Development and use of a novel, tractable rodent model for studies of hibernation metabolism
Development and use of a novel, tractable rodent model for studies of hibernation metabolism
批准号:
9146423
负责人:
William James Israelsen
金额:
$39.26万
依托单位国家:
美国
项目类别:
财政年份:
2015
资助国家:
美国
项目状态:
已结题
起止时间:
2015-09-01 至 2020-08-31
关键词:
AmericanAnimal ModelAnimalsBlood GlucoseBody WeightBreedingChargeChicagoChiropteraCollaborationsCommunitiesComputing MethodologiesConsensusDataDevelopmentDietEatingEmergency MedicineEnzymesExhibitsExperimental ModelsFatty LiverFatty acid glycerol estersFemaleFoundationsFutureGene DuplicationGene ExpressionGenerationsGenesGenetic ModelsGenomeGlucose tolerance testGoalsHealthHeartHibernationHumanImmunoblottingInsulin ResistanceKetone BodiesLaboratoriesLiverMammalsMassachusettsMedicineMessenger RNAMetabolicMetabolic syndromeMetabolismModelingMusObesityOperative Surgical ProceduresOrganPhenotypePhosphorylationPhotoperiodPost-Translational Protein ProcessingPrimatesProcessProtocols documentationPyruvate KinaseRegulationResearchResourcesRodentRodent ModelSamplingSeasonsSourceSystemTechniquesTemperatureTestingTimeTissuesUrsidae FamilyWeight GainWorkbasebrain tissuecomparative genomicsdesigndrinkingfollow-upgenome sequencingglucose metabolisminsulin tolerancemetabolic abnormality assessmentmetabolic ratemetabolomicsmouse genomenatural hypothermianovelpressureprogramsresearch studytranscriptome
中文摘要
描述(由申请人提供):冬眠的哺乳动物,包括熊,蝙蝠,啮齿动物和至少一种灵长类动物,经历了一段时间的快速冬眠前体重增加,这使他们能够建立所需的脂肪储备生存长达6个月的冬眠。在冬眠期间,动物既不吃也不喝,但在使用储存的脂肪作为主要燃料来源时,会显著抑制其代谢率。对冬眠的机械理解可能对人类医学产生重要影响。在冬眠动物中发现的一些适应性代谢状态,如冬眠前的胰岛素抵抗和脂肪积累,与人类中观察到的适应不良代谢综合征相似,并且在人类中创造类似冬眠状态的能力可能对急诊医学,外科手术或器官储存产生重大影响。然而,冬眠表型背后的机制在很大程度上仍然是未知的,以前的研究工作一直受到缺乏易于处理的实验模型的限制。本计画将建立一种小型的北美冬眠动物--草地跳鼠(Zapus hudsonius),作为冬眠的实验室模型。与目前的模式不同,Zapus具有较短的世代时间,并且可以利用光周期和温度诱导冬眠,而不受季节的影响。该项目的总体目标是:1)对Zapus基因组进行测序和注释,并将Zapus的基因组与一种密切相关的非冬眠动物的基因组进行比较; 2)建立一个强大的繁殖群体,并改善诱导肥胖和冬眠所需的条件;和3)比较在夏季活跃、肥胖和冬眠状态下的全身和组织特异性细胞代谢,其重点在于葡萄糖代谢的调节。本课题旨在建立一种易于驯化的冬眠遗传模型--草地跳鼠。提出的代谢表征将通过提供冬眠代谢的第一个全面视图来推进冬眠领域。这项工作的长期目标是为全面研究冬眠表型的机制奠定基础,这可能对人类健康有重要的应用。
英文摘要
DESCRIPTION (provided by applicant): Hibernating mammals, including bears, bats, rodents, and at least one primate, undergo a period of rapid pre-hibernation weight gain, which allows them to build the fat reserves needed to survive up to 6 months of hibernation. During hibernation, the animals neither eat nor drink, but significantly suppresses its metabolic rate while using stored fat as the primary fuel source. A mechanistic understanding of hibernation could have an important impact on human medicine. Some of the adaptive metabolic states found in hibernators, such as pre-hibernation insulin resistance and fat accumulation, are similar to the maladaptive metabolic syndrome seen in humans, and an ability to create a hibernation-like state in humans could have a significant impact on emergency medicine, surgery or organ storage. However, the mechanisms underlying hibernation phenotypes remain largely unknown, and previous research efforts have been limited by the lack of tractable experimental models. This project will establish the meadow jumping mouse (Zapus hudsonius), a small North American hibernator, as a laboratory model of hibernation. Unlike current models, Zapus has a short generation time and it can be induced to hibernate using photoperiod and temperature regardless of outside season. The overall goals of this project are 1) to sequence and annotate the Zapus genome, and to compare the genome of Zapus with that of a closely related non-hibernator; 2) to establish a robust breeding colony and refine the conditions required to induce obesity and hibernation; and 3) to compare whole body and tissue-specific cellular metabolism in the summer-active, obese, and hibernating states, with a focus on regulation of glucose metabolism. This project is designed to establish the meadow jumping mouse as a tractable, genetic model of hibernation. The proposed metabolic characterization will advance the hibernation field by providing the first comprehensive view of hibernation metabolism. The long-term goal of this work is to lay the foundation for comprehensive study of the mechanisms of hibernation phenotypes, which may have important application to human health.
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