Tohoku University · Biochemistry, Genetics and Molecular Biology
Professor Yusuke Sato's research lab specializes in the development of novel fluorescent probes and sensing systems for biomolecular detection, with a focus on nucleic acid structures such as abasic sites, mismatches, and exosomes. The lab explores the selective binding of small molecules—particularly substituted 1,8-naphthyridines and amiloride derivatives—to DNA and RNA motifs, leveraging fluorescence responses for sensitive, label-free detection. A key direction involves designing 'off-on' fluorescence probes based on molecular beacons, self-assembling peptides, and cyanine dye conjugates for applications in microRNA sensing and exosome analysis. The lab also investigates the thermodynamics and structural basis of ligand-nucleic acid interactions to guide rational probe design.
Figures are computed from collected data and may differ slightly.
Here, we report on a significant effect of substitutions on the binding affinity of a series of 2-amino-1,8-naphthyridines, i.e., 2-amino-1,8-naphthyridine (AND), 2-amino-7-methyl-1,8-naphthyridine (AMND), 2-amino-5,7-dimethyl-1,8-naphthyridine (ADMND) and 2-amino-5,6,7-trimethyl-1,8-naphthyridine (ATMND), all of which can bind to cytosine opposite an AP site in DNA duplexes. Fluorescence titration experiments show that the binding affinity for cytosine is effectively enhanced by the introductio
Firmly tied: The binding affinity of amiloride for an abasic (AP) site-containing RNA duplex is two orders of magnitude superior to the affinity of the corresponding AP site-containing DNA duplex. The observed high binding affinity for the RNA duplex arises from a favorable enthalpy gain. The binding-induced fluorescence response of amiloride is applicable to microRNA detection.
We report on the selective binding of 2-amino-5,6,7-trimethyl-1,8-naphthyridine (ATMND) to C-C mismatch present in the hairpin structures of (CCG)(n) trinucleotide repeats that are associated with neurological diseases; this binding is accompanied by significant fluorescence quenching of ATMND.
A series of abasic site-binding ligands conjugated with cyanine dyes have been developed for "off-on" fluorescence sensing of an orphan nucleobase in DNA duplexes and DNA-RNA hybrids.
With increasing knowledge of the diverse roles of exosomes in biological processes, much attention has been paid to the development of analytical methods for exosome analysis. Here, we developed a new class of amphipathic helical (AH) peptide-based fluorescent probes for highly sensitive detection of exosomes in a mix and read manner. Membrane curvature-sensing AH peptide (ApoC) was coupled with lipophilic tail (C12)-carrying thiazole red (TR) for construction of a self-assembly/disassembly base
A new class of label-free molecular beacon (MB) system based on DNA strands that contain abasic (AP) sites (AP-DNA) and adopt stem-loop structures, in combination with fluorescent ligands that bind these AP sites, has been developed. Unlike a conventional MB, which requires covalent labeling of the MB with a fluorophore and a quencher, the developed system (APMB) does not require covalent attachment of signal transduction units. Detailed sensing functions of a series of APMB systems were examine
We report on a new fluorescent ligand, 2,4-diamino-6,7-dimethylpteridine, that can strongly and selectively bind to an orphan cytosine opposite an abasic site in RNA duplexes. We describe a significant effect of the substituents attached to the pteridine ring on the binding behavior in comparison with a structurally-similar pteridine derivative.
We report that TO-PRO-3, a thiazole orange analogue with a trimethine bridge, functions as a deep-red fluorescent indicator for the internal loop structure of the bacterial (Escherichia coli) ribosomal decoding region of the aminoacyl-tRNA site (A-site), which enables the assessment of A-site binding capability of various test compounds including blue and even-green-emitting compounds.
A fluorescence assay for theophylline, one of the common drugs for acute and chronic asthmatic conditions, has been developed based on an abasic site-containing DNA duplex aptamer (AP aptamer) in combination with an abasic site-binding fluorescent ligand, riboflavin. The assay is based on the competitive binding of theophylline and riboflavin at the abasic (AP) site of the AP aptamer. In the absence of theophylline, riboflavin binds to the receptor nucleotide opposite the AP site, which leads to
With increasing knowledge about the diverse roles of exosomes in the biological process, much attention has been paid to develop analytical methods for detection and quantification of exosomes. Immunoassays based on the recognition of exosomal protein markers by antibodies were widely used. However, considering that exosomal protein composition varies with the cell type, the protein markers should be carefully selected for a sensitive and selective analysis of target exosomes. Herein, we develop
Peptide nucleic acid (PNA)-thiazole orange (TO) conjugates are developed as fluorescent probes capable of selective recognition of 3'-overhanging nucleotides of siRNAs for an accurate analysis of the siRNA delivery process.
We have developed a new class of triplex-forming peptide nucleic acid (PNA)-based fluorogenic probes for sensing of the panhandle structure of the influenza A virus (IAV) RNA promoter region. Here, a small molecule (DPQ) capable of selectively binding to the internal loop structure was conjugated with triplex-forming forced intercalation of the thiazole orange (tFIT) probe with natural PNA nucleobases. The resulting conjugate, tFIT-DPQ, showed a significant light-up response (83-fold) upon stron
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