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A rapid high-throughput method for determining chronological lifespan in budding yeast

机译:一种快速高通量的方法用于确定发芽酵母中的时间寿命

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摘要

The budding yeast Saccharomyces cerevisiae is a major model system in the study of aging. Like metazoans, yeast lifespan is extended by caloric restriction and treatment with pharmacological agents which extend lifespan. A major workhorse of aging research in budding yeast is the chronological lifespan assay. Traditionally, chronological lifespan assays consist of taking regular samples of aging yeast cultures, plating out aliquots on agar, and counting the resulting colonies. This method, while highly reliable, is labor-intensive and expensive in terms of materials consumed. Here, we report a novel MTT-based method for assessing chronological lifespan in yeast. We show that this method is equal to the colony counting method in its rigorous and reliable measurement of lifespan extension in yeast as a result of caloric restriction, and is able to distinguish known long-lived and short-lived yeast strains. We have further developed this method into a high-throughput assay that allows rapid screening of potential anti-aging compounds as well as yeast strains with altered lifespan. Application of this method permits the rapid identification of anti-aging activities in yeast and may facilitate identification of materials with therapeutic potential for higher animals and, most importantly, humans.
机译:发芽酵母酿酒酵母是衰老研究中的主要模型系统。像后生动物一样,通过限制热量和使用可延长寿命的药物治疗,可以延长酵母的寿命。萌芽期酵母老化研究的主要动力是按时间顺序的寿命测定法。传统上,按时间顺序进行的寿命分析包括定期取样老化的酵母培养物,在琼脂上铺等分试样并计数所得菌落。该方法虽然高度可靠,但劳动强度大且在材料消耗方面昂贵。在这里,我们报告了一种新颖的基于MTT的方法来评估酵母中的时间寿命。我们表明,该方法在严格和可靠地测量由于热量限制而导致的酵母中寿命延长方面与菌落计数方法相同,并且能够区分已知的长寿和短寿酵母菌株。我们将这种方法进一步发展成为一种高通量检测方法,可以快速筛选潜在的抗衰老化合物以及寿命改变的酵母菌株。该方法的应用允许快速鉴定酵母中的抗衰老活性,并且可以促进鉴定对高等动物,最重要的是人类具有治疗潜力的材料。

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