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The Pathobiology of TDP-43 C-Terminal Fragments in ALS and FTLD
Britt A Berning1, Adam K Walker1,2
1Neurodegeneration Pathobiology Laboratory, Queensland Brain Institute, University of Queensland, Brisbane, QLD, Australia.
Abstract:
During neurodegenerative disease, the multifunctional RNA-binding protein TDP-43 undergoes a vast array of post-translational modifications, including phosphorylation, acetylation, and cleavage. Many of these alterations may directly contribute to the pathogenesis of TDP-43 proteinopathies, which include most forms of amyotrophic lateral sclerosis (ALS) and approximately half of all frontotemporal dementia, pathologically identified as frontotemporal lobar degeneration (FTLD) with TDP-43 pathology. However, the relative contributions of the various TDP-43 post-translational modifications to disease remain unclear, and indeed some may be secondary epiphenomena rather than disease-causative. It is therefore critical to determine the involvement of each modification in disease processes to allow the design of targeted treatments. In particular, TDP-43 C-terminal fragments (CTFs) accumulate in the brains of people with ALS and FTLD and are therefore described as a neuropathological signature of these diseases. Remarkably, these TDP-43 CTFs are rarely observed in the spinal cord, even in ALS which involves dramatic degeneration of spinal motor neurons. Therefore, TDP-43 CTFs are not produced non-specifically in the course of all forms of TDP-43-related neurodegeneration, but rather variably arise due to additional factors influenced by regional heterogeneity in the central nervous system. In this review, we summarize how TDP-43 CTFs are generated and degraded by cells, and critique evidence from studies of TDP-43 CTF pathology in human disease tissues, as well as cell and animal models, to analyze the pathophysiological relevance of TDP-43 CTFs to ALS and FTLD. Numerous studies now indicate that, although TDP-43 CTFs are prevalent in ALS and FTLD brains, disease-related pathology is only variably reproduced in TDP-43 CTF cell culture models. Furthermore, TDP-43 CTF expression in both transgenic and viral-mediated in vivo models largely fails to induce motor or behavioral dysfunction reminiscent of human disease. We therefore conclude that although TDP-43 CTFs are a hallmark of TDP-43-related neurodegeneration in the brain, they are not a primary cause of ALS or FTLD.
Insights
TDP-43 C-terminal fragments (CTFs) are hallmarks of neurodegenerative diseases like ALS and FTLD but do not cause them. Research shows CTFs are not primary drivers of these conditions, despite their presence in brain tissue.
Area of Science:
- Neuroscience
- Molecular Biology
- Pathology
Background:
- TDP-43 proteinopathies, including ALS and FTLD, involve post-translational modifications of TDP-43.
- TDP-43 C-terminal fragments (CTFs) are neuropathological hallmarks in ALS and FTLD brains.
- The role of TDP-43 CTFs in disease pathogenesis is not fully understood, with regional variations observed.
Purpose of the Study:
- To review the generation and degradation of TDP-43 CTFs.
- To analyze the pathophysiological relevance of TDP-43 CTFs in ALS and FTLD.
- To determine if TDP-43 CTFs are a primary cause of neurodegeneration.
Main Methods:
- Review of existing literature on TDP-43 CTF pathology.
- Analysis of human disease tissues, cell models, and animal models.
- Critique of evidence regarding TDP-43 CTF generation, degradation, and disease induction.
Main Results:
- TDP-43 CTFs are prevalent in ALS and FTLD brains but variably reproduced in cell models.
- In vivo models with TDP-43 CTF expression largely fail to induce disease-specific motor or behavioral deficits.
- TDP-43 CTFs are not consistently found in the spinal cord, even in spinal motor neuron degeneration.
Conclusions:
- TDP-43 CTFs are a significant neuropathological marker in TDP-43 proteinopathies.
- Despite being a hallmark, TDP-43 CTFs are unlikely to be the primary causative agents of ALS and FTLD.
- Further research is needed to understand the precise role and contribution of TDP-43 modifications in neurodegeneration.
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