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Expression, Solubilization, and Purification of Eukaryotic Borate Transporters
Published on: March 7, 2019
Biological evaluation of boronated unnatural amino acids as new boron carriers
G W Kabalka1, M-L Yao, S R Marepally
1Departments of Radiology and Chemistry, The University of Tennessee, Knoxville, TN, USA. kabalka@utk.edu
Abstract:
There is a pressing need for new and more efficient boron delivery agents to tumor cells for use in boron neutron capture therapy (BNCT). A class of boronated unnatural cyclic amino acids has demonstrated a remarkable selectivity toward tumors in animal and cell culture models, far superior to currently used agents in clinical BNCT. One of these amino acids, 1-amino-3-boronocyclopentanecarboxylic acid (ABCPC), has shown a tumor to blood ratio of 8 and a tumor to normal brain ratio of nearly 21 in a melanoma bearing mouse model. This work represents further biological characterization of this compound for tumor targeting in an EMT6 murine mammary carcinoma mouse model and a T98G human glioblastoma cell line. Female BALB/c mice bearing EMT6 tumors were injected with the fructose complex form of racemic mixtures of cis and trans isomers of ABCPC in identical concentrations. Boron concentrations were measured in the tumor, blood, brain, skin, and liver tissues at 1, 3, and 5 h post-injection. These observations revealed a remarkable difference in racemic mixtures of cis and trans isomers in tumor targeting by boron. This implies that further separation of the L and D forms of this compound may enhance tumor targeting to an even higher degree than that provided by the racemic mixtures. Since the uptake measurements were made in homogenized tumor and normal tissues, little is known about the subcellular location of the boron arising from the various isomeric forms of the amino acid. To study subcellular delivery of boron from ABCPC in T98G human glioblastoma cells, we employed secondary ion mass spectrometry (SIMS) based technique of ion microscopy, which is capable of quantitatively imaging isotopic (elemental) gradients in cells and tissues at 500 nm spatial resolution. The T98G cells were exposed to the nutrient medium containing 100 ppm boron equivalent of a mixture of both L and D isomers of ABCPC in the form of a fructose complex for 1 h. Following this treatment, the cells were fast frozen, freeze-fractured, and freeze-dried for SIMS analysis. Within an hour of exposure, ABCPC provided partitioning of intracellular to extracellular boron of 3/1. SIMS imaging revealed that boron from ABCPC was distributed throughout the cell, including the nucleus. This level of boron delivery within an hour of exposure is superior to p-boronophenylalanine (BPA) and sodium borocaptate (BSH), which have been previously studied by SIMS in the same cell line. These encouraging observations provide compelling support for further isomeric separations of ABCPC into the D and L forms for enhanced tumor targeting and continued testing of these compounds as new boron carriers in BNCT.
Insights
New boron delivery agents like 1-amino-3-boronocyclopentanecarboxylic acid (ABCPC) show superior tumor targeting for boron neutron capture therapy (BNCT). Further isomeric separation may enhance delivery even more.
Area of Science:
- Biochemistry
- Oncology
- Radiotherapy
Background:
- Boron neutron capture therapy (BNCT) requires efficient boron delivery agents for tumor cells.
- Current agents have limitations in tumor selectivity and uptake.
- Boronated unnatural cyclic amino acids show promise for improved BNCT efficacy.
Purpose of the Study:
- To biologically characterize 1-amino-3-boronocyclopentanecarboxylic acid (ABCPC) for tumor targeting.
- To investigate the subcellular localization of boron delivered by ABCPC.
- To compare ABCPC's delivery efficiency with existing BNCT agents.
Main Methods:
- In vivo studies using EMT6 murine mammary carcinoma and T98G human glioblastoma models.
- Measurement of boron concentrations in various tissues post-injection.
- Secondary ion mass spectrometry (SIMS) ion microscopy for subcellular boron imaging.
Main Results:
- ABCPC demonstrated significant tumor targeting in mouse models.
- Distinct tumor targeting differences were observed between cis and trans isomers of ABCPC.
- SIMS analysis showed rapid intracellular boron uptake by ABCPC in T98G cells, including nuclear localization.
- ABCPC exhibited superior boron delivery compared to BPA and BSH within one hour.
Conclusions:
- ABCPC is a promising boron delivery agent for BNCT.
- Separation of ABCPC isomers (L and D forms) could further enhance tumor targeting.
- ABCPC's efficient subcellular delivery supports its potential as a next-generation BNCT agent.

