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Adaptation of Microelectrode Array Technology for the Study of Anesthesia-induced Neurotoxicity in the Intact Piglet Brain
Published on: May 12, 2018
Minimally invasive biomarkers of general anesthetic-induced developmental neurotoxicity
Abstract:
The association of general anesthesia with developmental neurotoxicity, while nearly impossible to study in pediatric populations, is clearly demonstrable in a variety of animal models from rodents to nonhuman primates. Nearly all general anesthetics tested have been shown to cause abnormal brain cell death in animals when administered during periods of rapid brain growth. The ability to repeatedly assess in the same subjects adverse effects induced by general anesthetics provides significant power to address the time course of important events associated with exposures. Minimally-invasive procedures provide the opportunity to bridge the preclinical/clinical gap by providing the means to more easily translate findings from the animal laboratory to the human clinic. Positron Emission Tomography or PET is a tool with great promise for realizing this goal. PET for small animals (microPET) is providing valuable data on the life cycle of general anesthetic induced neurotoxicity. PET radioligands (annexin V and DFNSH) targeting apoptotic processes have demonstrated that a single bout of general anesthesia effected during a vulnerable period of CNS development can result in prolonged apoptotic signals lasting for several weeks in the rat. A marker of cellular proliferation (FLT) has demonstrated in rodents that general anesthesia-induced inhibition of neural progenitor cell proliferation is evident when assessed a full 2weeks after exposure. Activated glia express Translocator Protein (TSPO) which can be used as a marker of presumed neuroinflammatory processes and a PET ligand for the TSPO (FEPPA) has been used to track this process in both rat and nonhuman primate models. It has been shown that single bouts of general anesthesia can result in elevated TSPO expression lasting for over a week. These examples demonstrate the utility of specific PET tracers to inform, in a minimally-invasive fashion, processes associated with general anesthesia-induced developmental neurotoxicity. The fact that PET procedures are also used clinically suggests an opportunity to confirm in humans what has been repeatedly observed in animals.
Insights
General anesthesia can cause developmental neurotoxicity, leading to abnormal brain cell death in young animals. Positron Emission Tomography (PET) imaging reveals prolonged apoptotic signals and inhibited cell proliferation for weeks after exposure.
Area of Science:
- Neuroscience
- Toxicology
- Medical Imaging
Background:
- General anesthesia is linked to developmental neurotoxicity, observable in animal models but difficult to study in children.
- Animal studies show anesthetics can cause abnormal brain cell death during critical developmental periods.
- Minimally-invasive techniques like Positron Emission Tomography (PET) can bridge the gap between animal research and human clinical findings.
Purpose of the Study:
- To investigate the time course and cellular mechanisms of general anesthesia-induced developmental neurotoxicity using advanced imaging techniques.
- To demonstrate the utility of Positron Emission Tomography (PET) tracers in assessing neurotoxic effects of anesthesia in preclinical models.
- To explore the potential for translating findings from animal studies to human clinical applications.
Main Methods:
- Utilized small animal PET (microPET) with specific radioligands to track apoptotic processes (annexin V, DFNSH), cellular proliferation (FLT), and neuroinflammation (FEPPA targeting TSPO).
- Assessed neurotoxic effects in rodent and nonhuman primate models following general anesthesia exposure during vulnerable developmental periods.
- Repeatedly assessed subjects to determine the time course of adverse effects induced by general anesthetics.
Main Results:
- PET imaging revealed prolonged apoptotic signals lasting several weeks after a single anesthesia bout in developing rats.
- General anesthesia inhibited neural progenitor cell proliferation, with effects detectable up to two weeks post-exposure in rodents.
- Elevated Translocator Protein (TSPO) expression, a marker of neuroinflammation, persisted for over a week after anesthesia in rats and nonhuman primates.
Conclusions:
- Specific PET tracers are effective tools for minimally-invasively assessing processes related to general anesthesia-induced developmental neurotoxicity.
- Findings in animal models suggest potential risks of anesthesia to developing brains.
- The clinical use of PET imaging offers a pathway to confirm these preclinical observations in human pediatric populations.
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