Consequences of whole genome duplication for 2n pollen performance.

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2021-12-01 Epub Date: 2021-07-24 DOI:10.1007/s00497-021-00426-z
Joseph H Williams
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引用次数: 2

Abstract

The vegetative cell of the angiosperm male gametophyte (pollen) functions as a free-living, single-celled organism that both produces and transports sperm to egg. Whole-genome duplication (WGD) should have strong effects on pollen because of the haploid to diploid transition and because of both genetic and epigenetic effects on cell-level phenotypes. To disentangle historical effects of WGD on pollen performance, studies can compare 1n pollen from diploids to neo-2n pollen from diploids and synthetic autotetraploids to older 2n pollen from established neo-autotetraploids. WGD doubles both gene number and bulk nuclear DNA mass, and a substantial proportion of diploid and autotetraploid heterozygosity can be transmitted to 2n pollen. Relative to 1n pollen, 2n pollen can exhibit heterosis due to higher gene dosage, higher heterozygosity and new allelic interactions. Doubled genome size also has consequences for gene regulation and expression as well as epigenetic effects on cell architecture. Pollen volume doubling is a universal effect of WGD, whereas an increase in aperture number is common among taxa with simultaneous microsporogenesis and pored apertures, mostly eudicots. WGD instantly affects numerous evolved compromises among mature pollen functional traits and these are rapidly shaped by highly diverse tissue interactions and pollen competitive environments in the early post-WGD generations. 2n pollen phenotypes generally incur higher performance costs, and the degree to which these are met or evolve by scaling up provisioning and metabolic vigor needs further study.

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全基因组复制对2n花粉性能的影响。
被子植物雄性配子体(花粉)的营养细胞是一种自由生活的单细胞生物,既能产生精子又能将精子输送到卵子。全基因组复制(WGD)由于单倍体向二倍体的转变以及对细胞水平表型的遗传和表观遗传影响,应该对花粉有很强的影响。为了弄清WGD对花粉性能的历史影响,研究可以将二倍体的1n花粉与二倍体和合成的自四倍体的neo-2n花粉与已建立的新自四倍体的较老的2n花粉进行比较。WGD使基因数量和核DNA质量加倍,并且大量的二倍体和同源四倍体杂合性可以传递给2n花粉。相对于1n花粉,2n花粉具有较高的基因剂量、较高的杂合性和新的等位基因相互作用,可以表现出杂种优势。加倍的基因组大小也对基因调控和表达以及细胞结构的表观遗传效应产生影响。花粉体积加倍是WGD的普遍效应,而在同时发生小孢子和有孔的分类群中,孔数增加是常见的,主要是珠蕊属。WGD立即影响成熟花粉功能性状之间的许多进化妥协,这些妥协在早期的WGD后世代中由高度多样化的组织相互作用和花粉竞争环境迅速形成。2n花粉表型通常会产生更高的性能成本,这些成本在多大程度上通过扩大供给和代谢活力来满足或进化需要进一步研究。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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