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1.
J Cell Biol ; 210(1): 153-68, 2015 Jul 06.
Artigo em Inglês | MEDLINE | ID: mdl-26150392

RESUMO

Although Schwann cell myelin breakdown is the universal outcome of a remarkably wide range of conditions that cause disease or injury to peripheral nerves, the cellular and molecular mechanisms that make Schwann cell-mediated myelin digestion possible have not been established. We report that Schwann cells degrade myelin after injury by a novel form of selective autophagy, myelinophagy. Autophagy was up-regulated by myelinating Schwann cells after nerve injury, myelin debris was present in autophagosomes, and pharmacological and genetic inhibition of autophagy impaired myelin clearance. Myelinophagy was positively regulated by the Schwann cell JNK/c-Jun pathway, a central regulator of the Schwann cell reprogramming induced by nerve injury. We also present evidence that myelinophagy is defective in the injured central nervous system. These results reveal an important role for inductive autophagy during Wallerian degeneration, and point to potential mechanistic targets for accelerating myelin clearance and improving demyelinating disease.


Assuntos
Autofagia , Bainha de Mielina/patologia , Traumatismos dos Nervos Periféricos/patologia , Animais , Células Cultivadas , Proteínas Quinases JNK Ativadas por Mitógeno/metabolismo , Metabolismo dos Lipídeos , Camundongos Transgênicos , Bainha de Mielina/fisiologia , Traumatismos dos Nervos Periféricos/enzimologia , Proteínas Proto-Oncogênicas c-jun/metabolismo , Nervo Isquiático/patologia , Serina-Treonina Quinases TOR/metabolismo , Degeneração Walleriana/patologia
2.
Brain ; 137(Pt 11): 2922-37, 2014 Nov.
Artigo em Inglês | MEDLINE | ID: mdl-25216747

RESUMO

Charcot-Marie-Tooth disease type 1A is the most frequent inherited peripheral neuropathy. It is generally due to heterozygous inheritance of a partial chromosomal duplication resulting in over-expression of PMP22. A key feature of Charcot-Marie-Tooth disease type 1A is secondary death of axons. Prevention of axonal loss is therefore an important target of clinical intervention. We have previously identified a signalling mechanism that promotes axon survival and prevents neuron death in mechanically injured peripheral nerves. This work suggested that Schwann cells respond to injury by activating/enhancing trophic support for axons through a mechanism that depends on upregulation of the transcription factor c-Jun in Schwann cells, resulting in the sparing of axons that would otherwise die. As c-Jun orchestrates Schwann cell support for distressed neurons after mechanical injury, we have now asked: do Schwann cells also activate a c-Jun dependent neuron-supportive programme in inherited demyelinating disease? We tested this by using the C3 mouse model of Charcot-Marie-Tooth disease type 1A. In line with our previous findings in humans with Charcot-Marie-Tooth disease type 1A, we found that Schwann cell c-Jun was elevated in (uninjured) nerves of C3 mice. We determined the impact of this c-Jun activation by comparing C3 mice with double mutant mice, namely C3 mice in which c-Jun had been conditionally inactivated in Schwann cells (C3/Schwann cell-c-Jun(-/-) mice), using sensory-motor tests and electrophysiological measurements, and by counting axons in proximal and distal nerves. The results indicate that c-Jun elevation in the Schwann cells of C3 nerves serves to prevent loss of myelinated sensory axons, particularly in distal nerves, improve behavioural symptoms, and preserve F-wave persistence. This suggests that Schwann cells have two contrasting functions in Charcot-Marie-Tooth disease type 1A: on the one hand they are the genetic source of the disease, on the other, they respond to it by mounting a c-Jun-dependent response that significantly reduces its impact. Because axonal death is a central feature of much nerve pathology it will be important to establish whether an axon-supportive Schwann cell response also takes place in other conditions. Amplification of this axon-supportive mechanism constitutes a novel target for clinical intervention that might be useful in Charcot-Marie-Tooth disease type 1A and other neuropathies that involve axon loss.


Assuntos
Axônios/metabolismo , Doença de Charcot-Marie-Tooth/metabolismo , Doenças Desmielinizantes/metabolismo , Neurônios Motores/metabolismo , Proteínas Proto-Oncogênicas c-jun/metabolismo , Células de Schwann/metabolismo , Animais , Axônios/patologia , Comportamento Animal/fisiologia , Doença de Charcot-Marie-Tooth/fisiopatologia , Doenças Desmielinizantes/patologia , Modelos Animais de Doenças , Camundongos , Camundongos Endogâmicos C3H , Camundongos Knockout , Neurônios Motores/patologia
3.
Glia ; 59(5): 720-33, 2011 May.
Artigo em Inglês | MEDLINE | ID: mdl-21322058

RESUMO

Genetically modified mice have been a major source of information about the molecular control of Schwann-cell myelin formation, and the role of ß-neuregulin 1 (NRG1) in this process in vivo. In vitro, on the other hand, Schwann cells from rats have been used in most analyses of the signaling pathways involved in myelination. To correlate more effectively in vivo and in vitro data, we used purified cultures of mouse Schwann cells in addition to rat Schwann cells to examine two important myelin-related signals, cyclic adenosine monophosphate (cAMP), and NRG1 and to determine whether they interact to control myelin differentiation. We find that in mouse Schwann cells, neither cAMP nor NRG1, when used separately, induced markers of myelin differentiation. When combined, however, they induced strong protein expression of the myelin markers, Krox-20 and P(0) . Importantly, the level of cAMP signaling was crucial in switching NRG1 from a proliferative signal to a myelin differentiation signal. Also in cultured rat Schwann cells, NRG1 promoted cAMP-induced Krox-20 and P(0) expression. Finally, we found that cAMP/NRG1-induced Schwann-cell differentiation required the activity of the cAMP response element binding family of transcription factors in both mouse and rat cells. These observations reconcile observations in vivo and on neuron-Schwann-cell cultures with studies on purified Schwann cells. They demonstrate unambiguously the promyelin effects of NRG1 in purified cells, and they show that the cAMP pathway determines whether NRG1 drives proliferation or induces myelin differentiation.


Assuntos
AMP Cíclico/metabolismo , Bainha de Mielina/metabolismo , Neuregulina-1/metabolismo , Células de Schwann/metabolismo , Análise de Variância , Animais , Western Blotting , Células Cultivadas , AMP Cíclico/farmacologia , Imuno-Histoquímica , Hibridização In Situ , Camundongos , Proteína P0 da Mielina/metabolismo , Bainha de Mielina/efeitos dos fármacos , Neuregulina-1/farmacologia , Ratos , Ratos Sprague-Dawley , Reação em Cadeia da Polimerase Via Transcriptase Reversa , Células de Schwann/citologia , Células de Schwann/efeitos dos fármacos , Nervo Isquiático/citologia , Nervo Isquiático/efeitos dos fármacos , Nervo Isquiático/metabolismo , Transdução de Sinais/efeitos dos fármacos , Transdução de Sinais/fisiologia
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