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Seung Soo Oh

Pohang University of Science and Technology · Biochemistry, Genetics and Molecular Biology

About the Lab

Professor Seung Soo Oh's research lab specializes in the development of innovative biosensing technologies that integrate nucleic acid aptamers, microfluidics, and electrochemical or optical detection systems for point-of-care diagnostics. The lab focuses on creating portable, reusable, and highly specific sensors for real-time detection of small molecules, pathogens, and genetic markers directly in complex biological samples such as blood or serum. Key research directions include the design of conformationally responsive DNA probes for single-nucleotide polymorphism (SNP) detection and the application of microfluidic platforms to accelerate aptamer selection (M-SELEX) and sample-to-answer analysis. The lab’s work aims to enable rapid, low-cost, and field-deployable diagnostic solutions for clinical and environmental applications.

biosensorsaptamersmicrofluidicspoint-of-care diagnosticsSNP detection

Research Overview

Papers
98
Total Citations
4,370
Papers (5y)
31
Primary Field
Biochemistry, Genetics and Molecular Biology

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
31total
2022
2023
2024
2025
2026
Citations per year (5y)
253total
20222023202420252026

Selected Papers

15
1
Article|382 citations·2009
Continuous, Real-Time Monitoring of Cocaine in Undiluted Blood Serum via a Microfluidic, Electrochemical Aptamer-Based Sensor
James S. Swensen, Yi Xiao, B. Scott Ferguson, Arica A. Lubin, Rebecca Y. Lai, Alan J. Heeger, Kevin W. Plaxco, Seung Soo Oh
SJR Q1Journal of the American Chemical SocietyOA

The development of a biosensor system capable of continuous, real-time measurement of small-molecule analytes directly in complex, unprocessed aqueous samples has been a significant challenge, and successful implementation has been achieved for only a limited number of targets. Toward a general solution to this problem, we report here the Microfluidic Electrochemical Aptamer-based Sensor (MECAS) chip wherein we integrate target-specific DNA aptamers that fold, and thus generate an electrochemica

Molecular BiologyBiochemistry, Genetics and Molecular Biology
2
Article|320 citations·2020
Detection and beyond: challenges and advances in aptamer-based biosensors
Hyebin Yoo, Hyesung Jo, Seung Soo Oh
SJR Q1Materials AdvancesOA

This review provides insight into how current problems of biosensors can be solved by the use of nucleic acid aptamers.

Molecular BiologyBiochemistry, Genetics and Molecular Biology
3
Article|190 citations·2011
Genetic Analysis of H1N1 Influenza Virus from Throat Swab Samples in a Microfluidic System for Point-of-Care Diagnostics
B. Scott Ferguson, Steven F. Buchsbaum, Ting-Ting Wu, Kuangwen Hsieh, Yi Xiao, Ren Sun, Seung Soo Oh
SJR Q1Journal of the American Chemical Society

The ability to obtain sequence-specific genetic information about rare target organisms directly from complex biological samples at the point-of-care would transform many areas of biotechnology. Microfluidics technology offers compelling tools for integrating multiple biochemical processes in a single device, but despite significant progress, only limited examples have shown specific, genetic analysis of clinical samples within the context of a fully integrated, portable platform. Herein we pres

Biomedical EngineeringEngineering
4
Article|176 citations·2009
An Electrochemical Sensor for Single Nucleotide Polymorphism Detection in Serum Based on a Triple-Stem DNA Probe
Yi Xiao, Xinhui Lou, Takanori Uzawa, Kory Plakos, Kevin W. Plaxco, Seung Soo Oh
SJR Q1Journal of the American Chemical SocietyOA

We report here an electrochemical approach that offers, for the first time, single-step, room-temperature single nucleotide polymorphism (SNP) detection directly in complex samples (such as blood serum) without the need for target modification, postwashing, or the addition of exogenous reagents. This sensor, which is sensitive, stable, and reusable, is comprised of a single, self-complementary, methylene blue-labeled DNA probe possessing a triple-stem structure. This probe takes advantage of the

Molecular BiologyBiochemistry, Genetics and Molecular Biology
5
Article|139 citations·2009
Generation of Highly Specific Aptamers via Micromagnetic Selection
Jiangrong Qian, Xinhui Lou, Yanting Zhang, Yi Xiao, Seung Soo Oh
SJR Q1Analytical Chemistry

Aptamers are nucleic acid-based reagents that bind to target molecules with high affinity and specificity. However, methods for generating aptamers from random combinatorial libraries (e.g., systematic evolution of ligands by exponential enrichment (SELEX)) are often labor-intensive and time-consuming. Recent studies suggest that microfluidic SELEX (M-SELEX) technology can accelerate aptamer isolation by enabling highly stringent selection conditions through the use of very small amounts of targ

Molecular BiologyBiochemistry, Genetics and Molecular Biology
6
Article|133 citations·2009
Fluorescence Detection of Single‐Nucleotide Polymorphisms with a Single, Self‐Complementary, Triple‐Stem DNA Probe
Yi Xiao, Kory Plakos, Xinhui Lou, Ryan J. White, Jiangrong Qian, Kevin W. Plaxco, Seung Soo Oh
SJR Q1Angewandte Chemie International EditionOA

Singled out for its singularity: In a single-step, single-component, fluorescence-based method for the detection of single-nucleotide polymorphisms at room temperature, the sensor is comprised of a single, self-complementary DNA strand that forms a triple-stem structure. The large conformational change that occurs upon binding to perfectly matched (PM) targets results in a significant increase in fluorescence (see picture; F = fluorophore, Q = quencher).

Molecular BiologyBiochemistry, Genetics and Molecular Biology
7
Article|122 citations·2010
In vitro selection of structure-switching, self-reporting aptamers
Seung Soo Oh, Kory Plakos, Xinhui Lou, Yi Xiao, H. Tom Soh
SJR Q1Proceedings of the National Academy of SciencesOA

We describe an innovative selection approach to generate self-reporting aptamers (SRAs) capable of converting target-binding events into fluorescence readout without requiring additional modification, optimization, or the use of DNA helper strands. These aptamers contain a DNAzyme moiety that is initially maintained in an inactive conformation. Upon binding to their target, the aptamers undergo a structural switch that activates the DNAzyme, such that the binding event can be reported through si

Molecular BiologyBiochemistry, Genetics and Molecular Biology
8
Article|116 citations·2014
Synthetic Aptamer-Polymer Hybrid Constructs for Programmed Drug Delivery into Specific Target Cells
Seung Soo Oh, Bongjae F. Lee, Frank A. Leibfarth, Michael Eisenstein, Maxwell J. Robb, Nathaniel A. Lynd, Craig J. Hawker, H. Tom Soh
SJR Q1Journal of the American Chemical SocietyOA

Viruses have evolved specialized mechanisms to efficiently transport nucleic acids and other biomolecules into specific host cells. They achieve this by performing a coordinated series of complex functions, resulting in delivery that is far more efficient than existing synthetic delivery mechanisms. Inspired by these natural systems, we describe a process for synthesizing chemically defined molecular constructs that likewise achieve targeted delivery through a series of coordinated functions. We

Molecular BiologyBiochemistry, Genetics and Molecular Biology
9
Article|88 citations·2012
Selection is more intelligent than design: improving the affinity of a bivalent ligand through directed evolution
Kareem M. Ahmad, Yi Xiao, Seung Soo Oh
SJR Q1Nucleic Acids ResearchOA

Multivalent molecular interactions can be exploited to dramatically enhance the performance of an affinity reagent. The enhancement in affinity and specificity achieved with a multivalent construct depends critically on the effectiveness of the scaffold that joins the ligands, as this determines their positions and orientations with respect to the target molecule. Currently, no generalizable design rules exist for construction of an optimal multivalent ligand for targets with known structures, a

Molecular BiologyBiochemistry, Genetics and Molecular Biology
10
Article|75 citations·2010
Electrochemical DNA Detection via Exonuclease and Target-Catalyzed Transformation of Surface-Bound Probes
Kuangwen Hsieh, Yi Xiao, Seung Soo Oh
SJR Q1Langmuir

We report a single-step, single-reagent, label-free, isothermal electrochemical DNA sensor based on the phenomenon of target recycling. The sensor exploits strand-specific exonuclease activity to achieve the selective enzymatic digestion of target/probe duplexes. This results in a permanent change in the probe structure that yields an increased faradaic current and liberates the intact target molecule to interact with additional detection probes to achieve further signal amplification. Using thi

Molecular BiologyBiochemistry, Genetics and Molecular Biology
11
Article|65 citations·2011
Improving Aptamer Selection Efficiency through Volume Dilution, Magnetic Concentration, and Continuous Washing in Microfluidic Channels
Seung Soo Oh, Kareem M. Ahmad, Minseon Cho, Seon Kim, Yi Xiao, H. Tom Soh
SJR Q1Analytical Chemistry

The generation of nucleic acid aptamers with high affinity typically entails a time-consuming, iterative process of binding, separation, and amplification. It would therefore be beneficial to develop an efficient selection strategy that can generate these high-quality aptamers rapidly, economically, and reproducibly. Toward this goal, we have developed a method that efficiently generates DNA aptamers with slow off-rates. This methodology, called VDC-MSELEX, pairs the volume dilution challenge pr

Molecular BiologyBiochemistry, Genetics and Molecular Biology
12
Review|62 citations·2019
Catalytic RNA, ribozyme, and its applications in synthetic biology
Soyeon V. Park, Jae‐Seong Yang, Hyesung Jo, Byunghwa Kang, Seung Soo Oh, Gyoo Yeol Jung
SJR Q1Biotechnology Advances
Molecular BiologyBiochemistry, Genetics and Molecular Biology
13
Article|59 citations·2009
Controlling the selection stringency of phage display using a microfluidic device
Yanli Liu, Jonathan D. Adams, Kelisha T. Turner, Frank V. Cochran, Sanjiv S. Gambhir, Seung Soo Oh
SJR Q1Lab on a Chip

We report the utilization of microfluidic technology to phage selection and demonstrate that accurate control of washing stringency in our microfluidic magnetic separator (MMS) directly impacts the diversity of isolated peptide sequences. Reproducible generation of magnetic and fluidic forces allows controlled washing conditions that enable rapid convergence of selected peptide sequences. These findings may provide a foundation for the development of automated microsystems for rapid in vitro dir

Radiology, Nuclear Medicine and ImagingMedicine
14
Article|52 citations·2011
Polarity‐Switching Electrochemical Sensor for Specific Detection of Single‐Nucleotide Mismatches
Kuangwen Hsieh, Ryan J. White, B. Scott Ferguson, Kevin W. Plaxco, Yi Xiao, Seung Soo Oh
SJR Q1Angewandte Chemie International Edition

Getting a response: A surface-bound and redox-modified (methylene blue) DNA probe architecture is at the heart of a sensor for detecting single-nucleotide mismatched targets with a “polarity-switching” response. It outputs a decreased Faradaic current when hybridized to a perfectly matched (PM) target, and an increased Faradaic current when hybridized to a single-base mismatched (SM) target (see scheme).

Molecular BiologyBiochemistry, Genetics and Molecular Biology
15
Article|38 citations·2020
Engineering Cell Wall Integrity Enables Enhanced Squalene Production in Yeast
Sohee Son, Jae-Eung Kim, Seung Soo Oh, Ju Young Lee
SJR Q1Journal of Agricultural and Food Chemistry

Microbial production of many lipophilic compounds is often limited by product toxicity to host cells. Engineering cell walls can help mitigate the damage caused by lipophilic compounds by increasing tolerance to those compounds. To determine if the cell wall engineering would be effective in enhancing lipophilic compound production, we used a previously constructed squalene-overproducing yeast strain (SQ) that produces over 600 mg/L of squalene, a model membrane-damaging lipophilic compound. Thi

Molecular BiologyBiochemistry, Genetics and Molecular Biology

Research Areas

Molecular BiologyBiomedical EngineeringMaterials ChemistryRadiology, Nuclear Medicine and ImagingElectrical and Electronic EngineeringInfectious Diseases

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