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Biology subjects

Vallat, J.-M.

Publications and source records attributed to Vallat, J.-M..

3 recordsLinked to original sources

Peripheral Neuropathy in the Adreno-myelo-neuropathy Mouse Model

The Abcd1 knockout mouse mimics human adreno-myelo-neuropathy (AMN), thus contributes to a better understanding of disease mechanisms, which yet remain poorly identified. Only limited information is available about peripheral neuropathy (PN), although a notable component of AMN pathology besides myelopathy. To enrich our knowledge of PN, the current study reports the clinical, electromyographic and morphological aspects of peripheral neuropathy. We found that despite obvious electron microscopy anomalies in sciatic nerve axons, nerve conduction was nearly normal and did not seem to contribute significantly to the impaired motor performances of the Abcd1-/- mouse.

neuroscience↗

Caveolae and Bin1 form ring-shaped platforms for T-tubule initiation

Excitation-contraction coupling requires a highly specialized membrane structure, the triad, composed of a plasma membrane invagination, the T-tubule, surrounded by two sarcoplasmic reticulum terminal cisternae. Although the precise mechanisms governing T-tubule biogenesis and triad formation remain largely unknown, studies have shown that caveolae participate in T-tubule formation and mutations of several of their constituents induce muscle weakness and myopathies. Here, we demonstrate that, at the plasma membrane, caveolae composed of caveolin-3 and Bin1 assemble into ring-like structures from which emerge tubes enriched in the dihydropyridine receptor. Overexpression of Bin1 lead to the formation of both rings and tubes and we show that Bin1 forms scaffolds on which caveolae accumulate to form the initial T-tubule. Cav3 deficiency caused by either gene silencing or pathogenic mutations cause defective ring formation and perturbed Bin1-mediated tubulation that may explain defective T-tubule organization in mature muscles. Our results uncover new pathophysiological mechanisms that may prove relevant to myopathies caused by Cav3 or Bin1.

cell biology↗

Microglia-neuron communication at nodes of Ranvier depends on neuronal activity through potassium release and contributes to myelin repair.

Microglia, the resident immune cells of the central nervous system, are key players in healthy brain homeostasis and plasticity. In neurological diseases, such as Multiple Sclerosis, activated microglia either promote tissue damage or favor neuroprotection and myelin regeneration. The mechanisms for microglia-neuron communication remain largely unkown. Here, we identify nodes of Ranvier as a direct and stable site of interaction between microglia and axons, in both mouse and human tissue. Using dynamic imaging, we highlight the preferential interaction of microglial processes with nodes of Ranvier along myelinated fibers. We show that microglianode interaction is modulated by neuronal activity and associated potassium release, with THIK-1 ensuring their microglial read-out. Disrupting axonal K+ flux following demyelination polarizes microglia towards a pro-inflammatory phenotype and decreases remyelination rate. Taken together, these findings identify the node of Ranvier as a major site for microglia-neuron communication, participating in the pro-remyelinating effect of microglia after myelin injury.

neuroscience↗