Development of Aptamer-DNAzyme based metal-nucleic acid frameworks for gastric cancer therapy.
Jiaqi YanRajendra BhadaneMeixin RanXiaodong MaYuanqiang LiDongdong ZhengOuti M H Salo-AhenHongbo ZhangPublished in: Nature communications (2024)
The metal-nucleic acid nanocomposites, first termed metal-nucleic acid frameworks (MNFs) in this work, show extraordinary potential as functional nanomaterials. However, thus far, realized MNFs face limitations including harsh synthesis conditions, instability, and non-targeting. Herein, we discover that longer oligonucleotides can enhance the synthesis efficiency and stability of MNFs by increasing oligonucleotide folding and entanglement probabilities during the reaction. Besides, longer oligonucleotides provide upgraded metal ions binding conditions, facilitating MNFs to load macromolecular protein drugs at room temperature. Furthermore, longer oligonucleotides facilitate functional expansion of nucleotide sequences, enabling disease-targeted MNFs. As a proof-of-concept, we build an interferon regulatory factor-1(IRF-1) loaded Ca 2+ /(aptamer-deoxyribozyme) MNF to target regulate glucose transporter (GLUT-1) expression in human epidermal growth factor receptor-2 (HER-2) positive gastric cancer cells. This MNF nanodevice disrupts GSH/ROS homeostasis, suppresses DNA repair, and augments ROS-mediated DNA damage therapy, with tumor inhibition rate up to 90%. Our work signifies a significant advancement towards an era of universal MNF application.
Keyphrases
- nucleic acid
- dna damage
- cancer therapy
- dna repair
- epidermal growth factor receptor
- room temperature
- drug delivery
- oxidative stress
- gold nanoparticles
- dendritic cells
- advanced non small cell lung cancer
- endothelial cells
- tyrosine kinase
- cell death
- poor prognosis
- binding protein
- reactive oxygen species
- type diabetes
- sensitive detection
- dna damage response
- transcription factor
- signaling pathway
- quantum dots
- mesenchymal stem cells
- skeletal muscle
- induced pluripotent stem cells
- immune response
- metabolic syndrome
- blood pressure
- human health
- bone marrow
- risk assessment
- cell therapy
- pluripotent stem cells