The Prisoner's Dilemma and polymorphism in yeast SUC genes

被引:201
作者
Greig, D [1 ]
Travisano, M [1 ]
机构
[1] Univ Houston, Dept Biol & Biochem, Houston, TX 77204 USA
关键词
Saccharomyces; SUC; multigene family; Prisoner's Dilemma; cooperation; defection;
D O I
10.1098/rsbl.2003.0083
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
The SUC multigene family of the single-celled yeast Saccharomyces cerevisiae is polymorphic, with genes varying both in number and activity. All of the genes encode invertase, an enzyme that is secreted to digest sucrose outside of the cell. This communal endeavour creates the potential for individual cells to defect (cheat) by stealing the sugar digested by their neighbours without contributing the enzyme themselves. We measured the fitness of a defector, with a deleted suc2 gene, relative to an otherwise isogenic cooperator, with a functional SUC2 gene. We manipulated the level of social interaction within the community by varying the population density and found that the defector is less fit than the cooperator at low levels of sociality but more fit in dense communities. We propose that selection for antisocial cheating causes SUC polymorphism in nature. The infamous Prisoner's Dilemma game shows that social behaviour is generally unstable, and the success of both cooperation and defection can vary continuously in time and space. The variation in SUC genes reflects constant adaptation to an ever-changing biotic environment that is a consequence of the instability of cooperation. It is interesting that social interactions can have a direct effect on molecular evolution, even in an organism as simple as yeast.
引用
收藏
页码:S25 / S26
页数:2
相关论文
共 16 条
  • [1] Axelrod R, 2006, EVOLUTION COOPERATIO
  • [2] Chaos, cheating and cooperation: Potential solutions to the Prisoner's Dilemma
    Brembs, B
    [J]. OIKOS, 1996, 76 (01) : 14 - 24
  • [3] ORGANIZATION OF THE SUC GENE FAMILY IN SACCHAROMYCES
    CARLSON, M
    BOTSTEIN, D
    [J]. MOLECULAR AND CELLULAR BIOLOGY, 1983, 3 (03) : 351 - 359
  • [4] Incidence of SUC-RTM telomeric repeated genes in brewing and wild wine strains of Saccharomyces
    Denayrolles, M
    deVillechenon, EP
    LonvaudFunel, A
    Aigle, M
    [J]. CURRENT GENETICS, 1997, 31 (06) : 457 - 461
  • [5] JONES EW, 1992, MOL CELLULAR BIOL YE
  • [6] 'Raise the stakes' evolves into a defector
    Killingback, T
    Doebeli, M
    [J]. NATURE, 1999, 400 (6744) : 518 - 518
  • [7] LONG-TERM EXPERIMENTAL EVOLUTION IN ESCHERICHIA-COLI .1. ADAPTATION AND DIVERGENCE DURING 2,000 GENERATIONS
    LENSKI, RE
    ROSE, MR
    SIMPSON, SC
    TADLER, SC
    [J]. AMERICAN NATURALIST, 1991, 138 (06) : 1315 - 1341
  • [8] The chromosome ends of Saccharomyces cerevisiae
    Louis, EJ
    [J]. YEAST, 1995, 11 (16) : 1553 - 1573
  • [9] ADAPTIVE EVOLUTION OF HIGHLY MUTABLE LOCI IN PATHOGENIC BACTERIA
    MOXON, ER
    RAINEY, PB
    NOWAK, MA
    LENSKI, RE
    [J]. CURRENT BIOLOGY, 1994, 4 (01) : 24 - 33
  • [10] NAUMOV G I, 1969, Genetica (Dordrecht), V5, P117