Protein signatures of oxidative stress response in a patient specific cell line model for autism

被引:19
作者
Chiocchetti, Andreas G. [1 ,2 ,3 ]
Haslinger, Denise [1 ,2 ,3 ]
Boesch, Maximilian [2 ]
Karl, Thomas [2 ]
Wiemann, Stefan [1 ]
Freitag, Christine M. [3 ]
Poustka, Fritz [3 ]
Scheibe, Burghardt [2 ]
Bauer, Johann W. [4 ]
Hintner, Helmut [4 ]
Breitenbach, Michael [2 ]
Kellermann, Josef [5 ]
Lottspeich, Friedrich [5 ]
Klauck, Sabine M. [1 ]
Breitenbach-Koller, Lore [2 ]
机构
[1] Deutsch Krebsforschungszentrum DKFZ, Div Mol Genome Anal, D-69120 Heidelberg, Germany
[2] Salzburg Univ, Dept Cell Biol, A-5020 Salzburg, Austria
[3] Goethe Univ Frankfurt, Dept Child & Adolescent Psychiat Psychosomat & Ps, D-60528 Frankfurt, Germany
[4] Gen Hosp Salzburg PMU, Dept Dermatol, A-5020 Salzburg, Austria
[5] Max Planck Inst Biochem, D-82152 Martinsried, Germany
关键词
Autism spectrum disorder; RPL10; Translation; Protein expression; Redox-sensitive protein signature; Oxidative stress response; Energy metabolism; COPY-NUMBER VARIATION; SPECTRUM DISORDERS; MITOCHONDRIAL DYSFUNCTION; SACCHAROMYCES-CEREVISIAE; CYTOSCAPE PLUGIN; GENE RPL10; EXPRESSION; NETWORK; MUTATION; DAMAGE;
D O I
10.1186/2040-2392-5-10
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Background: Known genetic variants can account for 10% to 20% of all cases with autism spectrum disorders (ASD). Overlapping cellular pathomechanisms common to neurons of the central nervous system (CNS) and in tissues of peripheral organs, such as immune dysregulation, oxidative stress and dysfunctions in mitochondrial and protein synthesis metabolism, were suggested to support the wide spectrum of ASD on unifying disease phenotype. Here, we studied in patient-derived lymphoblastoid cell lines (LCLs) how an ASD-specific mutation in ribosomal protein RPL10 (RPL10[H213Q]) generates a distinct protein signature. We compared the RPL10[ H213Q] expression pattern to expression patterns derived from unrelated ASD patients without RPL10[ H213Q] mutation. In addition, a yeast rpl10 deficiency model served in a proof-of-principle study to test for alterations in protein patterns in response to oxidative stress. Methods: Protein extracts of LCLs from patients, relatives and controls, as well as diploid yeast cells hemizygous for rpl10, were subjected to two-dimensional gel electrophoresis and differentially regulated spots were identified by mass spectrometry. Subsequently, Gene Ontology database (GO)-term enrichment and network analysis was performed to map the identified proteins into cellular pathways. Results: The protein signature generated by RPL10[H213Q] is a functionally related subset of the ASD-specific protein signature, sharing redox-sensitive elements in energy-, protein- and redox- metabolism. In yeast, rpl10 deficiency generates a specific protein signature, harboring components of pathways identified in both the RPL10 [ H213Q] subjects' and the ASD patients' set. Importantly, the rpl10 deficiency signature is a subset of the signature resulting from response of wild-type yeast to oxidative stress. Conclusions: Redox-sensitive protein signatures mapping into cellular pathways with pathophysiology in ASD have been identified in both LCLs carrying the ASD-specific mutation RPL10[H213Q] and LCLs from ASD patients without this mutation. At pathway levels, this redox- sensitive protein signature has also been identified in a yeast rpl10 deficiency and an oxidative stress model. These observations point to a common molecular pathomechanism in ASD, characterized in our study by dysregulation of redox balance. Importantly, this can be triggered by the known ASD-RPL10[H213Q] mutation or by yet unknown mutations of the ASD cohort that act upstream of RPL10 in differential expression of redox-sensitive proteins.
引用
收藏
页数:15
相关论文
共 73 条
[1]   Advances in autism genetics: on the threshold of a new neurobiology [J].
Abrahams, Brett S. ;
Geschwind, Daniel H. .
NATURE REVIEWS GENETICS, 2008, 9 (05) :341-355
[2]   Individual common variants exert weak effects on the risk for autism spectrum disorderspi [J].
Anney, Richard ;
Klei, Lambertus ;
Pinto, Dalila ;
Almeida, Joana ;
Bacchelli, Elena ;
Baird, Gillian ;
Bolshakova, Nadia ;
Boelte, Sven ;
Bolton, Patrick F. ;
Bourgeron, Thomas ;
Brennan, Sean ;
Brian, Jessica ;
Casey, Jillian ;
Conroy, Judith ;
Correia, Catarina ;
Corsello, Christina ;
Crawford, Emily L. ;
de Jonge, Maretha ;
Delorme, Richard ;
Duketis, Eftichia ;
Duque, Frederico ;
Estes, Annette ;
Farrar, Penny ;
Fernandez, Bridget A. ;
Folstein, Susan E. ;
Fombonne, Eric ;
Gilbert, John ;
Gillberg, Christopher ;
Glessner, Joseph T. ;
Green, Andrew ;
Green, Jonathan ;
Guter, Stephen J. ;
Heron, Elizabeth A. ;
Holt, Richard ;
Howe, Jennifer L. ;
Hughes, Gillian ;
Hus, Vanessa ;
Igliozzi, Roberta ;
Jacob, Suma ;
Kenny, Graham P. ;
Kim, Cecilia ;
Kolevzon, Alexander ;
Kustanovich, Vlad ;
Lajonchere, Clara M. ;
Lamb, Janine A. ;
Law-Smith, Miriam ;
Leboyer, Marion ;
Le Couteur, Ann ;
Leventhal, Bennett L. ;
Liu, Xiao-Qing .
HUMAN MOLECULAR GENETICS, 2012, 21 (21) :4781-4792
[3]   Gene-ontology enrichment analysis in two independent family-based samples highlights biologically plausible processes for autism spectrum disorders [J].
Anney, Richard J. L. ;
Kenny, Elaine M. ;
O'Dushlaine, Colm ;
Yaspan, Brian L. ;
Parkhomenka, Elena ;
Buxbaum, Joseph D. ;
Sutcliffe, James ;
Gill, Michael ;
Gallagher, Louise .
EUROPEAN JOURNAL OF HUMAN GENETICS, 2011, 19 (10) :1082-1089
[4]  
[Anonymous], DAT ANN VIS INT DISC
[5]  
[Anonymous], 1992, International classification of mental and behavioural disorders: Clinical description and diagnostic guidelines (ICD-10)
[6]   Immune activation of peripheral blood and mucosal CD3+ lymphocyte cytokine profiles in children with autism and gastrointestinal symptoms [J].
Ashwood, P ;
Wakefield, AJ .
JOURNAL OF NEUROIMMUNOLOGY, 2006, 173 (1-2) :126-134
[7]  
Aung-Htut MT, 2012, SUBCELL BIOCHEM, V57, P13, DOI 10.1007/978-94-007-2561-4_2
[8]  
Baierlein C, 2013, MOL CELL BIOL, V5, P271
[9]   SFARI Gene: an evolving database for the autism research community [J].
Banerjee-Basu, Sharmila ;
Packer, Alan .
DISEASE MODELS & MECHANISMS, 2010, 3 (3-4) :133-135
[10]   Network medicine: a network-based approach to human disease [J].
Barabasi, Albert-Laszlo ;
Gulbahce, Natali ;
Loscalzo, Joseph .
NATURE REVIEWS GENETICS, 2011, 12 (01) :56-68