NSF PRFB FY 2023: Heritable phenotypes and mechanisms through transgenerational plasticity in response to hypoxia in fish
NSF PRFB FY 2023: Heritable phenotypes and mechanisms through transgenerational plasticity in response to hypoxia in fish
批准号:
2305837
负责人:
Benjamin Negrete
金额:
$24.0万
依托单位:
依托单位国家:
美国
项目类别:
Fellowship Award
财政年份:
2024
资助国家:
美国
项目状态:
未结题
起止时间:
2024-04-01 至 2027-03-31
中文摘要
这项行动资助了2023财年的NSF生物学博士后研究奖学金,综合研究调查了基因组,环境和表型之间的生命管理相互作用的规则。该研究金支持研究员的研究和培训,以创新的方式为生活规则领域做出贡献。本研究探讨了海洋环境中长期缺氧(低氧)对鱼类的生理影响。缺氧是一种环境压力源,在世界各地越来越普遍,加上海洋变暖,其持续时间、严重程度和规模都在增加。长期暴露在缺氧环境中尤其危险,因为它限制了鱼类通过有氧代谢产生能量的能力。此外,缺氧有许多下游影响,包括导致鱼类改变其行为,形态,生理和基因表达。这些柔性变化的总和可以被称为可塑性。海洋鱼类在所有生命阶段,特别是生命早期阶段,都容易受到环境缺氧的影响,因为并非所有物种都能长时间洄游到含氧沃茨。该研究员将研究海洋棘鱼对慢性缺氧的可塑性反应,以及这些可塑性特征如何转移到下一代。在相同的栖息地的棘鱼种群表达不同的表型,不同的环境压力的反应,表明表型性状遗传在物种从相同的基因型,以造福后代。这项工作将探索从整个动物的氧摄取到代谢途径的氧级联的变化以及这些机制的遗传控制。拟议的研究将探索整个动物的耗氧量和临界氧阈值使用呼吸。这种氧摄取,从而有氧呼吸,将进一步研究有氧需求的组织,包括心肌和骨骼肌,通过代谢途径的总和下降到线粒体中的氧使用的变化。该研究员将使用转录组学来研究基因表达的广泛变化,这些变化支持有氧呼吸的变化以及表观遗传学在控制特定性状表达中的作用。通过这项工作,该研究员将优先招聘和指导本科生,通过导航大学和研究生院提供实践研究经验和指导。该奖项反映了NSF的法定使命,并被认为值得通过使用基金会的智力价值和更广泛的影响审查标准进行评估来支持。
英文摘要
This action funds an NSF Postdoctoral Research Fellowship in Biology for FY 2023, Integrative Research Investigating the Rules of Life Governing Interactions Between Genomes, Environment, and Phenotypes. The fellowship supports research and training of the fellow that will contribute to the area of Rules of Life in innovative ways. This research investigates the physiological implications of long-term hypoxia (low oxygen) in marine environments on fish. Hypoxia is an environmental stressor that is becoming more prevalent around the world and, compounded with warming oceans, is increasing in duration, severity, and size. Chronic exposure to hypoxia is particularly threatening as it limits the ability of fish to generate energy through aerobic metabolism. Additionally, hypoxia has many downstream impacts, including causing fish to make changes to their behavior, morphology, physiology, and gene expression. The sum of these flexible changes can be referred to as plasticity. Marine fish at all life stages, particularly early-life stages, are susceptible to environmental hypoxia as not all species can undergo long migrations to oxygenated waters. The fellow will investigate the plastic response of the marine stickleback to chronic hypoxia and how these plastic traits are transferred to the next generation. Populations of stickleback in the same habitats express distinct phenotypes that differ in their response to environmental stress, suggesting phenotypic traits are inherited in species from the same genotype to benefit offspring. This work will explore the changes to the oxygen cascade from the whole-animal oxygen uptake to metabolic pathways and to genetic control of these mechanisms. The proposed research will explore whole-animal oxygen consumption and critical oxygen thresholds using respirometry. This oxygen uptake, and thus aerobic respiration, will be further investigated in aerobically-demanding tissues, including cardiac and skeletal muscles, by the sum of metabolic pathways down to changes in the use of oxygen at the mitochondria. The fellow will use transcriptomics to look at widespread changes in gene expression that underpins changes in aerobic respiration and the role of epigenetics in controlling the expression of specific traits. Through this work, the fellow will prioritize recruiting and mentoring undergraduates to provide hands-on research experience and mentorship through navigating college and graduate school.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
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