Related Experiment Video
Updated: Jul 27, 2025

Isolation and In Vitro Culture of Murine and Human Alveolar Macrophages
Published on: April 20, 2018
A new tractable method for generating human alveolar macrophage-like cells in vitro to study lung inflammatory
Susanta Pahari1, Eusondia Arnett1, Jan Simper1,2
1Host Pathogen Interactions and Population Health Programs, Texas Biomedical Research Institute , San Antonio, Texas, USA.
Abstract:
Alveolar macrophages (AMs) are unique lung resident cells that contact airborne pathogens and environmental particulates. The contribution of human AMs (HAMs) to pulmonary diseases remains poorly understood due to the difficulty in accessing them from human donors and their rapid phenotypic change during in vitro culture. Thus, there remains an unmet need for cost-effective methods for generating and/or differentiating primary cells into a HAM phenotype, particularly important for translational and clinical studies. We developed cell culture conditions that mimic the lung alveolar environment in humans using lung lipids, that is, Infasurf (calfactant, natural bovine surfactant) and lung-associated cytokines (granulocyte macrophage colony-stimulating factor, transforming growth factor-β, and interleukin 10) that facilitate the conversion of blood-obtained monocytes to an AM-like (AML) phenotype and function in tissue culture. Similar to HAM, AML cells are particularly susceptible to both Mycobacterium tuberculosis and severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) infections. This study reveals the importance of alveolar space components in the development and maintenance of HAM phenotype and function and provides a readily accessible model to study HAM in infectious and inflammatory disease processes, as well as therapies and vaccines. IMPORTANCE Millions die annually from respiratory disorders. Lower respiratory track gas-exchanging alveoli maintain a precarious balance between fighting invaders and minimizing tissue damage. Key players herein are resident AMs. However, there are no easily accessible in vitro models of HAMs, presenting a huge scientific challenge. Here, we present a novel model for generating AML cells based on differentiating blood monocytes in a defined lung component cocktail. This model is non-invasive, significantly less costly than performing a bronchoalveolar lavage, yields more AML cells than HAMs per donor, and retains their phenotype in culture. We have applied this model to early studies of M. tuberculosis and SARS-CoV-2. This model will significantly advance respiratory biology research.
Insights
Researchers developed a cost-effective method to generate human alveolar macrophage-like (AML) cells from blood monocytes. This novel model mimics the lung environment, aiding research into respiratory diseases and therapies.
Area of Science:
- Pulmonary immunology
- Cell biology
- Infectious disease research
Background:
- Human alveolar macrophages (HAMs) are crucial for lung immunity but difficult to obtain and culture.
- Existing methods for studying HAMs are limited, hindering research into pulmonary diseases.
Purpose of the Study:
- To develop a cost-effective and accessible in vitro model for human alveolar macrophages (HAMs).
- To generate and characterize human alveolar macrophage-like (AML) cells from peripheral blood monocytes.
Main Methods:
- Differentiated monocytes into AMLs using a culture medium containing lung lipids (Infasurf) and specific cytokines (GM-CSF, TGF-β, IL-10).
- Mimicked the human lung alveolar environment in vitro.
- Assessed AML susceptibility to Mycobacterium tuberculosis and SARS-CoV-2 infections.
Main Results:
- Successfully generated AML cells with a phenotype and function similar to primary HAMs.
- AML cells demonstrated susceptibility to M. tuberculosis and SARS-CoV-2.
- The model provides a stable and accessible source of HAM-like cells for research.
Conclusions:
- The novel culture method effectively generates AML cells, overcoming limitations of primary HAM access.
- This accessible AML model is valuable for studying lung infectious and inflammatory diseases.
- The model supports research on therapies and vaccines for respiratory pathogens.
More Related Videos
11:05Generation and Identification of GM-CSF Derived Alveolar-like Macrophages and Dendritic Cells From Mouse Bone Marrow
Published on: June 25, 2016
07:02Generating 3D Spheres and 2D Air-Liquid Interface Cultures of Human Induced Pluripotent Stem Cell-Derived Type 2 Alveolar Epithelial Cells
Published on: April 15, 2022