PubMed Health⌕ Search

PubMed · 15180483

Programmed axon death, synaptic dysfunction and the ubiquitin proteasome system.

Abstract

Axons are essential, vulnerable and often irreplaceable so it is essential to understand how they are lost in neurodegenerative disease. Recent data link the mechanism of injury-induced Wallerian degeneration to that of axon death in CNS and PNS disease. The neuroprotective gene Wld(S) delays Wallerian degeneration, CNS axonal dystrophy, 'dying-back' pathology and to a lesser extent synapse loss, despite the different causes and morphologies of degeneration. These findings validate Wallerian degeneration as a model to understand and prevent mechanisms of axon and synapse loss in neurodegenerative disorders. The existence of a gene that alters Wallerian degeneration suggests it is a regulated program of axon death normally held back by axonal inhibitors, similar in principle to apoptosis. The Wld(S) protein and proteasome inhibitor experiments implicate the ubiquitin proteasome system (UPS) in Wallerian degeneration. However, the site of UPS involvement and the molecular events remain unclear because the UPS is highly compartmentalized in neurons, affecting complex and sometimes conflicting processes in nuclei, axons, growth cones and synapses. Proteasome inhibitors are blunt tools for studying such a complex system and they are also particularly toxic to axons and alter synapse function. In contrast, Wld(S) acts on a specific step, leaving mice healthy with normal development and behavior. This also makes it an attractive drug target. We need to understand which UPS step is blocked in which neuronal compartment, and to define the pathway in order to develop new strategies to block axon pathology.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

M P Coleman, R R Ribchester. 2004. Programmed axon death, synaptic dysfunction and the ubiquitin proteasome system.. https://doi.org/10.2174/1568007043337436

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Protocol for Detecting and Sequencing Chikungunya Virus from Field-Collected Mosquitoes.

Arboviral diseases represent a major public health challenge, especially in tropical regions where environmental conditions may favor the proliferation and spread of mosquito vectors. Thus, early and accurate detection of chikungunya virus (CHIKV) in mosquito populations can be a valuable tool for effective surveillance of circulating variants and for identifying new viral introductions. Given the challenges of detecting arboviruses in field-captured mosquitoes, we describe an integrated workflow for CHIKV molecular detection and whole-genome sequencing. This protocol includes mosquito homogenization using a bead-based mechanical disruptor, RNA extraction using TRIzol reagent with minor modifications, molecular screening using CHIKV-specific RT-qPCR, and whole-genome amplification followed by sequencing on Illumina platforms. Despite the protocol being optimized for individual mosquitoes, it results in high-quality RNA suitable for both entomological surveillance and genomic analysis. As this protocol allows recovery of complete CHIKV genomes from mosquito specimens, it can serve as a basis for genomic epidemiology studies, enabling monitoring of viral diversity and lineage dynamics, and facilitating early detection of emerging variants to support timely and targeted public health interventions in endemic and at-risk regions.

Animals↗

Genomic Profiling of Chromatin State Using CUT&Tag.

Alterations in chromatin state, mediated through histone modifications and the incorporation of histone variants, are fundamental to establishing transcriptional networks and cell identity. Recent advances in low-input epigenome profiling methods, such as CUT&Tag and CUT&RUN, have enabled the study of chromatin states from very limited starting materials. In this chapter, we describe procedures for generating CUT&Tag libraries to profile histone modifications and histone variants in early-developing zebrafish embryos.

Animals↗

Relaxin-2: Shaping the Proteomic Landscape of Skeletal Muscle Physiology, Glucose Trafficking, and Mitochondrial Function in Rat.

Relaxin-2 is a hormone with robust beneficial effects on the heart and blood vessels and potential as a therapy for cardiovascular (CV) disease. Considering the interorgan communication between skeletal muscle and heart, and the relation between muscle quality/composition and CV events, we hypothesize that relaxin-2 may regulate skeletal muscle physiology and metabolism. We aim to evaluate the impact of relaxin-2 on the proteome of skeletal muscle from healthy Sprague-Dawley rats. Animals were treated with 0.4 mg/kg/day of serelaxin (recombinant form of human relaxin-2) or vehicle (PBS) for 2 weeks employing subcutaneous osmotic minipumps. Skeletal muscle protein identification and quantification were performed by LC-MS/MS using a Data-Independent Acquisition (DIA)-Sequential Window Acquisition of All Theoretical Fragment Ion Spectra (SWATH) method. SWATH/MS quantitative analysis identified that relaxin-2 significantly decreased 95 proteins and significantly increased 32 proteins in rat skeletal muscle when compared to control rats. From these, 34 proteins were associated with muscle function, myogenesis, muscle differentiation and/or regeneration, 20 are mitochondrial proteins (six from the complexes of the electron transport chain), and 10 proteins participate in glucose metabolism. Qualitative data-dependent workflow analysis identified 35 proteins exclusive to the skeletal muscle of the relaxin-2-treated group: eight proteins related to processes of skeletal muscle function (size, ion homeostasis or organization of caveolae structures and cytoskeleton) and myogenesis, and two proteins involved in muscle differentiation. Our work highlighted for the first time the role of relaxin-2 in crucial processes of muscle physiology and energetic metabolism, which could influence several processes involved in myopathy and CV.

Animals↗