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Meyer zu Reckendorf, S.

Publications and source records attributed to Meyer zu Reckendorf, S..

2 recordsLinked to original sources

CASPR facilitates clearance of degenerating axons by Schwann cells and macrophages after peripheral nerve injury

In the peripheral nervous system (PNS) debris of injured axons is efficiently removed by Schwann cells (SCs) and macrophages (Mphs) - a process which is vital for nerve regeneration. Molecular so-called "eat-me" signals, mediating axon-SC/axon-Mph crosstalk and debris clearance after injury are just at the beginning of being identified. Herein, we describe the axonal node protein contactin-associated protein (CASPR) as a potential novel signal for axonal debris removal in peripheral nerve injury. In healthy nerves, CASPR is restricted to Ranviers nodes interacting with glia-derived partner proteins to assure saltatory action potential propagation. In injured murine and human nerves, we describe upregulation and re-localization of CASPR protein along the axons. Enhanced CASPR presence after injury appears to involve local axonal translation rather than transcriptional regulation. Of note, CASPR overexpression in murine central and peripheral neurons in vitro has a growth inhibitory effect. More importantly, axonal debris deriving from injured nerves - and hence having increased CASPR content - are phagocytosed more efficiently than debris of healthy nerves. Interfering with CASPR by function-blocking antibodies strongly reduces axonal debris uptake. This finding demonstrates a functional relevance of CASPR as a potential "eat me" signal in this process.

neuroscience↗

Nerve injury converts Schwann cells in a persisting repair state in human neuroma tissue

Peripheral nerve injury (PNI) induces neuroma formation at the severed nerve stump resulting in impaired nerve regeneration and functional recovery in patients. So far, molecular mechanisms and cell types present in the neuroma impeding on regeneration have only sparsely been analyzed. Herein we compare resected human neuroma tissue with intact donor nerves from the same patient. Neuroma from several post-injury timepoints (1-13 months) were included, thereby allowing for temporal correlation with molecular and cellular processes. We observed reduced axonal area and percentage of myelin producing Schwann cells (SCs) compared to intact nerves. However, total SOX10 positive SC numbers were comparable. Notably, markers for SCs in a repair mode including c-JUN and SHH (sonic hedgehog) and SC proliferation (pH3) were upregulated in neuroma, suggesting presence of SCs in repair rather than differentiated status. In agreement, in neuroma, pro-regenerative markers such as phosphorylated i.e. activated CREB (pCREB), ATF3, GAP43 and SCG10 were upregulated. Neuroma tissue was infiltrated by several types of macrophages. Finally, when taken in culture, neuroma SCs were indistinguishable from controls SCs with regard to proliferation and morphology. However, cultured neuroma SCs retained a different molecular signature from control SCs including increased inflammation and reduced gene expression for differentiation markers such as myelin genes. In summary, human neuroma tissue consists of SCs with a repair status and is infiltrated strongly by several types of macrophages.

neuroscience↗