首页> 外文学位 >Glial cell matrix metalloproteinase-2 generates a growth permissive nerve substrate during peripheral nerve Wallerian degeneration.
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Glial cell matrix metalloproteinase-2 generates a growth permissive nerve substrate during peripheral nerve Wallerian degeneration.

机译:胶质细胞基质金属蛋白酶2产生周围神经Wallerian变性期间的生长许可神经基质。

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摘要

Dorsal root ganglion (DRG) neurons can be cultured on cryostat tissue sections of sciatic nerve and DRG neurite outgrowth measured. In this model growing neurites travel along the Schwann cell basal lamina as do regenerating neurites in vivo. This technique, cryoculture, provided a method to explore the activity of nerve extracellular matrix (ECM) in neurite outgrowth. Matrix metalloproteinases (MMPs) have been implicated in neurite extension into matrix gels but interactions with nerve ECM have not been previously examined. DRG neurons grew longer neurites on uninjured sciatic nerve sections treated with either matrix-metalloproteinase-2 (MMP-2), matrix metalloproteinase-9 (MMP-9), or chondroitinase ABC, a bacterial enzyme that degrades chondroitin sulfate proteoglycan (CSPG). The effect of chondroitinase ABC mimicked that of MMP-2 and neurite outgrowth o n sections treated with MMP-2 and chondroitinase was not additive. Therefore, MMP-2 may cleave CSPG, which co-localizes with laminin in the basal lamina of peripheral nerve. Other matrix degrading enzymes including MMP-3 and bacterial hyaluronidase could not increase the neurite-promoting activity of nerve ECM. Accelerated neurite growth following enzyme treatment occurred along the basal lamina as observed by using deconvolution microscopy and double label immunofluorescence of laminin in basal lamina and GAP43 in neurites. Accelerated growth was also laminin-dependent as growth-blocking laminin antibodies totally prevent accelerated growth following enzyme treatment. To directly ascertain if MMP-2 facilitates nerve regeneration mice genetically deficient in MMP-2 were used as a source of nerve substrate and neurons for cryoculture. It is known that injured nerve that has undergone Wallerian degeneration in vivo also supports accelerated laminin-dependent neurite outgrowth in cryoculture. Therefore, sciatic nerve genetically deficient in MMP-2 was degenerated in vivo and used as a substrate for cryoculture. Degenerated, MMP-2-deficient nerve did not support increased neurite outgrowth as compared to wild-type degenerated nerve. Furthermore, treatment of degenerated, MMP-2-deficient nerve with exogenous MMP-2 restored neurite outgrowth to the length observed with degenerated, wildtype nerve. Neurons genetically deficient in MMP-2 and grown on untreated nerve sections were not shorter than wild type neurons grown on untreated sections. These observations demonstrate that during Wallerian degeneration MMP-2 generates a nerve substrate that supports accelerated neurite outgrowth.
机译:可以在坐骨神经的低温恒温器组织切片上培养背根神经节(DRG)神经元,并测量DRG神经突的长出。在该模型中,生长的神经突沿着雪旺氏细胞基底层行进,体内再生的神经突也是如此。冷冻培养技术为探索神经突增生中神经细胞外基质(ECM)的活性提供了一种方法。基质金属蛋白酶(MMPs)与神经突延伸进入基质凝胶有关,但是与神经ECM的相互作用以前没有被检查过。用基质金属蛋白酶2(MMP-2),基质金属蛋白酶9(MMP-9)或软骨素酶ABC(一种降解硫酸软骨素蛋白多糖(CSPG)的细菌酶)处理后,DRG神经元在未损伤的坐骨神经节上长出了更长的神经突。软骨素酶ABC的效果模仿了MMP-2的效果,而用MMP-2和软骨素酶处理的部分神经突生长没有累加性。因此,MMP-2可能裂解CSPG,CSPG与层粘连蛋白共定位在周围神经的基底层中。其他基质降解酶包括MMP-3和细菌透明质酸酶不能增加神经ECM的神经突促进活性。通过使用反卷积显微镜和基底层中层粘连蛋白的双标记免疫荧光和神经元中的GAP43观察到,酶处理后沿基底层的神经突生长加快。加速生长也是层粘连蛋白依赖性的,因为生长阻断层粘连蛋白抗体完全阻止了酶处理后的加速生长。为了直接确定MMP-2是否促进神经再生,将遗传上缺乏MMP-2的小鼠用作神经基质和低温培养神经元的来源。众所周知,在体内经历了Wallerian变性 的受伤神经在冷冻培养中也支持层粘连蛋白依赖性神经突生长。因此,在遗传上缺乏MMP-2的坐骨神经在体内被降解,并被用作冷冻培养的底物。与野生型变性神经相比,变性,MMP-2缺陷神经不支持增加的神经突生长。此外,用外源性MMP-2处理退化的MMP-2缺陷神经可将神经突生长恢复至退化的野生型神经所观察到的长度。遗传上缺乏MMP-2且在未经处理的神经切片上生长的神经元不短于在未经处理的切片上生长的野生型神经元。这些观察结果表明,在Wallerian变性期间,MMP-2产生支持加速的神经突向外生长的神经基质。

著录项

  • 作者

    Ferguson, Toby Arlo.;

  • 作者单位

    University of Florida.;

  • 授予单位 University of Florida.;
  • 学科 Biology Neuroscience.
  • 学位 Ph.D.
  • 年度 2001
  • 页码 165 p.
  • 总页数 165
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 神经科学;
  • 关键词

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