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Collaborative Research: Molecular Basis Of Novel Phenotypes Resulting From Interpopulation Hybridization

Collaborative Research: Molecular Basis Of Novel Phenotypes Resulting From Interpopulation Hybridization
合作研究:群体间杂交产生的新表型的分子基础
批准号:
1556455
负责人:
Felipe Barreto
金额:
$39.93万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2016
资助国家:
美国
项目状态:
已结题
起止时间:
2016-03-01 至 2022-02-28

项目摘要

项目成果

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中文摘要
翻译
气候变化影响了种群和物种的地理分布,并可能导致以前孤立的种群之间杂交的机会增加。杂交可以有一系列的结果。最常见的是,杂交导致丧失适合度(杂交失败),有效地减少了杂交,促进了新物种的形成。然而,偶尔,新的基因组合会给杂交后代带来生态优势,包括适应新的生态位。亲本群体的哪些属性可以预测杂交的结果?回答这个问题是这个项目的重点,并将为气候和生态变化对适应速度和物种形成的影响提供新的见解。研究人员还将在桦树水族馆进行新颖的公共非正式教育,并在服务不足的圣地亚哥社区为五年级学生提供海洋生物学实践体验。预测杂交结果需要了解杂交表型的分子基础。该项目将对桡足类虎虎不同种群之间的杂交产生的杂交后代进行基因组分析。以前的研究表明,在混合动力车中,线粒体产生的能量经常受到干扰。全基因组测序将用于确定线粒体功能正常和中断的杂交桡足类群体之间的遗传差异;群体之间的差异将识别可能导致杂交失败的候选基因。结果将解决:a)杂交是否导致整个基因组的广泛不相容,或者是否可以识别目标基因?B)在不同的种群间杂交中,相同的基因组区域是否导致杂交失败?一种类似的方法将被用来检查改良的杂交耐热性的基因组基础。是什么遗传交互作用使一些杂交后代在对双亲种群都致命的温度下存活下来?亲本群体之间的遗传或生态差异能预测杂交性能吗?
英文摘要
Climate change affects the geographic distribution of populations and species and can result in increased opportunities for hybridization between previously isolated populations. Hybridization can have a range of outcomes. Most frequently, hybridization results in loss of fitness (hybrid breakdown), effectively reducing interbreeding and promoting the formation of new species. Occasionally, however, novel combinations of genes yield ecological advantages to hybrids, including adaptation to new ecological niches. What attributes of parental populations predict the outcome of hybridization? Answering this question is the focus of this project, and will provide new insights into the effects of climate and ecological changes on adaptation rates and species formation. The researchers also will engage in novel public informal education at the Birch Aquarium and in hands-on experiences in marine biology for 5th grade students in underserved San Diego neighborhoods. Predicting hybridization outcomes requires an understanding of the molecular basis of hybrid phenotypes. This project will conduct genomic analyses of hybrids produced by crosses between divergent populations of the copepod Tigriopus californicus. Previous work has shown that energy production by mitochondria is frequently disrupted in hybrids. Whole genome sequencing will be used to determine genetic differences between groups of hybrid copepods with normal versus disrupted mitochondrial performance; differentiation between the groups will identify candidate genes that are potentially responsible for hybrid breakdown. Results will address: a) Does hybridization result in widespread incompatibilities across the genome, or can targeted genes be identified? b) Are the same genomic regions responsible for hybrid breakdown in different interpopulation crosses? A similar approach will be used to examine the genomic basis of improved hybrid thermal tolerance. What genetic interactions allow some hybrids to survive temperatures that are lethal to both parental populations? Is hybrid performance predictable from genetic or ecological differences between parental populations?
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