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Biomedical subjects

Chaoyong James Yang

Publications and source records attributed to Chaoyong James Yang.

8 recordsLinked to original sources

Hybrid molecular probe for nucleic acid analysis in biological samples.

The ability to detect changes in gene expression, especially in real-time and with sensitivity sufficient enough to monitor small variations in a single-cell, will have considerable value in biomedical research and applications. Out of the many available molecular probes for intracellular monitoring of nucleic acids, molecular beacon (MB) is the most frequently used probe with the advantages of high sensitivity and selectivity. However, any processes in which the MB stem-loop structure is broken will result in a restoration of the fluorescence in MB. This brings in a few possibilities for false positive signal such as nuclease degradation, protein binding, thermodynamic fluctuation, solution composition variations (such as pH, salt concentration) and sticky-end pairing. These unwanted processes do exist inside living cells, making nucleic acid monitoring inside living cells difficult. We have designed and synthesized a hybrid molecular probe (HMP) for intracellular nucleic acid monitoring to overcome these problems. HMP has two DNA probes, one labeled with a donor and the other an acceptor. The two DNA probes are linked by a poly(ethylene glycol) (PEG) linker, with each DNA being complementary to adjacent areas of a target sequence. Target binding event brings the donor and acceptor in proximity, resulting in quenching of the donor fluorescence and enhancement of the acceptor emission. The newly designed HMP has high sensitivity, selectivity, and fast hybridization kinetics. The probe is easy to design and synthesize. HMP does not generate any false positive signal upon digestion by nuclease, binding by proteins, forming complexes by sticky-end pairing, or by other molecular interaction processes. HMP is capable of selectively detecting nucleic acid targets from cellular samples.

Animals↗

Aptamers evolved from live cells as effective molecular probes for cancer study.

Using cell-based aptamer selection, we have developed a strategy to use the differences at the molecular level between any two types of cells for the identification of molecular signatures on the surface of targeted cells. A group of aptamers have been generated for the specific recognition of leukemia cells. The selected aptamers can bind to target cells with an equilibrium dissociation constant (K(d)) in the nanomolar-to-picomolar range. The cell-based selection process is simple, fast, straightforward, and reproducible, and, most importantly, can be done without prior knowledge of target molecules. The selected aptamers can specifically recognize target leukemia cells mixed with normal human bone marrow aspirates and can also identify cancer cells closely related to the target cell line in real clinical specimens. The cell-based aptamer selection holds a great promise in developing specific molecular probes for cancer diagnosis and cancer biomarker discovery.

Binding Sites↗

Using molecular beacons for sensitive fluorescence assays of the enzymatic cleavage of nucleic acids.

A novel method for DNA enzymatic cleavage assays using molecular beacons (MBs) as the substrate for nuclease is described. An MB is a hairpin-shaped DNA probe that is labeled with a fluorescent dye at one end and a quencher at the other end. The loop sequence of the MB can be used as the substrate for single-stranded specific nucleases, whereas the stem of the MB can be designed as the substrate for restriction enzymes. The enzymatic cleavage breaks the MB into fragments and leads to the distance separation of the quencher and the fluorophore, resulting in an increase in the fluorescent signal. Up to an 80-fold signal-to-noise ratio was observed when these probes were cleaved by nucleases. Taking advantage of the MB's detection-without-separation property, this method allows for the real-time detection of DNA cleavage, which is useful for the characterization of DNA nuclease activity as well as the study of steady-state cleavage reaction kinetics. With its simplicity, convenience, high sensitivity, and excellent reproducibility, this method has the potential to be used in the study of both natural and artificial nucleic acid-cleaving enzymes.

DNA↗

Light-switching excimer probes for rapid protein monitoring in complex biological fluids.

Quantitative protein bioanalysis in complex biological fluids presents considerable challenges in biological studies and disease diagnosis. The major obstacles are the background signals from both the probe and the biological fluids where the proteins reside. We have molecularly engineered light-switching excimer aptamer probes for rapid and sensitive detection of a biomarker protein, platelet-derived growth factor (PDGF). Labeled with one pyrene at each end, the aptamer switches its fluorescence emission from approximately 400 nm (pyrene monomer) to 485 nm (pyrene excimer) upon PDGF binding. This fluorescence wavelength change from monomer to excimer emission is a result of aptamer conformation rearrangement induced by target binding. The excimer probe is able to effectively detect picomolar PDGF in homogeneous solutions. Because the excimer has a much longer fluorescence lifetime (approximately 40 ns) than that of the background (approximately 5 ns), time-resolved measurements were used to eliminate the biological background. We thus were able to detect PDGF in a cell sample quantitatively without any sample pretreatment. This molecular engineering strategy can be used to develop other aptamer probes for protein monitoring. Combined with lifetime-based measurements and molecular engineering, light-switching excimer aptamer probes hold great potential in protein analysis for biomedical studies.

Body Fluids↗

Locked nucleic acid molecular beacons.

A novel LNA-MB (molecular beacon based on locked nucleic acid bases) has been designed and investigated. It exhibits very high melting temperature and is thermally stable, shows superior single base mismatch discrimination capability, and is stable against digestion by nuclease and has no binding with single-stranded DNA binding proteins. The LNA-MB will be widely useful in a variety of areas, especially for in vivo hybridization studies.

Fluorescence↗

Molecular assembly of superquenchers in signaling molecular interactions.

We have designed a novel molecular assembly of quencher molecules to form superquenchers with excellent quenching efficiency. The superquencher can be engineered as desired by assembling different types and different numbers of quencher molecules. By labeling a superquencher to a molecular beacon, a 320-fold enhancement of fluorescent signal was achieved, compared to about 14-fold from a molecular beacon prepared with the same monomer quencher. Our molecular assembly approach can effectively improve the sensitivity of a variety of fluorescent assays and can be widely useful for molecular interaction studies.

DNA Probes↗

Monitoring nucleic acids using molecular beacons.

The ability to observe the dynamic of RNA in single living cells offers many exciting opportunities in biology and medicine. In the last few years, molecular beacons (MBs) have shown great potential in monitoring RNA synthesis, transportation, and localization with good sensitivity and selectivity. A hairpin structure probe, MB is a dual-labeled single stranded oligonucleotide that only fluoresces in the presence of target sequences. In this paper, the basic principle and design of MB will be described. The application of MB for RNA imaging in living cells will be reviewed. The limitations of MB for in vivo application will be identified. In the last section of the article, the efforts on designing better MBs for highly sensitive and selective RNA imaging will be discussed.

Animals↗