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Woo-Jae Yoo

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

About the Lab

Professor Woo-Jae Yoo's research lab focuses on the intricate interplay between the gut microbiota, host metabolism, and immune responses, particularly in the context of diet-induced metabolic diseases and pathogen colonization. The lab investigates how microbial metabolites such as trimethylamine N-oxide (TMAO), phenyllactic acid, and propionate influence host physiology and disease susceptibility, with a strong emphasis on the molecular mechanisms underlying microbial metabolism and host-microbe crosstalk. Key research directions include the role of specific bacterial species—especially *Lactobacillus* and *Salmonella*—in shaping intestinal epithelial cell function and systemic metabolic health, as well as the regulation of pathogen expansion during inflammation through the utilization of host-derived and microbial metabolites as electron acceptors or nutrients. The lab employs gnotobiotic mouse models, transcriptomics, and metabolomics to dissect host-microbial metabolic networks in health and disease.

gut microbiotametabolic diseasemicrobial metaboliteshost-microbe interactionpathogen colonization

Research Overview

Papers
15
Total Citations
783
Papers (5y)
11
Primary Field
Biochemistry, Genetics and Molecular Biology

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
11total
2019
2021
2022
2023
2024
Citations per year (5y)
644total
20192021202220232024

Selected Papers

15
1
Article|316 citations·2021
High-fat diet–induced colonocyte dysfunction escalates microbiota-derived trimethylamine N -oxide
Woongjae Yoo, Jacob K. Zieba, Nora J. Foegeding, Teresa P. Torres, Catherine Shelton, Nicolas G. Shealy, Austin J. Byndloss, Stephanie A. Cevallos, Erik Gertz, Connor R. Tiffany, Julia Thomas, Yael Litvak
SJR Q1ScienceOA

Gut bugs and systemic disease risk What people eat has an immediate selective effect on the microbial populations resident in the gut. A high-fat diet is associated with the occurrence of microbes that catabolize choline and the accumulation of trimethylamine N -oxide (TMAO) in the bloodstream, a contributing factor for heart disease. Yoo et al . explored the microbial organisms and pathways that convert choline into TMAO in mice. Although gene clusters for choline metabolism are found widely am

Molecular BiologyBiochemistry, Genetics and Molecular Biology
2
Article|106 citations·2023
An early-life microbiota metabolite protects against obesity by regulating intestinal lipid metabolism
Catherine Shelton, E. L. Sing, Jessica Mo, Nicolas G. Shealy, Woongjae Yoo, Julia Thomas, Gillian N. Fitz, Pollyana Ribeiro Castro, Tara T. Hickman, Teresa P. Torres, Nora J. Foegeding, Jacob K. Zieba
SJR Q1Cell Host & MicrobeOA

The mechanisms by which the early-life microbiota protects against environmental factors that promote childhood obesity remain largely unknown. Using a mouse model in which young mice are simultaneously exposed to antibiotics and a high-fat (HF) diet, we show that Lactobacillus species, predominant members of the small intestine (SI) microbiota, regulate intestinal epithelial cells (IECs) to limit diet-induced obesity during early life. A Lactobacillus-derived metabolite, phenyllactic acid (PLA)

Molecular BiologyBiochemistry, Genetics and Molecular Biology
3
Article|75 citations·2018
Genetic Ablation of Butyrate Utilization Attenuates Gastrointestinal Salmonella Disease
Denise N. Bronner, Franziska Faber, Erin E. Olsan, Mariana X. Byndloss, Nada Sayed, Gege Xu, Woongjae Yoo, Dajeong Kim, Sangryeol Ryu, Carlito B. Lebrilla, Andreas J. Bäumler
SJR Q1Cell Host & MicrobeOA
Food ScienceAgricultural and Biological Sciences
4
Article|71 citations·2022
Salmonella enterica serovar Typhimurium uses anaerobic respiration to overcome propionate-mediated colonization resistance
Catherine Shelton, Woongjae Yoo, Nicolas G. Shealy, Teresa P. Torres, Jacob K. Zieba, M. Wade Calcutt, Nora J. Foegeding, Dajeong Kim, Jinshil Kim, Sangryeol Ryu, Mariana X. Byndloss
SJR Q1Cell ReportsOA

The gut microbiota benefits the host by limiting enteric pathogen expansion (colonization resistance), partially via the production of inhibitory metabolites. Propionate, a short-chain fatty acid produced by microbiota members, is proposed to mediate colonization resistance against Salmonella enterica serovar Typhimurium (S. Tm). Here, we show that S. Tm overcomes the inhibitory effects of propionate by using it as a carbon source for anaerobic respiration. We determine that propionate metabolis

Molecular BiologyBiochemistry, Genetics and Molecular Biology
5
Article|52 citations·2024
Salmonella Typhimurium expansion in the inflamed murine gut is dependent on aspartate derived from ROS-mediated microbiota lysis
Woongjae Yoo, Nicolas G. Shealy, Jacob K. Zieba, Teresa P. Torres, Madi Baltagulov, Julia Thomas, Catherine Shelton, Anna G. McGovern, Nora J. Foegeding, Erin E. Olsan, Mariana X. Byndloss
SJR Q1Cell Host & MicrobeOA

Inflammation boosts the availability of electron acceptors in the intestinal lumen, creating a favorable niche for pathogenic Enterobacteriaceae. However, the mechanisms linking intestinal inflammation-mediated changes in luminal metabolites and pathogen expansion remain unclear. Here, we show that mucosal inflammation induced by Salmonella enterica serovar Typhimurium (S. Tm) infection increases intestinal levels of the amino acid aspartate. S. Tm used aspartate-ammonia lyase (aspA)-dependent f

Molecular BiologyBiochemistry, Genetics and Molecular Biology
6
Review|49 citations·2021
Colonization resistance: metabolic warfare as a strategy against pathogenic Enterobacteriaceae
Nicolas G. Shealy, Woongjae Yoo, Mariana X. Byndloss
SJR Q1Current Opinion in MicrobiologyOA
Molecular BiologyBiochemistry, Genetics and Molecular Biology
7
Article|29 citations·2016
Fine-tuning of amino sugar homeostasis by EIIANtr in Salmonella Typhimurium
Woongjae Yoo, Hyunjin Yoon, Yeong‐Jae Seok, Chang‐Ro Lee, Hyung Ho Lee, Sangryeol Ryu
SJR Q1Scientific ReportsOA

The nitrogen-metabolic phosphotransferase system, PTS(Ntr), consists of the enzymes I(Ntr), NPr and IIA(Ntr) that are encoded by ptsP, ptsO, and ptsN, respectively. Due to the proximity of ptsO and ptsN to rpoN, the PTS(Ntr) system has been postulated to be closely related with nitrogen metabolism. To define the correlation between PTS(Ntr) and nitrogen metabolism, we performed ligand fishing with EIIA(Ntr) as a bait and revealed that D-glucosamine-6-phosphate synthase (GlmS) directly interacted

GeneticsBiochemistry, Genetics and Molecular Biology
8
Article|26 citations·2017
Enzyme IIANtr Regulates Salmonella Invasion Via 1,2-Propanediol And Propionate Catabolism
Woongjae Yoo, Dajeong Kim, Hyunjin Yoon, Sangryeol Ryu
SJR Q1Scientific ReportsOA

Abstract Many Proteobacteria possess a nitrogen-metabolic phosphotransferase system (PTS Ntr ) consisting of EI Ntr , NPr, and EIIA Ntr (encoded by ptsP, ptsO , and ptsN , respectively). The PTS Ntr plays diverse regulatory roles, but the substrate phosphorylated by EIIA Ntr and its primary functions have not yet been identified. To comprehensively understand the roles of PTS Ntr in Salmonella Typhimurium, we compared the whole transcriptomes of wild-type and a Δ ptsN mutant. Genome-wide RNA seq

Food ScienceAgricultural and Biological Sciences
9
Article|18 citations·2024
Metabolic Interaction Between Host and the Gut Microbiota During High-Fat Diet-Induced Colorectal Cancer
Chaeeun Lee, Seungrin Lee, Woongjae Yoo
SJR Q2The Journal of Microbiology

Colorectal cancer (CRC) is the second-highest cause of cancer-associated mortality among both men and women worldwide. One of the risk factors for CRC is obesity, which is correlated with a high-fat diet prevalent in Western dietary habits. The association between an obesogenic high-fat diet and CRC has been established for several decades; however, the mechanisms by which a high-fat diet increases the risk of CRC remain unclear. Recent studies indicate that gut microbiota strongly influence the

Molecular BiologyBiochemistry, Genetics and Molecular Biology
10
Article|10 citations·2019
Programmed Delay of a Virulence Circuit Promotes Salmonella Pathogenicity
Jeongjoon Choi, Heeju Kim, Yoonjee Chang, Woongjae Yoo, Dajeong Kim, Sangryeol Ryu
SJR Q1mBioOA

To accomplish successful infection, pathogens must operate their virulence programs in a precise, time-sensitive, and coordinated manner. A major question is how pathogens control the timing of virulence gene expression during infection. Here we report that the intracellular pathogen Salmonella controls the timing and level of virulence gene expression by using an inhibitory protein, EIIA Ntr . A DNA binding master virulence regulator, PhoP, controls various virulence genes inside acidic phagoso

Food ScienceAgricultural and Biological Sciences
11
letter|9 citations·2019
How to thrive in the inflamed gut
Woongjae Yoo, Mariana X. Byndloss
SJR Q1Nature Microbiology
Molecular BiologyBiochemistry, Genetics and Molecular Biology
12
Article|9 citations·2017
The role of the FliD C-terminal domain in pentamer formation and interaction with FliT
Hee Jung Kim, Woongjae Yoo, Kyeong Sik Jin, Sangryeol Ryu, Hyung Ho Lee
SJR Q1Scientific ReportsOA

Flagellar biogenesis is controlled by a negative feedback loop. When FliD was secreted at the late step of flagellar assembly, the FliD-FliT complex disassembled and free FliT bound to the FlhDC complex, a master regulator of flagellar biogenesis, subsequently inhibiting the overall expression of flagellar proteins. In this study, we analyzed the role of the FliD C-terminal domain in pentamer formation and interaction with FliT. Our study showed that the FliD L443R mutant exists as a monomer in

Cell BiologyBiochemistry, Genetics and Molecular Biology
13
Article|8 citations·2021
A Nitrogen Metabolic Enzyme Provides Salmonella Fitness Advantage by Promoting Utilization of Microbiota-Derived Carbon Source
Woongjae Yoo, Jeongjoon Choi, Bookyung Park, Mariana X. Byndloss, Sangryeol Ryu
SJR Q1ACS Infectious DiseasesOA

Microbes support their growth in vertebrate hosts by exploiting a large variety of dietary components as nutrients, which determines the composition of gut microbiota. A pathogen <i>Salmonella</i> expands by utilizing 1,2-propanediol, a microbiota-fermented product, during mucosal inflammation. However, it remains largely unknown how the pathogen decides which nutrient to consume from the complex mixture in the gut. Here, we show that <i>Salmonella enterica</i> serovar Typhimurium utilizes 1,2-p

Molecular BiologyBiochemistry, Genetics and Molecular Biology
14
Preprint|3 citations·2022
Microbiota-derived aspartate drives pathogenic Enterobacteriaceae expansion in the inflamed gut
Woongjae Yoo, Jacob K. Zieba, Nicolas G. Shealy, Teresa P. Torres, Julia Thomas, Catherine Shelton, Nora J. Foegeding, Erin E. Olsan, Mariana X. Byndloss
bioRxiv (Cold Spring Harbor Laboratory)OA

SUMMARY Inflammation boosts the availability of electron acceptors in the intestinal lumen creating a favorable niche for pathogenic Enterobacteriaceae. However, the mechanisms linking intestinal inflammation-mediated changes in luminal metabolites and pathogen expansion remain unclear. Here, we show that mucosal inflammation induced by Salmonella enterica serovar Typhimurium ( S. Tm) infection and chemical colitis results in increased intestinal levels of the amino acid aspartate. The S. Tm and

Molecular BiologyBiochemistry, Genetics and Molecular Biology
15
Preprint|2 citations·2021
Salmonella Typhimurium uses anaerobic respiration to overcome propionate-mediated colonization resistance
Catherine Shelton, Woongjae Yoo, Nicolas G. Shealy, Teresa P. Torres, Jacob K. Zieba, M. Wade Calcutt, Nora J. Foegeding, Dajeong Kim, Jinshil Kim, Sangryeol Ryu, Mariana X. Byndloss
bioRxiv (Cold Spring Harbor Laboratory)OA

SUMMARY The gut microbiota benefits the host by limiting enteric pathogen expansion (colonization resistance) partially via the production of inhibitory metabolites. Propionate, a short-chain fatty acid produced by microbiota members, is proposed to mediate colonization resistance against Salmonella enterica serovar Typhimurium ( S. Tm). Here, we show that S. Tm overcomes the inhibitory effects of propionate by using it as a carbon source for anaerobic respiration. We determined that propionate

Molecular BiologyBiochemistry, Genetics and Molecular Biology

Research Areas

Molecular BiologyFood ScienceGeneticsCell Biology

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