Gogoi Jotin, Bhatnagar Akshay, Ann Kezia J, Pottabathini Sambhavi, Singh Raghvendra, Mazeed Mohd, Kuncha Santosh Kumar, Kruparani Shobha P, Sankaranarayanan Rajan
CSIR-Centre for Cellular and Molecular Biology, Hyderabad, Telangana 500007, India.
Academy of Scientific and Innovative Research (AcSIR), CSIR-CCMB Campus, Uppal Road, Hyderabad 500007, India.
Sci Adv. 2022 Jan 14;8(2):eabj7307. doi: 10.1126/sciadv.abj7307. Epub 2022 Jan 12.
Mitochondria emerged through an endosymbiotic event involving a proteobacterium and an archaeal host. However, the process of optimization of cellular processes required for the successful evolution and survival of mitochondria, which integrates components from two evolutionarily distinct ancestors as well as novel eukaryotic elements, is not well understood. We identify two key switches in the translational machinery—one in the discriminator recognition code of a chiral proofreader DTD [d-aminoacyl–transfer RNA (tRNA) deacylase] and the other in mitochondrial tRNA—that enable the compatibility between disparate elements essential for survival. Notably, the mito-tRNA discriminator element is the only one to switch from pyrimidine to purine during the bacteria-to-mitochondria transition. We capture this code transition in the Jakobida, an early diverging eukaryotic clade bearing the most bacterial-like mito-genome, wherein both discriminator elements are present. This study underscores the need to explore the fundamental integration strategies critical for mitochondrial and eukaryotic evolution.
线粒体起源于一次内共生事件,涉及一种变形菌和一个古菌宿主。然而,线粒体成功进化和生存所需的细胞过程优化过程,该过程整合了来自两个进化上不同祖先的成分以及新的真核生物元素,目前还不太清楚。我们在翻译机制中识别出两个关键开关——一个在手性校对酶DTD [d-氨酰基转移RNA (tRNA) 脱酰酶] 的鉴别识别密码中,另一个在线粒体tRNA中——这使得生存所必需的不同元素之间具有兼容性。值得注意的是,线粒体tRNA鉴别元件是在细菌到线粒体转变过程中唯一从嘧啶转变为嘌呤的元件。我们在雅各布虫纲中捕捉到了这种密码转变,雅各布虫纲是一个早期分化的真核生物分支,拥有最像细菌的线粒体基因组,其中两个鉴别元件都存在。这项研究强调了探索对线粒体和真核生物进化至关重要的基本整合策略的必要性。