The evolutionary scope and neurological disease linkage of yeast-prion-like proteins in humans

被引:28
作者
An, Lu [1 ]
Harrison, Paul M. [1 ]
机构
[1] McGill Univ, Dept Biol, Montreal, PQ, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
Prion; Amyloid; Yeast; Human; Disease; Neurodegenerative; Poly-Q expansion; Evolution; Glutamine; Asparagine; COMPOSITIONAL BIAS; GENETIC-VARIATION; DOMAINS; REGIONS; TDP-43; AGGREGATION; PREDICTION; DROSOPHILA; SEQUENCES; SOD1;
D O I
10.1186/s13062-016-0134-5
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Background: Prions are proteinaceous particles that propagate alternative protein conformations/states to further copies of the same proteins, and are transmitted from cell-to-cell, and organism-to-organism. Prions are usually made of the beta-sheet rich assemblies termed amyloid. The original prion protein PrP causes devastating neurodegenerative disorders in humans and other mammals. In the yeast Saccharomyces cerevisiae, many prion-forming proteins have been observed; a prominent feature of these proteins is an intrinsically disordered domain rich in glutamine (Q) and asparagine (N) residues. Several human proteins that are yeast-prion-like, in particular those with poly-glutamine (poly-Q) expansions, have been experimentally implicated in human neurodegenerative diseases. Results: Here, we have constructed a comprehensive list of human yeast-prion-like proteins that are linked to human neurological disease. Surprisingly, different methods to annotate yeast-prion-like proteins in humans have limited intersection. However, independent of annotation method, we find that human yeast-prion-like proteins as a group have a statistically significant genetic linkage to neurological disease, that is caused specifically by linkage to neurodegenerative diseases. This is despite: (i) no especially high expression of yeast-prion-like proteins in the central nervous system, or (ii) no general enrichment of intrinsically disordered proteins in neurological/neurodegenerative diseases. Cytoskeletal proteins are significantly overrepresented in the set of human yeast-prion-like neurological proteins. Whether involved in neurological pathomechanisms or not, yeast-prion-like proteins in humans have very limited conservation outside of Deuterostomia (< similar to 10 %) with only a handful having prion-like character in both human and S. cerevisiae. The only such protein with a disease linkage is PUB1/TIA1, which functions as a stress granule component. Thus, the yeast-prion-like character of proteins linked to neurodegenerative diseases has not been conserved over the deep evolutionary time since the last common ancestor of yeasts and humans. Conclusion: Our results provide a comprehensive picture of yeast-prion-like proteins in humans and contribute to the strategic basis for experimental investigation of the link between yeast-prion-like protein character and neurological disease.
引用
收藏
页数:16
相关论文
共 40 条
[1]   Emergence and evolution of yeast prion and prion-like proteins [J].
An, Lu ;
Fitzpatrick, David ;
Harrison, Paul M. .
BMC EVOLUTIONARY BIOLOGY, 2016, 16
[2]   Prion-like propagation of mutant SOD1 misfolding and motor neuron disease spread along neuroanatomical pathways [J].
Ayers, Jacob I. ;
Fromholt, Susan E. ;
O'Neal, Veronica M. ;
Diamond, Jeffrey H. ;
Borchelt, David R. .
ACTA NEUROPATHOLOGICA, 2016, 131 (01) :103-114
[3]   Alpha-synuclein spreading in M83 mice brain revealed by detection of pathological α-synuclein by enhanced ELISA [J].
Betemps, Dominique ;
Verchere, Jeremy ;
Brot, Sebastien ;
Morignat, Eric ;
Bousset, Luc ;
Gaillard, Damien ;
Lakhdar, Latifa ;
Melki, Ronald ;
Baron, Thierry .
ACTA NEUROPATHOLOGICA COMMUNICATIONS, 2014, 2
[4]   SpeCond: a method to detect condition-specific gene expression [J].
Cavalli, Florence Mg ;
Bourgon, Richard ;
Huber, Wolfgang ;
Vaquerizas, Juan M. ;
Luscombe, Nicholas M. .
GENOME BIOLOGY, 2011, 12 (10)
[5]   A CYTOPLASMIC SUPPRESSOR OF SUPER-SUPPRESSOR IN YEAST [J].
COX, BS .
HEREDITY, 1965, 20 :505-+
[6]   Spreading of amyloid-p peptides via neuritic cell-to-cell transfer is dependent on insufficient cellular clearance [J].
Domert, Jakob ;
Rao, Sahana Bhima ;
Agholme, Lotta ;
Brorsson, Ann-Christin ;
Marcusson, Jan ;
Hallbeck, Martin ;
Nath, Sangeeta .
NEUROBIOLOGY OF DISEASE, 2014, 65 :82-92
[7]   IUPred:: web server for the prediction of intrinsically unstructured regions of proteins based on estimated energy content [J].
Dosztányi, Z ;
Csizmok, V ;
Tompa, P ;
Simon, I .
BIOINFORMATICS, 2005, 21 (16) :3433-3434
[8]   TERRA and hnRNPA1 orchestrate an RPA-to-POT1 switch on telomeric single-stranded DNA [J].
Flynn, Rachel Litman ;
Centore, Richard C. ;
O'Sullivan, Roderick J. ;
Rai, Rekha ;
Tse, Alice ;
Zhou Songyang ;
Chang, Sandy ;
Karlseder, Jan ;
Zou, Lee .
NATURE, 2011, 471 (7339) :532-+
[9]   Stress granule assembly is mediated by prion-like aggregation of TIA-1 [J].
Gilks, N ;
Kedersha, N ;
Ayodele, M ;
Shen, L ;
Stoecklin, G ;
Dember, LM ;
Anderson, P .
MOLECULAR BIOLOGY OF THE CELL, 2004, 15 (12) :5383-5398
[10]   Welander distal myopathy is caused by a mutation in the RNA-binding protein TIA1 [J].
Hackman, Peter ;
Sarparanta, Jaakko ;
Lehtinen, Sara ;
Vihola, Anna ;
Evila, Anni ;
Jonson, Per Harald ;
Luque, Helena ;
Kere, Juha ;
Screen, Mark ;
Chinnery, Patrick F. ;
Ahlberg, Gabrielle ;
Edstrom, Lars ;
Udd, Bjarne .
ANNALS OF NEUROLOGY, 2013, 73 (04) :500-509