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Updated: Feb 27, 2026

A 3D Human Lung Tissue Model for Functional Studies on Mycobacterium tuberculosis Infection
Published on: October 5, 2015
Identifying mechanisms driving formation of granuloma-associated fibrosis during Mycobacterium tuberculosis infection
Hayley C Warsinske1, Robert M DiFazio2, Jennifer J Linderman3
1Department of Microbiology and Immunology, University of Michigan Medical School, Ann Arbor, MI, United States of America.
Abstract:
Mycobacterium tuberculosis (Mtb), the causative agent of tuberculosis (TB), is a pulmonary pathogen of major global concern. A key feature of Mtb infection in primates is the formation of granulomas, dense cellular structures surrounding infected lung tissue. These structures serve as the main site of host-pathogen interaction in TB, and thus to effectively treat TB we must clarify mechanisms of granuloma formation and their function in disease. Fibrotic granulomas are associated with both good and bad disease outcomes. Fibrosis can serve to isolate infected tissue from healthy tissue, but it can also cause difficulty breathing as it leaves scars. Little is known about fibrosis in TB, and data from non-human primates is just beginning to clarify the picture. This work focuses on constructing a hybrid multi-scale model of fibrotic granuloma formation, in order to identify mechanisms driving development of fibrosis in Mtb infected lungs. We combine dynamics of molecular, cellular, and tissue scale models from previously published studies to characterize the formation of two common sub-types of fibrotic granulomas: peripherally fibrotic, with a cuff of collagen surrounding granulomas, and centrally fibrotic, with collagen throughout granulomas. Uncertainty and sensitivity analysis, along with large simulation sets, enable us to identify mechanisms differentiating centrally versus peripherally fibrotic granulomas. These findings suggest that heterogeneous cytokine environments exist within granulomas and may be responsible for driving tissue scale morphologies. Using this model we are primed to better understand the complex structure of granulomas, a necessity for developing successful treatments for TB.
Insights
This study models fibrotic granuloma formation in tuberculosis (TB) to understand how Mycobacterium tuberculosis (Mtb) infection causes lung scarring. Identifying mechanisms driving fibrosis is key to developing new TB treatments.
Area of Science:
- * Pulmonary medicine
- * Computational biology
- * Immunology
Background:
- * Tuberculosis (TB) is a global health threat caused by Mycobacterium tuberculosis (Mtb).
- * Granulomas are key structures in Mtb infection, but their fibrotic subtypes and formation mechanisms remain unclear.
- * Fibrosis in granulomas can lead to adverse outcomes, including lung scarring and breathing difficulties.
Purpose of the Study:
- * To construct a hybrid multi-scale model of fibrotic granuloma formation in Mtb-infected lungs.
- * To identify mechanisms driving the development of distinct fibrotic granuloma subtypes.
- * To elucidate the role of cytokine heterogeneity in granuloma morphology.
Main Methods:
- * Integrated molecular, cellular, and tissue-scale models from prior studies.
- * Developed a hybrid multi-scale computational model.
- * Employed uncertainty and sensitivity analyses on large simulation sets.
Main Results:
- * Characterized the formation of peripherally and centrally fibrotic granulomas.
- * Identified key mechanisms differentiating these two fibrotic subtypes.
- * Suggested that heterogeneous cytokine environments within granulomas drive distinct tissue-scale morphologies.
Conclusions:
- * The developed model provides insights into fibrotic granuloma formation in TB.
- * Findings highlight the potential role of cytokine heterogeneity in driving granuloma structure.
- * This work is crucial for understanding granuloma complexity and developing effective TB treatments.
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