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Evaluating the Effectiveness of Cancer Drug Sensitization In Vitro and In Vivo
Published on: February 6, 2015
MR evaluation of response to targeted treatment in cancer cells
Franca Podo1, Silvana Canevari, Rossella Canese
1Department of Cell Biology and Neurosciences, Istituto Superiore di Sanità, Rome, Italy. franca.podo@iss.it
Abstract:
The development of molecular technologies, together with progressive sophistication of molecular imaging methods, has allowed the further elucidation of the multiple mutations and dysregulatory effects of pathways leading to oncogenesis. Acting against these pathways by specifically targeted agents represents a major challenge for current research efforts in oncology. As conventional anatomically based pharmacological endpoints may be inadequate to monitor the tumor response to these targeted treatments, the identification and use of more appropriate, noninvasive pharmacodynamic biomarkers appear to be crucial to optimize the design, dosage and schedule of these novel therapeutic approaches. An aberrant choline phospholipid metabolism and enhanced flux of glucose derivatives through glycolysis, which sustain the redirection of mitochondrial ATP to glucose phosphorylation, are two major hallmarks of cancer cells. This review focuses on the changes detected in these pathways by MRS in response to targeted treatments. The progress and limitations of our present understanding of the mechanisms underlying MRS-detected phosphocholine accumulation in cancer cells are discussed in the light of gene and protein expression and the activation of different enzymes involved in phosphatidylcholine biosynthesis and catabolism. Examples of alterations induced in the MRS choline profile of cells exposed to different agents or to tumor environmental factors are presented. Current studies aimed at the identification in cancer cells of MRS-detected pharmacodynamic markers of therapies targeted against specific conditional or constitutive cell receptor stimulation are then reviewed. Finally, the perspectives of present efforts addressed to identify enzymes of the phosphatidylcholine cycle as possible novel targets for anticancer therapy are summarized.
Insights
Magnetic resonance spectroscopy (MRS) detects metabolic changes in cancer, specifically aberrant choline phospholipid metabolism. This review explores MRS as a noninvasive biomarker for monitoring targeted cancer therapies and identifying new therapeutic targets.
Area of Science:
- Oncology
- Molecular Imaging
- Biochemistry
Background:
- Targeted cancer therapies require precise monitoring beyond traditional anatomical endpoints.
- Aberrant choline phospholipid metabolism and enhanced glycolysis are hallmarks of cancer cells.
- Noninvasive pharmacodynamic biomarkers are crucial for optimizing novel therapeutic strategies.
Purpose of the Study:
- To review changes in choline phospholipid metabolism and glycolysis detected by Magnetic Resonance Spectroscopy (MRS) in response to targeted cancer treatments.
- To discuss the mechanisms of MRS-detected phosphocholine accumulation in cancer cells.
- To explore the potential of MRS-detected biomarkers for evaluating therapies targeting specific cell receptors and identifying novel therapeutic targets within the phosphatidylcholine cycle.
Main Methods:
- Review of current literature on molecular technologies and molecular imaging in oncology.
- Analysis of changes in choline metabolite profiles detected by MRS in cancer cells under targeted treatment.
- Integration of gene and protein expression data with enzyme activity in the phosphatidylcholine cycle.
Main Results:
- MRS can detect aberrant choline phospholipid metabolism and altered glucose flux in cancer cells.
- Changes in the MRS choline profile reflect cellular responses to targeted agents and tumor microenvironment.
- Phosphocholine accumulation is a key metabolic alteration observed in cancer cells.
Conclusions:
- MRS is a valuable noninvasive tool for assessing pharmacodynamic responses to targeted cancer therapies.
- Understanding the mechanisms of choline metabolism alterations can guide the development of novel therapeutic strategies.
- Enzymes of the phosphatidylcholine cycle represent promising targets for future anticancer drug development.

