Abstract
<jats:p>Amyotrophic lateral sclerosis (ALS) is a terminal disease caused by motor neuron loss. Schwann cells, the myelinating cells of the peripheral nervous system, metabolically and structurally support neurons. ALS patients exhibit Schwann cell pathology, such as TDP-43 proteinopathy, therefore Schwann cell dysfunction may contribute to disease progression. Here, we have characterised myelinating Schwann cell pathology in a TDP-43Q331K (TDP-43) transgenic mouse model of ALS. We also crossed the floxxed TDP-43 mouse with a myelin protein zero (P0)-cre mouse to excise the transgene from Schwann cells alone (P0-cre/TDP-43) to assess rescue. Compared to wild-type (WT) littermates, 10 mo TDP-43 mice exhibited changes to myelin architecture, including loss of myelin binding proteins at the paranodes, decreased node of Ranvier length, and non-compact, degenerating myelin. In P0-cre/TDP-43 mice these myelin disruptions were rescued. However, this improved histology did not lead to a functional rescue, with both P0-cre/TDP-43 and TDP-43 mice exhibiting slowed sciatic nerve conduction and worsened motor behaviour. Further histological analyses revealed that Büngner Schwann cells, a subtype of Schwann cells triggered by neuronal injury, were activated in both TDP-43 and P0-cre/TDP-43 mice. Activation of Büngner Schwann cells can trigger damaging inflammation through the recruitment of macrophages, which can hinder motor and electrophysiological performance, potentially underpinning the lack of functional rescue in the P0-cre/TDP-43. We established that the rescue of Schwann cells indeed protects myelin in this ALS model, however understanding how Büngner Schwann cells exacerbate neuronal pathology is essential for developing effective therapeutics that can improve functional output.</jats:p>