#PAGE_PARAMS# #ADS_HEAD_SCRIPTS# #MICRODATA#

Unisexual Reproduction Drives Evolution of Eukaryotic Microbial Pathogens


article has not abstract


Vyšlo v časopise: Unisexual Reproduction Drives Evolution of Eukaryotic Microbial Pathogens. PLoS Pathog 9(10): e32767. doi:10.1371/journal.ppat.1003674
Kategorie: Pearls
prolekare.web.journal.doi_sk: https://doi.org/10.1371/journal.ppat.1003674

Souhrn

article has not abstract


Zdroje

1. TibayrencM, AyalaFJ (2012) Reproductive clonality of pathogens: a perspective on pathogenic viruses, bacteria, fungi, and parasitic protozoa. Proc Natl Acad Sci U S A 109: E3305–3313.

2. LengelerKB, FoxDS, FraserJA, AllenA, ForresterK, et al. (2002) Mating-type locus of Cryptococcus neoformans: a step in the evolution of sex chromosomes. Eukaryot Cell 1: 704–718.

3. HullCM, HeitmanJ (2002) Genetics of Cryptococcus neoformans. Annu Rev Genet 36: 557–615.

4. Kwon-ChungKJ (1976) Morphogenesis of Filobasidiella neoformans, the sexual state of Cryptococcus neoformans. Mycologia 68: 821–833.

5. GilesSS, DagenaisTR, BottsMR, KellerNP, HullCM (2009) Elucidating the pathogenesis of spores from the human fungal pathogen Cryptococcus neoformans. Infect Immun 77: 3491–3500.

6. VelagapudiR, HsuehYP, Geunes-BoyerS, WrightJR, HeitmanJ (2009) Spores as infectious propagules of Cryptococcus neoformans. Infect Immun 77: 4345–4355.

7. Kwon-ChungKJ, BennettJE (1978) Distribution of α and a mating types of Cryptococcus neoformans among natural and clinical isolates. Am J Epidemiol 108: 337–340.

8. LinX, HullCM, HeitmanJ (2005) Sexual reproduction between partners of the same mating type in Cryptococcus neoformans. Nature 434: 1017–1021.

9. TscharkeRL, LazeraM, ChangYC, WickesBL, Kwon-ChungKJ (2003) Haploid fruiting in Cryptococcus neoformans is not mating type α-specific. Fungal Genet Biol 39: 230–237.

10. LinX, HuangJC, MitchellTG, HeitmanJ (2006) Virulence attributes and hyphal growth of C. neoformans are quantitative traits and the MATα allele enhances filamentation. PLoS Genet 2: e187 doi:10.1371/journal.pgen.0020187

11. LeeSC, HeitmanJ (2012) Function of Cryptococcus neoformans KAR7 (SEC66) in karyogamy during unisexual and opposite-sex mating. Eukaryot Cell 11: 783–794.

12. FeretzakiM, HeitmanJ (2013) Genetic circuits that govern bisexual and unisexual reproduction in Cryptococcus neoformans. PLoS Genet 9: e1003688 doi:10.1371/journal.pgen.1003688

13. LinX, LitvintsevaAP, NielsenK, PatelS, FloydA, et al. (2007) αADα hybrids of Cryptococcus neoformans: evidence of same-sex mating in nature and hybrid fitness. PLoS Genet 3: e186 doi:10.1371/journal.pgen.0030186

14. LinX, PatelS, LitvintsevaAP, FloydA, MitchellTG, et al. (2009) Diploids in the Cryptococcus neoformans serotype A population homozygous for the α mating type originate via unisexual mating. PLoS Pathog 5: e1000283 doi:10.1371/journal.ppat.1000283

15. FraserJA, GilesSS, WeninkEC, Geunes-BoyerSG, WrightJR, et al. (2005) Same-sex mating and the origin of the Vancouver Island Cryptococcus gattii outbreak. Nature 437: 1360–1364.

16. BuiT, LinX, MalikR, HeitmanJ, CarterD (2008) Isolates of Cryptococcus neoformans from infected animals reveal genetic exchange in unisexual, alpha mating type populations. Eukaryot Cell 7: 1771–1780.

17. SaulN, KrockenbergerM, CarterD (2008) Evidence of recombination in mixed-mating-type and alpha-only populations of Cryptococcus gattii sourced from single eucalyptus tree hollows. Eukaryot Cell 7: 727–734.

18. HiremathSS, ChowdharyA, KowshikT, RandhawaHS, SunS, et al. (2008) Long-distance dispersal and recombination in environmental populations of Cryptococcus neoformans var. grubii from India. Microbiology 154: 1513–1524.

19. ChowdharyA, HiremathSS, SunS, KowshikT, RandhawaHS, et al. (2011) Genetic differentiation, recombination and clonal expansion in environmental populations of Cryptococcus gattii in India. Environ Microbiol 13: 1875–1888.

20. NiM, FeretzakiM, LiW, Floyd-AveretteA, MieczkowskiP, et al. (2013) Unisexual and heterosexual meiotic reproduction generate aneuploidy and phenotypic diversity de novo in the yeast Cryptococcus neoformans. PLoS Biol 11: e1001653 doi:10.1371/journal.pbio.1001653

21. SchoustraSE, DebetsAJM, SlakhorstM, HoekstraRF (2007) Mitotic recombination accelerates adaptation in the fungus Aspergillus nidulans. PLoS Genet 3: e68 doi:10.1371/journal.pgen.0030068

22. HullCM, RaisnerRM, JohnsonAD (2000) Evidence for mating of the “asexual” yeast Candida albicans in a mammalian host. Science 289: 307–310.

23. MageeBB, MageePT (2000) Induction of mating in Candida albicans by construction of MTLa and MTLalpha strains. Science 289: 310–313.

24. MillerMG, JohnsonAD (2002) White-opaque switching in Candida albicans is controlled by mating-type locus homeodomain proteins and allows efficient mating. Cell 110: 293–302.

25. ForcheA, AlbyK, SchaeferD, JohnsonAD, BermanJ, et al. (2008) The parasexual cycle in Candida albicans provides an alternative pathway to meiosis for the formation of recombinant strains. PLoS Biol 6: e110 doi:10.1371/journal.pbio.0060110

26. BennettRJ, JohnsonAD (2006) The role of nutrient regulation and the Gpa2 protein in the mating pheromone response of C. albicans. Mol Microbiol 62: 100–119.

27. AlbyK, SchaeferD, BennettRJ (2009) Homothallic and heterothallic mating in the opportunistic pathogen Candida albicans. Nature 460: 890–893.

28. AlbyK, BennettRJ (2011) Interspecies pheromone signaling promotes biofilm formation and same-sex mating in Candida albicans. Proc Natl Acad Sci U S A 108: 2510–2515.

29. SelmeckiA, ForcheA, BermanJ (2006) Aneuploidy and isochromosome formation in drug-resistant Candida albicans. Science 313: 367–370.

30. SelmeckiAM, DulmageK, CowenLE, AndersonJB, BermanJ (2009) Acquisition of aneuploidy provides increased fitness during the evolution of antifungal drug resistance. PLoS Genet 5: e1000705 doi:10.1371/journal.pgen.1000705

31. SionovE, LeeH, ChangYC, Kwon-ChungKJ (2010) Cryptococcus neoformans overcomes stress of azole drugs by formation of disomy in specific multiple chromosomes. PLoS Pathog 6: e1000848 doi:10.1371/journal.ppat.1000848

32. DanielsKJ, SrikanthaT, LockhartSR, PujolC, SollDR (2006) Opaque cells signal white cells to form biofilms in Candida albicans. EMBO J 25: 2240–2252.

33. HenkDA, Shahar-GolanR, DeviKR, BoyceKJ, ZhanN, et al. (2012) Clonality despite sex: the evolution of host-associated sexual neighborhoods in the pathogenic fungus Penicillium marneffei. PLoS Pathog 8: e1002851 doi:10.1371/journal.ppat.1002851

34. MahoneyDP, HuangLH, BackusMP (1969) New homothallic Neurosporas from tropical soils. Mycologia 61: 264–272.

35. NygrenK, StrandbergR, WallbergA, NabholzB, GustafssonT, et al. (2011) A comprehensive phylogeny of Neurospora reveals a link between reproductive mode and molecular evolution in fungi. Mol Phylogenet Evol 59: 649–663.

36. GlassNL, VollmerSJ, StabenC, GrotelueschenJ, MetzenbergRL, et al. (1988) DNAs of the two mating-type alleles of Neurospora crassa are highly dissimilar. Science 241: 570–573.

37. GlassNL, SmithML (1994) Structure and function of a mating-type gene from the homothallic species Neurospora africana. Mol Gen Genet 244: 401–409.

38. ArnaiseS, ZicklerD, GlassNL (1993) Heterologous expression of mating-type genes in filamentous fungi. Proc Natl Acad Sci U S A 90: 6616–6620.

39. LeeSC, CorradiN, DoanS, DietrichFS, KeelingPJ, et al. (2010) Evolution of the sex-related locus and genomic features shared in microsporidia and fungi. PLoS ONE 5: e10539 doi:10.1371/journal.pone.0010539

40. SelmanM, SakB, KvacM, FarinelliL, WeissLM, et al. (2013) Extremely reduced levels of heterozygosity in the vertebrate pathogen Encephalitozoon cuniculi. Eukaryot Cell 12: 496–502.

41. CooperMA, AdamRD, WorobeyM, SterlingCR (2007) Population genetics provides evidence for recombination in Giardia. Curr Biol 17: 1984–1988.

42. RameshMA, MalikSB, LogsdonJMJr (2005) A phylogenomic inventory of meiotic genes; evidence for sex in Giardia and an early eukaryotic origin of meiosis. Curr Biol 15: 185–191.

43. PoxleitnerMK, CarpenterML, MancusoJJ, WangCJ, DawsonSC, et al. (2008) Evidence for karyogamy and exchange of genetic material in the binucleate intestinal parasite Giardia intestinalis. Science 319: 1530–1533.

44. AkopyantsNS, KimblinN, SecundinoN, PatrickR, PetersN, et al. (2009) Demonstration of genetic exchange during cyclical development of Leishmania in the sand fly vector. Science 324: 265–268.

45. RougeronV, BanulsAL, CarmeB, SimonS, CouppieP, et al. (2011) Reproductive strategies and population structure in Leishmania: substantial amount of sex in Leishmania Viannia guyanensis. Mol Ecol 20: 3116–3127.

46. InbarE, AkopyantsNS, CharmoyM, RomanoA, LawyerP, et al. (2013) The mating competence of geographically diverse Leishmania major strains in their natural and unnatural sand fly vectors. PLoS Genet 9: e1003672 doi:10.1371/journal.pgen.1003672

47. GauntMW, YeoM, FrameIA, StothardJR, CarrascoHJ, et al. (2003) Mechanism of genetic exchange in American trypanosomes. Nature 421: 936–939.

48. WendteJM, MillerMA, LambournDM, MagargalSL, JessupDA, et al. (2010) Self-mating in the definitive host potentiates clonal outbreaks of the apicomplexan parasites Sarcocystis neurona and Toxoplasma gondii. PLoS Genet 6: e1001261 doi:10.1371/journal.pgen.1001261

49. Mark WelchDB, MeselsonM (2000) Evidence for the evolution of bdelloid rotifers without sexual reproduction or genetic exchange. Science 288: 1211–1215.

50. FeldheimKA, ChapmanDD, SweetD, FitzpatrickS, ProdohlPA, et al. (2010) Shark virgin birth produces multiple, viable offspring. J Hered 101: 374–377.

51. WattsPC, BuleyKR, SandersonS, BoardmanW, CiofiC, et al. (2006) Parthenogenesis in Komodo dragons. Nature 444: 1021–1022.

52. KonoT, ObataY, WuQ, NiwaK, OnoY, et al. (2004) Birth of parthenogenetic mice that can develop to adulthood. Nature 428: 860–864.

Štítky
Hygiena a epidemiológia Infekčné lekárstvo Laboratórium

Článok vyšiel v časopise

PLOS Pathogens


2013 Číslo 10
Najčítanejšie tento týždeň
Najčítanejšie v tomto čísle
Kurzy

Zvýšte si kvalifikáciu online z pohodlia domova

Získaná hemofilie - Povědomí o nemoci a její diagnostika
nový kurz

Eozinofilní granulomatóza s polyangiitidou
Autori: doc. MUDr. Martina Doubková, Ph.D.

Všetky kurzy
Prihlásenie
Zabudnuté heslo

Zadajte e-mailovú adresu, s ktorou ste vytvárali účet. Budú Vám na ňu zasielané informácie k nastaveniu nového hesla.

Prihlásenie

Nemáte účet?  Registrujte sa

#ADS_BOTTOM_SCRIPTS#