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Noncompetitive blocking of human GLUT1 hexose transporter by methylxanthines reveals an exofacial regulatory binding
Paola Ojeda1, Alejandra Pérez, Lorena Ojeda
1Instituto de Bioquímica y Microbiología, Facultad de Ciencias, Universidad Austral de Chile, Casilla 567, Valdivia, Chile.
Abstract:
Glucose transporter (GLUT)1 has become an attractive target to block glucose uptake in malignant cells since most cancer cells overexpress GLUT1 and are sensitive to glucose deprivation. Methylxanthines are natural compounds that inhibit glucose uptake; however, the mechanism of inhibition remains unknown. Here, we used a combination of binding and glucose transport kinetic assays to analyze in detail the effects of caffeine, pentoxifylline, and theophylline on hexose transport in human erythrocytes. The displacement of previously bound cytochalasin B revealed a direct interaction between the methylxanthines and GLUT1. Methylxanthines behave as noncompetitive blockers (inhibition constant values of 2-3 mM) in exchange and zero-trans efflux assays, whereas mixed inhibition with a notable uncompetitive component is observed in zero-trans influx assays (inhibition constant values of 5-12 mM). These results indicate that methylxanthines do not bind to either exofacial or endofacial d-glucose-binding sites but instead interact at a different site accessible by the external face of the transporter. Additionally, infinite-cis exit assays (Sen-Widdas assays) showed that only pentoxifylline disturbed d-glucose for binding to the exofacial substrate site. Interestingly, coinhibition assays showed that methylxanthines bind to a common site on the transporter. We concluded that there is a methylxanthine regulatory site on the external surface of the transporter, which is close but distinguishable from the d-glucose external site. Therefore, the methylxanthine moiety may become an attractive framework for the design of novel specific noncompetitive facilitative GLUT inhibitors.
Insights
Methylxanthines like caffeine directly interact with glucose transporter 1 (GLUT1), acting as noncompetitive inhibitors. This discovery opens avenues for designing new GLUT1 inhibitors for cancer therapy.
Area of Science:
- Biochemistry
- Molecular Biology
- Pharmacology
Background:
- Malignant cells often overexpress glucose transporter 1 (GLUT1), making them vulnerable to glucose deprivation.
- Methylxanthines are known to inhibit glucose uptake, but their precise mechanism of action on GLUT1 is unclear.
Purpose of the Study:
- To elucidate the inhibitory mechanism of methylxanthines (caffeine, pentoxifylline, theophylline) on hexose transport mediated by GLUT1.
- To investigate the binding interaction between methylxanthines and GLUT1.
Main Methods:
- Binding assays using cytochalasin B displacement.
- Glucose transport kinetic assays (exchange, zero-trans efflux/influx, infinite-cis exit).
- Coinhibition assays to assess binding site interactions.
Main Results:
- Methylxanthines directly bind to GLUT1, acting as noncompetitive blockers in efflux and mixed inhibitors in influx.
- They bind to a unique external regulatory site, distinct from the d-glucose binding site.
- Pentoxifylline was observed to disrupt d-glucose binding to the exofacial site.
Conclusions:
- A novel methylxanthine regulatory site exists on the external surface of GLUT1.
- Methylxanthines represent a promising structural framework for developing specific, noncompetitive GLUT inhibitors for therapeutic applications.
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