Related Experiment Videos
Arrested lung morphogenesis in transgenic mice bearing an SP-C-TGF-beta 1 chimeric gene
1Division of Pulmonary Biology, Children's Hospital Medical Center, Ohio 45229-3039, USA.
Abstract:
Transforming growth factor-beta 1 (TGF-beta 1) influences the morphogenesis of many organs, regulating cell growth, differentiation, gene expression, extracellular matrix deposition, and angiogenesis. In order to assess the effects of TGF-beta 1 on lung development in vivo, transgenic mice were generated bearing a chimeric gene composed of human surfactant protein C (SP-C) gene promoter and the porcine TGF-beta 1 cDNA mutated to ensure constitutive activation of the TGF-beta 1 peptide. Because of the perinatal loss related to the SP-C-TGF-beta 1 transgene, embryos bearing the transgene were obtained on Days 16 and 18.5 of gestation. TGF-beta 1 was selectively expressed in respiratory epithelial cells of the transgenic embryos. Body weight, length, and lung size were not altered in the transgenic embryos; however, lung morphogenesis of Day 18.5 transgenic mice was arrested in a late pseudoglandular stage of development, while that of their nontransgenic littermates was typical of the saccular stage. Lungs of transgenic mice on Day 16 contained fewer acinar buds than those of nontransgenic littermates. At both ages, epithelial cell differentiation, assessed by the expression of Clara cell secretory protein2 and pro-SP-C, was inhibited. While collagen III deposition was not affected by the transgene, collagen I expression was persistent in terminal airways of fd 18.5 transgenic lungs. The distribution of alpha-smooth muscle actin was markedly altered, being detected in the mesenchyme surrounding the distal leading edges of epithelial tubules in the SP-C-TGF-beta 1 transgenic mice. Expression of TGF-beta 1 in the developing respiratory epithelium of transgenic mice arrested lung sacculation and epithelial cell differentiation in vivo, supporting the role of TGF-beta family members in lung morphogenesis and differentiation.
Insights
Transforming growth factor-beta 1 (TGF-beta 1) expression in developing lungs arrests lung sacculation and epithelial cell differentiation. This study highlights TGF-beta 1
Area of Science:
- Developmental Biology
- Molecular Biology
- Genetics
Background:
- Transforming growth factor-beta 1 (TGF-beta 1) is crucial for organ development, regulating cell growth, differentiation, and extracellular matrix deposition.
- Understanding TGF-beta 1's role in lung development is essential for addressing congenital lung diseases.
Purpose of the Study:
- To investigate the in vivo effects of targeted TGF-beta 1 expression on lung development using transgenic mice.
- To elucidate the specific impacts of activated TGF-beta 1 on lung epithelial cell differentiation and morphogenesis.
Main Methods:
- Generation of transgenic mice with a human surfactant protein C (SP-C) promoter driving a constitutively active porcine TGF-beta 1 cDNA.
- Analysis of embryonic lung development at gestational Days 16 and 18.5, assessing morphology, cell differentiation markers, and extracellular matrix components.
- Selective expression of TGF-beta 1 in respiratory epithelial cells was confirmed.
Main Results:
- Transgenic embryos exhibited arrested lung morphogenesis at the pseudoglandular stage by Day 18.5, unlike controls in the saccular stage.
- Fewer acinar buds were observed in transgenic lungs at Day 16.
- Epithelial cell differentiation, indicated by Clara cell secretory protein and pro-SP-C expression, was inhibited in transgenic lungs.
- Altered distribution of alpha-smooth muscle actin and persistent collagen I expression in terminal airways were noted.
Conclusions:
- In vivo expression of TGF-beta 1 in developing respiratory epithelium significantly disrupts lung sacculation and epithelial differentiation.
- These findings underscore the critical role of TGF-beta family members in regulating lung morphogenesis and cellular differentiation.
- The study provides evidence for TGF-beta 1's inhibitory effect on late lung development stages.