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Published on: September 21, 2021
Exploring Geometrical, Electronic and Spectroscopic Properties of 2-Nitroimidazole-Based Radiopharmaceuticals via
George Crișan1,2, Ștefan Stan1, Vasile Chiș1,3
1Faculty of Physics, Babeș-Bolyai University, Str. M. Kogălniceanu 1, RO-400084 Cluj-Napoca, Romania.
Abstract:
Tumor hypoxia plays an important role in the clinical management and treatment planning of various cancers. The use of 2-nitroimidazole-based radiopharmaceuticals has been the most successful for positron emission tomography (PET) and single photon emission computed tomography (SPECT) imaging probes, offering noninvasive means to assess tumor hypoxia. In this study we performed detailed computational investigations of the most used compounds for PET imaging, focusing on those derived from 2-nitroimidazole: fluoromisonidazole (FMISO), fluoroazomycin arabinoside (FAZA), fluoroetanidazole (FETA), fluoroerythronitroimidazole (FETNIM) and 2-(2-nitroimidazol-1-yl)-N-(2,2,3,3,3-pentafluoropropyl)acetamide (EF5). Conformational analysis, structural parameters, vibrational IR and Raman properties (within both harmonic and anharmonic approximations), as well as the NMR shielding tensors and spin-spin coupling constants were obtained by density functional theory (DFT) calculations and then correlated with experimental findings, where available. Furthermore, time-dependent DFT computations reveal insight into the excited states of the compounds. Our results predict a significant change in the conformational landscape of most of the investigated compounds when transitioning from the gas phase to aqueous solution. According to computational data, the 2-nitroimidazole moiety determines to a large extent the spectroscopic properties of its derivatives. Due to the limited structural information available in the current literature for the investigated compounds, the findings presented herein deepen the current understanding of the electronic structures of these five radiopharmaceuticals.
Insights
Computational studies reveal that the 2-nitroimidazole core significantly influences the spectroscopic properties of PET imaging agents. This research deepens understanding of radiopharmaceuticals used to detect tumor hypoxia.
Area of Science:
- Radiochemistry
- Computational Chemistry
- Molecular Imaging
Background:
- Tumor hypoxia is critical in cancer management and treatment planning.
- 2-nitroimidazole-based radiopharmaceuticals are key for noninvasive positron emission tomography (PET) and single photon emission computed tomography (SPECT) imaging of tumor hypoxia.
Purpose of the Study:
- To perform detailed computational investigations of five widely used 2-nitroimidazole-derived PET imaging agents.
- To correlate computational findings with experimental data and deepen the understanding of their electronic structures.
Main Methods:
- Density functional theory (DFT) calculations were employed for conformational analysis, structural parameters, vibrational IR and Raman properties, and NMR shielding tensors.
- Time-dependent DFT computations were used to investigate excited states.
Main Results:
- A significant change in conformational landscape was predicted when transitioning from gas phase to aqueous solution for most compounds.
- The 2-nitroimidazole moiety was identified as the primary determinant of the spectroscopic properties of its derivatives.
- Computational data were correlated with available experimental findings.
Conclusions:
- The study provides valuable insights into the electronic structures of five important radiopharmaceuticals.
- Findings deepen the understanding of these agents, aiding in the development and application of hypoxia imaging.
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