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Antioxidant response elements: Discovery, classes, regulation and potential applications

Journal

REDOX BIOLOGY
Volume 17, Issue -, Pages 297-314

Publisher

ELSEVIER SCIENCE BV
DOI: 10.1016/j.redox.2018.05.002

Keywords

Antioxidant response elements; Antioxidant genes; ARE-reporter constructs; ARE SNPs; Keapl/Nrf2/ARE pathway; Oxidative stress

Funding

  1. University Grants Commission Basic Scientific Research (UGC-BSR), New Delhi, India [F.7-25/2007]
  2. UGC-SAP DRS II [F-3-30/2013]
  3. DST FIST, New Delhi, India [SR/FST/LSI-618/2014]

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Exposure to antioxidants and xenobiotics triggers the expression of a myriad of genes encoding antioxidant proteins, detoxifying enzymes, and xenobiotic transporters to offer protection against oxidative stress. This articulated universal mechanism is regulated through the cis-acting elements in an array of Nrf2 target genes called antioxidant response elements (AREs), which play a critical role in redox homeostasis. Though the Keapl/Nrf2/ARE system involves many players, AREs hold the key in transcriptional regulation of cytoprotective genes. ARE mediated reporter constructs have been widely used, including xenobiotics profiling and Nrf2 activator screening. The complexity of AREs is brought by the presence of other regulatory elements within the AREs. The diversity in the ARE sequences not only bring regulatory selectivity of diverse transcription factors, but also confer functional complexity in the Keapl/Nrf2/ARE pathway. The different transcription factors either homodimerize or heterodimerize to bind the AREs. Depending on the nature of partners, they may activate or suppress the transcription. Attention is required for deeper mechanistic understanding of ARE-mediated gene regulation. The computational methods of identification and analysis of AREs are still in their infancy. Investigations are required to know whether epigenetics mechanism plays a role in the regulation of genes mediated through AREs. The polymorphisms in the AREs leading to oxidative stress related diseases are warranted. A thorough understanding of AREs will pave the way for the development of therapeutic agents against cancer, neurodegenerative, cardiovascular, metabolic and other diseases with oxidative stress.

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