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Wufuer, R.

Publications and source records attributed to Wufuer, R..

2 recordsLinked to original sources

Nrf1 is an indispensable redox-determining factor for mitochondrial homeostasis by integrating multi-hierarchical regulatory networks

To defend a vast variety of challenges in the oxygenated environments, all life forms have been evolutionally established a set of antioxidant, detoxification and cytoprotective systems during natural selection and adaptive survival, in order to maintain cell redox homeostasis and organ integrity in the healthy development and growth. Such antioxidant defense systems are predominantly regulated by two key transcription factors Nrf1 and Nrf2, but the underlying mechanism(s) for their coordinated redox control remains elusive. Here, we found that loss of full-length Nrf1 led to a dramatic increase in reactive oxygen species (ROS) and oxidative damages in Nrf1-/- cells, and this increase was not eliminated by drastic elevation of Nrf2, even though the antioxidant systems were also substantially enhanced by hyperactive Nrf2. Further studies revealed that the increased ROS production in Nrf1-/- resulted from a striking impairment in the mitochondrial oxidative respiratory chain and its gene expression regulated by nuclear respiratory factors, called PalNRF1 and GABPNRF2. In addition to antioxidant capacity of cells, glycolysis was greatly augmented by aberrantly-elevated Nrf2, so to partially relieve the cellular energy demands, but aggravate its mitochondrial stress. The generation of ROS was also differentially regulated by Nrf1 and Nrf2 through miR-195 and/or mIR-497-mediated UCP2 pathway. Consequently, the epithelial-mesenchymal transformation (EMT) of Nrf1-/- cells was activated by putative ROS-stimulated signaling via MAPK, HIF1, NF-kB, PI3K and AKT, all players involved in cancer development and progression. Taken together, it is inferable that Nrf1 acts as a potent integrator of redox regulation by multi-hierarchical networks.

molecular biology↗

Differential yet integral contributions of Nrf1 and Nrf2 in the human antioxidant cytoprotective response against tert-butylhydroquinone as a pro-oxidative stressor

In the past 25 years, Nrf2 had been preferentially parsed as a master hub of regulating antioxidant, detoxification and cytoprotective genes, albeit as a matter of fact that Nrf1, rather than Nrf2, is indispensable for cell homeostasis and organ integrity during normal growth and development. Here, distinct genotypic cell lines (Nrf1-/-, Nrf2-/-{Delta}TA and caNrf2{Delta}N) are employed to determine differential yet integral roles of Nrf1 and Nrf2 in mediating antioxidant responsive genes to tBHQ as a pro-oxidative stressor. In Nrf1-/- cells, Nrf2 was highly accumulated but also cannot fully compensate specific loss of Nrf1s function in its basal cytoprotective response against endogenous oxidative stress, though it exerted partially inducible antioxidant response, as the hormetic effect of tBHQ, against apoptotic damages. By contrast, Nrf2-/-{Delta}TA cells gave rise to a substantial reduction of Nrf1 in both basal and tBHQ-stimulated expression and hence resulted in obvious oxidative stress, but can still be allowed to mediate a potent antioxidant response, as accompanied by a significantly decreased ratio of GSSG to GSH. Conversely, a remarkable increase of Nrf1 expression was resulted from the constitutive active caNrf2{Delta}N cells, which were not manifested with oxidative stress, no matter if it was intervened with tBHQ. Such inter-regulatory effects of Nrf1 and Nrf2 on antioxidant and detoxification genes (encoding HO-1, NQO1, GCLC, GCLM, GSR, GPX1, TALDO, MT1E and MT2), as well on the ROS-scavenging activities of SOD and CAT, were further investigated. The collective results unraveled that Nrf1 and Nrf2 make distinctive yet cooperative contributions to finely tuning basal constitutive and/or tBHQ-inducible expression levels of antioxidant cytoprotective genes in the inter-regulatory networks. Overall, Nrf1 acts as a brake control for Nrf2s functionality to be confined within a certain extent, whilst its transcription is regulated by Nrf2.

cell biology↗