YC-1 targeting of hypoxia-inducible factor-1 alpha reduces RGC-5 cell viability and inhibits cell proliferation
MOLECULAR VISION
Authors: Tsui, Leo; Fong, Tsorng-Harn; Wang, I-Jong
Abstract
Purpose: The survival of retinal ganglion cells (RGCs) is a hallmark of many optic neurodegenerative diseases such as glaucoma. YC-1, a potential anticancer drug, is known to be able to decrease the stability and protein expression of hypoxia-inducible factor (HIF)-1 alpha that is triggered by hypoxia and related to RGC survival. We hypothesized that YC-1 may alter RGC cell viability through the down-regulation of HIF-1 alpha. Methods: Cell viability of the RGC-5 cell line was measured with a 3-(4,5-Dimethylthiazol-2-yl)-2,5-diphenyl tetrazolium bromide (MTT) assay. Flow cytometry, a LIVE/DEAD viability assay, and high-content screening (HCS) with MKI67 (K-i-67) monoclonal antibodies were used to detect cell death and cellular proliferation. Results: We found that cells treated with 20 mu M YC-1 for 24 h decreased the HIF-1 alpha level in an RGC-5 cell line using immunoblotting and reduced the live cell number in an MTT assay. Results of flow cytometry and HCS demonstrated that reducing the cell proliferation of RGC-5 cells, not cell death, led to the decreased level in the MTT assay. Conclusions: Our findings demonstrate that YC-1-induced down-regulation of HIF-1 alpha might reduce RGC cell proliferation and viability under normoxia, which implies a role of YC-1 in the neuroprotective effect for further clinical applications.
A novel enhancer regulates MGMT expression and promotes temozolomide resistance in glioblastoma
NATURE COMMUNICATIONS
Authors: Chen, Xiaoyue; Zhang, Minjie; Gan, Haiyun; Wang, Heping; Lee, Jeong-Heon; Fang, Dong; Kitange, Gaspar J.; He, Lihong; Hu, Zeng; Parney, Ian F.; Meyer, Fredric B.; Giannini, Caterina; Sarkaria, Jann N.; Zhang, Zhiguo
Abstract
Temozolomide (TMZ) was used for the treatment of glioblastoma (GBM) for over a decade, but its treatment benefits are limited by acquired resistance, a process that remains incompletely understood. Here we report that an enhancer, located between the promoters of marker of proliferation Ki67 (MKI67) and O6-methylguanine-DNA-methyltransferase (MGMT) genes, is activated in TMZ-resistant patient-derived xenograft (PDX) lines and recurrent tumor samples. Activation of the enhancer correlates with increased MGMT expression, a major known mechanism for TMZ resistance. We show that forced activation of the enhancer in cell lines with low MGMT expression results in elevated MGMT expression. Deletion of this enhancer in cell lines with high MGMT expression leads to a dramatic reduction of MGMT and a lesser extent of Ki67 expression, increased TMZ sensitivity, and impaired proliferation. Together, these studies uncover a mechanism that regulates MGMT expression, confers TMZ resistance, and potentially regulates tumor proliferation.