Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Aptamer-based monitoring of drug uptake into cells and vertebrates

View through CrossRef
Sensing small molecules, including drugs and their metabolites inside cells, is critical for drug discovery and development, diagnostics, and precision medicine. To facilitate sensitive, long-term studies of drug uptake in cultured cells and animals, we developed a genetically-encoded aptamer biosensor platform for non-invasive real-time measurements of drug distribution. We combined the high specificity of aptamer molecular recognition with the easy-to-detect properties of fluorescent proteins. We tested six different aptamer biosensors, showcasing the platform versatility. The biosensors display high sensitivity and specificity for detecting their specific drug target over related analogs. Furthermore, the biosensor responses were dose dependent and could be detected in individual live cells. We designed our platform for easy integration into animal genomes; thus, we incorporated one aptamer biosensor into zebrafish, an important model vertebrate. The biosensor was stably expressed and enabled non-invasive drug biodistribution imaging in whole animals across different timepoints. To our knowledge, this is the first example of an integrated aptamer biosensor encoded by a vertebrate animal. As such, our aptamer encoded biosensors address the need for non-invasive whole animal biosensing ideal for pharmacokinetic-pharmacodynamic analyses that can be expanded to detect diverse molecules of interest. Furthermore, due to the lack of species-specific machinery, our biosensors can be potentially adapted for any model organism of interest.
Title: Aptamer-based monitoring of drug uptake into cells and vertebrates
Description:
Sensing small molecules, including drugs and their metabolites inside cells, is critical for drug discovery and development, diagnostics, and precision medicine.
To facilitate sensitive, long-term studies of drug uptake in cultured cells and animals, we developed a genetically-encoded aptamer biosensor platform for non-invasive real-time measurements of drug distribution.
We combined the high specificity of aptamer molecular recognition with the easy-to-detect properties of fluorescent proteins.
We tested six different aptamer biosensors, showcasing the platform versatility.
The biosensors display high sensitivity and specificity for detecting their specific drug target over related analogs.
Furthermore, the biosensor responses were dose dependent and could be detected in individual live cells.
We designed our platform for easy integration into animal genomes; thus, we incorporated one aptamer biosensor into zebrafish, an important model vertebrate.
The biosensor was stably expressed and enabled non-invasive drug biodistribution imaging in whole animals across different timepoints.
To our knowledge, this is the first example of an integrated aptamer biosensor encoded by a vertebrate animal.
As such, our aptamer encoded biosensors address the need for non-invasive whole animal biosensing ideal for pharmacokinetic-pharmacodynamic analyses that can be expanded to detect diverse molecules of interest.
Furthermore, due to the lack of species-specific machinery, our biosensors can be potentially adapted for any model organism of interest.

Related Results

Novel Strategies for Gold Nanoparticle Based Aptamer Selection
Novel Strategies for Gold Nanoparticle Based Aptamer Selection
<p><strong>While many successful biotechnological tools that enable the sensing of compounds within environmental and biological systems have been produced to date, the...
Allosteric Ligand-Aptamer Complexes Orchestrate Supramolecular or Transient Catalytic, Transcription and Fibrinogenesis Processes
Allosteric Ligand-Aptamer Complexes Orchestrate Supramolecular or Transient Catalytic, Transcription and Fibrinogenesis Processes
Allosteric regulation, the modulation of biological macromolecular function through binding of molecules at distant sites distinct from the active site, is a fundamental principle ...
How human serum albumin‐selective DNA aptamer binds to bovine and canine serum albumins
How human serum albumin‐selective DNA aptamer binds to bovine and canine serum albumins
AbstractSerum albumin (SA) is the most abundant carrier protein in blood. SA carries a diverse range of nutrients, drugs, and metal ions. It has wide clinical and biochemical appli...
Accelerated Discovery of Aptamer Beacons via Massively Parallel Screening
Accelerated Discovery of Aptamer Beacons via Massively Parallel Screening
Abstract Aptamer beacons are unimolecular probes that undergo a reversible conformational change upon target binding, making them a promising tool for the real-time...
Regulatory context drives conservation of glycine riboswitch aptamers
Regulatory context drives conservation of glycine riboswitch aptamers
Abstract In comparison to protein coding sequences, the impact of mutation and natural selection on the sequence and function of non-coding (ncRNA) genes is not wel...
Aptamer–Gemcitabine Conjugates with Enzymatically Cleavable Linker for Targeted Delivery and Intracellular Drug Release in Cancer Cells
Aptamer–Gemcitabine Conjugates with Enzymatically Cleavable Linker for Targeted Delivery and Intracellular Drug Release in Cancer Cells
Gemcitabine is a chemotherapeutic used clinically to treat a variety of cancers. However, because it lacks tumor cell specificity, gemcitabine may cause off-target cytotoxicity and...
Emerging Evidence of IgG4-Related Disease in Pericarditis: A Systematic Review
Emerging Evidence of IgG4-Related Disease in Pericarditis: A Systematic Review
Abstract Introduction Immunoglobulin G4-related disease (IgG4-RD) is a recently identified immune-mediated condition that is debilitating and often overlooked. While IgG4-RD has be...

Back to Top