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Evaluation of the Impact of Protein Aggregation on Cellular Oxidative Stress in Yeast
Published on: June 23, 2018
Protein targets of oxidative damage in human neurodegenerative diseases with abnormal protein aggregates
Anna Martínez1, Manuel Portero-Otin, Reinald Pamplona
1Institut de Neuropatologia, Institut d'Investigacio de Bellvitge-Hospital Universitari de Bellvitge, Universitat de Barcelona, Centro de Inbvestigación Biomédica en Red de Enfermedades Neurodegenerativas, Spain.
Abstract:
Human neurodegenerative diseases with abnormal protein aggregates are associated with aberrant post-translational modifications, solubility, aggregation and fibril formation of selected proteins which cannot be degraded by cytosolic proteases, ubiquitin-protesome system and autophagy, and, therefore, accumulate in cells and extracellular compartments as residual debris. In addition to the accumulation of "primary" proteins, several other mechanisms are involved in the degenerative process and probably may explain crucial aspects such as the timing, selective cellular vulnerability and progression of the disease in particular individuals. One of these mechanisms is oxidative stress, which occurs in the vast majority of, if not all, degenerative diseases of the nervous system. The present review covers most of the protein targets that have been recognized as modified proteins mainly using bidimensional gel electrophoresis, Western blotting with oxidative and nitrosative markers, and identified by mass spectrometry in Alzheimer disease; certain tauopathies such as progressive supranuclear palsy, Pick disease, argyrophilic grain disease and frontotemporal lobar degeneration linked to mutations in tau protein, for example, FTLD-tau, Parkinson disease and related alpha-synucleinopathies; Huntington disease; and amyotrophic lateral sclerosis, together with related animal and cellular models. Vulnerable proteins can be mostly grouped in defined metabolic pathways covering glycolysis and energy metabolism, cytoskeletal, chaperoning, cellular stress responses, and members of the ubiquitin-proteasome system. Available information points to the fact that vital metabolic pathways are hampered by protein oxidative damage in several human degenerative diseases and that oxidative damage occurs at very early stages of the disease. Yet parallel functional studies are limited and further work is needed to document whether protein oxidation results in loss of activity and impaired performance. A better understanding of proteins susceptible to oxidation and nitration may serve to define damaged metabolic networks at early stages of disease and to advance therapeutic interventions to attenuate disease progression.
Insights
Oxidative stress modifies proteins in neurodegenerative diseases like Alzheimer's and Parkinson's, impacting key metabolic pathways early on. Further research is needed to link protein oxidation to functional decline and guide therapies.
Area of Science:
- Neuroscience
- Biochemistry
- Pathology
Background:
- Neurodegenerative diseases involve abnormal protein aggregates and impaired degradation.
- Oxidative stress is a common mechanism in these diseases.
- Aberrant protein modifications contribute to cellular dysfunction.
Purpose of the Study:
- To review protein targets modified by oxidative and nitrosative stress in major neurodegenerative diseases.
- To identify vulnerable metabolic pathways affected by protein damage.
- To highlight the early occurrence of oxidative damage in disease progression.
Main Methods:
- Bidimensional gel electrophoresis
- Western blotting with oxidative and nitrosative markers
- Mass spectrometry
- Analysis of cellular and animal models
Main Results:
- Identified numerous protein targets modified by oxidative stress in Alzheimer's, Parkinson's, Huntington's, ALS, and tauopathies.
- Vulnerable proteins are primarily involved in glycolysis, energy metabolism, cytoskeleton, chaperoning, and the ubiquitin-proteasome system.
- Oxidative damage occurs early in disease development, potentially hampering vital metabolic pathways.
Conclusions:
- Protein oxidative damage affects critical metabolic pathways in neurodegenerative diseases.
- Early detection of protein oxidation may identify damaged networks and inform therapeutic strategies.
- Further functional studies are required to confirm the impact of protein oxidation on cellular activity and disease progression.
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