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Advanced pre-clinical research approaches and models to studying pediatric anesthetic neurotoxicity
1Division of Neurotoxicology, National Center for Toxicological Research, United States Food and Drug Administration Jefferson, AR, USA.
Insights
Investigating anesthetic neurotoxicity in pediatric patients requires advanced models. This review explores in vitro stem cell and in vivo non-human primate models to understand developmental effects of anesthesia.
Area of Science:
- Neuroscience
- Developmental Biology
- Anesthesiology
Background:
- Pediatric and obstetric surgeries are increasing in duration and complexity, raising concerns about anesthesia safety in children.
- Direct in vivo study of anesthetic effects on infant neurons is limited.
- Advanced preclinical models offer potential insights into anesthetic neurotoxicity.
Purpose of the Study:
- To review sophisticated research approaches for studying anesthetic neurotoxicity in developing brains.
- To highlight the utility of in vitro stem cell models and in vivo non-human primate models.
- To bridge the gap between preclinical data and human pediatric anesthesia safety.
Main Methods:
- Utilizing calcium imaging in human embryonic stem cell-derived neural stem cell models (in vitro).
- Examining stem cell proliferation and differentiation potential.
- Employing dynamic molecular imaging in developing rhesus monkey models (in vivo).
Main Results:
- Stem cell models allow dissection of mechanisms underlying anesthetic neurotoxicity.
- Non-human primate models enable study of dose-response, time-course, and developmental stage effects.
- These models provide a platform for reducing uncertainty in extrapolating preclinical findings to humans.
Conclusions:
- Sophisticated in vitro and in vivo models are crucial for understanding anesthetic neurotoxicity in pediatric populations.
- Combining stem cell research with non-human primate studies offers a comprehensive approach.
- These methods are vital for improving the safety of pediatric anesthesia and sedation.
Abstract:
Advances in pediatric and obstetric surgery have resulted in an increase in the duration and complexity of anesthetic procedures. A great deal of concern has recently arisen regarding the safety of anesthesia in infants and children. Because of obvious limitations, it is not possible to thoroughly explore the effects of anesthetic agents on neurons in vivo in human infants or children. However, the availability of some advanced pre-clinical research approaches and models, such as imaging technology both in vitro and in vivo, stem cells, and non-human primate experimental models, have provided potentially invaluable tools for examining the developmental effects of anesthetic agents. This review discusses the potential application of some sophisticated research approaches, e.g., calcium imaging, in stem cell-derived in vitro models, especially human embryonic neural stem cells, along with their capacity for proliferation and their potential for differentiation, to dissect relevant mechanisms underlying the etiology of the neurotoxicity associated with developmental exposures to anesthetic agents. Also, this review attempts to discuss several advantages for using the developing rhesus monkey model (in vivo), when combined with dynamic molecular imaging approaches, in addressing critical issues related to the topic of pediatric sedation/anesthesia. These include the relationships between anesthetic-induced neurotoxicity, dose response, time-course, and developmental stage at time of exposure (in vivo studies), serving to provide the most expeditious platform toward decreasing the uncertainty in extrapolating pre-clinical data to the human condition.
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