Search bioRxiv⌕ Search

Biology subjects

Dunlop, F.

Publications and source records attributed to Dunlop, F..

2 recordsLinked to original sources

Skeletal muscle TDP-43 aggregation drives progressive motor dysfunction and neurodegeneration with potential for functional recovery after clearance

Understanding the mechanisms driving TDP-43 pathology is essential for combating amyotrophic lateral sclerosis and other neurodegenerative diseases. To investigate the contribution of skeletal muscle to disease onset, progression, and recovery, we generated an inducible, muscle-specific TDP-43 mouse model. Cytoplasmic aggregation of exgogenous human TDP-43 protein in skeletal muscle led to muscle dysfunction, denervation, motor neuron loss, and dysregulation of mRNA markers related to myogenesis and neuromuscular junction stress at disease early-stage, along with muscle atrophy, neurodegeneration, and fatal motor decline at disease late-stage. Notably, this endogenous TDP-43 propagated from skeletal muscle to the spinal cord and brain, underscoring the vulnerability of the central nervous system to muscle-derived TDP-43 toxicity. Suppression of cytoplasmic TDP-43 in skeletal muscle improved survival and promoted substantial recovery of muscle dysfunction, motor deficits and neurodegeneration. These findings highlight the therapeutic potential of targeting skeletal muscle-derived TDP-43 toxicity as an approach to delaying neurodegenerative disease.

neuroscience↗

Proteomic analysis of the TDP-43-associated insoluble fraction from NEFH-TDP-43 mouse brain suggests sustained stress granule formation, CLUH granule recruitment and impaired mitochondrial metabolism

Cytoplasmic accumulation and aggregation of TDP-43 is a hallmark of [~]97% of ALS cases. Formation of TDP-43 insoluble aggregates is suggested to either directly or indirectly cause motor neuron loss and progressive neuromuscular degeneration, although how this occurs is not precisely understood. Cytoplasmic TDP-43 is observed in stress granules (SG). SGs are ribonucleoprotein (RNP) complexes formed during stress conditions, consisting of mRNAs and RNA-binding proteins (RNPs). Chronic TDP-43/SG formation may play a role in neuromuscular degeneration in ALS. The composition of in vivo TDP-43-asscociated SGs in ALS not known. This knowledge may provide insights into the molecular pathways impaired by TDP-43-associated SGs and suggest disease modifying mechanisms. The aim of this study was to isolate and analyse the proteome of the insoluble TDP-43-associated SG fraction from brain tissue of end-stage TDP-43{Delta}NLS mice. Proteomic analysis identified 134 enriched and 17 depleted proteins in the TDP-43{Delta}NLS mice, when compared to the control mice. Bioinformatics analyses of the impacted proteins from the SG preparation suggested that brain tissue from end-stage NEFH-TDP-43{Delta}NLS mice have sustained SG formation, CLUH granule recruitment and impaired mitochondrial metabolism. This is the first time that CLUH granule recruitment has been demonstrated in ALS and the known role of CLUH suggests that cell starvation is a potential mechanism of motor neuron loss that could be targeted in ALS. HighlightsO_LIWe present a detailed a protocol for the extraction of cross-linked TDP containing stress granules from brain tissue. C_LIO_LIWe present proteomics data from the insoluble fraction from brain tissue of an ALS mouse model. C_LIO_LIWe identify the mitochondrial mRNA transport protein CLUH and CLUH targets trapped in insoluble SG fraction of brain. C_LIO_LIReanalysing proteomics data from axonal soluble fraction supports a link between proteins trapped in the brain and depleted from the axons. C_LIO_LIPropose a model where metabolic mitochondrial enzymes trapped in the insoluble fraction from the brain via a CLUH dependent mechanism results in motor neuron death by starvation in ALS. C_LI

neuroscience↗