An early origin of iron-sulfur cluster biosynthesis machineries before Earth oxygenation

被引:58
作者
Garcia, Pierre Simon [1 ,2 ]
D'Angelo, Francesca [1 ]
de Choudens, Sandrine Ollagnier [3 ]
Dussouchaud, Macha [1 ]
Bouveret, Emmanuelle [1 ]
Gribaldo, Simonetta [2 ]
Barras, Frederic [1 ]
机构
[1] Univ Paris Cite, Inst Pasteur, Dept Microbiol, UMR CNRS 6047,Unit Stress Adaptat & Metab Enterob, Paris, France
[2] Univ Paris Cite, Inst Pasteur, Dept Microbiol, UMR CNRS 6047,Unit Evolutionary Biol Microbial Ce, Paris, France
[3] Univ Grenoble Alpes, Lab Chim & Biol Metaux, CEA, CNRS, Grenoble, France
关键词
PHOSPHOLIPID-SYNTHESIS; ESCHERICHIA-COLI; BIOGENESIS; GENERATION; TREE;
D O I
10.1038/s41559-022-01857-1
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
Iron-sulfur (Fe-S) clusters are ubiquitous cofactors essential for life. It is largely thought that the emergence of oxygenic photosynthesis and progressive oxygenation of the atmosphere led to the origin of multiprotein machineries (ISC, NIF and SUF) assisting Fe-S cluster synthesis in the presence of oxidative stress and shortage of bioavailable iron. However, previous analyses have left unclear the origin and evolution of these systems. Here, we combine exhaustive homology searches with genomic context analysis and phylogeny to precisely identify Fe-S cluster biogenesis systems in over 10,000 archaeal and bacterial genomes. We highlight the existence of two additional and clearly distinct 'minimal' Fe-S cluster assembly machineries, MIS (minimal iron-sulfur) and SMS (SUF-like minimal system), which we infer in the last universal common ancestor (LUCA) and we experimentally validate SMS as a bona fide Fe-S cluster biogenesis system. These ancestral systems were kept in archaea whereas they went through stepwise complexification in bacteria to incorporate additional functions for higher Fe-S cluster synthesis efficiency leading to SUF, ISC and NIF. Horizontal gene transfers and losses then shaped the current distribution of these systems, driving ecological adaptations such as the emergence of aerobic lifestyles in archaea. Our results show that dedicated machineries were in place early in evolution to assist Fe-S cluster biogenesis and that their origin is not directly linked to Earth oxygenation. Iron-sulfur (Fe-S) clusters are cofactors essential for life. Combining large-scale phylogenomic analyses with biochemical validation, the authors identify two ancestral minimal Fe-S cluster biogenesis systems and show that they originated before Earth oxygenation.
引用
收藏
页码:1564 / +
页数:24
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