Related Experiment Video
Updated: Aug 15, 2026

MISSION LentiPlex Pooled shRNA Library Screening in Mammalian Cells
Published on: December 21, 2011
Programmable Loading of a Multivalent LRPPRC Aptamer onto a Rectangular DNA Tile Inhibits the Proliferation of Lung
Xinna Zhang1,2, Yunben Yang2, Zhan Tian3
1School of Life Sciences, Faculty of Medicine, Tianjin University, Tianjin 300072, P. R. China.
Abstract:
Since cancer biomarkers for lung adenocarcinoma can lead to early intervention and treatment, they have been the focus of much research attention. DNA aptamers, which are functional oligonucleotides, exhibit high specificity and binding affinity to different types of cancer biomarkers. Through DNA aptamer screening, a leucine-rich PPR-motif-containing protein (LRPPRC) was discovered as a potential biomarker for lung adenocarcinoma therapeutics. It is an RNA-binding protein that helps in regulating post-transcriptional gene expression in mitochondria. Interestingly, the first LRPPRC-targeted small-molecule drug showed significant antitumor effects. Apart from biomarker discovery, DNA aptamers have also shown promise in cancer therapeutics, but challenges in the programmable delivery of aptamers have limited applications. Herein, we have addressed these challenges in two steps. First, after obtaining purified protein LRPPRC, we verified aptamer R14 as its high-affinity binding ligand. Second, for programmable delivery, a rectangular DNA tile (RDT) was constructed to improve cellular internalization. In particular, DNA handles on the surface of this DNA nanostructure serve as overhangs for loading multivalent R14, and both A549 and PC9 cells treated with R14-RDT targeted to LRPPRC showed significant inhibition of cancer cell proliferation. We then investigated the molecular mechanism(s) underlying the interaction between multivalent aptamer R14 loaded on an RDT and its cognate target protein such that the result is inhibition of cancer cell proliferation. Based on our findings, we hypothesized that R14-RDT-LRPPRC interaction triggers significant gene transcription and RNA processing events that result in inhibiting mitochondria-related genes and RNA transcriptional processing, while causing an immune inflammatory response that ultimately leads to the inhibition of cancer cell proliferation. Therefore, this research offers an instructive paradigm for programmable loading of a multivalent aptamer onto a two-dimensional DNA nanostructure to improve targeted cancer therapeutics through intervening with the cell's transcriptome.
Insights
Researchers developed a DNA nanostructure to deliver aptamers targeting LRPPRC, a lung adenocarcinoma biomarker. This programmable delivery system effectively inhibited cancer cell proliferation by altering gene expression and RNA processing.
Area of Science:
- Biotechnology
- Molecular Biology
- Cancer Research
Background:
- Lung adenocarcinoma biomarkers are crucial for early intervention and treatment.
- DNA aptamers offer high specificity and binding affinity for cancer biomarkers.
- Leucine-rich PPR-motif-containing protein (LRPPRC) is identified as a potential lung adenocarcinoma biomarker.
Purpose of the Study:
- To address challenges in programmable aptamer delivery for cancer therapeutics.
- To verify aptamer R14 as a high-affinity ligand for LRPPRC.
- To construct a DNA nanostructure for improved cellular internalization and targeted delivery.
Main Methods:
- Purification of LRPPRC protein.
- Screening and verification of aptamer R14 for LRPPRC binding.
- Construction of a rectangular DNA tile (RDT) for aptamer loading.
- In vitro testing of R14-RDT on A549 and PC9 lung adenocarcinoma cells.
Main Results:
- Aptamer R14 demonstrated high-affinity binding to LRPPRC.
- The R14-RDT nanostructure enhanced cellular internalization and targeted LRPPRC.
- Treatment with R14-RDT significantly inhibited lung adenocarcinoma cell proliferation.
- Mechanistic studies suggested disruption of mitochondria-related gene expression and RNA processing.
Conclusions:
- The R14-RDT system provides a novel paradigm for programmable aptamer delivery.
- This approach enhances targeted cancer therapeutics by modulating the cellular transcriptome.
- The findings offer a promising strategy for lung adenocarcinoma treatment.
More Related Videos
06:51Utilizing 18F-FDG PET/CT Imaging and Quantitative Histology to Measure Dynamic Changes in the Glucose Metabolism in Mouse Models of Lung Cancer
Published on: July 21, 2018
10:07Preparation of Multifunctional Silk-Based Microcapsules Loaded with DNA Plasmids Encoding RNA Aptamers and Riboswitches
Published on: October 8, 2021