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The Swimmeret System of Crayfish: A Practical Guide for the Dissection of the Nerve Cord and Extracellular Recordings of the Motor Pattern
Published on: November 25, 2014
Axotomy-Induced Changes of the Protein Profile in the Crayfish Ventral Cord Ganglia
Svetlana Demyanenko1, Valentina Dzreyan1, Anatoly Uzdensky2
1Laboratory of Molecular Neurobiology, Academy of Biology and Biotechnology, Southern Federal University, 194/1 Stachky Ave, Rostov-on-Don, Russia, 344090.
Abstract:
We suggest novel experimental model of nerve injury-bilaterally axotomized ganglia of the crayfish ventral nerve cord (VNC). Using proteomic antibody microarrays, we showed upregulation of apoptosis execution proteins (Bcl-10, caspases 3, 6, and 7, SMAC/DIABLO, AIF), proapoptotic signaling proteins and transcription factors (c-Myc, p38, E2F1, p53, GADD153), and multifunctional proteins capable of initiating apoptosis in specific situations (p75, NMDAR2a) in the axotomized VNC ganglia. Simultaneously, anti-apoptotic proteins (p21WAF-1, MDM2, Bcl-x, Mcl-1, MKP1, MAKAPK2, ERK5, APP, calmodulin, estrogen receptor) were overexpressed. Some proteins associated with actin cytoskeleton (α-catenin, catenin p120CTN, cofilin, p35, myosin Vα) were upregulated, whereas other actin-associated proteins (ezrin, distrophin, tropomyosin, spectrin (α + β), phosphorylated Pyk2) were downregulated. Various cytokeratins and βIV-tubulin, components of intermediate filament and microtubule cytoskeletons, were also downregulated that could be the result of tissue destruction. Downregulation of proteins involved in clathrin vesicle formation (AP2α and AP2γ, adaptin (β1 + β2), and syntaxin) indicated impairment of vesicular transport and synaptic processes. The levels of L-DOPA decarboxylase, tyrosine, and tryptophan hydroxylases that mediate synthesis of serotonin, dopamine, norepinephrine, and epinephrine decreased. Overexpression of histone deacetylases HDAC1, HDAC2, and HDAC4 contributed to suppression of transcription and protein synthesis. So, the balance of multidirectional processes aimed either at cell death, or to repair and recovery, determines the cell fate. Present data provide integral, albeit incomplete, view on the nervous tissue response to axotomy. Some of these proteins can be probably potential markers of nerve injury and targets for neuroprotective therapy.
Insights
This study introduces a novel crayfish model for nerve injury, revealing complex protein changes including apoptosis regulators, cytoskeletal alterations, and impaired neurotransmitter synthesis. These findings may identify potential biomarkers and therapeutic targets for nerve damage.
Area of Science:
- Neuroscience
- Molecular Biology
- Proteomics
Background:
- Nerve injury triggers complex cellular responses involving cell death and repair mechanisms.
- Understanding the molecular changes post-axotomy is crucial for developing neuroprotective strategies.
Purpose of the Study:
- To establish a novel experimental model of nerve injury using crayfish ventral nerve cord (VNC).
- To comprehensively analyze the proteomic changes in axotomized VNC ganglia.
- To identify potential protein biomarkers and therapeutic targets for nerve injury.
Main Methods:
- Proteomic antibody microarrays were employed to analyze protein expression profiles.
- Bilaterally axotomized ganglia of the crayfish ventral nerve cord (VNC) served as the experimental model.
- Quantitative analysis of protein upregulation and downregulation was performed.
Main Results:
- Upregulation of apoptosis execution and signaling proteins (e.g., caspases, c-Myc, p53) and anti-apoptotic proteins (e.g., Bcl-x, Mcl-1).
- Alterations in actin cytoskeleton-associated proteins and downregulation of intermediate filament and microtubule components.
- Impaired vesicular transport and synaptic processes indicated by reduced clathrin vesicle formation proteins.
- Decreased levels of enzymes involved in catecholamine and serotonin synthesis.
- Overexpression of histone deacetylases (HDACs) suggesting suppressed transcription and protein synthesis.
Conclusions:
- The balance between pro- and anti-apoptotic proteins, cytoskeletal dynamics, and neurotransmitter synthesis pathways dictates cell fate after nerve injury.
- The identified protein changes offer potential biomarkers for nerve injury detection.
- These findings suggest novel targets for neuroprotective therapies aimed at nerve repair and recovery.
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