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GM-CSF gene expression is normal but protein release is absent in a patient with pulmonary alveolar proteinosis
K M Tchou-Wong1, T J Harkin, C Chi
1Department of Medicine, Bellevue Chest Service, New York University Medical Center, New York, USA.
Abstract:
Pulmonary alveolar proteinosis (PAP) is a rare disease characterized by an excessive accumulation of surfactant lipids and proteins in the alveolar space. In mice with a homozygous deletion of granulocyte macrophage-colony stimulating factor (GM-CSF), their phenotype mimics PAP. To evaluate whether the knockout mouse model mimics human disease, we evaluated GM-CSF expression in alveolar macrophages from a patient with PAP. We performed multiple whole lung lavages on a patient with PAP, and cultured BAL cells in the presence or absence of LPS. In contrast to the GM-CSF knockout mouse, human BAL cells from a patient with PAP expressed mRNA for GM-CSF following LPS stimulation. However, similar to the knockout mouse, GM-CSF protein release from BAL cells was undetectable with or without LPS. BAL cells from normal human controls released GM-CSF in abundance after LPS stimulation. In BAL cells from the patient with PAP, neutralization of interleukin-10 (IL-10) by anti-IL-10 antibody, resulted in enhanced GM-CSF production. Thus, alveolar macrophages from a PAP lung have deficient GM-CSF production analogous to the GM-CSF knockout mice; in contrast, human cells from a PAP lung have an intact GM-CSF gene. This case report illustrates an important difference between the knockout mouse model of PAP and the human disease.
Insights
Pulmonary alveolar proteinosis (PAP) in humans shows deficient granulocyte macrophage-colony stimulating factor (GM-CSF) protein release, unlike the intact GM-CSF gene. This highlights a key difference from the GM-CSF knockout mouse model of PAP.
Area of Science:
- Pulmonary Medicine
- Immunology
- Genetics
Background:
- Pulmonary alveolar proteinosis (PAP) is a rare lung disease.
- GM-CSF knockout mice exhibit a PAP phenotype, serving as a model.
- Investigating GM-CSF expression in human PAP is crucial for model validation.
Observation:
- Human alveolar macrophages from PAP patients express GM-CSF mRNA post-LPS stimulation.
- GM-CSF protein release is undetectable in PAP patients, even with LPS.
- Normal human controls release abundant GM-CSF after LPS stimulation.
Findings:
- PAP patients' alveolar macrophages have intact GM-CSF genes but deficient protein production.
- Interleukin-10 (IL-10) neutralization enhances GM-CSF production in PAP patients.
- This suggests an inhibitory mechanism beyond gene expression in human PAP.
Implications:
- The GM-CSF knockout mouse model partially mimics human PAP but has limitations.
- Understanding human PAP's specific molecular defects is vital for targeted therapies.
- This study reveals critical differences between mouse models and human disease pathology.