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Analyzing Tumor and Tissue Distribution of Target Antigen Specific Therapeutic Antibody
Published on: May 16, 2020
In vitro investigations of tumor targeting with (99m)Tc-labeled antisense DNA
1Division of Nuclear Medicine, Department of Radiology, University of Massachusetts Medical School, Worcester, Massachusetts 01655, USA.
Unlabelled:
One objective of this investigation was to determine whether chemical modifications of oligonucleotides to permit radiolabeling with gamma- or positron emitters interferes with hybridization and target cell accumulation. A second objective was to establish to a reasonable extent whether cellular accumulation of radiolabeled oligonucleotides can be explained by an antisense mechanism.
Methods:
An 18mer uniform phosphorothioate DNA antisense to the messenger RNA (mRNA) of the type I regulatory subunit alpha of cyclic adenosine monophosphate-dependent protein kinase A (RI alpha) was conjugated with the N-hydroxysuccinimidyl derivative of S-acetylmercaptoacetyltriglycine (MAG3) through a primary amine/linker and investigated in vitro in cell culture.
Results:
By surface plasmon resonance, the association kinetics between native (i.e., without amine/linker) DNA and MAG3-amide/linker-DNA were identical. Melting temperatures were also identical for native DNA, amine/linker-DNA, and MAG3-amide/linker-DNA, indicating that these chemical modifications had no detectable influence on hybridization. However, cellular accumulation of (99m)Tc-MAG3-DNA was lower than that of (35)S-MAG3-DNA, suggesting that chemical modifications can have an important influence on cellular accumulation. In tissue culture studies of ACHN tumor cells (a human renal adenocarcinoma cell type), an antisense effect was suggested by 3 findings: an increased accumulation of (35)S- or (99m)Tc-labeled antisense versus sense DNA, an increased accumulation of (99m)Tc-antisense DNA in another RI alpha-positive tumor cell line (LS174T) but not in a murine transfected control cell line (HC-2), and the disappearance of the increased cellular accumulation of (99m)Tc-antisense DNA with increasing dosage of antisense DNA. Higher than expected cellular accumulations of about 10(5) antisense DNAs per cell over 24 h suggest stabilization of the target mRNA or increased mRNA production by the presence of the antisense DNA. In support of this suggestion, we observed, first, an increased incorporation of uridine-5'-triphosphate into RNA in cells exposed to the antisense DNA but not to the control DNA and, second, an increase in target mRNA expression in cells exposed to the antisense DNA but not to the control DNA.
Conclusion:
This evidence suggests tumor cell accumulation by an antisense mechanism. Moreover, the high level of DNA accumulation suggests that a rapid target mRNA turnover or transcription rate may be an important determinant of tumor counting rates.
Insights
Chemical modifications of radiolabeled oligonucleotides did not affect hybridization but influenced cellular accumulation. Evidence suggests tumor cell accumulation occurs via an antisense mechanism, potentially stabilizing target mRNA.
Area of Science:
- Molecular Biology
- Biochemistry
- Antisense Technology
Background:
- Oligonucleotides are being investigated for therapeutic applications, requiring methods for radiolabeling to track their cellular behavior.
- Understanding the impact of chemical modifications for radiolabeling on oligonucleotide function is crucial for their development.
Purpose of the Study:
- To determine if chemical modifications for radiolabeling (gamma- or positron emitters) affect oligonucleotide hybridization and target cell accumulation.
- To investigate if cellular accumulation of radiolabeled oligonucleotides can be explained by an antisense mechanism.
Main Methods:
- An 18-mer phosphorothioate DNA antisense oligonucleotide targeting RI alpha mRNA was synthesized and conjugated with MAG3 via an amine/linker.
- Hybridization properties were assessed using surface plasmon resonance and melting temperature analysis.
- Cellular accumulation and antisense effects were studied in vitro using ACHN tumor cells and other cell lines, with radiolabeled (99mTc, 35S) oligonucleotides.
Main Results:
- Chemical modifications for radiolabeling did not alter DNA hybridization kinetics or melting temperatures.
- Cellular accumulation of (99m)Tc-MAG3-DNA was lower than (35)S-MAG3-DNA, indicating modification influence on accumulation.
- Evidence for an antisense effect included increased accumulation of antisense vs. sense DNA, cell-line-specific accumulation, and dose-dependent effects. Increased RNA and target mRNA expression were observed.
Conclusions:
- The study provides evidence supporting tumor cell accumulation via an antisense mechanism.
- High DNA accumulation suggests rapid target mRNA turnover or transcription rates may be key determinants for tumor imaging.
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