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Examining Proteasome Assembly with Recombinant Archaeal Proteasomes and Nondenaturing PAGE: The Case for a Combined Approach
Published on: December 17, 2016
A Sentinel in the Crosstalk Between the Nervous and Immune System: The (Immuno)-Proteasome
Fiona Limanaqi1, Francesca Biagioni2, Anderson Gaglione2
1Human Anatomy, Department of Translational Research and New Technologies in Medicine and Surgery, University of Pisa, Pisa, Italy.
Insights
The brain communicates with the immune system, and disruptions in this communication, particularly involving the immunoproteasome, are key in neurodegenerative diseases like Alzheimer's and Parkinson's.
Area of Science:
- Neuroimmunology
- Molecular Neuroscience
- Cellular Biology
Background:
- Recent evidence highlights bidirectional communication between nerve and immune cells, challenging the brain's
Purpose of the Study:
- To review proteasome-dependent molecular interactions governing nerve-immune cell communication in the central nervous system (CNS).
- To explore the role of proteasome subtypes in neuroinflammation and neurodegenerative diseases.
Main Methods:
- Review of existing literature on proteasome function in neural and immune cells.
- Analysis of molecular mechanisms underlying proteasome-mediated communication in neurological disorders.
Main Results:
- Dysregulation of standard vs. immunoproteasome subtypes alters neuron-glia-immune cell communication.
- Upregulation of immunoproteasome, at the expense of standard proteasome, is linked to neuroinflammation in neurodegeneration.
Conclusions:
- The ubiquitin proteasome system, especially the immunoproteasome, is crucial in CNS immune responses.
- Targeting the immunoproteasome may offer novel therapeutic strategies for neurodegenerative and neuro-immunological disorders.
Abstract:
The wealth of recent evidence about a bi-directional communication between nerve- and immune- cells revolutionized the traditional concept about the brain as an "immune-privileged" organ while opening novel avenues in the pathophysiology of CNS disorders. In fact, altered communication between the immune and nervous system is emerging as a common hallmark in neuro-developmental, neurodegenerative, and neuro-immunological diseases. At molecular level, the ubiquitin proteasome machinery operates as a sentinel at the crossroad between the immune system and brain. In fact, the standard proteasome and its alternative/inducible counterpart, the immunoproteasome, operate dynamically and coordinately in both nerve- and immune- cells to modulate neurotransmission, oxidative/inflammatory stress response, and immunity. When dysregulations of the proteasome system occur, altered amounts of standard- vs. immune-proteasome subtypes translate into altered communication between neurons, glia, and immune cells. This contributes to neuro-inflammatory pathology in a variety of neurological disorders encompassing Parkinson's, Alzheimer's, and Huntingtin's diseases, brain trauma, epilepsy, and Multiple Sclerosis. In the present review, we analyze those proteasome-dependent molecular interactions which sustain communication between neurons, glia, and brain circulating T-lymphocytes both in baseline and pathological conditions. The evidence here discussed converges in that upregulation of immunoproteasome to the detriment of the standard proteasome, is commonly implicated in the inflammatory- and immune- biology of neurodegeneration. These concepts may foster additional studies investigating the role of immunoproteasome as a potential target in neurodegenerative and neuro-immunological disorders.
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