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Jong-Sik Shin

Yonsei University · Biochemistry, Genetics and Molecular Biology

About the Lab

Professor Jong-Sik Shin's research lab specializes in enzymatic biocatalysis and synthetic biology, with a focus on engineering transaminases and DNA-based molecular machines for sustainable synthesis and nanoscale applications. The lab investigates the structure-function relationships of enzymes such as omega-transaminases and amine:pyruvate aminotransferases to enhance their enantioselectivity, stability, and catalytic efficiency for the asymmetric synthesis of chiral amines. A key research direction involves overcoming kinetic and thermodynamic limitations in biotransformations through innovative strategies like two-phase systems and kinetic modeling. The lab also pioneers the development of DNA-based molecular walkers for programmable nanomotion, integrating synthetic biology with real-time fluorescence monitoring.

biocatalysistransaminasechiral aminesDNA walkerskinetic modeling

Research Overview

Papers
112
Total Citations
3,147
Papers (5y)
10
Primary Field
Biochemistry, Genetics and Molecular Biology

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
10total
2021
2022
2023
2024
2026
Citations per year (5y)
74total
20212022202320242026

Selected Papers

15
1
Article|784 citations·2004
A Synthetic DNA Walker for Molecular Transport
Jong‐Shik Shin, Niles A. Pierce
SJR Q1Journal of the American Chemical Society

Inspired by kinesin movement along a microtubule, we demonstrate a processive bipedal DNA walker. Powered by externally controlled DNA fuel strands, the walker locomotes with a 5 nm stride by advancing the trailing foot to the lead at each step. Real-time monitoring of specific bidirectional walker movement is achieved via multiplexed fluorescence quenching.

Molecular BiologyBiochemistry, Genetics and Molecular Biology
2
Article|198 citations·1999
Asymmetric synthesis of chiral amines with ?-transaminase
Jong‐Shik Shin, Byung‐Gee Kim
SJR Q2Biotechnology and Bioengineering

The asymmetric synthesis of chiral amines using prochiral ketones was carried out with (S)-specific ω-transaminase (ω-TA) from Vibrio fluvialis JS17. This reaction is inhibited severely by both products, (S)-amine and deaminated ketone. In addition, thermodynamic equilibrium strongly favored the reverse reaction. l-Alanine proved to be the best amino donor based on easy removal of the products. Optimal pH of the reactions with both whole cells and cell-free extract was 7. Amino acceptor reactivi

Molecular BiologyBiochemistry, Genetics and Molecular Biology
3
Article|176 citations·1999
Asymmetric synthesis of chiral amines with omega-transaminase.
Jong‐Shik Shin, Byung‐Gee Kim
PubMed

The asymmetric synthesis of chiral amines using prochiral ketones was carried out with (S)-specific omega-transaminase (omega-TA) from Vibrio fluvialis JS17. This reaction is inhibited severely by both products, (S)-amine and deaminated ketone. In addition, thermodynamic equilibrium strongly favored the reverse reaction. L-Alanine proved to be the best amino donor based on easy removal of the products. Optimal pH of the reactions with both whole cells and cell-free extract was 7. Amino acceptor

Molecular BiologyBiochemistry, Genetics and Molecular Biology
4
Article|161 citations·2002
Exploring the Active Site of Amine:Pyruvate Aminotransferase on the Basis of the Substrate Structure−Reactivity Relationship: How the Enzyme Controls Substrate Specificity and Stereoselectivity
Jong‐Shik Shin, Byung‐Gee Kim
SJR Q2The Journal of Organic Chemistry

An active site model of the amine:pyruvate aminotransferase (APA) from Vibrio fluvialis JS17 was constructed on the basis of the relationship between substrate structure and reactivity. Due to the broad substrate specificity of the APA, various amino donors (chiral and achiral amine, amino acid, and amino acid derivative) and amino acceptors (keto acid, keto ester, aldehyde, and ketone) were used to explore the active site structure. The result suggested a two-binding site model consisting of tw

BiochemistryBiochemistry, Genetics and Molecular Biology
5
Article|125 citations·1997
Kinetic resolution of α-methylbenzylamine with ο-transaminase screened from soil microorganisms: Application of a biphasic system to overcome product inhibition
Jong‐Shik Shin, Byung‐Gee Kim
SJR Q2Biotechnology and Bioengineering

Two microorganisms showing high omicron-transaminase activity (Klebsiella pneumoniae JS2F and Bacillus thuringiensis JS64) were screened by the enrichment method using (S)-alpha-methylbenzylamine (alpha-MBA) as a sole nitrogen source. Optimal carbon and nitrogen sources for enzyme induction and the properties of omicron-transaminases were investigated. omicron-Transaminase from B. thuringiensis JS64 was highly enantioselective (E = 75.3) for (S)-enantiomer of alpha-MBA and showed remarkable stab

Molecular BiologyBiochemistry, Genetics and Molecular Biology
6
Article|108 citations·1998
Kinetic modeling of ω-transamination for enzymatic kinetic resolution of α-methylbenzylamine
Jong‐Shik Shin, Byung‐Gee Kim
SJR Q2Biotechnology and Bioengineering

A kinetic model for omega-transaminase from Bacillus thuringiensis JS64 was developed by using the King-Altman method to simulate the kinetic resolution of alpha-methylbenzylamine (alpha-MBA). Starting from a ping-pong bi-bi mechanism, a complete kinetic model including substrate inhibition only in the reverse reaction (i.e., transamination between acetophenone and L-alanine) was developed. The asymmetric synthesis of (S)-alpha-MBA proved to be difficult due to a much lower maximum reverse react

Molecular BiologyBiochemistry, Genetics and Molecular Biology
7
Article|97 citations·2001
Kinetic resolution of chiral amines with ω‐transaminase using an enzyme‐membrane reactor
Jong‐Shik Shin, Byung‐Gee Kim, Andreas Liese, Christian Wandrey
SJR Q2Biotechnology and Bioengineering

A kinetic resolution process for the production of chiral amines was developed using an enzyme-membrane reactor (EMR) and a hollow-fiber membrane contactor with (S)-specific omega-transaminases (omega-TA) from Vibrio fluvialis JS17 and Bacillus thuringiensis JS64. The substrate solution containing racemic amine and pyruvate was recirculated through the EMR and inhibitory ketone product was selectively extracted by the membrane contactor until enantiomeric excess of (R)-amine exceeded 95%. Using

Molecular BiologyBiochemistry, Genetics and Molecular Biology
8
Article|78 citations·2013
ω-Transaminase-catalyzed asymmetric synthesis of unnatural amino acids using isopropylamine as an amino donor
Eul-Soo Park, Joo-Young Dong, Jong‐Shik Shin
SJR Q2Organic & Biomolecular Chemistry

Isopropylamine is an ideal amino donor for reductive amination of carbonyl compounds by ω-transaminase (ω-TA) owing to its cheapness and high volatility of a ketone product. Here we developed asymmetric synthesis of unnatural amino acids via ω-TA-catalyzed amino group transfer between α-keto acids and isopropylamine.

Molecular BiologyBiochemistry, Genetics and Molecular Biology
9
Article|73 citations·2011
Molecular determinants for substrate selectivity of ω-transaminases
Eul-Soo Park, Minji Kim, Jong‐Shik Shin
SJR Q1Applied Microbiology and Biotechnology
Molecular BiologyBiochemistry, Genetics and Molecular Biology
10
Article|67 citations·2010
One‐Pot Conversion of L‐Threonine into L‐Homoalanine: Biocatalytic Production of an Unnatural Amino Acid from a Natural One
Eulsoo Park, Minji Kim, Jong‐Shik Shin
SJR Q1Advanced Synthesis & Catalysis

Abstract A novel biocatalytic process for production of L ‐homoalanine from L ‐threonine has been developed using coupled enzyme reactions consisting of a threonine deaminase (TD) and an ω‐transaminase (ω‐TA). TD catalyzes the dehydration/deamination of L ‐threonine, leading to the generation of 2‐oxobutyrate which is asymmetrically converted to L ‐homoalanine via transamination with benzylamine executed by ω‐TA. To make up the coupled reaction system, we cloned and overexpressed a TD from Esche

Molecular BiologyBiochemistry, Genetics and Molecular Biology
11
Article|65 citations·2015
Mechanism‐Guided Engineering of ω‐Transaminase to Accelerate Reductive Amination of Ketones
Sang‐Woo Han, Eul‐Soo Park, Joo‐Young Dong, Jong‐Shik Shin
SJR Q1Advanced Synthesis & Catalysis

Abstract Asymmetric reductive amination of ketones using ω‐transaminases (ω‐TAs) offers a promising alternative to the chemocatalytic synthesis of chiral amines. One fundamental challenge to the biocatalytic strategy is the very low enzyme activities for most ketones compared with native substrates (i.e., <1% relative to pyruvate). Here we have demonstrated that a single point mutation in the active site of the ( S )‐selective ω‐TA from Ochrobactrum anthropi could induce a remarkable accelera

Molecular BiologyBiochemistry, Genetics and Molecular Biology
12
Article|63 citations·2017
Active Site Engineering of ω-Transaminase Guided by Docking Orientation Analysis and Virtual Activity Screening
Sang‐Woo Han, Ju-Yeon Kim, Hyun‐Soo Cho, Jong‐Shik Shin
SJR Q1ACS Catalysis

Creation of enzyme variants displaying desirable catalytic performance usually necessitates tedious and time-consuming procedures for library generation and selection, which may be circumvented by a computational method based on a precise understanding of the reaction mechanism in the context of active site environment. Despite the great potential of ω-transaminases (ω-TAs) for asymmetric synthesis of chiral amines from ketones, it remains elusive why ω-TAs exhibit marginal activities for most k

Organic ChemistryChemistry
13
letter|61 citations·2002
Substrate inhibition mode of ω‐transaminase from Vibrio fluvialis JS17 is dependent on the chirality of substrate
Jong‐Shik Shin, Byung‐Gee Kim
SJR Q2Biotechnology and Bioengineering

Substrate inhibition is a common phenomenon in enzyme chemistry, which is observed only with a fast-reacting substrate enantiomer. We report here for the first time substrate inhibition of an enantioselective enzyme by both substrate enantiomers. The enantioselective substrate inhibition, i.e., different mode of inhibition by each substrate enantiomer, of (S)-specific omega-transaminase was found with various chiral amines. A kinetic model based on ping-pong bi-bi mechanism has been developed an

Molecular BiologyBiochemistry, Genetics and Molecular Biology
14
Article|53 citations·2004
Rewritable Memory by Controllable Nanopatterning of DNA
Jong‐Shik Shin, Niles A. Pierce
SJR Q1Nano Letters

Fabricating a nanostructure capable of reversibly patterning molecules is a fundamental goal within nanotechnology, underlying diverse processes such as information storage, scaffold-assisted assembly, and molecular transport. Here, we describe a DNA scaffold supporting a one-dimensional array of independently and reversibly addressable sites at 7 nm spacing. As a proof-of-concept, we demonstrate robust functioning of the device as rewritable memory. The bit state of each address is controlled b

Molecular BiologyBiochemistry, Genetics and Molecular Biology
15
Article|50 citations·2009
Transaminase-catalyzed asymmetric synthesis of l-2-aminobutyric acid from achiral reactants
Jong‐Shik Shin, Byung‐Gee Kim
SJR Q2Biotechnology Letters
Molecular BiologyBiochemistry, Genetics and Molecular Biology

Research Areas

Molecular BiologyBiochemistryOrganic ChemistryRenewable Energy, Sustainability and the EnvironmentCancer ResearchBiomedical Engineering

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