Literature DB >> 21098024

A novel mechanism of lysosomal acid sphingomyelinase maturation: requirement for carboxyl-terminal proteolytic processing.

Russell W Jenkins1, Jolanta Idkowiak-Baldys, Fabio Simbari, Daniel Canals, Patrick Roddy, Clarke D Riner, Christopher J Clarke, Yusuf A Hannun.   

Abstract

Acid sphingomyelinase (aSMase) catalyzes the hydrolysis of sphingomyelin (SM) to form the bioactive lipid ceramide (Cer). Notably, aSMase exists in two forms: a zinc (Zn(2+))-independent lysosomal aSMase (L-SMase) and a Zn(2+)-dependent secreted aSMase (S-SMase) that arise from alternative trafficking of a single protein precursor. Despite extensive investigation into the maturation and trafficking of aSMase, the exact identity of mature L-SMase has remained unclear. Here, we describe a novel mechanism of aSMase maturation involving C-terminal proteolytic processing within, or in close proximity to, endolysosomes. Using two different C-terminal-tagged constructs of aSMase (V5, DsRed), we demonstrate that aSMase is processed from a 75-kDa, Zn(2+)-activated proenzyme to a mature 65 kDa, Zn(2+)-independent L-SMase. L-SMase is recognized by a polyclonal Ab to aSMase, but not by anti-V5 or anti-DsRed antibodies, suggesting that the C-terminal tag is lost during maturation. Furthermore, indirect immunofluorescence staining demonstrated that mature L-SMase colocalized with the lysosomal marker LAMP1, whereas V5-aSMase localized to the Golgi secretory pathway. Moreover, V5-aSMase possessed Zn(2+)-dependent activity suggesting it may represent the common protein precursor of S-SMase and L-SMase. Importantly, the 65-kDa L-SMase, but not V5-aSMase, was sensitive to the lysosomotropic inhibitor desipramine, co-fractionated with lysosomes, and migrated at the same M(r) as partially purified human aSMase. Finally, three aSMase mutants containing C-terminal Niemann-Pick mutations (R600H, R600P, ΔR608) exhibited defective proteolytic maturation. Taken together, these results demonstrate that mature L-SMase arises from C-terminal proteolytic processing of pro-aSMase and suggest that impaired C-terminal proteolysis may lead to severe defects in L-SMase function.

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Year:  2010        PMID: 21098024      PMCID: PMC3030379          DOI: 10.1074/jbc.M110.155234

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  43 in total

1.  Fluorescent proteins from nonbioluminescent Anthozoa species.

Authors:  M V Matz; A F Fradkov; Y A Labas; A P Savitsky; A G Zaraisky; M L Markelov; S A Lukyanov
Journal:  Nat Biotechnol       Date:  1999-10       Impact factor: 54.908

2.  Expression of recombinant human acid sphingomyelinase in insect Sf21 cells: purification, processing and enzymatic characterization.

Authors:  O Bartelsen; S Lansmann; M Nettersheim; T Lemm; K Ferlinz; K Sandhoff
Journal:  J Biotechnol       Date:  1998-07-30       Impact factor: 3.307

3.  The cellular trafficking and zinc dependence of secretory and lysosomal sphingomyelinase, two products of the acid sphingomyelinase gene.

Authors:  S L Schissel; G A Keesler; E H Schuchman; K J Williams; I Tabas
Journal:  J Biol Chem       Date:  1998-07-17       Impact factor: 5.157

4.  Acid sphingomyelinase: relation of 93lysine residue on the ratio of intracellular to secreted enzyme activity.

Authors:  Ikuko Takahashi; Tsutomu Takahashi; Tamaki Mikami; Masaki Komatsu; Toshihiro Ohura; Edward H Schuchman; Goro Takada
Journal:  Tohoku J Exp Med       Date:  2005-08       Impact factor: 1.848

5.  Caspase-dependent and -independent activation of acid sphingomyelinase signaling.

Authors:  Jimmy A Rotolo; Jianjun Zhang; Manjula Donepudi; Hyunmi Lee; Zvi Fuks; Richard Kolesnick
Journal:  J Biol Chem       Date:  2005-04-22       Impact factor: 5.157

6.  Characterization of human acid sphingomyelinase purified from the media of overexpressing Chinese hamster ovary cells.

Authors:  X He; S R Miranda; X Xiong; A Dagan; S Gatt; E H Schuchman
Journal:  Biochim Biophys Acta       Date:  1999-07-13

7.  Activation of acid sphingomyelinase by protein kinase Cdelta-mediated phosphorylation.

Authors:  Youssef H Zeidan; Yusuf A Hannun
Journal:  J Biol Chem       Date:  2007-02-15       Impact factor: 5.157

8.  Increased sphingomyelin content impairs HDL biogenesis and maturation in human Niemann-Pick disease type B.

Authors:  Ching Yin Lee; Alain Lesimple; Maxime Denis; Jérôme Vincent; Asmund Larsen; Orval Mamer; Larbi Krimbou; Jacques Genest; Michel Marcil
Journal:  J Lipid Res       Date:  2005-11-30       Impact factor: 5.922

Review 9.  The pathogenesis and treatment of acid sphingomyelinase-deficient Niemann-Pick disease.

Authors:  E H Schuchman
Journal:  J Inherit Metab Dis       Date:  2007-07-12       Impact factor: 4.982

10.  Carboxyl-terminal disulfide bond of acid sphingomyelinase is critical for its secretion and enzymatic function.

Authors:  Ching Yin Lee; Taku Tamura; Nadia Rabah; Dong-Young Donna Lee; Isabelle Ruel; Anouar Hafiane; Iulia Iatan; Dana Nyholt; Frédéric Laporte; Claude Lazure; Ikuo Wada; Larbi Krimbou; Jacques Genest
Journal:  Biochemistry       Date:  2007-12-01       Impact factor: 3.162

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  28 in total

Review 1.  Glycosphingolipids and cell death: one aim, many ways.

Authors:  Carmen Garcia-Ruiz; Albert Morales; José C Fernández-Checa
Journal:  Apoptosis       Date:  2015-05       Impact factor: 4.677

2.  Solving the secretory acid sphingomyelinase puzzle: Insights from lysosome-mediated parasite invasion and plasma membrane repair.

Authors:  Norma W Andrews
Journal:  Cell Microbiol       Date:  2019-06-10       Impact factor: 3.715

3.  Neutral sphingomyelinase 2 deficiency increases hyaluronan synthesis by up-regulation of Hyaluronan synthase 2 through decreased ceramide production and activation of Akt.

Authors:  Jingdong Qin; Evgeny Berdyshev; Christophe Poirer; Nancy B Schwartz; Glyn Dawson
Journal:  J Biol Chem       Date:  2012-03-01       Impact factor: 5.157

4.  Disruption of sphingolipid metabolism augments ceramide-induced autophagy in preeclampsia.

Authors:  Megan Melland-Smith; Leonardo Ermini; Sarah Chauvin; Hayley Craig-Barnes; Andrea Tagliaferro; Tullia Todros; Martin Post; Isabella Caniggia
Journal:  Autophagy       Date:  2015-04-03       Impact factor: 16.016

5.  Cathepsin B overexpression due to acid sphingomyelinase ablation promotes liver fibrosis in Niemann-Pick disease.

Authors:  Anna Moles; Núria Tarrats; José C Fernández-Checa; Montserrat Marí
Journal:  J Biol Chem       Date:  2011-11-18       Impact factor: 5.157

6.  Acid sphingomyelinase promotes mitochondrial dysfunction due to glutamate-induced regulated necrosis.

Authors:  Sergei A Novgorodov; Joshua R Voltin; Monika A Gooz; Li Li; John J Lemasters; Tatyana I Gudz
Journal:  J Lipid Res       Date:  2017-12-27       Impact factor: 5.922

7.  Effect of surfactant hydrophobicity on the pathway for unfolding of ubiquitin.

Authors:  Bryan F Shaw; Grégory F Schneider; George M Whitesides
Journal:  J Am Chem Soc       Date:  2012-10-31       Impact factor: 15.419

8.  ASMase is required for chronic alcohol induced hepatic endoplasmic reticulum stress and mitochondrial cholesterol loading.

Authors:  Anna Fernandez; Núria Matias; Raquel Fucho; Vicente Ribas; Claudia Von Montfort; Natalia Nuño; Anna Baulies; Laura Martinez; Núria Tarrats; Montserrat Mari; Anna Colell; Albert Morales; Laurent Dubuquoy; Philippe Mathurin; Ramón Bataller; Joan Caballeria; Montserrat Elena; Jesus Balsinde; Neil Kaplowitz; Carmen Garcia-Ruiz; Jose C Fernandez-Checa
Journal:  J Hepatol       Date:  2013-05-23       Impact factor: 25.083

9.  Evidence for coordination of lysosomal (ASMase) and plasma membrane (NSMase2) forms of sphingomyelinase from mutant mice.

Authors:  Jingdong Qin; Glyn Dawson
Journal:  FEBS Lett       Date:  2012-10-06       Impact factor: 4.124

10.  Keratin impact on PKCδ- and ASMase-mediated regulation of hepatocyte lipid raft size - implication for FasR-associated apoptosis.

Authors:  Stéphane Gilbert; Anne Loranger; M Bishr Omary; Normand Marceau
Journal:  J Cell Sci       Date:  2016-07-15       Impact factor: 5.285

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