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Cathepsins in neuronal plasticity

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摘要 Proteases comprise a variety of enzymes defined by their ability to catalytically hydrolyze the peptide bonds of other proteins,resulting in protein lysis.Cathepsins,specifically,encompass a class of at least twenty proteases with potent endopeptidase activity.They are located subcellularly in lysosomes,organelles responsible for the cell’s degradative and autophagic processes,and are vital for normal lysosomal function.Although cathepsins are involved in a multitude of cell signaling activities,this chapter will focus on the role of cathepsins(with a special emphasis on Cathepsin B)in neuronal plasticity.We will broadly define what is known about regulation of cathepsins in the central nervous system and compare this with their dysregulation after injury or disease.Importantly,we will delineate what is currently known about the role of cathepsins in axon regeneration and plasticity after spinal cord injury.It is well established that normal cathepsin activity is integral to the function of lysosomes.Without normal lysosomal function,autophagy and other homeostatic cellular processes become dysregulated resulting in axon dystrophy.Furthermore,controlled activation of cathepsins at specialized neuronal structures such as axonal growth cones and dendritic spines have been positively implicated in their plasticity.This chapter will end with a perspective on the consequences of cathepsin dysregulation versus controlled,localized regulation to clarify how cathepsins can contribute to both neuronal plasticity and neurodegeneration.
出处 《Neural Regeneration Research》 SCIE CAS CSCD 2021年第1期26-35,共10页 中国神经再生研究(英文版)
基金 JS was funded by NINDS(NS25713) Brumagin-Nelson Fund Kaneko Family Fund the Hong Kong Spinal Cord Injury Fund.
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  • 1Tosikazu AMANO,Olivia KWAK,Anastasia MARSHAK.The matrix metalloproteinase stromelysin-3 cleaves laminin receptor at two distinct sites between the transmembrane domain and laminin binding sequence within the extracellular domain[J].Cell Research,2005,15(3):150-159. 被引量:5
  • 2Mehrpour M, Esclatine A, Beau I,Codogno P. Autophagy inhealth and disease. 1. Regulation and significance of autopha-gy: an overview. Am J Physiol Cell Physiol 2010; 298:C776-C785.
  • 3Mizushima N, Komatsu M. Autophagy: renovation of cellsand tissues. Cell 2011; 147:728-741.
  • 4Yang Z, Klionsky DJ. Mammalian autophagy: core molecu-lar machinery and signaling regulation. Curr Opin Cell Biol2010; 22:124-131.
  • 5Singh R,Cuervo AM. Autophagy in the cellular energetic bal-ance. Cell Metab 2011; 13:495-504.
  • 6Rubinsztein DC, Shpilka T, Elazar Z. Mechanisms of au-tophagosome biogenesis. Curr Biol 2012; 22:R29-R34.
  • 7Saflig P, Klumperman J. Lysosome biogenesis and lysosomalmembrane proteins: trafficking meets function. Nat Rev MolCell Biol 2009; 10:623-635.
  • 8Luzio JP, Pryor PR, Bright NA. Lysosomes: fusion and fimc-tion. Nat Rev Mol Cell Biol 2007; 8:622-632.
  • 9Lubke T, Lobel P,Sleat DE. Proteomics of the lysosome. Bio-chim Biophys Acta 2009; 1793:625-635.
  • 10Mindell JA. Lysosomal acidification mechanisms. Annu RevPhysiol 2012; 74:69-86.

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