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Mereddy, V. R.

Publications and source records attributed to Mereddy, V. R..

2 recordsLinked to original sources

Development of fluoro-7-aminocarboxycoumarin-based mitochondrial pyruvate carrier inhibitors as anticancer agents

Reprogrammed metabolism of cancer cells offers a unique target for pharmacological intervention. In the current study, a series of novel and potentially metabolically stable fluoro-substituted aminocarboxycoumarin derivatives are evaluated for their mitochondrial pyruvate carrier (MPC) inhibition properties. Our studies indicate that the aminocarboxycoumarin template elicits potent MPC inhibitory characteristics, and specifically, structure activity relationship studies show that the N-methyl-N-benzyl structural template provides the optimal inhibitory capacity. Further respiratory experiments demonstrate that candidate compounds specifically inhibit pyruvate driven respiration without substantially affecting other metabolic fuels consistent with MPC inhibition. Further, computational homology and inhibitor docking studies illustrate that aminocarboxycoumarin binding characteristics are indicative of reversible covalent bonding with amino acids in the pyruvate binding domain. Epifluorescent microscopy experiments illustrated that FACC2 accumulates in the mitochondria to a similar extent as parent 7ACC2. Additionally, lead candidate aminocarboxycoumarin derivative D7 elicits cancer cell proliferation inhibition specifically in monocarboxylate transporter 1 (MCT1) expressing 4T1, consistent with its ability to accumulate intracellular lactate. In vivo tumor growth studies illustrate that D7 significantly reduces the tumor burden in two isogeneic murine cell lines 4T1 and 67nr. These studies provide novel MPC inhibitors with potential for anticancer applications.

cancer biology↗

Repurposing mitochondrial-targeting anthelmintic agents with GLUT1 inhibitor BAY-876 for cancer therapy

Cancer cells alter their metabolic phenotypes with nutritional change. Single agent approaches targeting mitochondrial metabolism in cancer have failed due to either dose limiting off target toxicities, or lack of efficacy in vivo. To mitigate these clinical challenges, we investigated the potential utility of repurposing FDA approved mitochondrial targeting anthelmintic agents, niclosamide and pyrvinium pamoate, to be combined with GLUT1 inhibitor BAY-876 to enhance the inhibitory capacity of the major metabolic phenotypes exhibited by tumors. To test this, we used breast cancer cell lines MDA-MB-231 and 4T1 which exhibit differing basal metabolic rates of glycolysis and mitochondrial respiration, respectively. Here, we found that specific responses to mitochondrial and glycolysis targeting agents elicit responses that correlate with tested cell lines basal metabolic rates and fuel preference, highlighting the potential to cater metabolism targeting treatment regimens based on specific tumor nutrient handling. Inhibition of GLUT1 with BAY-876 potently inhibited glycolysis in both MDA-MB-231 and 4T1 cells, and niclosamide and pyrvinium pamoate perturbed mitochondrial respiration that resulted in potent compensatory glycolysis in the cell lines tested. In this regard, combination of BAY-876 with both mitochondrial targeting agents resulted in inhibition of compensatory glycolysis and subsequent metabolic crisis. These studies warrant further investigation into targeting tumor metabolism as a combination treatment regimen that can be tailored by basal and compensatory metabolic phenotypes.

cancer biology↗