Repeat-associated non-ATG (RAN) translation in neurological disease

被引:116
作者
Cleary, John D.
Ranum, Laura P. W.
机构
[1] Univ Florida, Coll Med, Genet Inst, Dept Mol Genet & Microbiol,Ctr NeuroGenet, Gainesville, FL 32610 USA
[2] Univ Florida, Coll Med, Genet Inst, Dept Neurol,Ctr NeuroGenet, Gainesville, FL 32610 USA
基金
美国国家卫生研究院;
关键词
AMYOTROPHIC-LATERAL-SCLEROSIS; FRONTOTEMPORAL LOBAR DEGENERATION; TREMOR/ATAXIA SYNDROME FXTAS; FRAGILE-X-SYNDROME; MYOTONIC-DYSTROPHY; HEXANUCLEOTIDE REPEAT; HUNTINGTONS-DISEASE; NUCLEOTIDE RESOLUTION; CTG REPEATS; IN-VIVO;
D O I
10.1093/hmg/ddt371
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
070307 [化学生物学]; 071010 [生物化学与分子生物学];
摘要
Well-established rules of translational initiation have been used as a cornerstone in molecular biology to understand gene expression and to frame fundamental questions on what proteins a cell synthesizes, how proteins work and to predict the consequences of mutations. For a group of neurological diseases caused by the abnormal expansion of short segments of DNA (e.g. CAGCTG repeats), mutations within or outside of predicted coding and non-coding regions are thought to cause disease by protein gain- or loss-of-function or RNA gain-of-function mechanisms. In contrast to these predictions, the recent discovery of repeat-associated non-ATG (RAN) translation showed expansion mutations can express homopolymeric expansion proteins in all three reading frames without an AUG start codon. This unanticipated, non-canonical type of protein translation is length-and hairpin-dependent, takes place without frameshifting or RNA editing and occurs across a variety of repeat motifs. To date, RAN proteins have been reported in spinocerebellar ataxia type 8 (SCA8), myotonic dystrophy type 1 (DM1), fragile X tremor ataxia syndrome (FXTAS) and C9ORF72 amyotrophic lateral sclerosis/frontotemporal dementia (ALS/FTD). In this article, we review what is currently known about RAN translation and recent progress toward understanding its contribution to disease.
引用
收藏
页码:R45 / R51
页数:7
相关论文
共 58 条
[1]
p62 positive, TDP-43 negative, neuronal cytoplasmic and intranuclear inclusions in the cerebellum and hippocampus define the pathology of C9orf72-linked FTLD and MND/ALS [J].
Al-Sarraj, Safa ;
King, Andrew ;
Troakes, Claire ;
Smith, Bradley ;
Maekawa, Satomi ;
Bodi, Istvan ;
Rogelj, Boris ;
Al-Chalabi, Ammar ;
Hortobagyi, Tibor ;
Shaw, Christopher E. .
ACTA NEUROPATHOLOGICA, 2011, 122 (06) :691-702
[2]
Almeida S., 2013, Acta Neuropathol
[3]
Unconventional Translation of C9ORF72 GGGGCC Expansion Generates Insoluble Polypeptides Specific to c9FTD/ALS [J].
Ash, Peter E. A. ;
Bieniek, Kevin F. ;
Gendron, Tania F. ;
Caulfield, Thomas ;
Lin, Wen-Lang ;
DeJesus-Hernandez, Mariely ;
van Blitterswijk, Marka M. ;
Jansen-West, Karen ;
Paul, Joseph W., III ;
Rademakers, Rosa ;
Boylan, Kevin B. ;
Dickson, Dennis W. ;
Petrucelli, Leonard .
NEURON, 2013, 77 (04) :639-646
[4]
Partners in crime: bidirectional transcription in unstable microsatellite disease [J].
Batra, Ranjan ;
Charizanis, Konstantinos ;
Swanson, Maurice S. .
HUMAN MOLECULAR GENETICS, 2010, 19 :R77-R82
[5]
Thermodynamic stability of RNA structures formed by CNG trinucleotide repeats. Implication for prediction of RNA structure [J].
Broda, M ;
Kierzek, E ;
Gdaniec, Z ;
Kulinski, T ;
Kierzek, R .
BIOCHEMISTRY, 2005, 44 (32) :10873-10882
[6]
MOLECULAR-BASIS OF MYOTONIC-DYSTROPHY - EXPANSION OF A TRINUCLEOTIDE (CTG) REPEAT AT THE 3' END OF A TRANSCRIPT ENCODING A PROTEIN-KINASE FAMILY MEMBER [J].
BROOK, JD ;
MCCURRACH, ME ;
HARLEY, HG ;
BUCKLER, AJ ;
CHURCH, D ;
ABURATANI, H ;
HUNTER, K ;
STANTON, VP ;
THIRION, JP ;
HUDSON, T ;
SOHN, R ;
ZEMELMAN, B ;
SNELL, RG ;
RUNDLE, SA ;
CROW, S ;
DAVIES, J ;
SHELBOURNE, P ;
BUXTON, J ;
JONES, C ;
JUVONEN, V ;
JOHNSON, K ;
HARPER, PS ;
SHAW, DJ ;
HOUSMAN, DE .
CELL, 1992, 68 (04) :799-808
[7]
Muscleblind-like 2-Mediated Alternative Splicing in the Developing Brain and Dysregulation in Myotonic Dystrophy [J].
Charizanis, Konstantinos ;
Lee, Kuang-Yung ;
Batra, Ranjan ;
Goodwin, Marianne ;
Zhang, Chaolin ;
Yuan, Yuan ;
Shiue, Lily ;
Cline, Melissa ;
Scotti, Marina M. ;
Xia, Guangbin ;
Kumar, Ashok ;
Ashizawa, Tetsuo ;
Clark, H. Brent ;
Kimura, Takashi ;
Takahashi, Masanori P. ;
Fujimura, Harutoshi ;
Jinnai, Kenji ;
Yoshikawa, Hiroo ;
Gomes-Pereira, Mario ;
Gourdon, Genevieve ;
Sakai, Noriaki ;
Nishino, Seiji ;
Foster, Thomas C. ;
Ares, Manuel, Jr. ;
Darnell, Robert B. ;
Swanson, Maurice S. .
NEURON, 2012, 75 (03) :437-450
[8]
Ribosome profiling reveals resemblance between long non-coding RNAs and 5′ leaders of coding RNAs [J].
Chew, Guo-Liang ;
Pauli, Andrea ;
Rinn, John L. ;
Regev, Aviv ;
Schier, Alexander F. ;
Valen, Eivind .
DEVELOPMENT, 2013, 140 (13) :2828-2834
[9]
Antisense transcription and heterochromatin at the DM1 CTG repeats are constrained by CTCF [J].
Cho, DH ;
Thienes, CP ;
Mahoney, SE ;
Analau, E ;
Filippova, GN ;
Tapscott, SJ .
MOLECULAR CELL, 2005, 20 (03) :483-489
[10]
RNA Gain-of-Function in Spinocerebellar Ataxia Type 8 [J].
Daughters, Randy S. ;
Tuttle, Daniel L. ;
Gao, Wangcai ;
Ikeda, Yoshio ;
Moseley, Melinda L. ;
Ebner, Timothy J. ;
Swanson, Maurice S. ;
Ranum, Laura P. W. .
PLOS GENETICS, 2009, 5 (08)