Yamada Ryuichi, Deshpande Sonali A, Bruce Kimberley D, Mak Elizabeth M, Ja William W
Department of Metabolism and Aging, The Scripps Research Institute, Jupiter, FL 33458, USA.
Department of Metabolism and Aging, The Scripps Research Institute, Jupiter, FL 33458, USA.
Cell Rep. 2015 Feb 17;10(6):865-872. doi: 10.1016/j.celrep.2015.01.018. Epub 2015 Feb 13.
Microbes play an important role in the pathogenesis of nutritional disorders such as protein-specific malnutrition. However, the precise contribution of microbes to host energy balance during undernutrition is unclear. Here, we show that Issatchenkia orientalis, a fungal microbe isolated from field-caught Drosophila melanogaster, promotes amino acid harvest to rescue the lifespan of undernourished flies. Using radioisotope-labeled dietary components (amino acids, nucleotides, and sucrose) to quantify nutrient transfer from food to microbe to fly, we demonstrate that I. orientalis extracts amino acids directly from nutrient-poor diets and increases protein flux to the fly. This microbial association restores body mass, protein, glycerol, and ATP levels and phenocopies the metabolic profile of adequately fed flies. Our study uncovers amino acid harvest as a fundamental mechanism linking microbial and host metabolism, and highlights Drosophila as a platform for quantitative studies of host-microbe relationships.
微生物在蛋白质特异性营养不良等营养紊乱的发病机制中起着重要作用。然而,在营养不良期间微生物对宿主能量平衡的确切贡献尚不清楚。在这里,我们表明,从野外捕获的黑腹果蝇中分离出的一种真菌微生物东方伊萨酵母,可促进氨基酸摄取以挽救营养不良果蝇的寿命。使用放射性同位素标记的饮食成分(氨基酸、核苷酸和蔗糖)来量化从食物到微生物再到果蝇的营养物质转移,我们证明东方伊萨酵母直接从营养匮乏的饮食中提取氨基酸,并增加向果蝇的蛋白质通量。这种微生物关联恢复了体重、蛋白质、甘油和ATP水平,并模拟了营养充足果蝇的代谢谱。我们的研究揭示了氨基酸摄取是连接微生物和宿主代谢的基本机制,并突出了果蝇作为宿主-微生物关系定量研究的平台。