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Development of a Novel DNA Oligonucleotide Targeting Low-Density Lipoprotein Receptor
Tao Wang1, Kamal Rahimizadeh1, Rakesh N Veedu1
1Centre for Molecular Medicine and Innovative Therapeutics, Murdoch University, Perth, WA 6150, Australia; Perron Institute for Neurological and Translational Science, Perth, WA 6009, Australia.
Abstract:
Low-density lipoprotein receptor (LDL-R) is a cell surface receptor protein expressed in a variety of solid cancers, including lung, colon, breast, brain, and liver, and therefore it opens up opportunities to deliver lysosome-sensitive anti-cancer agents, especially synthetic nucleic acid-based therapeutic molecules. In this study, we focused on developing novel nucleic acid molecules specific to LDL-R. For this purpose, we performed in vitro selection procedure via systematic evolution of ligands by exponential enrichment (SELEX) methodologies using mammalian cell-expressed human recombinant LDL-R protein as a target. After 10 rounds of selections, we identified a novel DNA oligonucleotide aptamer, RNV-L7, that can bind specifically to LDL-R protein with high affinity and specificity (KD = 19.6 nM). Furthermore, flow cytometry and fluorescence imaging assays demonstrated efficient binding to LDL-R overexpressed human cancer cells, including Huh-7 liver cancer cells and MDA-MB-231 breast cancer cells, with a binding affinity of ∼200 nM. Furthermore, we evaluated the functional potential of the developed LDL-R aptamer RNV-L7 by conjugating with a previously reported miR-21 targeting DNAzyme for inhibiting miR-21 expression. The results showed that the miR-21 DNAzyme-RNV-L7 aptamer chimera efficiently reduced the expression of miR-21 in Huh-7 liver cancer cells. As currently there are no reports on LDL-R aptamer development, we think that RNV-L7 could be beneficial toward the development of targeted cancer therapeutics.
Insights
Researchers developed a novel DNA aptamer, RNV-L7, that specifically binds to the low-density lipoprotein receptor (LDL-R) found on cancer cells. This aptamer shows potential for targeted cancer therapy delivery.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- Low-density lipoprotein receptor (LDL-R) is overexpressed on various solid tumors, presenting a target for cancer therapies.
- Targeted delivery of therapeutic agents, particularly nucleic acid-based drugs, can enhance efficacy and reduce side effects.
Purpose of the Study:
- To develop novel nucleic acid molecules with high specificity and affinity for LDL-R.
- To create a targeted therapeutic agent for cancer treatment by conjugating the developed aptamer with a DNAzyme.
Main Methods:
- Systematic Evolution of Ligands by Exponential Enrichment (SELEX) was used to identify LDL-R specific DNA aptamers.
- In vitro selection was performed using human recombinant LDL-R protein.
- Flow cytometry and fluorescence imaging assays were used to confirm binding to cancer cells.
- The aptamer was conjugated with a miR-21 targeting DNAzyme to evaluate its functional potential.
Main Results:
- A novel DNA aptamer, RNV-L7, was identified with high affinity (KD = 19.6 nM) and specificity for LDL-R.
- RNV-L7 demonstrated efficient binding to LDL-R overexpressing liver (Huh-7) and breast (MDA-MB-231) cancer cells.
- The RNV-L7 aptamer-DNAzyme chimera effectively reduced miR-21 expression in Huh-7 cells.
Conclusions:
- The novel LDL-R aptamer RNV-L7 exhibits high affinity and specificity for the receptor.
- RNV-L7 shows promise for targeted delivery of therapeutic payloads to LDL-R-expressing cancer cells.
- This aptamer represents a potential new tool for developing targeted cancer therapeutics.
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