared to ethanol and aqueous extracts. Specifically, HMME exerted cytotoxic effect against the MDA-MB-231 and MDA-MB-468 triple-negative breast cancer (TNBC) cell lines with IC50 values of 8.75 and 7.25 mu g/mL, respectively. Mechanistically, DAPI staining and flow cytometric analysis revealed that HMME induces apoptosis via the death receptor, FAS, but not the mitochondrial pathway. Moreover, ASK1 and p38 were rapidly activated in response to HMME, and knockdown of ASK1 by a small interference of RNA specific to Ask1 attenuated p38 and caspase-3 activation and suppressed apoptosis, implying that HMME-induced apoptosis relies on the ASK1-p38-caspase-3 pathway. Furthermore, we confirmed that cellular ROS generation was a critical mediator in HMME-induced apoptosis because the ROS-scavenger N-acetyl cysteine significantly decreased the phosphorylation of ASK1 and HMME-induced apoptosis. Our results confirmed HMME cytotoxic effects in TNBCs via ROS-dependent activation of the Fas/FasL-ASK1-p38 axis.
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