Try a new search

Format these results:

Searched for:

in-biosketch:true

person:kuglem01

Total Results:

38


Toll-like receptor 5 protects against murine lung fibrosis through reduced dysbiosis, and TLR5 deficiency is associated with human IPF

Sakamachi, Yosuke; Wiley, Emma; Trempus, Carol S; Jacobs, Harrison; Solis, Alma; Johnson, Collin G; Meng, Xianglin; Hussain, Salik; Roselli, Amelia; Lipinski, Jay H; O'Dwyer, David N; Randall, Thomas A; Malphurs, Jason; Papas, Brian; Wu, Benjamin G; Li, Yonghua; Kugler, Matthias C; Mehta, Sanya; Scappini, Erica; Thomas, Seddon Y; Li, Jian-Liang; Zhou, Lecong; Karmaus, Peer W; Lih, Fred B; Fessler, Michael B; McGrath, John A; Gibson, Kevin; Kass, Daniel J; Gleiberman, Anatoli; Andrianova, Ekaterina; Walts, Avram; Invernizzi, Rachele; Molyneaux, Philip L; Yang, Ivana V; Zhang, Yingze; Kaminski, Naftali; Segal, Leopoldo N; Schwartz, David A; Gudkov, Andrei V; Garantziotis, Stavros
Idiopathic pulmonary fibrosis (IPF) is a devastating pulmonary disease with no curative treatment other than lung transplantation that results from maladaptive responses to lung epithelial injury; however, the underlying mechanisms remain unclear, and treatment options are limited. Here, we showed that deficiency in the innate immune receptor toll-like receptor 5 (TLR5) is associated with IPF in humans and with increased susceptibility to bleomycin-induced pulmonary fibrosis in mice and that activation of lung epithelial TLR5 through a synthetic flagellin analog protected mice from experimental fibrosis. Mechanistically, epithelial TLR5 activation induced antimicrobial gene expression and ameliorated lung dysbiosis after injury. In contrast, TLR5 deficiency in mice and patients with IPF was associated with lung dysbiosis. Elimination of the microbiome in mice through administration of antibiotics abolished the protective effect of TLR5, and reconstitution of the microbiome by fecal microbiota transplantation rescued the observed phenotype. In conclusion, these studies revealed that TLR5 protects against pulmonary fibrosis through effects on the lung microbiota, providing insight into therapeutic approaches that may ultimately benefit patients with IPF.
PMID: 42234773
ISSN: 1946-6242
CID: 6044082

Lower Airway Dysbiosis in NTM+ Bronchiectasis is Associated with NET-Predominant Severe Phenotypes

Singh, Shivani; Darawshy, Fares; Erlandson, Kirby; Narayana, Jayanth Kumar; Li, Qingsheng; Li, Yonghua; Atandi, Isabella; Krolikowski, Kelsey; Patel, Shrey; Collazo, Destiny; Mac Aogáin, Micheál; Gilmour, Amy; Long, Merete; Chang, Miao; Hoque, Afshana; Schluger, Rosemary; Kumar, Sanjan; Chung, Cecilia J; Wong, Kendrew; Porter, Gabriella; Feng, Yicheng; Czachor, Anna; McCormick, Colin; Clementi, Emily; Kyeremateng, Yaa; Lukovnikova, Alena; Harris, Danielle; Gomez, Sebastian; Kain, Taylor; Kocak, Ibrahim; Singh, Rajbir; Rodriguez, Claudia; Kwok, Benjamin; Barnett, Clea; Kugler, Matthias; Weiden, Michael D; Nelson, Nathaniel; Natalini, Jake G; Luglio, David; Desvignes, Ludovic; Gautam, Samir; McGuire, Erin; Gordon, Terry; Sulaiman, Imran; Tsay, Jun-Chieh J; Basavaraj, Ashwin; Wu, Benjamin G; Kamelhar, David; Addrizzo-Harris, Doreen; Chalmers, James D; Chotirmall, Sanjay H; Segal, Leopoldo N
RATIONALE/BACKGROUND:The discoveries of neutrophilic inflammation and Pseudomonas-dominant pulmonary dysbiosis have helped pave the way for host-directed therapy in bronchiectasis. Substantial knowledge gaps still remain about the interplay between neutrophilic signatures and microbes in non-tuberculous mycobacterial lung disease (NTM-LD), a phenotypically diverse lung infection that is increasingly prevalent in the United States and other parts of the world. OBJECTIVES/OBJECTIVE:Evaluate the lower airway microbiota and neutrophilic traits in NTM- and NTM+ bronchiectasis. METHODS:16S rRNA gene sequencing, cell counts, and neutrophil extracellular trap (NET) immunoassays were performed on bronchoscopic lower airway samples in 200 bronchiectasis subjects (108 NTM-, 92 NTM+). A preclinical model of oral commensal micro-aspiration and NTM infection was used to profile the murine lower airways with flow cytometry and a NET assay. MEASUREMENTS AND MAIN RESULTS/RESULTS:Lower airways of NTM+ bronchiectasis patients were enriched with Mycobacterium and oral commensals (e.g., Veillonella, Prevotella and Streptococcus). NET levels were higher in NTM+ BAL. Mycobacterium and oral commensals co-occurred with NET and neutrophils in network studies. Distinct oral commensal taxa were associated with severe disease phenotypes such as cavitary disease and exacerbators. In a murine micro-aspiration model, the combination of oral commensals and Mycobacterium led to a sustained pro-inflammatory immune response marked by an increase in Th17, γδT cells, PD-1+ T lymphocytes as well as higher NET levels. CONCLUSIONS:Our analyses showed that distinct microbiome features beyond the primary pathogen can contribute to neutrophilic inflammation and severe disease phenotypes in bronchiectasis/ NTM-LD.
PMID: 41738242
ISSN: 1535-4970
CID: 6010022

An Unexpected Beneficial Role of PDGF Signaling in Pulmonary Fibrosis [Meeting Abstract]

Kugler, M. C.; Yie, T. -A.; Chang, M.; Mezzano, V.; Li, Q.; Singh, R.; Li, Y.; Fridman, M.; Singh, S.; Segal, L. N.; Loomis, C. A.
ISI:001488790000040
ISSN: 1073-449x
CID: 5963542

Lower Airway Dysbiosis in Nontuberculous Mycobacterial Lung Disease Drives a Neutrophil Extracellular Trap-endotype and Lung Injury [Meeting Abstract]

Singh, S.; Li, Q.; Kumar, S.; Patel, S.; Narayana, J.; Darawshy, F.; Collazo, D.; Li, Y.; Atandi, I.; Kyeremateng, Y.; Chang, M.; Mccormick, C.; Schluger, R.; Czachor, A.; Lukovnikova, A.; Gomez, S.; Chung, C. J.; Kugler, M.; Tsay, J. J.; Sulaiman, I.; Basavaraj, A.; Kamelhar, D. L.; Addrizzo-Harris, D. J.; Wu, B. G.; Chalmers, J. D.; Chotirmall, S. H.; Segal, L. N.
ISI:001487774900037
ISSN: 1073-449x
CID: 5963602

Dysbiosis Modifies Memory T Cells and Exacerbates Tumor Progression in a NSCLC Preclinical Model [Meeting Abstract]

Chang, M.; Mccormick, C.; Czachor, A.; Li, Y.; Li, Q.; Kugler, M.; Kyeremateng, Y.; Singh, R.; Aktas, A.; Singh, S.; Fridman, M.; Paz, F.; Wu, B. G.; Kwok, B.; Segal, L. N.; Tsay, J. J.
ISI:001488688700008
ISSN: 1073-449x
CID: 5963552

Microbial contribution to metabolic niche formation varies across the respiratory tract

Wong, Kendrew K; Wu, Benjamin G; Chung, Matthew; Li, Qinsheng; Darawshy, Fares; Tsay, Jun-Chieh J; Holub, Meredith; Barnett, Clea R; Kwok, Benjamin; Kugler, Matthias C; Chung, Cecilia; Natalini, Jake G; Singh, Shivani; Li, Yonghua; Schluger, Rosemary; Ficaro, Lia; Carpenito, Joseph; Collazo, Destiny; Perez, Luisanny; Kyeremateng, Yaa; Chang, Miao; Czachor, Anna; Singh, Raj; Mccormick, Colin; Campbell, Christina D; Keane, Ruaidhri; Askenazi, Manor; Hansbro, Philip M; Weiden, Michael D; Huang, Yvonne J; Stringer, Kathleen A; Clemente, Jose C; Li, Huilin; Jones, Drew; Ghedin, Elodie; Segal, Leopoldo N; Sulaiman, Imran
Variations in the airway microbiome are associated with inflammatory responses in the lung and pulmonary disease outcomes. Regional changes in microbiome composition could have spatial effects on the metabolic environment, contributing to differences in the host response. Here, we profiled the respiratory microbiome (metagenome/metatranscriptome) and metabolome of a patient cohort, uncovering topographical differences in microbial function, which were further delineated using isotope probing in mice. In humans, the functional activity of taxa varied across the respiratory tract and correlated with immunomodulatory metabolites such as glutamic acid/glutamate and methionine. Common oral commensals, such as Prevotella, Streptococcus, and Veillonella, were more functionally active in the lower airways. Inoculating mice with these commensals led to regional increases in several metabolites, notably methionine and tyrosine. Isotope labeling validated the contribution of Prevotella melaninogenica in generating specific metabolites. This functional characterization of microbial communities reveals topographical changes in the lung metabolome and potential impacts on host responses.
PMID: 40578342
ISSN: 1934-6069
CID: 5883232

Differential effects of high-fiber and low-fiber diets on anti-tumor immunity and colon tumor progression in a murine model

Goggin, Kevin E; Seo, SeonYeong Jamie; Wu, Benjamin G; Ivelja, Sinisa; Kugler, Matthias C; Chang, Miao; Darawshy, Fares; Li, Yonghua; Chung, Cecilia J; Kyeremateng, Yaa; Tsay, Jun-Chieh J; Singh, Shivani; Sterman, Daniel H; Segal, Leopoldo N; Egilmez, Nejat K; Li, Qingsheng
The role of dietary fiber in colon cancer prevention remains controversial. We investigated its impact on anti-tumor immunity and the gut microbiota in APCmin/+ mice infected with Enterotoxigenic Bacteroides fragilis. Mice were fed high-fiber, low-fiber, or chow diets, and tumor burden, survival, cytokines, microbiota, and metabolites were analyzed. Contrary to the belief that high fiber inhibits tumor progression, it had no significant impact compared to chow diet. However, the low-fiber diet significantly reduced tumor burden and improved survival. Mechanistically, high fiber increased pro-inflammatory cytokines and CD4+Foxp3+RORγt+IL-17A+ regulatory T cells, while low fiber enhanced anti-inflammatory cytokines and cytotoxic T-cells. High fiber enriched microbial taxa associated with IL-17A+RORγt+ Tregs and altered metabolites, including reduced tryptophan and increased short-chain fatty acids and bile acids. Low fiber produced opposite effects. These findings suggest that dietary fiber's effects on colon cancer depends on microbial infection and immune status, emphasizing the need for personalized dietary interventions in colon cancer management.
PMID: 39911064
ISSN: 1940-6215
CID: 5784182

Lung Allograft Dysbiosis Associates with Immune Response and Primary Graft Dysfunction

Nelson, Nathaniel C; Wong, Kendrew K; Mahoney, Ian J; Malik, Tahir; Rudym, Darya; Lesko, Melissa B; Qayum, Seema; Lewis, Tyler C; Chang, Stephanie H; Chan, Justin C Y; Geraci, Travis C; Li, Yonghua; Pamar, Prerna; Schnier, Joseph; Singh, Rajbir; Collazo, Destiny; Chang, Miao; Kyeremateng, Yaa; McCormick, Colin; Borghi, Sara; Patel, Shrey; Darawshi, Fares; Barnett, Clea R; Sulaiman, Imran; Kugler, Matthias C; Brosnahan, Shari B; Singh, Shivani; Tsay, Jun-Chieh J; Wu, Benjamin G; Pass, Harvey I; Angel, Luis F; Segal, Leopoldo N; Natalini, Jake G
RATIONALE/BACKGROUND:Lower airway enrichment with oral commensals has been previously associated with grade 3 severe primary graft dysfunction (PGD) after lung transplantation (LT). We aimed to determine whether this dysbiotic signature is present across all PGD severity grades, including milder forms, and whether it is associated with a distinct host inflammatory endotype. METHODS:Lower airway samples from 96 LT recipients with varying degrees of PGD were used to evaluate the lung allograft microbiota via 16S rRNA gene sequencing. Bronchoalveolar lavage (BAL) cytokine concentrations and cell differential percentages were compared across PGD grades. In a subset of samples, we evaluated the lower airway host transcriptome using RNA sequencing methods. RESULTS:Differential analyses demonstrated lower airway enrichment with supraglottic-predominant taxa (SPT) in both moderate and severe PGD. Dirichlet Multinomial Mixtures (DMM) modeling identified two distinct microbial clusters. A greater percentage of subjects with moderate-severe PGD were identified within the dysbiotic cluster (C-SPT) than within the no PGD group (48 and 29%, respectively) though this difference did not reach statistical significance (p=0.06). PGD severity associated with increased BAL neutrophil concentration (p=0.03) and correlated with BAL concentrations of MCP-1/CCL2, IP-10/CXCL10, IL-10, and TNF-α (p<0.05). Furthermore, microbial signatures of dysbiosis correlated with neutrophils, MCP-1/CCL-2, IL-10, and TNF-α (p<0.05). C-SPT exhibited differential expression of TNF, SERPINE1 (PAI-1), MPO, and MMP1 genes and upregulation of MAPK pathways, suggesting that dysbiosis regulates host signaling to promote neutrophilic inflammation. CONCLUSIONS:Lower airway dysbiosis within the lung allograft is associated with a neutrophilic inflammatory endotype, an immune profile commonly recognized as the hallmark for PGD pathogenesis. This data highlights a putative role for lower airway microbial dysbiosis in the pathogenesis of this syndrome.
PMID: 39561864
ISSN: 1557-3117
CID: 5758452

Disease Phenotype in Bronchiectasis (NTM- and NTM plus ) Is Associated With Lower Airway Dysbiosis and Neutrophil Extracellular Traps [Meeting Abstract]

Singh, S.; Darawshy, F.; Narayana, J.; Erlandson, K.; Collazo, D.; Krolikowski, K.; Atandi, I.; Li, Y.; Macaogain, M.; Chang, M.; Kugler, M. C.; Natalini, J. G.; Singh, R.; Mccormick, C.; Kyeremateng, Y.; Schluger, R.; Ramanathan, R.; Basavaraj, A.; Kamelhar, D. L.; Addrizzo-Harris, D. J.; Wu, B.; Chalmers, J.; Chotirmall, S. H.; Segal, L. N.
ISI:001277228900033
ISSN: 1073-449x
CID: 5963482

Lung Microbiota Influence Responses to Anti-PD1 Therapy in a Preclinical Model of Non-small Cell Lung Cancer [Meeting Abstract]

Chang, M.; Mccormick, C.; Kwok, B.; Li, Y.; Kyeremateng, Y.; Aktas, A.; Singh, R.; Singh, S.; Li, Q.; Kugler, M. C.; Pass, H.; Sterman, D. H.; Wu, B. G.; Segal, L. N.; Tsay, J. J.
ISI:001277613403475
ISSN: 1073-449x
CID: 5963522