n the past decades, extensive studies have reported the potential chemopreventive activity of sulforaphane, an isothiocyanate derived from glucoraphanin, occurring in large amounts in Brassica genus plants. Sulforaphane was found to be active against several forms of cancer. A growing body of data shows that sulforaphane acts against cancer at different levels, from development to progression, through pleiotropic effects. In this review, we discuss the available experimental and clinical data on the potential therapeutic role of sulforaphane against cancer. Its effects range from the protection of cells from DNA damage to the modulation of the cell cycle via pro-apoptotic, anti-angiogenesis and anti-metastasis activities. At molecular level, sulforaphane modulates cellular homeostasis via the activation of the transcription factor Nrf2. Although data from clinical studies are limited, sulforaphane remains a good candidate in the adjuvant therapy based on natural molecules against several types of cancer.

Nrf2 targeting by sulforaphane: A potential therapy for cancer treatment

Daglia, Maria;
2017-01-01

Abstract

n the past decades, extensive studies have reported the potential chemopreventive activity of sulforaphane, an isothiocyanate derived from glucoraphanin, occurring in large amounts in Brassica genus plants. Sulforaphane was found to be active against several forms of cancer. A growing body of data shows that sulforaphane acts against cancer at different levels, from development to progression, through pleiotropic effects. In this review, we discuss the available experimental and clinical data on the potential therapeutic role of sulforaphane against cancer. Its effects range from the protection of cells from DNA damage to the modulation of the cell cycle via pro-apoptotic, anti-angiogenesis and anti-metastasis activities. At molecular level, sulforaphane modulates cellular homeostasis via the activation of the transcription factor Nrf2. Although data from clinical studies are limited, sulforaphane remains a good candidate in the adjuvant therapy based on natural molecules against several types of cancer.
2017
Cell & Developmental Biology contains resources in biochemistry, molecular biology, biophysics, physiology, and pharmacology that have a specific emphasis on cellular function in eukaryotic systems. Topics of particular importance include receptor biology and signal transduction, regulation of gene expression at the cellular level, developmental genetics, developmental biology and morphogenesis, and cell-environment interactions. Resources concentrated on molecular biochemistry and molecular regulation of gene expression, as well as microscopic or histological analysis of cell or tissue samples are excluded.
Chemistry & Analysis covers research on natural and laboratory syntheses, chemical structure, structure-function relationship, isolation and analyses of biologically significant molecules, medicinal and food chemistry. Technical material describing crucial chemical methods in biochemical analysis and research is also placed in this category. Resources covering general biochemistry and natural metabolic pathways are excluded.
Esperti anonimi
Inglese
Internazionale
ELETTRONICO
1
15
15
Antioxidant; cancer; Nrf2; sulforaphane; Food Science; Industrial and Manufacturing Engineering
www.tandf.co.uk/journals/titles/10408398.asp
8
info:eu-repo/semantics/article
262
Russo, Maria; Spagnuolo, Carmela; Russo, Gian Luigi; Skalicka-Woźniak, Krystyna; Daglia, Maria; Sobarzo-Sánchez, Eduardo; Nabavi, Seyed Fazel; Nabav...espandi
1 Contributo su Rivista::1.1 Articolo in rivista
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11571/1210412
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