Literature DB >> 8920967

Non-erythroid alpha-spectrin breakdown by calpain and interleukin 1 beta-converting-enzyme-like protease(s) in apoptotic cells: contributory roles of both protease families in neuronal apoptosis.

R Nath1, K J Raser, D Stafford, I Hajimohammadreza, A Posner, H Allen, R V Talanian, P Yuen, R B Gilbertsen, K K Wang.   

Abstract

The cytoskeletal protein non-erythroid alpha-spectrin is well documented as an endogenous calpain substrate, especially under pathophysiological conditions. In cell necrosis (e.g. maitotoxin-treated neuroblastoma SH-SY5Y cells), alpha-spectrin breakdown products (SBDPs) of 150 kDa and 145 kDa were produced by cellular calpains. In contrast, in neuronal cells undergoing apoptosis (cerebellar granule neurons subjected to low potassium and SH-SY5Y cells treated with staurosporine), an additional SBDP of 120 kDa was also observed. The formation of the 120 kDa SBDP was insensitive to calpain inhibitors but was completely blocked by an interleukin 1 beta-converting-enzyme (ICE)-like protease inhibitor, Z-Asp-CH2OC(O)-2,6-dichlorobenzene. Autolytic activation of both calpain and the ICE homologue CPP32 was also observed in apoptotic cells. alpha-Spectrin can also be cleaved in vitro by purified calpains to produce the SBDP doublet of 150/145 kDa and by ICE and ICE homologues [ICH-1, ICH-2 and CPP32(beta)] to produce a 150 kDa SBDP. In addition, CPP32 and ICE also produced a 120 kDa SBDP. Furthermore inhibition of either ICE-like protease(s) or calpain protects both granule neurons and SH-SY5Y cells against apoptosis. Our results suggest that both protease families participate in the expression of neuronal apoptosis.

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Year:  1996        PMID: 8920967      PMCID: PMC1217843          DOI: 10.1042/bj3190683

Source DB:  PubMed          Journal:  Biochem J        ISSN: 0264-6021            Impact factor:   3.857


  52 in total

Review 1.  Suppression of programmed neuronal death by sustained elevation of cytoplasmic calcium.

Authors:  J L Franklin; E M Johnson
Journal:  Trends Neurosci       Date:  1992-12       Impact factor: 13.837

2.  Protease inhibitors selectively block T cell receptor-triggered programmed cell death in a murine T cell hybridoma and activated peripheral T cells.

Authors:  A Sarin; D H Adams; P A Henkart
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Authors:  S R D'Mello; C Galli; T Ciotti; P Calissano
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Review 4.  Apoptosis.

Authors:  J J Cohen
Journal:  Immunol Today       Date:  1993-03

Review 5.  The spectrin super-family.

Authors:  D Dhermy
Journal:  Biol Cell       Date:  1991       Impact factor: 4.458

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Authors:  K Saito; J S Elce; J E Hamos; R A Nixon
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7.  Spatial resolution of fodrin proteolysis in postischemic brain.

Authors:  T C Saido; M Yokota; S Nagao; I Yamaura; E Tani; T Tsuchiya; K Suzuki; S Kawashima
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Authors:  M Miura; H Zhu; R Rotello; E A Hartwieg; J Yuan
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Authors:  M Dragunow; R L Faull; P Lawlor; E J Beilharz; K Singleton; E B Walker; E Mee
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10.  Nerve growth factor withdrawal-induced cell death in neuronal PC12 cells resembles that in sympathetic neurons.

Authors:  P W Mesner; T R Winters; S H Green
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