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Published on: January 11, 2020
Characterization of an Estrogen Receptor α-Selective 18 F-Estradiol PET Tracer
Pavel Sluka1, Uwe Ackermann2,3,4,5, Angela Rigopoulos3,4
1Eastern Health Clinical School, Monash University, Box Hill, VIC, Australia.
Abstract:
Objective Conventional imaging of cancer with modalities such as computed tomography or magnetic resonance imaging provides little information about the underlying biology of the cancer and consequently little guidance for systemic treatment choices. Accurate identification of aggressive cancers or those that are likely to respond to specific treatment regimens would allow more precisely tailored treatments to be used. The expression of the estrogen receptor α subunit is associated with a more aggressive phenotype, with a greater propensity to metastasize. We aimed to characterize the binding properties of an 18 F-estradiol positron emission tomography (PET) tracer in its ability to bind to the α and β forms of estrogen receptors in vitro and confirmed its binding to estrogen receptor α in vivo. Methods The 18 F-estradiol PET tracer was synthesized and its quality confirmed by high-performance liquid chromatography. Binding of the tracer was assessed in vitro by saturation and competitive binding studies to HEK293T cells transfected with estrogen receptor α ( ESR1 ) and/or estrogen receptor β ( ESR2 ). Binding of the tracer to estrogen receptor α in vivo was assessed by imaging of uptake of the tracer into MCF7 xenografts in BALB/c nu/nu mice. Results The 18 F-estradiol PET tracer bound with high affinity (94 nM) to estrogen receptor α, with negligible binding to estrogen receptor β. Uptake of the tracer was observed in MCF7 xenografts, which almost exclusively express estrogen receptor α. Conclusion 18 F-estradiol PET tracer binds in vitro with high specificity to the estrogen receptor α isoform, with minimal binding to estrogen receptor β. This may help distinguish human cancers with biological dependence on estrogen receptor subtypes.
Insights
This study introduces an 18F-estradiol positron emission tomography (PET) tracer that specifically binds to estrogen receptor alpha, potentially improving cancer diagnosis and treatment selection.
Area of Science:
- Nuclear medicine
- Molecular imaging
- Oncology
Background:
- Conventional cancer imaging lacks biological insights for targeted therapy.
- Estrogen receptor alpha (ERα) expression correlates with aggressive cancer phenotypes and metastasis.
- Targeted therapies require precise identification of cancer subtypes and their biological drivers.
Purpose of the Study:
- To evaluate the binding characteristics of an 18F-estradiol PET tracer.
- To determine the tracer's specificity for estrogen receptor alpha (ERα) versus estrogen receptor beta (ERβ) in vitro.
- To confirm in vivo binding of the tracer to ERα in a preclinical cancer model.
Main Methods:
- Synthesis and quality control of the 18F-estradiol PET tracer using high-performance liquid chromatography.
- In vitro binding assays using HEK293T cells expressing ERα (ESR1) and/or ERβ (ESR2).
- In vivo assessment of tracer uptake in MCF7 xenografts (ERα-positive) in immunodeficient mice.
Main Results:
- The 18F-estradiol tracer demonstrated high-affinity binding (94 nM) to ERα.
- Negligible binding was observed for ERβ.
- Significant tracer uptake was confirmed in ERα-expressing MCF7 xenografts.
Conclusions:
- The 18F-estradiol PET tracer exhibits high specificity for ERα with minimal ERβ binding.
- This tracer shows potential for distinguishing human cancers based on their ER subtype dependence.
- It may aid in guiding personalized systemic treatment strategies for cancer patients.
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