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Best matches for sulforaphane cancer:

Prevention of Carcinogen-Induced Oral Cancer by Sulforaphane. Bauman JE et al. Cancer Prev Res (Phila). (2016)

Dietary Sulforaphane in Cancer Chemoprevention: The Role of Epigenetic Regulation and HDAC Inhibition. Tortorella SM et al. Antioxid Redox Signal. (2015)

Nrf2 targeting by sulforaphane: A potential therapy for cancer treatment. Russo M et al. Crit Rev Food Sci Nutr. (2018)

Search results

Items: 1 to 20 of 1008

1.

Inhibition of miR30a-3p by sulforaphane enhances gap junction intercellular communication in pancreatic cancer.

Georgikou C, Yin L, Gladkich J, Xiao X, Sticht C, Torre C, Gretz N, Gross W, Schäfer M, Karakhanova S, Herr I.

Cancer Lett. 2019 Oct 31. pii: S0304-3835(19)30545-2. doi: 10.1016/j.canlet.2019.10.042. [Epub ahead of print]

2.

The Molecular Effects of Sulforaphane and Capsaicin on Metabolism upon Androgen and Tip60 Activation of Androgen Receptor.

Carrasco-Pozo C, Tan KN, Rodriguez T, Avery VM.

Int J Mol Sci. 2019 Oct 29;20(21). pii: E5384. doi: 10.3390/ijms20215384.

3.

Sulforaphane Mediates Glutathione Depletion via Polymeric Nanoparticles to Restore Cisplatin Chemosensitivity.

Xu Y, Han X, Li Y, Min H, Zhao X, Zhang Y, Qi Y, Shi J, Qi S, Bao Y, Nie G.

ACS Nano. 2019 Nov 4. doi: 10.1021/acsnano.9b07032. [Epub ahead of print]

PMID:
31670945
4.

Profiling glucosinolate metabolites in human urine and plasma after broccoli consumption using non-targeted and targeted metabolomic analyses.

Sun J, Charron CS, Novotny JA, Peng B, Yu L, Chen P.

Food Chem. 2019 Oct 14;309:125660. doi: 10.1016/j.foodchem.2019.125660. [Epub ahead of print]

PMID:
31670121
5.

Sulforaphane-assisted preparation of tellurium flower-like nanoparticles.

Krug P, Wiktorska K, Kaczyńska K, Ofiara K, Szterk A, Kuśmierz B, Mazur M.

Nanotechnology. 2020 Jan 24;31(5):055603. doi: 10.1088/1361-6528/ab4e38. Epub 2019 Oct 16.

PMID:
31618725
6.

Glucosinolate-Degradation Products as Co-Adjuvant Therapy on Prostate Cancer in Vitro.

Núñez-Iglesias MJ, Novío S, García C, Pérez-Muñuzuri E, Soengas P, Cartea E, Velasco P, Freire-Garabal M.

Int J Mol Sci. 2019 Oct 9;20(20). pii: E4977. doi: 10.3390/ijms20204977.

7.

Enhancement of paraben-fungicidal activity by sulforaphane, a cruciferous vegetable-derived isothiocyanate, via membrane structural damage in Saccharomyces cerevisiae.

Murata W, Yamaguchi Y, Fujita KI, Yamauchi K, Tanaka T, Ogita A.

Lett Appl Microbiol. 2019 Dec;69(6):403-410. doi: 10.1111/lam.13230. Epub 2019 Oct 31.

PMID:
31596500
8.

Broccoli or Sulforaphane: Is It the Source or Dose That Matters?

Yagishita Y, Fahey JW, Dinkova-Kostova AT, Kensler TW.

Molecules. 2019 Oct 6;24(19). pii: E3593. doi: 10.3390/molecules24193593. Review.

9.

Sulforaphane enhances apoptosis induced by Lactobacillus pentosus strain S-PT84 via the TNFα pathway in human colon cancer cells.

Yasuda S, Horinaka M, Sakai T.

Oncol Lett. 2019 Oct;18(4):4253-4261. doi: 10.3892/ol.2019.10739. Epub 2019 Aug 14.

10.

Chemoprevention of Prostate Cancer by Natural Agents: Evidence from Molecular and Epidemiological Studies.

Mokbel K, Wazir U, Mokbel K.

Anticancer Res. 2019 Oct;39(10):5231-5259. doi: 10.21873/anticanres.13720. Review.

PMID:
31570421
11.

Reversal of the Warburg phenomenon in chemoprevention of prostate cancer by sulforaphane.

Singh KB, Hahm ER, Alumkal JJ, Foley LM, Hitchens TK, Shiva SS, Parikh RA, Jacobs BL, Singh SV.

Carcinogenesis. 2019 Sep 26. pii: bgz155. doi: 10.1093/carcin/bgz155. [Epub ahead of print]

PMID:
31555797
12.

Mitochondrial biology in airway pathogenesis and the role of NRF2.

Cho HY, Kleeberger SR.

Arch Pharm Res. 2019 Sep 4. doi: 10.1007/s12272-019-01182-5. [Epub ahead of print] Review.

PMID:
31486024
13.

Co-Treatment with Sulforaphane and Nano-Metformin Molecules Accelerates Apoptosis in HER2+ Breast Cancer Cells by Inhibiting Key Molecules.

Keshandehghan A, Nikkhah S, Tahermansouri H, Heidari-Keshel S, Gardaneh M.

Nutr Cancer. 2019 Sep 2:1-14. doi: 10.1080/01635581.2019.1655073. [Epub ahead of print]

PMID:
31474154
14.

Sulforaphane inhibits epithelial-mesenchymal transition by activating extracellular signal-regulated kinase 5 in lung cancer cells.

Chen Y, Chen JQ, Ge MM, Zhang Q, Wang XQ, Zhu JY, Xie CF, Li XT, Zhong CY, Han HY.

J Nutr Biochem. 2019 Oct;72:108219. doi: 10.1016/j.jnutbio.2019.108219. Epub 2019 Jul 30.

PMID:
31473507
15.

Human bronchial carcinoid tumor initiating cells are targeted by the combination of acetazolamide and sulforaphane.

Bayat Mokhtari R, Baluch N, Morgatskaya E, Kumar S, Sparaneo A, Muscarella LA, Zhao S, Cheng HL, Das B, Yeger H.

BMC Cancer. 2019 Aug 30;19(1):864. doi: 10.1186/s12885-019-6018-1.

16.

Epigenetics of Breast Cancer: Clinical Status of Epi-drugs and Phytochemicals.

Shukla S, Penta D, Mondal P, Meeran SM.

Adv Exp Med Biol. 2019;1152:293-310. doi: 10.1007/978-3-030-20301-6_16. Review.

PMID:
31456191
17.

High levels of EGFR prevent sulforaphane-induced reactive oxygen species-mediated apoptosis in non-small-cell lung cancer cells.

Wang TH, Chen CC, Huang KY, Shih YM, Chen CY.

Phytomedicine. 2019 Nov;64:152926. doi: 10.1016/j.phymed.2019.152926. Epub 2019 Apr 13.

PMID:
31454652
18.

Sulforaphane-induced epigenetic regulation of Nrf2 expression by DNA methyltransferase in human Caco-2 cells.

Zhou JW, Wang M, Sun NX, Qing Y, Yin TF, Li C, Wu D.

Oncol Lett. 2019 Sep;18(3):2639-2647. doi: 10.3892/ol.2019.10569. Epub 2019 Jul 5.

19.

Rare and common genetic variations in the Keap1/Nrf2 antioxidant response pathway impact thyroglobulin gene expression and circulating levels, respectively.

Matana A, Ziros PG, Chartoumpekis DV, Renaud CO, Polašek O, Hayward C, Zemunik T, Sykiotis GP.

Biochem Pharmacol. 2019 Aug 14. pii: S0006-2952(19)30295-3. doi: 10.1016/j.bcp.2019.08.007. [Epub ahead of print]

20.

Natural Plants Compounds as Modulators of Epithelial-to-Mesenchymal Transition.

Avila-Carrasco L, Majano P, Sánchez-Toméro JA, Selgas R, López-Cabrera M, Aguilera A, González Mateo G.

Front Pharmacol. 2019 Jul 30;10:715. doi: 10.3389/fphar.2019.00715. eCollection 2019. Review.

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