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FoxD1-driven CCN2 deletion causes axial skeletal deformities, pulmonary hypoplasia, and neonatal asphyctic death
Lucas L Falke1,2, Nannan He3, Susana M Chuva de Sousa Lopes4
1Deparment Pathology, University Medical Centre Utrecht, Heidelberglaan 100, 3584, CX, Utrecht, The Netherlands.
Abstract:
Pulmonary fibrosis is a severely disabling disease often leading to death. CCN2 (Cellular Communication Network factor 2, also known as CTGF) is a known mediator of fibrosis and clinical trials studying anti-CCN2 efficacy in pulmonary fibrosis are currently underway. Fork head box D1 (FoxD1) transcription factor is transiently expressed in several mesenchymal cell types, including those of fetal lungs. Differentiation of FoxD1-progenitor derived pericytes into myofibroblasts involves CCN2 expression and contributes importantly to maladaptive tissue remodeling in e.g. kidney and lung fibrosis models. To generate a model for studying the contribution of CCN2 expression in FoxD1-progenitor derived cells to development of fibrotic tissue remodeling, we set out to establish a FoxD1Cre - CCN2flox/flox mouse colony. However, all double-transgenic mice died soon after birth due to asphyxia. Histopathological examination revealed a reduction in alveolar space and lung weight, and subtle axial (thoracic and cervical) skeletal deformities. Together with the previously reported association of a FoxD1 containing locus with human adolescent idiopathic scoliosis, our data suggest that the development of fatal pulmonary hypoplasia caused by selective deletion of CCN2 from FoxD1-progenitor derived mesenchymal cells was secondary to aberrant axial skeletogenesis.
Insights
Deleting CCN2 (Cellular Communication Network factor 2) in FoxD1-progenitor cells caused fatal pulmonary hypoplasia in mice. This was linked to skeletal deformities, suggesting CCN2’s role in axial skeletogenesis and lung development.
Area of Science:
- Developmental biology
- Fibrosis research
- Skeletal biology
Background:
- Pulmonary fibrosis is a fatal lung disease.
- CCN2 (Cellular Communication Network factor 2) mediates fibrosis.
- FoxD1 transcription factor is expressed in fetal lung mesenchymal cells.
Purpose of the Study:
- To create a mouse model to study CCN2's role in FoxD1-progenitor cells during fibrotic remodeling.
- Investigate the contribution of CCN2 in FoxD1-derived cells to lung fibrosis.
Main Methods:
- Generated a FoxD1Cre - CCN2flox/flox double-transgenic mouse model.
- Performed histopathological examination of deceased offspring.
Main Results:
- All double-transgenic mice died postnatally from asphyxia.
- Observed reduced lung space, decreased lung weight, and axial skeletal deformities.
- Fatal pulmonary hypoplasia was secondary to aberrant axial skeletogenesis.
Conclusions:
- Selective CCN2 deletion in FoxD1-progenitor cells leads to lethal pulmonary hypoplasia.
- Aberrant axial skeletogenesis contributes to fatal lung development defects.
- Findings suggest a link between FoxD1, CCN2, and skeletal development in lung fibrosis models.
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