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Walters, H. A.

Publications and source records attributed to Walters, H. A..

2 recordsLinked to original sources

FBH1 deficiency sensitizes cells to WEE1 inhibition by promoting mitotic catastrophe

WEE1 kinase phosphorylates CDK1 and CDK2 to regulate origin firing and mitotic entry. Inhibition of WEE1 has become an attractive target for cancer therapy due to the simultaneous induction of replication stress and inhibition of the G2/M checkpoint. WEE1 inhibition in cancer cells with high levels of replication stress results in induction of replication catastrophe and mitotic catastrophe. To increase potential as a single agent chemotherapeutic, a better understanding of genetic alterations that impact cellular responses to WEE1 inhibition is warranted. Here, we investigate the impact of loss of the helicase, FBH1, on the cellular response to WEE1 inhibition. FBH1-deficient cells have a reduction in ssDNA and double strand break signaling indicating FBH1 is required for induction of replication stress response in cells treated with WEE1 inhibitors. Despite the defect in the replication stress response, FBH1-deficiency sensitizes cells to WEE1 inhibition by increasing mitotic catastrophe. We propose loss of FBH1 is resulting in replication-associated damage that requires the WEE1-dependent G2 checkpoint for repair.

cell biology↗

Eukaryotic initiation factor 2α kinases regulate virulence functions, stage conversion, and the stress response in Entamoeba invadens

Entamoeba histolytica is a protozoan parasite that causes amoebic dysentery and liver abscess. This pathogen possesses a two-stage life cycle consisting of an environmentally stable cyst and a pathogenic amoeboid trophozoite. Since infection is acquired by ingestion of cysts from contaminated food and water, this parasite is prevalent in underdeveloped countries. A reptilian pathogen, Entamoeba invadens, which can encyst in culture, has long-served as a surrogate to study stage conversion. In the host, the Entamoebae must manage stress including nutrient deprivation and host immune pressure. In many systems, the stress response is characterized by down-regulation of translation, which is initiated by the phosphorylation of eukaryotic initiation factor-2 alpha (eIF2). In mammalian cells, this phosphorylation is carried out by a family of eIF2 kinases. A canonical eIF2 translational control system exists in the Entamoebae; however, no eIF2 kinases have been characterized. In this study, we identified two eIF2 kinases in E. invadens, EiIF2K-A and EiIF2K-B. Their identity as eIF2 kinases was validated using a heterologous yeast system. We used an RNAi Trigger-mediated silencing system to reduce expression of EiIF2K-A, which also reduced expression of EiIF2K-B. Parasites with decreased kinase expression exhibited decreased phosphorylation of eIF2 and increased sensitivity to oxidative stress. Diminished kinase expression also correlates with an increased rate of encystation, a decreased the rate of excystation, and an increase in several virulence functions, erythrophagocytosis and adhesion to host cells. Taken together, these data suggest that EiIF2K-A and EiIF2K-B are authentic eIF2 kinases that may regulate the Entamoeba stress response. ImportanceEntamoeba histolytica is a human pathogen that causes dysentery and affects millions of people worldwide. This parasite possesses a two-stage life cycle: an environmentally stable cyst and the pathogenic trophozoite. Cysts are ingested from contaminated food and water; thus, this parasite in prevalent in underdeveloped countries. Current therapies commonly cause adverse side effects; therefore, new treatments are needed. In the host, Entamoeba experiences stress brought on, in part, by the host immune system. Understanding stage conversion and the stress response of this pathogen may lead to new drug therapies. Using the model organism, E. invadens, we identified two kinases, similar to those involved in stress and stage conversion in other systems. We determined that these kinases may regulate the oxidative stress response, stage conversion, and virulence. This work is significant as it will inform future studies on the life cycle and pathogenicity of the Entamoeba species.

microbiology↗