Department of Molecular Genetics and Microbiology, IMRIC, Faculty of Medicine, Hebrew University, Jerusalem 9112102, Israel.
Department of Molecular Genetics, Weizmann Institute of Science, Rehovot 7610001, Israel.
Cells. 2023 Jun 5;12(11):1550. doi: 10.3390/cells12111550.
Dual localization or dual targeting refers to the phenomenon by which identical, or almost identical, proteins are localized to two (or more) separate compartments of the cell. From previous work in the field, we had estimated that a third of the mitochondrial proteome is dual-targeted to extra-mitochondrial locations and suggested that this abundant dual targeting presents an evolutionary advantage. Here, we set out to study how many additional proteins whose main activity is outside mitochondria are also localized, albeit at low levels, to mitochondria (eclipsed). To do this, we employed two complementary approaches utilizing the α-complementation assay in yeast to uncover the extent of such an eclipsed distribution: one systematic and unbiased and the other based on mitochondrial targeting signal (MTS) predictions. Using these approaches, we suggest 280 new eclipsed distributed protein candidates. Interestingly, these proteins are enriched for distinctive properties compared to their exclusively mitochondrial-targeted counterparts. We focus on one unexpected eclipsed protein family of the Triose-phosphate DeHydrogenases (TDH) and prove that, indeed, their eclipsed distribution in mitochondria is important for mitochondrial activity. Our work provides a paradigm of deliberate eclipsed mitochondrial localization, targeting and function, and should expand our understanding of mitochondrial function in health and disease.
双重定位或双重靶向是指相同或几乎相同的蛋白质定位于细胞两个(或更多)独立隔室的现象。通过该领域之前的工作,我们估计三分之一的线粒体蛋白质组被双重靶向到线粒体以外的位置,并认为这种丰富的双重靶向具有进化优势。在这里,我们着手研究有多少主要在细胞外活动的额外蛋白质也被定位到线粒体(隐蔽),尽管水平较低。为此,我们采用了两种互补的方法,利用酵母中的α互补测定来揭示这种隐蔽分布的程度:一种是系统的和无偏的,另一种是基于线粒体靶向信号(MTS)预测。使用这些方法,我们提出了 280 个新的隐蔽分布蛋白候选者。有趣的是,与仅定位于线粒体的对应物相比,这些蛋白质具有独特的特性。我们关注的是三磷酸甘油醛脱氢酶(TDH)中一个出乎意料的隐蔽蛋白家族,并证明它们在线粒体中的隐蔽分布对于线粒体活性确实很重要。我们的工作提供了一个蓄意隐蔽的线粒体定位、靶向和功能的范例,应该扩展我们对线粒体在健康和疾病中的功能的理解。