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Published on: November 17, 2023
Reduced Adrenomedullin Parallels Microtubule Dismantlement in Frontotemporal Lobar Degeneration
Hilda Ferrero1, Ignacio M Larrayoz2, Maite Solas1
1Department of Pharmacology and Toxicology, University of Navarra, Navarra Institute for Health Research (IdiSNA), Pamplona, Spain.
Abstract:
Tau is a microtubule-associated protein highly expressed in neurons with a chief role in microtubule dynamics and axonal maintenance. Adrenomedullin gene (ADM) codifies for various peptides that exert broad range of actions in the body. Previous works in our groups have shown that increased ADM products are positively correlated to microtubule disruption and tau pathology in Alzheimer's disease brains. In the present study, we explore the involvement of ADM in the neuropathology of frontotemporal lobar degeneration that presents with primary tauopathy (FTLD-tau). Proteins from frontal cortices of FTLD-tau patients and age- and sex-matched non-demented controls were analyzed with antibodies against different microtubule components, including adrenomedullin, and synaptic markers. Tau pathology in frontal cortex from FTLD patients was confirmed. Levels of total βIII-tubulin as well as acetylated and detyrosinated tubulins, two markers of stabilized and aged microtubules, were significantly reduced and directly correlated with PSD95 and proBDNF in FTLD-tau patients when compared to non-demented controls. In contrast, no change in actin cytoskeleton was found. Interestingly, changes in microtubule elements, indicators of disturbed axonal preservation, were accompanied by decreased levels of free adrenomedullin, although no association was found. Altogether, reduced levels of adrenomedullin might not be directly linked to the microtubule pathology of FTLD-tau, but based on previous works, it is suggested that downregulation of ADM might be an adaptive attempt of neurons to mitigate microtubule disruption.
Insights
Reduced adrenomedullin (ADM) levels may be an adaptive response in frontotemporal lobar degeneration with tauopathy (FTLD-tau). This study found decreased microtubule stability markers correlated with synaptic proteins in FTLD-tau patients.
Area of Science:
- Neuroscience
- Cell Biology
- Pathology
Background:
- Tau protein is crucial for microtubule dynamics and neuronal axonal maintenance.
- Adrenomedullin (ADM) peptides have diverse physiological roles.
- Prior research linked elevated ADM products to microtubule disruption and tau pathology in Alzheimer's disease.
Purpose of the Study:
- To investigate the role of ADM in the neuropathology of frontotemporal lobar degeneration with primary tauopathy (FTLD-tau).
- To analyze microtubule and synaptic markers in FTLD-tau patient brain tissue.
Main Methods:
- Proteomic analysis of frontal cortex samples from FTLD-tau patients and non-demented controls.
- Immunohistochemical analysis using antibodies against microtubule components (including adrenomedullin) and synaptic markers.
- Quantification of total, acetylated, and detyrosinated βIII-tubulin.
Main Results:
- FTLD-tau patients exhibited confirmed tau pathology in the frontal cortex.
- Significant reductions in total, acetylated, and detyrosinated βIII-tubulin were observed in FTLD-tau patients, correlating with PSD95 and proBDNF levels.
- No alterations were found in the actin cytoskeleton.
- Decreased levels of free adrenomedullin accompanied microtubule alterations, but no direct association was established.
Conclusions:
- Microtubule pathology, indicated by reduced βIII-tubulin forms, is present in FTLD-tau.
- The observed decrease in free adrenomedullin levels may not be directly causative of microtubule pathology in FTLD-tau.
- Downregulation of ADM might represent a neuroprotective mechanism to mitigate microtubule disruption in FTLD-tau.
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