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Published on: October 4, 2021
Dopamine receptor supersensitivity: an outcome and index of neurotoxicity
Richard M Kostrzewa1, John P Kostrzewa, Ryszard Brus
1Department of Pharmacology, Quillen College of Medicine, East Tennessee State University, Johnson City, TN 37614-1708, U.S.A. Kostrzew@etsu.edu
Abstract:
The characteristic feature of neurotoxicity is a definable lesion which can account for observed deficits, corresponding to loss of nuclei or axonal fibers normally comprising a specific pathway or tract. However, with ontogenetic lesions, the operative definition fails. In rats lesioned as neonates with 6-hydroxydopamine (6-OHDA), near-total destruction of dopamine- (DA-) containing nerves is produced, and this itself is definable. However, the most prominent feature of rats so-lesioned is the DA receptor supersensitivity (DARSS) that develops and then persists throughout the lifespan. DA D(1) receptors show overt supersensitivity to agonists producing vacuous chewing movements (VCMs), while D(1) receptors associated with locomotor activity have a latent supersensitivity that must be unmasked by repeated D(1) or D(2) agonist treatments - a 'priming' phenomenon. This D(1) DARSS is not usually associated in either a change in D(1) receptor number (B(max)) or affinity (K(d)). In contrast to D(1) DARSS, D(2) receptors are not so predictably supersensitized by a lesion of DA neurons. In reality, the permanently exaggerated response to an agonist by supersensitized receptors is per se a manifestation of neurotoxicity. Despite dramatic behavioral responses mediated by supersensitized receptors, DARSS has not been easy to correlate with enhanced production of second messengers or early response genes. Altered signaling (i.e., neuronal cross-talk) in defined pathways may represent the mechanism that produces so-called receptor supersensitization. Long-lived agonist-induced behavioral abnormality, with or without anatomic evidence of a neuronal lesion, is one of the products of DA D(1) receptor supersensitization -- itself an index of neurotoxicity.
Insights
Neonatal 6-hydroxydopamine (6-OHDA) lesions in rats induce lasting dopamine receptor supersensitivity (DARSS), a key indicator of neurotoxicity. This DARSS affects D(1) and D(2) receptors, leading to behavioral changes.
Area of Science:
- Neuroscience
- Pharmacology
- Toxicology
Background:
- Neurotoxicity is typically defined by specific lesions causing functional deficits.
- Ontogenetic lesions, like those induced by 6-hydroxydopamine (6-OHDA) in neonates, present unique challenges in defining neurotoxicity.
- Neonatal 6-OHDA administration results in near-complete destruction of dopamine-containing nerves.
Purpose of the Study:
- To investigate dopamine receptor supersensitivity (DARSS) following neonatal 6-OHDA lesions in rats.
- To characterize the nature and persistence of D(1) and D(2) receptor supersensitivity.
- To explore the relationship between DARSS and neurotoxicity.
Main Methods:
- Neonatal rats were lesioned with 6-hydroxydopamine (6-OHDA).
- Dopamine D(1) and D(2) receptor sensitivity was assessed using behavioral responses to agonists.
- Receptor binding studies were conducted to evaluate receptor number (Bmax) and affinity (Kd).
Main Results:
- Neonatal 6-OHDA lesions induced persistent dopamine receptor supersensitivity (DARSS).
- D(1) receptors exhibited overt supersensitivity to agonists, while D(1) receptors involved in locomotor activity showed latent supersensitivity requiring 'priming'.
- D(1) DARSS was not consistently associated with changes in D(1) receptor number or affinity.
Conclusions:
- Persistent DARSS following neonatal 6-OHDA lesions is a significant index of neurotoxicity.
- Altered neuronal signaling, or 'cross-talk', may underlie receptor supersensitization.
- Long-lived behavioral abnormalities induced by agonists are a consequence of D(1) receptor supersensitization, indicating neurotoxicity.
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