Lamin A/C Haploinsufficiency Modulates the Differentiation Potential of Mouse Embryonic Stem Cells
Lamin A/C Haploinsufficiency Modulates the Differentiation Potential of Mouse Embryonic Stem Cells
Lamins are structural proteins that are the major determinants of nuclear architecture and play important roles in various nuclear functions including gene regulation and cell differentiation. Mutations in the human lamin A gene cause a spectrum of genetic diseases that affect specific tissues. Most available mouse models for laminopathies recapitulate disease symptoms for muscle diseases and progerias. However, loss of human lamin A/C also has highly deleterious effects on fetal development. Hence it is important to understand the impact of lamin A/C expression levels on embryonic differentiation pathways.We have investigated the differentiation potential of mouse embryonic stem cells containing reduced levels of lamin A/C by detailed lineage analysis of embryoid bodies derived from these cells by in vitro culture. We initially carried out a targeted disruption of one allele of the mouse lamin A/C gene (Lmna). Undifferentiated wild-type and Lmna(+/-) embryonic stem cells showed similar expression of pluripotency markers and cell cycle profiles. Upon spontaneous differentiation into embryoid bodies, markers for visceral endoderm such as α-fetoprotein were highly upregulated in haploinsufficient cells. However, neuronal markers such as β-III tubulin and nestin were downregulated. Furthermore, we observed a reduction in the commitment of Lmna(+/-) cells into the myogenic lineage, but no discernible effects on cardiac, adipocyte or osteocyte lineages. In the next series of experiments, we derived embryonic stem cell clones expressing lamin A/C short hairpin RNA and examined their differentiation potential. These cells expressed pluripotency markers and, upon differentiation, the expression of lineage-specific markers was altered as observed with Lmna(+/-) embryonic stem cells.We have observed significant effects on embryonic stem cell differentiation to visceral endoderm, neuronal and myogenic lineages upon depletion of lamin A/C. Hence our results implicate lamin A/C level as an important determinant of lineage-specific differentiation during embryonic development.
- Council of Scientific and Industrial Research India
- Centre for Cellular and Molecular Biology India
- Illinois State University United States
- University of Illinois United States
Neurons, Heterozygote, Science, Q, Endoderm, R, Down-Regulation, Embryonic Development, Cell Differentiation, Haploinsufficiency, Lamin Type A, Mice, Gene Expression Regulation, Medicine, Animals, alpha-Fetoproteins, Embryoid Bodies, Embryonic Stem Cells, Research Article
Neurons, Heterozygote, Science, Q, Endoderm, R, Down-Regulation, Embryonic Development, Cell Differentiation, Haploinsufficiency, Lamin Type A, Mice, Gene Expression Regulation, Medicine, Animals, alpha-Fetoproteins, Embryoid Bodies, Embryonic Stem Cells, Research Article
15 Research products, page 1 of 2
- 2007IsAmongTopNSimilarDocuments
- 2020IsAmongTopNSimilarDocuments
- 2011IsAmongTopNSimilarDocuments
- 2013IsAmongTopNSimilarDocuments
- 2018IsAmongTopNSimilarDocuments
- 2004IsAmongTopNSimilarDocuments
- 2017IsRelatedTo
- 2017IsRelatedTo
- 2017IsAmongTopNSimilarDocuments
chevron_left - 1
- 2
chevron_right
citations This is an alternative to the "Influence" indicator, which also reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically).27 popularity This indicator reflects the "current" impact/attention (the "hype") of an article in the research community at large, based on the underlying citation network.Top 10% influence This indicator reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically).Average impulse This indicator reflects the initial momentum of an article directly after its publication, based on the underlying citation network.Top 10%
