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Use of a Piglet Model for the Study of Anesthetic-induced Developmental Neurotoxicity (AIDN): A Translational Neuroscience Approach
Published on: June 11, 2017
Propofol-induced changes in neurotrophic signaling in the developing nervous system in vivo
Jelena Popic1, Vesna Pesic, Desanka Milanovic
1Department of Neurobiology, Institute for Biological Research, University of Belgrade, Belgrade, Serbia.
Insights
Propofol anesthesia alters neurotrophin signaling in developing rat brains. However, the developing brain activates defense mechanisms, preventing anesthesia-induced neurotoxicity in the cortex and thalamus.
Area of Science:
- Neuroscience
- Developmental Neuroscience
- Anesthesiology
Background:
- Neurotrophins play a role in anesthesia-induced neurotoxicity in developing brains.
- Propofol is a common anesthetic agent used in pediatric care.
- Understanding the developing brain's response to anesthesia is crucial.
Purpose of the Study:
- To investigate the effects of a single propofol dose on neurotrophic signaling in PND14 rat brains.
- To assess changes in brain-derived neurotrophic factor (BDNF), nerve growth factor (NGF), their receptors (TrkA, TrkB), and downstream kinases (Akt, ERK).
- To determine if these changes correlate with neurodegeneration.
Main Methods:
- Administered a single propofol dose (25 mg/kg i.p.) to 14-day-old Wistar rats.
- Analyzed protein levels of BDNF, NGF, TrkA, TrkB, Akt, ERK, and cleaved caspase-3 using Western immunoblot.
- Used Fluoro-Jade B staining to detect neuronal degeneration in the cortex and thalamus.
Main Results:
- Propofol caused significant alterations in neurotrophin, receptor, and kinase levels.
- No increase in neurodegeneration was observed in the cortex or thalamus.
- Changes in Akt/ERK signaling were noted, suggesting a protective role.
Conclusions:
- The developing brain (PND14) employs endogenous defense mechanisms involving Akt/ERK signaling to protect against propofol-induced neurotoxicity.
- Molecular mechanisms underlying anesthesia-induced neurotoxicity are age-dependent.
- Further research can elucidate these mechanisms for improved understanding and clinical application.
Abstract:
Several studies have revealed a role for neurotrophins in anesthesia-induced neurotoxicity in the developing brain. In this study we monitored the spatial and temporal expression of neurotrophic signaling molecules in the brain of 14-day-old (PND14) Wistar rats after the application of a single propofol dose (25 mg/kg i.p). The structures of interest were the cortex and thalamus as the primary areas of anesthetic actions. Changes of the protein levels of the brain-derived neurotrophic factor (BDNF) and nerve growth factor (NGF), their activated receptors tropomyosin-related kinase (TrkA and TrkB) and downstream kinases Akt and the extracellular signal regulated kinase (ERK) were assessed by Western immunoblot analysis at different time points during the first 24 h after the treatment, as well as the expression of cleaved caspase-3 fragment. Fluoro-Jade B staining was used to follow the appearance of degenerating neurons. The obtained results show that the treatment caused marked alterations in levels of the examined neurotrophins, their receptors and downstream effector kinases. However, these changes were not associated with increased neurodegeneration in either the cortex or the thalamus. These results indicate that in the brain of PND14 rats, the interaction between Akt/ERK signaling might be one of important part of endogenous defense mechanisms, which the developing brain utilizes to protect itself from potential anesthesia-induced damage. Elucidation of the underlying molecular mechanisms will improve our understanding of the age-dependent component of anesthesia-induced neurotoxicity.
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