Beach Adam, Richard Vincent R, Leonov Anna, Burstein Michelle T, Bourque Simon D, Koupaki Olivia, Juneau Mylène, Feldman Rachel, Iouk Tatiana, Titorenko Vladimir I
Department of Biology, Concordia University, Montreal, Quebec H4B 1R6, Canada.
Aging (Albany NY). 2013 Jul;5(7):551-74. doi: 10.18632/aging.100578.
Our studies revealed that lithocholic acid (LCA), a bile acid, is a potent anti-aging natural compound that in yeast cultured under longevity-extending caloric restriction (CR) conditions acts in synergy with CR to enable a significant further increase in chronological lifespan. Here, we investigate a mechanism underlying this robust longevity-extending effect of LCA under CR. We found that exogenously added LCA enters yeast cells, is sorted to mitochondria, resides mainly in the inner mitochondrial membrane, and also associates with the outer mitochondrial membrane. LCA elicits an age-related remodeling of glycerophospholipid synthesis and movement within both mitochondrial membranes, thereby causing substantial changes in mitochondrial membrane lipidome and triggering major changes in mitochondrial size, number and morphology. In synergy, these changes in the membrane lipidome and morphology of mitochondria alter the age-related chronology of mitochondrial respiration, membrane potential, ATP synthesis and reactive oxygen species homeostasis. The LCA-driven alterations in the age-related dynamics of these vital mitochondrial processes extend yeast longevity. In sum, our findings suggest a mechanism underlying the ability of LCA to delay chronological aging in yeast by accumulating in both mitochondrial membranes and altering their glycerophospholipid compositions. We concluded that mitochondrial membrane lipidome plays an essential role in defining yeast longevity.
我们的研究表明,石胆酸(LCA)作为一种胆汁酸,是一种有效的抗衰老天然化合物,在延长寿命的热量限制(CR)条件下培养的酵母中,它与CR协同作用,使按时间计算的寿命显著进一步延长。在此,我们研究了CR条件下LCA这种强大的延长寿命作用的潜在机制。我们发现,外源添加的LCA进入酵母细胞后,被分选到线粒体,主要驻留在线粒体内膜,也与线粒体外膜相关联。LCA引发了甘油磷脂合成以及在线粒体内外膜内移动的与年龄相关的重塑,从而导致线粒体膜脂质组发生实质性变化,并引发线粒体大小、数量和形态的重大改变。协同作用下,线粒体膜脂质组和形态的这些变化改变了与年龄相关的线粒体呼吸、膜电位、ATP合成和活性氧稳态的时间顺序。LCA驱动的这些重要线粒体过程与年龄相关的动态变化延长了酵母的寿命。总之,我们的研究结果表明了一种机制,即LCA通过在线粒体内外膜积累并改变其甘油磷脂组成来延缓酵母按时间计算的衰老。我们得出结论,线粒体膜脂质组在决定酵母寿命方面起着至关重要的作用。