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Roles and regulation of aqua/glyceroporins in a freeze tolerant amphibian

Roles and regulation of aqua/glyceroporins in a freeze tolerant amphibian
水/甘油孔蛋白在耐冻两栖动物中的作用和调节
批准号:
1121457
负责人:
David Goldstein
金额:
$56.23万
依托单位:
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2011
资助国家:
美国
项目状态:
已结题
起止时间:
2011-09-01 至 2016-08-31

项目摘要

项目成果

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中文摘要
翻译
通过冷冻保存生物组织在从生殖技术到保护濒危物种的领域都有应用。 然而,尽管科学家们可以成功地冷冻保存卵子和胚胎等小型生命结构,但将这些策略应用于较大的结构仍然具有挑战性。 自然世界可以为克服这些挑战提供见解。 许多“冷血”动物在自然环境中遇到零度以下的温度,在脊椎动物中,少数物种已经进化出生理和生化策略来在冷冻中生存。 这个项目将研究其中的一个物种,科普?这是一只灰色的树蛙。 冷冻给动物带来了巨大的挑战,包括冰的潜在物理损伤,血液冻结和解冻时组织氧合的波动,以及液态水冻结和体液浓度变化时分子和细胞结构的破坏。 克服这些挑战的关键是调节水和溶解溶质的分布。 冰的形成必须限制在细胞外的液体中,因此当冻结开始时,水必须能够迅速离开细胞。 此外,一些溶质,如甘油是冷冻保护剂,有助于在冷冻过程中保持分子和生理完整性。灰树蛙为解开这些能力背后的机制提供了一个自然模型。在凉爽的秋季,它们会积累甘油。 它们还调节蛋白质(“水通道蛋白”)的表达,促进水和甘油穿过细胞膜的运动。 该项目将评估这些分子机制是如何调节的,对细胞特性的影响是什么,以及这如何有助于整个动物的抗冻性。 这种综合性的方法提供了一个很好的框架,培养学生从高中到博士水平的方法和思想的分子生理调节,它将产生新的见解保持组织冷冻活着的挑战。
英文摘要
Preservation of biological tissues by freezing has application in fields ranging from reproductive technology to conservation of endangered species. However, while scientists can successfully cryopreserve small living structures like eggs and embryos, application of those strategies to larger structures remains challenging. The natural world can provide insights into overcoming those challenges. Many "cold-blooded" animals encounter sub-freezing temperatures in their natural environment and, among the vertebrates, a few species have evolved physiological and biochemical strategies to survive freezing. This project will study one of those species, Cope?s gray treefrog. Freezing imposes daunting challenges for an animal, including potential physical damage from ice, fluctuating tissue oxygenation as the blood freezes and thaws, and disruption of molecular and cellular structures as liquid water freezes and body fluid concentrations change. A key to surviving these challenges is regulation of the distribution of water and dissolved solutes. Ice formation must be restricted to fluids outside of cells, and so water must be able to leave cells rapidly when freezing begins. In addition, some solutes, such as glycerol are cryoprotective and help to preserve molecular and physiological integrity during freezing. Gray treefrogs present a natural model for unraveling the mechanisms behind these capabilities. During the cooling autumn months they accumulate glycerol. They also regulate the expression of proteins ("aquaporins") that facilitate movement of water and glycerol across cell membranes. This project will evaluate how these molecular mechanisms are regulated, what is the resulting impact on cellular properties, and how this contributes to freeze tolerance of the whole animal. This integrative approach provides an excellent framework for training students from high school through PhD level in methods and ideas of molecular physiological regulation, and it will yield novel insights into the challenge of keeping tissues frozen alive.
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