Related Experiment Videos
Sonic hedgehog regulates proliferation and inhibits differentiation of CNS precursor cells
D H Rowitch1, B S-Jacques, S M Lee
1Department of Molecular and Cellular Biology, Harvard University, Cambridge, Massachusetts 02138, USA.
Abstract:
Activation of the Sonic hedgehog (Shh) signal transduction pathway is essential for normal pattern formation and cellular differentiation in the developing CNS. However, it is also thought to be etiological in primitive neuroectodermal tumors. We adapted GAL4/UAS methodology to ectopically express full-length Shh in the dorsal neural tube of transgenic mouse embryos commencing at 10 d postcoitum (dpc), beyond the period of primary dorsal-ventral pattern formation and floorplate induction. Expression of Shh was maintained until birth, permitting us to investigate effects of ongoing exposure to Shh on CNS precursors in vivo. Proliferative rates of spinal cord precursors were twice that of wild-type littermates at 12.5 dpc. In contrast, at late fetal stages (18.5 dpc), cells that were Shh-responsive but postmitotic were present in persistent structures reminiscent of the ventricular zone germinal matrix. This tissue remained blocked in an undifferentiated state. These results indicate that cellular competence restricts the proliferative response to Shh in vivo and provide evidence that proliferation and differentiation can be regulated separately in precursor cells of the spinal cord. Thus, Hedgehog signaling may contribute to CNS tumorigenesis by directly enhancing proliferation and preventing neural differentiation in selected precursor cells.
Insights
Ectopic Sonic hedgehog (Shh) signaling in mouse embryos enhanced spinal cord precursor proliferation. However, Shh also blocked differentiation in later stages, suggesting a role in central nervous system (CNS) tumor development.
Area of Science:
- Developmental Biology
- Neuroscience
- Cancer Biology
Background:
- The Sonic hedgehog (Shh) pathway is crucial for central nervous system (CNS) development.
- Aberrant Shh signaling is implicated in primitive neuroectodermal tumors.
Purpose of the Study:
- To investigate the effects of sustained ectopic Shh expression on CNS precursor cells in vivo.
- To determine if Shh influences proliferation and differentiation separately in spinal cord precursors.
Main Methods:
- Utilized GAL4/UAS methodology in transgenic mouse embryos.
- Ectopically expressed full-length Shh in the dorsal neural tube from 10 days postcoitum (dpc) to birth.
- Analyzed proliferation rates and differentiation status of CNS precursor cells at 12.5 dpc and 18.5 dpc.
Main Results:
- Spinal cord precursor proliferation doubled at 12.5 dpc compared to wild-type littermates.
- At 18.5 dpc, Shh-responsive cells remained undifferentiated in structures resembling the ventricular zone germinal matrix.
- Demonstrated that cellular competence limits the proliferative response to Shh.
Conclusions:
- Proliferation and differentiation can be independently regulated in spinal cord precursor cells.
- Sustained Shh signaling may promote CNS tumorigenesis by increasing proliferation and inhibiting neural differentiation.