Literature DB >> 16077181

Lysosomal membrane proteomics and biogenesis of lysosomes.

Richard D Bagshaw1, Don J Mahuran, John W Callahan.   

Abstract

This review focuses on events involved in the biogenesis of the lysosome. This organelle contains a diverse array of soluble, luminal proteins capable of digesting all the macromolecules in the cell. Altered function of lysosomes or its constituent enzymes has been implicated in a host of human pathologies, including storage diseases, cancer, and infectious and neurodegenerative diseases. Luminal enzymes are well-characterized, and aspects of how they are incorporated into lysosomes are known. However, little is known about the composition of the membrane surrounding the organelle or how the membrane is assembled. Our starting point to study lysosome biogenesis is to define the composition of the membrane by the use of proven methods for purification of lysosomes to near homogeneity and then to characterize membrane-associated and integral lysosomal membrane proteins. This has been achieved using advanced proteomics (electrophoretic or chromatographic separations of proteins followed by time-of-flight mass spectrometric identification of peptide sequences). To date, we have identified 55 proteins in the membrane-associated fraction and 215 proteins in the integral membrane. By applying these methods to mouse models of lysosome dysgenesis (such as BEIGE, Pale Ear, PEARL) that are related to human diseases such as Chediak-Higashi and Hermansky-Pudlak syndromes, it may be possible to define the membrane protein composition of lysosomes in each of these mutants and to determine how they differ from normal. Identifying proteins affected in the respective mutants may provide hints about how they are targeted to the lysosomal membrane and how failure to target them leads to disease; these features are pivotal to understanding lysosome biogenesis and have the potential to implicate lysosomes in a broad range of human pathologies.

Entities:  

Mesh:

Substances:

Year:  2005        PMID: 16077181     DOI: 10.1385/MN:32:1:027

Source DB:  PubMed          Journal:  Mol Neurobiol        ISSN: 0893-7648            Impact factor:   5.590


  89 in total

Review 1.  Localization and processing of CLN3, the protein associated to Batten disease: where is it and what does it do?

Authors:  D A Pearce
Journal:  J Neurosci Res       Date:  2000-01-01       Impact factor: 4.164

Review 2.  Genetic analyses of adaptin function from yeast to mammals.

Authors:  Markus Boehm; Juan S Bonifacino
Journal:  Gene       Date:  2002-03-20       Impact factor: 3.688

Review 3.  Quality control in the endoplasmic reticulum.

Authors:  Lars Ellgaard; Ari Helenius
Journal:  Nat Rev Mol Cell Biol       Date:  2003-03       Impact factor: 94.444

4.  Arf, Arl, Arp and Sar proteins: a family of GTP-binding proteins with a structural device for 'front-back' communication.

Authors:  Sebastiano Pasqualato; Louis Renault; Jacqueline Cherfils
Journal:  EMBO Rep       Date:  2002-11       Impact factor: 8.807

5.  A proteomic analysis of lysosomal integral membrane proteins reveals the diverse composition of the organelle.

Authors:  Richard D Bagshaw; Don J Mahuran; John W Callahan
Journal:  Mol Cell Proteomics       Date:  2004-12-02       Impact factor: 5.911

6.  Late infantile systemic lipidosis. Major monosialogangliosidosis. Delineation of two types.

Authors:  D M Derry; J S Fawcett; F Andermann; L S Wolfe
Journal:  Neurology       Date:  1968-04       Impact factor: 9.910

7.  The promoter of a lysosomal membrane transporter gene, CTNS, binds Sp-1, shares sequences with the promoter of an adjacent gene, CARKL, and causes cystinosis if mutated in a critical region.

Authors:  C Phornphutkul; Y Anikster; M Huizing; P Braun; C Brodie; J Y Chou; W A Gahl
Journal:  Am J Hum Genet       Date:  2001-08-14       Impact factor: 11.025

8.  The small GTPase Rab22 interacts with EEA1 and controls endosomal membrane trafficking.

Authors:  Maria Kauppi; Anne Simonsen; Bjørn Bremnes; Amandio Vieira; Judy Callaghan; Harald Stenmark; Vesa M Olkkonen
Journal:  J Cell Sci       Date:  2002-03-01       Impact factor: 5.285

9.  The formation of immunogenic major histocompatibility complex class II-peptide ligands in lysosomal compartments of dendritic cells is regulated by inflammatory stimuli.

Authors:  K Inaba; S Turley; T Iyoda; F Yamaide; S Shimoyama; C Reis e Sousa; R N Germain; I Mellman; R M Steinman
Journal:  J Exp Med       Date:  2000-03-20       Impact factor: 14.307

10.  Synaptotagmin VII restricts fusion pore expansion during lysosomal exocytosis.

Authors:  Jyoti K Jaiswal; Sabyasachi Chakrabarti; Norma W Andrews; Sanford M Simon
Journal:  PLoS Biol       Date:  2004-06-29       Impact factor: 8.029

View more
  13 in total

Review 1.  Pathophysiology of neuropathic lysosomal storage disorders.

Authors:  Cinzia Maria Bellettato; Maurizio Scarpa
Journal:  J Inherit Metab Dis       Date:  2010-04-29       Impact factor: 4.982

2.  The biological clock and the molecular basis of lysosomal storage diseases.

Authors:  Gianluigi Mazzoccoli; Tommaso Mazza; Manlio Vinciguerra; Stefano Castellana; Maurizio Scarpa
Journal:  JIMD Rep       Date:  2015-01-13

3.  Mannose 6 dephosphorylation of lysosomal proteins mediated by acid phosphatases Acp2 and Acp5.

Authors:  Georgia Makrypidi; Markus Damme; Sven Müller-Loennies; Maria Trusch; Bernhard Schmidt; Hartmut Schlüter; Joerg Heeren; Torben Lübke; Paul Saftig; Thomas Braulke
Journal:  Mol Cell Biol       Date:  2011-12-12       Impact factor: 4.272

4.  Lysosomal function in macromolecular homeostasis and bioenergetics in Parkinson's disease.

Authors:  Lonnie Schneider; Jianhua Zhang
Journal:  Mol Neurodegener       Date:  2010-04-13       Impact factor: 14.195

5.  Lysosomal disruption preferentially targets acute myeloid leukemia cells and progenitors.

Authors:  Mahadeo A Sukhai; Swayam Prabha; Rose Hurren; Angela C Rutledge; Anna Y Lee; Shrivani Sriskanthadevan; Hong Sun; Xiaoming Wang; Marko Skrtic; Ayesh Seneviratne; Maria Cusimano; Bozhena Jhas; Marcela Gronda; Neil MacLean; Eunice E Cho; Paul A Spagnuolo; Sumaiya Sharmeen; Marinella Gebbia; Malene Urbanus; Kolja Eppert; Dilan Dissanayake; Alexia Jonet; Alexandra Dassonville-Klimpt; Xiaoming Li; Alessandro Datti; Pamela S Ohashi; Jeff Wrana; Ian Rogers; Pascal Sonnet; William Y Ellis; Seth J Corey; Connie Eaves; Mark D Minden; Jean C Y Wang; John E Dick; Corey Nislow; Guri Giaever; Aaron D Schimmer
Journal:  J Clin Invest       Date:  2012-12-03       Impact factor: 14.808

6.  Spatial and temporal expression of lysosomal acid phosphatase 2 (ACP2) reveals dynamic patterning of the mouse cerebellar cortex.

Authors:  Karen Bailey; Maryam Rahimi Balaei; Mehdi Mehdizadeh; Hassan Marzban
Journal:  Cerebellum       Date:  2013-12       Impact factor: 3.847

7.  Surface functionalization dependent subcellular localization of Superparamagnetic nanoparticle in plasma membrane and endosome.

Authors:  Deepak B Thimiri Govinda Raj; Niamat Ali Khan
Journal:  Nano Converg       Date:  2018-02-15

8.  Loss of CLN7 results in depletion of soluble lysosomal proteins and impaired mTOR reactivation.

Authors:  Tatyana Danyukova; Khandsuren Ariunbat; Melanie Thelen; Nahal Brocke-Ahmadinejad; Sara E Mole; Stephan Storch
Journal:  Hum Mol Genet       Date:  2018-05-15       Impact factor: 6.150

Review 9.  Signals from the lysosome: a control centre for cellular clearance and energy metabolism.

Authors:  Carmine Settembre; Alessandro Fraldi; Diego L Medina; Andrea Ballabio
Journal:  Nat Rev Mol Cell Biol       Date:  2013-05       Impact factor: 94.444

10.  Identification of novel pathogenic copy number aberrations in multiple myeloma: the Malaysian context.

Authors:  Pau Ni Ivyna Bong; Ching Ching Ng; Kah Yuen Lam; Puteri Jamilatul Noor Megat Baharuddin; Kian Meng Chang; Zubaidah Zakaria
Journal:  Mol Cytogenet       Date:  2014-04-01       Impact factor: 2.009

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.