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花粉限制和自交不亲和的非加性效应降低了植物的繁殖成功率和种群活力。

Non-additive effects of pollen limitation and self-incompatibility reduce plant reproductive success and population viability.

机构信息

CSIRO Plant Industry, Canberra, ACT 2601, Australia.

出版信息

Ann Bot. 2012 Feb;109(3):643-53. doi: 10.1093/aob/mcr290. Epub 2011 Dec 19.

Abstract

BACKGROUND AND AIMS

Mating system is a primary determinant of the ecological and evolutionary dynamics of wild plant populations. Pollen limitation and loss of self-incompatibility genotypes can both act independently to reduce seed set and these effects are commonly observed in fragmented landscapes. This study used a simulation modelling approach to assess the interacting effects of these two processes on plant reproductive performance and population viability for a range of pollination likelihood, self-incompatibility systems and S-allele richness conditions.

METHODS

A spatially explicit, individual-based, genetic and demographic simulation model parameterized to represent a generic self-incompatible, short-lived perennial herb was used to conduct simulation experiments in which pollination probability, self-incompatibility type (gametophytic and sporophytic) and S-allele richness were systematically varied in combination to assess their independent and interacting effects on the demographic response variables of mate availability, seed set, population size and population persistence.

KEY RESULTS

Joint effects of reduced pollination probability and low S-allele richness were greater than independent effects for all demographic response variables except population persistence under high pollinator service (>50 %). At intermediate values of 15-25 % pollination probability, non-linear interactions with S-allele richness generated significant reductions in population performance beyond those expected by the simple additive effect of each independently. This was due to the impacts of reduced effective population size on the ability of populations to retain S alleles and maintain mate availability. Across a limited set of pollination and S-allele conditions (P = 0·15 and S = 20) populations with gametophytic SI showed reduced S-allele erosion relative to those with sporophytic SI, but this had limited effects on individual fecundity and translated into only modest increases in population persistence.

CONCLUSIONS

Interactions between pollen limitation and loss of S alleles have the potential to significantly reduce the viability of populations of a few hundred plants. Population decline may occur more rapidly than expected when pollination probabilities drop below 25 % and S alleles are fewer than 20 due to non-additive interactions. These are likely to be common conditions experienced by plants in small populations in fragmented landscapes and are also those under which differences in response between gameptophytic and sporophtyic systems are observed.

摘要

背景与目的

交配系统是决定野生植物种群生态和进化动态的主要因素。花粉限制和自交不亲和基因型的丧失都可能独立作用,从而降低种子产量,这些影响在破碎化的景观中很常见。本研究采用模拟建模方法,评估这两个过程对一系列授粉可能性、自交不亲和系统和 S 等位基因丰富度条件下植物繁殖性能和种群生存力的相互作用影响。

方法

使用空间显式、个体基础、遗传和人口模拟模型,对具有代表性的自交不亲和、短命多年生草本植物进行参数化,以进行模拟实验,其中系统地改变授粉概率、自交不亲和类型(配子体和孢子体)和 S 等位基因丰富度,以评估它们对配偶可用性、种子产量、种群大小和种群持久性等人口反应变量的独立和相互作用影响。

主要结果

除高授粉服务(>50%)下的种群持久性外,降低授粉概率和低 S 等位基因丰富度的联合效应大于独立效应。在 15-25%授粉概率的中间值下,S 等位基因丰富度的非线性相互作用导致种群性能显著降低,超出了每个独立因素的简单加性效应所预期的范围。这是由于有效种群大小减少对种群保留 S 等位基因和维持配偶可用性的能力的影响。在一组有限的授粉和 S 等位基因条件下(P=0.15 和 S=20),具有配子体 SI 的种群与具有孢子体 SI 的种群相比,S 等位基因侵蚀减少,但这对个体繁殖力的影响有限,仅导致种群持久性略有增加。

结论

花粉限制和 S 等位基因丧失之间的相互作用有可能显著降低几百株植物种群的生存能力。当授粉概率下降到 25%以下且 S 等位基因少于 20 时,种群下降可能比预期的更快,这是由于非加性相互作用所致。这些可能是在破碎化景观中小种群中植物经常经历的条件,也是观察到配子体和孢子体系统之间反应差异的条件。

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