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On the evolutionary trajectories of signal-transducing amyloids in fungi and beyond

Pages 362-368 | Received 29 Jun 2016, Accepted 20 Aug 2016, Published online: 20 Sep 2016

REFERENCES

  • Miller G. Neurodegeneration. Could they all be prion diseases? Science 2009; 326:1337-9; PMID:19965731; http://dx.doi.org/10.1126/science.326.5958.1337
  • Pham CL, Kwan AH, Sunde M. Functional amyloid: widespread in Nature, diverse in purpose. Essays Biochem 2014; 56:207-19; PMID:25131597; http://dx.doi.org/10.1042/bse0560207
  • Blanco LP, Evans ML, Smith DR, Badtke MP, Chapman MR. Diversity, biogenesis and function of microbial amyloids. Trends Microbiol 2012; 20:66-73; PMID:22197327; http://dx.doi.org/10.1016/j.tim.2011.11.005
  • Sawyer EB, Claessen D, Gras SL, Perrett S. Exploiting amyloid: how and why bacteria use cross-β fibrils. Biochem Soc Trans 2012; 40:728-34 ; PMID:22817724; http://dx.doi.org/10.1042/BST20120013
  • Stephan JS, Fioriti L, Lamba N, Colnaghi L, Karl K, Derkatch IL, Kandel ER. The CPEB3 Protein Is a Functional Prion that Interacts with the Actin Cytoskeleton. Cell Rep 2015; 11:1772-85; PMID:26074072; http://dx.doi.org/10.1016/j.celrep.2015.04.060
  • Rochin L, Hurbain I, Serneels L, Fort C, Watt B, Leblanc P, Marks MS, De Strooper B, Raposo G, van Niel G. BACE2 processes PMEL to form the melanosome amyloid matrix in pigment cells. Proc Natl Acad Sci U S A 2013; 110:10658-63 ; PMID:23754390; http://dx.doi.org/10.1073/pnas.1220748110
  • Halfmann R Jarosz DF, Jones SK, Chang A, Lancaster AK, Lindquist S. Prions are a common mechanism for phenotypic inheritance in wild yeasts. Nature 2012; 482:363-8; PMID:22337056; http://dx.doi.org/10.1038/nature10875
  • Saupe SJ. The [Het-s] prion of Podospora anserina and its role in heterokaryon incompatibility. Semin Cell Dev Biol 2011; 22:460-8; PMID:21334447; http://dx.doi.org/10.1016/j.semcdb.2011.02.019
  • Debets AJ, Dalstra HJ, Slakhorst M, Koopmanschap B, Hoekstra RF, Saupe SJ. High natural prevalence of a fungal prion. Proc Natl Acad Sci U S A 2012; 109:10432-7; PMID:22691498; http://dx.doi.org/10.1073/pnas.1205333109
  • Daskalov A, Habenstein B, Martinez D, Debets AJ, Sabaté R, Loquet A, Saupe SJ. Signal transduction by a fungal NOD-like receptor based on propagation of a prion amyloid fold. PLoS Biol 2015; 13:e1002059; PMID:25671553
  • Li J, McQuade T, Siemer AB, Napetschnig J, Moriwaki K, Hsiao YS, Damko E, Moquin D, Walz T, McDermott A, et al. The RIP1/RIP3 necrosome forms a functional amyloid signaling complex required for programmed necrosis. Cell 2012; 150:339-50; PMID:22817896; http://dx.doi.org/10.1016/j.cell.2012.06.019
  • Daskalov A, Paoletti M, Ness F, Saupe SJ. Genomic clustering and homology between HET-S and the NWD2 STAND protein in various fungal genomes. PLoS One 2012; 7:e34854; PMID:22493719; http://dx.doi.org/10.1371/journal.pone.0034854
  • Wan W, Stubbs G. Fungal prion HET-s as a model for structural complexity and self-propagation in prions. Proc Natl Acad Sci U S A 2014; 111:5201-6; PMID:24706820; http://dx.doi.org/10.1073/pnas.1322933111
  • Wasmer C, Lange A, Van Melckebeke H, Siemer AB, Riek R, Meier BH. Amyloid fibrils of the HET-s(218-289) prion form a β solenoid with a triangular hydrophobic core. Science 2008; 319:1523-6; PMID:18339938; http://dx.doi.org/10.1126/science.1151839
  • Seuring C, Greenwald J, Wasmer C, Wepf R, Saupe SJ, Meier BH, Riek R. The mechanism of toxicity in HET-S/HET-s prion incompatibility. PLoS Biol 2012; 10:e1001451; PMID:23300377; http://dx.doi.org/10.1371/journal.pbio.1001451
  • Daskalov A, Saupe SJ. As a toxin dies a prion comes to life: A tentative natural history of the [Het-s] prion. Prion 2015; 9:184-9; PMID:26110610
  • Greenwald J, Buhtz C, Ritter C, Kwiatkowski W, Choe S, Maddelein ML, Ness F, Cescau S, Soragni A, Leitz D, et al. The mechanism of prion inhibition by HET-S. Mol Cell 2010; 38:889-99; PMID:20620958
  • Saupe SJ, Daskalov A. The [Het-s] prion, an amyloid fold as a cell death activation trigger. PLoS Pathog 2012; 8:e1002687; PMID:22654661
  • Dyrka W, Lamacchia M, Durrens P, Kobe B, Daskalov A, Paoletti M, Sherman DJ, Saupe SJ. Diversity and variability of NOD-like receptors in fungi. Genome Biol Evol 2014; 6:3137-58; PMID:25398782
  • Riek R, Saupe SJ. The HET-S/s Prion Motif in the Control of Programmed Cell Death. Cold Spring Harb Perspect Biol 2016; a023515; PMID:27352624; http://dx.doi.org/10.1101/cshperspect.a023515
  • Cai X, Chen J, Xu H, Liu S, Jiang QX, Halfmann R, Chen ZJ. Prion-like polymerization underlies signal transduction in antiviral immune defense and inflammasome activation. Cell 2014; 156:1207-22; PMID:24630723
  • Wu H. Higher-order assemblies in a new paradigm of signal transduction. Cell 2013; 153:287-92; PMID:23582320
  • Han J. Zhong CQ. Zhang DW. Programmed necrosis: backup to and competitor with apoptosis in the immune system. Nat Immunol 2011; 12:1143-9; PMID:22089220
  • Dondelinger Y, Declercq W, Montessuit S, Roelandt R, Goncalves A, Bruggeman I, Hulpiau P, Weber K, Sehon CA, Marquis RW, et al. MLKL compromises plasma membrane integrity by binding to phosphatidylinositol phosphates. Cell Rep 2014; 7:971-81; PMID:24813885
  • Kajava AV, Klopffleisch K, Chen S, Hofmann K. Evolutionary link between metazoan RHIM motif and prion-forming domain of fungal heterokaryon incompatibility factor HET-s/HET-s. Sci Rep 2014; 4:7436; PMID:25500536
  • Daskalov A, Habenstein B, Sabaté R, Berbon M, Martinez D, Chaignepain S, Coulary-Salin B, Hofmann K, Loquet A, Saupe SJ. Identification of a novel cell death-inducing domain reveals that fungal amyloid-controlled programmed cell death is related to necroptosis. Proc Natl Acad Sci U S A 2016; 113:2720-5; PMID:26903619
  • Ritter C, Maddelein ML, Siemer AB, Lührs T, Ernst M, Meier BH, Saupe SJ, Riek R. Correlation of structural elements and infectivity of the HET-s prion. Nature 2005; 435:844-8; PMID:15944710
  • Daskalov A, Dyrka W, Saupe SJ. Theme and variations: evolutionary diversification of the HET-s functional amyloid motif. Sci Rep 2015; 5:12494; PMID:26219477
  • Graziani S, Silar P, Daboussi MJ. Bistability and hysteresis of the “Secteur” differentiation are controlled by a two-gene locus in Nectria haematococca. BMC Biol 2004; 2:18; PMID:15312233
  • Davey NE, Van Roey K, Weatheritt RJ, Toedt G, Uyar B, Altenberg B, Budd A, Diella F, Dinkel H, Gibson TJ. Attributes of short linear motifs. Mol Biosyst 2012; 8:268-81; PMID:21909575
  • Davey NE, Cyert MS, Moses AM. Short linear motifs - ex nihilo evolution of protein regulation. Cell Commun Signal 2015; 13:43; PMID:26589632; http://dx.doi.org/10.1186/s12964-015-0120-z
  • Davey NE. Travé G. Gibson TJ. How viruses hijack cell regulation. Trends Biochem Sci 2011; 36:159-69; PMID:21146412; http://dx.doi.org/10.1016/j.tibs.2010.10.002
  • Guo H, Omoto S, Harris PA, Finger JN, Bertin J, Gough PJ, Kaiser WJ, Mocarski ES. Herpes simplex virus suppresses necroptosis in human cells. Cell Host Microbe 2015; 17:243-51; PMID:25674983; http://dx.doi.org/10.1016/j.chom.2015.01.003
  • Mocarski ES, Guo H, Kaiser WJ. Necroptosis: The Trojan horse in cell autonomous antiviral host defense. Virology 2015; 479-480:160-6; PMID:25819165

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