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Evolutionary dynamics of pathogen resistance and tolerance

机译:病原体抗性和耐受性的进化动力学

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Host organisms can respond to the threat of disease either through resistance defenses (which inhibit or limit infection) or through tolerance strategies (which do not limit infection, but reduce or offset its fitness consequences). Here we show that resistance and tolerance can have fundamentally different evolutionary outcomes, even when they have equivalent short-term benefit for the host. As a gene conferring disease resistance spreads through a population, the incidence of infection declines, reducing the fitness advantage of carrying the resistance gene. Thus genes conferring complete resistance cannot become fixed (i.e., universal) by selection in a host population, and diseases cannot be eliminated solely by natural selection for host resistance. By contrast, as a gene conferring disease tolerance spreads through a population, disease incidence rises, increasing the evolutionary advantage of carrying the tolerance gene. Therefore, any tolerance gene that can invade a host population will tend to be driven to fixation by selection. As predicted, field studies of diverse plant species infected by rust fungi confirm that resistance traits tend to be polymorphic and tolerance traits tend to be fixed. These observations suggest a new mechanism for the evolution of mutualism from parasitism, and they help to explain the ubiquity of disease. [References: 46]
机译:宿主生物可以通过抗性防御(抑制或限制感染)或通过耐受策略(不限制感染,但减少或抵消其适应性后果)对疾病的威胁做出反应。在这里,我们证明了抗性和耐受性可以具有根本不同的进化结果,即使它们对宿主具有相同的短期利益。随着赋予抗病性的基因在整个人群中传播,感染的发生率下降,从而降低了携带抗性基因的适应性优势。因此,赋予完全抗性的基因不能通过在宿主群体中的选择而变得固定(即通用),并且不能仅通过自然选择宿主抗性来消除疾病。相反,随着赋予疾病耐受性的基因在人群中传播,疾病发生率上升,从而增加了携带耐受性基因的进化优势。因此,任何可以侵染宿主种群的耐受基因都倾向于通过选择而被固定。如预测的那样,对锈病真菌感染的多种植物进行的田间研究证实,抗性性状趋于多态,而耐受性性状趋于固定。这些观察结果提出了一种从寄生性进化到共生的新机制,它们有助于解释疾病的普遍性。 [参考:46]

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