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        <datestamp>2026-05-28T09:03:50Z</datestamp>
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          <dc:title>The Impact of Melanocortin Receptor Ligands on Astrocyte  Signalling and Metabolism</dc:title>
          <dc:creator>A Al-Khalidi (21972392)</dc:creator>
          <dc:subject>melanocortin peptides</dc:subject>
          <dc:description>Melanocortin peptides, which act on melanocortin receptors (MCRs), play 
multifaceted roles in the body through various tissues and mechanisms that 
regulate physiological functions. MCRs, comprising a family of five subtypes 
(MC1R to MC5R), are 7-transmembrane receptors that can couple with G 
proteins or function independently of them. These receptors are present in the 
central nervous system (CNS) as well as other body tissues. This thesis 
concentrates on the role of MCRs within the CNS and explores their functional 
role in astrocytes.
Astrocytes, once underestimated glial cells, are now recognised as crucial 
contributors to brain function. Although considered non-excitable cells, they 
increase their intracellular calcium ion levels in response to a stimulus or 
signalling event. They maintain brain homeostasis through the regulation of 
diverse cellular signals, extracellular potassium ion buffering, and metabolic 
activities. While MC3R and MC4R were initially considered the main MCR 
subtypes expressed in CNS neurons, recent evidence suggests that other MCR 
subtypes may also be present, although their expression and function in 
astrocytes remain poorly defined.
This thesis addresses this gap by investigating the expression of all MCRs and 
the impact of pharmacological modulation on astrocytic signalling pathways, ion 
dynamics and metabolism. It explores how melanocortin peptides influence 
metabolic functions in astrocytes, particularly focusing on mitochondrial and 
glycolytic activity, ERK1/2, PKA and PLC signalling, and calcium and potassium 
ion flux, in these cells. Through experimental approaches including RT-PCR, 
immunoblotting, real-time fluorescence imaging, cell bioenergetics and 
metabolic assays, this work provides new insights into the complex interplay 
between melanocortin signalling, metabolic and ion changes in astrocytic 
function. The findings enhance our understanding of how MCRs contribute to 
brain homeostasis and highlight their potential as therapeutic targets for 
metabolic and neurological disorders.
The overarching hypothesis of this thesis speculates that MCRs are expressed 
in astrocytes and exhibit functional signalling, alterations in potassium and calcium ion dynamics, and changes in metabolic activity in response to 
synthetic MCR ligands. This hypothesis was assessed in two cell models: 
neonatal mouse primary cortical astrocytes and the human astroglioma cell line 
U373. 
The findings of this thesis indicate that MCRs are expressed in both cell models 
examined. Pharmacological modulation of MCRs led to increased ERK1/2 
phosphorylation and enhanced cell metabolism in the human U373 astroglioma 
cell line, though no changes in intracellular calcium ion levels were observed. 
Melanocortin ligands did not alter ERK1/2 and PKA signalling, and calcium ion 
influx in mouse primary astrocytes. Despite exploration, melanocortin ligand 
induced modulation of potassium channels in U373 cells remains unclear. In 
conclusion, MCRs were found to be present on astrocytes and showed active 
signalling via ERK1/2 in U373 cells following treatment with melanocortin 
agonists, leading (directly or indirectly) to the regulation of cell metabolism. 
MCRs on astrocytes may play a significant role in maintaining brain/systemic 
homeostasis and may be a therapeutic target for mitigating pathological 
disorders. Although this thesis does not focus on a disease model, the data 
generated from this thesis supports further investigation of astrocyte 
melanocortin signalling in the context of pathophysiology.&lt;p&gt;&lt;/p&gt;</dc:description>
          <dc:date>2025-01-27T00:00:00Z</dc:date>
          <dc:type>Text</dc:type>
          <dc:type>Thesis</dc:type>
          <dc:identifier>10871/139798</dc:identifier>
          <dc:relation>https://figshare.com/articles/thesis/The_Impact_of_Melanocortin_Receptor_Ligands_on_Astrocyte_Signalling_and_Metabolism/29813267</dc:relation>
          <dc:rights>All rights reserved</dc:rights>
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