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Mechanisms of disease in frontotemporal lobar degeneration: gain of function versus loss of function effects

期刊

ACTA NEUROPATHOLOGICA
卷 124, 期 3, 页码 373-382

出版社

SPRINGER
DOI: 10.1007/s00401-012-1030-4

关键词

Frontotemporal lobar degeneration; Motor neurone disease; Microtubule associated protein; Tau; TDP-43; FUS; Gain of function; Loss of function

资金

  1. Springer
  2. NHMRC [630434]
  3. National Institute on Aging [P30 AG13854]
  4. National Institute on Aging of the National Institutes of Health [P50 AG05681, P01 AG03991]
  5. Hope Center for Neurological Disorders
  6. Charles F. and Joanne Knight Alzheimer's Disease Research Centre
  7. Swiss National Science Foundation [31003A-132864, CRSII3-136222]
  8. German Federal Ministry of Education and Research [01GI1005B]
  9. Hans and Ilse Breuer Foundation
  10. Canadian Institutes of Health Research [179009, 74580]
  11. Pacific Alzheimer's Research Foundation Center [C06-01]
  12. Wellcome Trust
  13. Medical Research Council
  14. Alzheimers Research UK
  15. Alzheimers Society through the Brains for Dementia Research Initiative
  16. Swiss National Science Foundation (SNF) [CRSII3_136222] Funding Source: Swiss National Science Foundation (SNF)

向作者/读者索取更多资源

Frontotemporal lobar degeneration (FTLD) is clinically, pathologically and genetically heterogeneous. Three major proteins are implicated in its pathogenesis. About half of cases are characterized by depositions of the microtubule associated protein, tau (FTLD-tau). In most of the remaining cases, deposits of the transactive response (TAR) DNA-binding protein with Mw of 43 kDa, known as TDP-43 (FTLD-TDP), are seen. Lastly, about 5-10 % of cases are characterized by abnormal accumulations of a third protein, fused in sarcoma (FTLD-FUS). Depending on the protein concerned, the signature accumulations can take the form of inclusion bodies (neuronal cytoplasmic inclusions and neuronal intranuclear inclusions) or dystrophic neurites, in the cerebral cortex, hippocampus and subcortex. In some instances, glial cells are also affected by inclusion body formation. In motor neurone disease (MND), TDP-43 or FUS inclusions can present within motor neurons of the brain stem and spinal cord. This present paper attempts to critically examine the role of such proteins in the pathogenesis of FTLD and MND as to whether they might exert a direct pathogenetic effect (gain of function), or simply act as relatively innocent witnesses to a more fundamental loss of function effect. We conclude that although there is strong evidence for both gain and loss of function effects in respect of each of the proteins concerned, in reality, it is likely that each is a single face of either side of the coin, and that both will play separate, though complementary, roles in driving the damage which ultimately leads to the downfall of neurons and clinical expression of disease.

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