- Targeting Colorectal Cancer Proliferation, Stemness and Metastatic Potential Using Brassicaceae Extracts Enriched in Isothiocyanates: A 3D Cell Model-Based Study
Lucília Pereira et al, 2017, Nutrients CrossRef - Effects of Brassicaceae Isothiocyanates on Prostate Cancer
Silvia Novío et al, 2016, Molecules CrossRef - Increased expression and activity of p75NTR are crucial events in azacitidine-induced cell death in prostate cancer
GIOVANNI LUCA GRAVINA et al, 2016 CrossRef - The role of Sulforaphane in cancer chemoprevention and health benefits: a mini-review
Reza Bayat Mokhtari et al, 2017, J. Cell Commun. Signal. CrossRef - Evaluating of OCT-4 and NANOG was differentially regulated by a new derivative indole in leukemia cell line
Mojgan Noroozi Karimabad et al, 2017, Immunology Letters CrossRef - Frugal chemoprevention: targeting Nrf2 with foods rich in sulforaphane
Li Yang et al, 2016, Seminars in Oncology CrossRef - A marginal anticancer effect of regorafenib on pancreatic carcinoma cells in vitro, ex vivo, and in vivo.
Barbara Mayer et al, 2017, Naunyn Schmiedebergs Arch Pharmacol CrossRef - Targeting TNF-related apoptosis-inducing ligand (TRAIL) receptor by natural products as a potential therapeutic approach for cancer therapy
Xiaoyun Dai et al, 2015, Exp Biol Med (Maywood) CrossRef - Histone deacetylase inhibitor sulforaphane: The phytochemical with vibrant activity against prostate cancer
Shabir Ahmad Ganai, 2016, Biomedicine & Pharmacotherapy CrossRef - Sulforaphane promotes apoptosis, and inhibits proliferation and self-renewal of nasopharyngeal cancer cells by targeting STAT signal through miRNA-124-3p
Xiqing Li et al, 2018, Biomedicine & Pharmacotherapy CrossRef - Relevance of the natural HDAC inhibitor sulforaphane as a chemopreventive agent in urologic tumors
Eva Juengel et al, 2018, Cancer Letters CrossRef - Sulforaphane as anticancer agent: A double-edged sword? Tricky balance between effects on tumor cells and immune cells
Jie Liang et al, 2018, Advances in Biological Regulation CrossRef - Sulforaphane inhibits gastric cancer stem cells via suppressing sonic hedgehog pathway.
Miaomiao Ge et al, 2019, Int J Food Sci Nutr CrossRef - Sulforaphane Induces miR135b-5p and Its Target Gene, RASAL2, thereby Inhibiting the Progression of Pancreatic Cancer
Libo Yin et al, 2019, Molecular Therapy - Oncolytics CrossRef - Cell surface galectin-3 defines a subset of chemoresistant gastrointestinal tumor-initiating cancer cells with heightened stem cell characteristics
Matthias Ilmer et al, 2016, Cell Death Dis CrossRef - Therapeutic Paradigm Underscoring Glucosinolate Sulforaphane in Chemo- and Radiosensitization of Cancer: Preclinical and Clinical Perspective
Sanjeev Banerjee et al, 2016 CrossRef - Sulforaphane improves chemotherapy efficacy by targeting cancer stem cell-like properties via the miR-124/IL-6R/STAT3 axis
Xingxing Wang et al, 2016, Sci Rep CrossRef - Broccoli sprout supplementation in patients with advanced pancreatic cancer is difficult despite positive effects—results from the POUDER pilot study
Vladimir J. Lozanovski et al, 2019, Invest New Drugs CrossRef - Plantes immunomodulatrices et effet antitumoral
P. Goetz, 2018, Phytothérapie CrossRef - Crucifera sulforaphane (SFN) inhibits the growth of nasopharyngeal carcinoma through DNA methyltransferase 1 (DNMT1)/ Wnt inhibitory factor 1 (WIF1) axis
Luo Chen et al, 2019, Phytomedicine CrossRef - Broccoli-Derived Sulforaphane and Chemoprevention of Prostate Cancer: From Bench to Bedside
Ali I. Amjad et al, 2015, Curr Pharmacol Rep CrossRef - Chemopreventive and Therapeutic Potential of Phytochemicals Targeting Cancer Stem Cells
Do-Hee Kim et al, 2015, Curr Pharmacol Rep CrossRef - Myrtucommulone-A treatment decreases pluripotency- and multipotency-associated marker expression in bladder cancer cell line HTB-9
Banu Iskender et al, 2015, J Nat Med CrossRef - Sulforaphane Inhibits c-Myc-Mediated Prostate Cancer Stem-Like Traits
Avani R. Vyas et al, 2016, J. Cell. Biochem. CrossRef - Effects of sulforaphane on neural stem cell proliferation and differentiation
Zhenxian Han et al, 2017, genesis CrossRef - miR-19 targeting of GSK3β mediates sulforaphane suppression of lung cancer stem cells
Jianyun Zhu et al, 2017, The Journal of Nutritional Biochemistry CrossRef - Therapeutic Paradigm Underscoring Glucosinolate Sulforaphane in Chemo- and Radiosensitization of Cancer: Preclinical and Clinical Perspective
Sanjeev Banerjee et al, 2017 CrossRef - Glucosamine Enhances TRAIL-Induced Apoptosis in the Prostate Cancer Cell Line DU145
Chao Sun et al, 2019, Medicines CrossRef - Sulforaphane as an anticancer molecule: mechanisms of action, synergistic effects, enhancement of drug safety, and delivery systems
Mohammad M. Kamal et al, 2020, Arch. Pharm. Res. CrossRef - Inhibition of glucose turnover by 3-bromopyruvate counteracts pancreatic cancer stem cell features and sensitizes cells to gemcitabine
Orkhan Isayev et al, 2014, Oncotarget CrossRef - Neferine treatment enhances the TRAIL‑induced apoptosis of human prostate cancer cells via autophagic flux and the JNK pathway
Uddin Nazim et al, 2020, Int J Oncol CrossRef - Broccoli extract increases drug-mediated cytotoxicity towards cancer stem cells of head and neck squamous cell carcinoma
Osama A. Elkashty et al, 2020, Br J Cancer CrossRef - CXCR4 Is a Novel Target of Cancer Chemopreventative Isothiocyanates in Prostate Cancer Cells
Kozue Sakao et al, 2015, Cancer Prev Res CrossRef - Metabolism, absorption, and anti-cancer effects of sulforaphane: an update
Hao-feng Gu et al, 2021, Critical Reviews in Food Science and Nutrition CrossRef - Behind the Adaptive and Resistance Mechanisms of Cancer Stem Cells to TRAIL
Adriana G. Quiroz-Reyes et al, 2021, Pharmaceutics CrossRef - Targeting cancer stem cells by nutraceuticals for cancer therapy
Man Chu et al, 2021, Seminars in Cancer Biology CrossRef - Sulforaphane as a potential remedy against cancer: Comprehensive mechanistic review
null Iahtisham‐Ul‐Haq et al, 2021, J Food Biochem CrossRef - The Inhibitory Effect of Sulforaphane on Bladder Cancer Cell Depends on GSH Depletion-Induced by Nrf2 Translocation
Canxia He et al, 2021, Molecules CrossRef - Targeting Cancer Stem Cells by Dietary Agents: An Important Therapeutic Strategy against Human Malignancies
Mahshid Deldar Abad Paskeh et al, 2021, IJMS CrossRef - Modulation of Notch Signaling Pathway by Bioactive Dietary Agents
Violet A. Kiesel et al, 2022, IJMS CrossRef - Natural Products as a Promising Therapeutic Strategy to Target
Cancer Stem Cells
Merve Erkisa et al, 2022, CMC CrossRef - NRF2: A crucial regulator for mitochondrial metabolic shift and prostate cancer progression
Brigitta Buttari et al, 2022, Front. Physiol. CrossRef - A review on the impact of TRAIL on cancer signaling and targeting via phytochemicals for possible cancer therapy
Balasubramani Govindasamy et al, 2023, International Journal of Biological Macromolecules CrossRef - Regulation of the Notch Signaling Pathway by Natural Products for Cancer Therapy
Jiayi Cai et al, 2023, The Journal of Nutritional Biochemistry CrossRef - Harnessing Sulforaphane Potential as a Chemosensitizing Agent: A Comprehensive Review
Bethsebie Lalduhsaki Sailo et al, 2024, Cancers CrossRef - Understanding the autophagic functions in cancer stem cell maintenance and therapy resistance
null Niharika et al, 2024, Expert Rev. Mol. Med. CrossRef - Prostate Cancer
Ivan A. Ross, 2024 CrossRef - Cancer of the Urinary Bladder
Ivan A. Ross, 2024 CrossRef - The Impact of Sulforaphane on Sex-Specific Conditions and Hormone Balance: A Comprehensive Review
Jed W. Fahey et al, 2025, Applied Sciences CrossRef - Molecular Mechanisms of Dietary Compounds in Cancer Stem Cells from Solid Tumors: Insights into Colorectal, Breast, and Prostate Cancer
Alexandru Filippi et al, 2025, IJMS CrossRef