Ethanolic extracts of Pakistani euphorbiaceous plants induce apoptosis in breast cancer cells through induction of DNA damage and caspase-dependent pathway

被引:6
作者
Gull, Sheereen [1 ]
Farooq, Kokab [1 ]
Tayyeb, Asima [1 ]
Arshad, Muhammad Imran [2 ]
Shahzad, Naveed [1 ]
机构
[1] Univ Punjab, Sch Biol Sci, Lahore 54000, Pakistan
[2] Univ Agr Faisalabad, Inst Microbiol, Faisalabad, Pakistan
关键词
Euphorbiaceae; Breast cancer; Apoptosis; Medicinal plants; Ethanolic extracts; ANTICANCER ACTIVITIES; CYCLE ARREST; ANTIOXIDANT; NANOPARTICLES; ACTIVATION; LEAVES; DEATH; LINES;
D O I
10.1016/j.gene.2022.146401
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Background: Numerous plants of Euphorbiaceae, the spurge family are traditionally used for the treatment of different diseases and recent studies also reported anti-oxidant, anti-inflammatory, and anti-tumor activities of these plants. However, the medicinal potential of several indigenous euphorbiaceous plants of Pakistan is not described yet. Therefore, we intended to evaluate the in vitro anti-breast cancer potential of 10 euphorbiaceous plants of Pakistan. Methods: Cytotoxic screening of ethanolic extracts of selected plants was performed by MTT assay. The qualitative phytochemical analysis was performed to find the major groups of chemicals responsible for cytotoxic activity. To determine the genotoxic effect of plant extracts, microscopic analysis was carried out. Flow cytometry and fluorescent microscopic analysis were done to detect apoptosis. To find out the expression analysis of cell cycle and cell death regulatory genes, quantitative real-time polymerase reaction (qRT-PCR) was performed. Results: Among the 10 tested plants, ethanolic extracts of Croton tiglium (CTL) and Euphorbia royleana (ERA) were found to possess the highest anti-proliferative activity against breast cancer cells (MDA-MB-231, MCF-7), with IC50 values 100 and 80 mu g/mL respectively. The phytochemical analysis confirmed the presence of phenols, flavonoids, and steroids in both plant extracts, whereas, glycosides and saponins were found only in CTL and ERA, respectively. The cellular aberrations and nuclear morphologies with a distinct DNA laddering pattern substantiated the genotoxic effects. Furthermore, our data showed that CTL and ERA induce cell cycle arrest at the G1/S phase by down-regulating the CDK4 and Cyclin D1 expression followed by caspase-dependent induction of apoptosis in both MCF-7 and MDA-MB-231 cells. However, based on the activation of initiator and executioner caspases, two distinct types of apoptotic pathways are proposed for these plants. The CTL prompted extrinsic while ERA triggered the intrinsic pathways of apoptosis. Conclusion: Our data demonstrate the strong anti-proliferative and caspase-dependent apoptotic potential of CTL and ERA against breast cancer cells. Further studies are suggested to find clinical implications of these plants in breast cancer therapeutic.
引用
收藏
页数:12
相关论文
共 50 条
[21]   Cordycepin, a Natural Antineoplastic Agent, Induces Apoptosis of Breast Cancer Cells via Caspase-dependent Pathways [J].
Wang, Di ;
Zhang, Yongfeng ;
Lu, Jiahui ;
Wang, Yang ;
Wang, Junyue ;
Meng, Qingfan ;
Lee, Robert J. ;
Wang, Di ;
Teng, Lesheng .
NATURAL PRODUCT COMMUNICATIONS, 2016, 11 (01) :63-68
[22]   Hyperoside and rutin of Nelumbo nucifera induce mitochondrial apoptosis through a caspase-dependent mechanism in HT-29 human colon cancer cells [J].
Guon, Tae Eun ;
Chung, Ha Sook .
ONCOLOGY LETTERS, 2016, 11 (04) :2463-2470
[23]   Induction of caspase-dependent extrinsic apoptosis by apigenin through inhibition of signal transducer and activator of transcription 3 (STAT3) signalling in HER2-overexpressing BT-474 breast cancer cells [J].
Seo, Hye-Sook ;
Jo, Jae Kyung ;
Ku, Jin Mo ;
Choi, Han-Seok ;
Choi, Youn Kyung ;
Woo, Jong-Kyu ;
Kim, Hyo In ;
Kang, Soo-yeon ;
Lee, Kang Min ;
Nam, Koong Won ;
Park, Namkyu ;
Jang, Bo-Hyoung ;
Shin, Yong Cheol ;
Ko, Seong-Gyu .
BIOSCIENCE REPORTS, 2015, 35
[24]   Induction of Apoptosis by Low-Molecular-Weight Fucoidan through Calcium- and Caspase-Dependent Mitochondrial Pathways in MDA-MB-231 Breast Cancer Cells [J].
Zhang, Zhongyuan ;
Teruya, Kiichiro ;
Eto, Hiroshi ;
Shirahata, Sanetaka .
BIOSCIENCE BIOTECHNOLOGY AND BIOCHEMISTRY, 2013, 77 (02) :235-242
[25]   Curcumin induce apoptosis of CNE-2z cells via caspase-dependent mitochondrial intrinsic pathway [J].
Wu, Qiang ;
Hou, Yunlong ;
Sun, Bo ;
Zhuang, Kun ;
Zhang, Haocheng ;
Jin, Dejun .
AFRICAN JOURNAL OF PHARMACY AND PHARMACOLOGY, 2011, 5 (15) :1748-1756
[26]   G226, a novel epipolythiodioxopiperazine derivative, induces autophagy and caspase-dependent apoptosis in human breast cancer cells in vitro [J].
He, Peng-xing ;
Che, Yong-sheng ;
He, Qiao-jun ;
Chen, Yi ;
Ding, Jian .
ACTA PHARMACOLOGICA SINICA, 2014, 35 (08) :1055-1064
[27]   Apigenin induces caspase-dependent apoptosis in human lung cancer A549 cells through Bax- and Bcl-2-triggered mitochondrial pathway [J].
Lu, Hsu-Peng ;
Chie, Yu-Jie ;
Yang, Ming-Sung ;
Lee, Ching-Sung ;
Fu, Jene-John ;
Yang, Jai-Sing ;
Tan, Tzu-Wei ;
Wu, Shin-Hwar ;
Ma, Yi-Shih ;
Ip, Siu-Wan ;
Chung, Jing-Gung .
INTERNATIONAL JOURNAL OF ONCOLOGY, 2010, 36 (06) :1477-1484
[28]   Novel acylated steroidal glycosides from Caralluma tuberculata induce caspase-dependent apoptosis in cancer cells [J].
Waheed, Abdul ;
Barker, James ;
Barton, Stephen J. ;
Khan, Gul-Majid ;
Najm-us-Saqib, Qazi ;
Hussain, Manzoor ;
Ahmed, Sabbir ;
Owen, Caroline ;
Carew, Mark A. .
JOURNAL OF ETHNOPHARMACOLOGY, 2011, 137 (03) :1189-1196
[29]   Caspase-dependent and caspase-independent induction of apoptosis in breast cancer by fucoidan via the PI3K/AKT/GSK3β pathway in vivo and in vitro [J].
Xue, Meilan ;
Ji, Xinqiang ;
Xue, Chuanxing ;
Liang, Hui ;
Ge, Yinlin ;
He, Xinjia ;
Zhang, Li ;
Bian, Kang ;
Zhang, Lichen .
BIOMEDICINE & PHARMACOTHERAPY, 2017, 94 :898-908
[30]   Luffa echinata Roxb. Induced Apoptosis in Human Colon Cancer Cell (SW-480) in the Caspase-dependent Manner and Through a Mitochondrial Apoptosis Pathway [J].
Shang, Li-Hua ;
Yu, Yan ;
Che, De-Hai ;
Pan, Bo ;
Jin, Shi ;
Zou, Xiao-Long .
PHARMACOGNOSY MAGAZINE, 2016, 12 (45) :25-30