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Published on: June 14, 2017
Neural stem/progenitor cells participate in the regenerative response to perinatal hypoxia/ischemia
Ryan J Felling1, Matthew J Snyder, Michael J Romanko
1Department of Neural and Behavioral Sciences, Pennsylvania State University College of Medicine, Hershey, Pennsylvania 17033, USA.
Insights
Neural stem/progenitor cells (NSPs) expand and divide symmetrically after perinatal hypoxia/ischemia (H/I) brain injury. This regenerative response offers potential therapeutic targets to improve brain development following birth complications.
Area of Science:
- Neuroscience
- Developmental Biology
- Regenerative Medicine
Background:
- Perinatal hypoxia/ischemia (H/I) is a major cause of neonatal neurologic injury.
- Despite improved survival rates, 50% of infants experience long-term sequelae like cerebral palsy or epilepsy.
Purpose of the Study:
- To investigate the role of tripotential neural stem/progenitor cells (NSPs) in the brain's response to perinatal H/I.
- To identify molecular mechanisms driving NSP proliferation and differentiation after H/I.
Main Methods:
- Analysis of NSP numbers and cell division patterns post-perinatal H/I.
- Gene expression profiling of stem-cell related genes in the NSP niche.
- Investigated expression of Notch1, gp-130, EGF receptor, and Hes5.
Main Results:
- NSP numbers doubled by 3 days post-H/I, with a shift to symmetrical cell divisions.
- Increased NSP proliferation observed at 2 days post-H/I, with nestin expression.
- Upregulation of Notch1, gp-130, EGF receptor, and Hes5 preceded NSP expansion.
Conclusions:
- Tripotential NSPs actively participate in the regenerative response to perinatal H/I.
- The study reveals molecular pathways that regulate NSP expansion, presenting potential therapeutic targets.
- Amplifying endogenous NSP responses could restore normal brain development after H/I.
Abstract:
Perinatal hypoxia/ischemia (H/I) is the leading cause of neurologic injury resulting from birth complications. Recent advances in critical care have dramatically improved the survival rate of infants suffering this insult, but approximately 50% of survivors will develop neurologic sequelae such as cerebral palsy, epilepsy or cognitive deficits. Here we demonstrate that tripotential neural stem/progenitor cells (NSPs) participate in the regenerative response to perinatal H/I as their numbers increase 100% by 3 d and that they alter their intrinsic properties to divide using expansive symmetrical cell divisions. We further show that production of new striatal neurons follows the expansion of NSPs. Increased proliferation within the NSP niche occurs at 2 d after perinatal H/I, and the proliferating cells express nestin. Of those stem-cell related genes that change, the membrane receptors Notch1, gp-130, and the epidermal growth factor receptor, as well as the downstream transcription factor Hes5, which stimulate NSP proliferation and regulate stem cellness are induced before NSP expansion. The mechanisms for the reactive expansion of the NSPs reported here reveal potential therapeutic targets that could be exploited to amplify this response, thus enabling endogenous precursors to restore a normal pattern of brain development after perinatal H/I.
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