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Biology subjects

Katada, T.

Publications and source records attributed to Katada, T..

3 recordsLinked to original sources

Quantifying small GTPase activation status using a novel fluorescence HPLC-based assay

Small GTPases play crucial roles in cellular signaling pathways, with their activation states tightly regulated between GDP-bound inactive and GTP-bound active forms. Dysregulation of these nucleotide-binding states, such as in oncogenic RAS, is implicated in diseases like cancer. Accurately quantifying these states in cells is thus crucial for deciphering their functional roles and regulatory mechanisms. However, current methods do not fully meet the necessary sensitivity and versatility, limiting their effectiveness in small GTPase analysis. Here, we present a highly sensitive HPLC-based assay with fluorescence detection (Fluor-HPLC), enabling precise quantification of guanine nucleotide-binding states in small GTPases. Applying this technique, we successfully quantified the guanine nucleotide-binding states of RHEB and KRAS at their endogenous expression levels. We demonstrated the utility of Fluor-HPLC by elucidating RHEB activation dynamics in response to insulin stimulation and amino acid availability. Furthermore, integration of Fluor-HPLC with syngeneic mouse models provided insights into KRAS activation dynamics in tumor tissues and evaluated the effectiveness of targeted therapeutics. Overall, this versatile method paves the way for investigating activation states and regulatory mechanisms of various small GTPases, potentially accelerating our understanding of their roles in cellular processes and disease pathogenesis.

cell biology↗

Targeting dermatophyte Cdc42 and Rac GTPase signaling to hinder hyphal elongation and virulence

The identification of novel molecular targets for antifungal drugs is critical due to limited treatment options and drug-resistance threats. We screened inhibitors of small GTPases, molecular switches in signal transduction, in Trichophyton rubrum, the primary cause of dermatophytosis. Our study found that chemical and genetic inhibition of Cdc42 and Rac GTPases, which are involved in cellular morphological changes, significantly impair hyphal formation, and are crucial for pathogenic fungal growth and virulence. Genetic repression of Cdc24, a guanine nucleotide exchange factor of Cdc42 and Rac, led to hyphal growth defects, abnormal cell morphology, and cell death. Chemical screening identified EHop-016 as an inhibitor of Cdc24 activity, which improved outcomes in in vitro nail infection and invertible infection models of T. rubrum. Our results suggest the Cdc24-Cdc42/Rac pathway as a promising therapeutic target for antifungal agent development, with EHop-016 as a potential lead compound.

microbiology↗

cTAGE5 acts as a Sar1 GTPase regulator for collagen export

Secretory proteins synthesized within the endoplasmic reticulum (ER) are exported via coat protein complex II (COPII)-coated vesicles. The formation of the COPII-coated vesicles is initiated by activation of the small GTPase, Sar1. cTAGE5 directly interacts with a guanine-nucleotide exchange factor (GEF), Sec12, and a GTPase-activating protein (GAP) of Sar1, Sec23. We have previously shown that cTAGE5 recruits Sec12 to the ER exit sites for efficient production of activated Sar1 for collagen secretion. However, the functional significance of the interaction between cTAGE5 and Sec23 has not been fully elucidated. In this study, we showed that cTAGE5 enhances the GAP activity of Sec23 toward Sar1. In addition, the interaction of cTAGE5 with Sec23 is necessary for collagen exit from the ER. Our data suggests that cTAGE5 acts as a Sar1 GTPase regulator for collagen secretion.

cell biology↗