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.

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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