AI Article Synopsis

  • Mitochondria are the primary sites for iron-sulfur cluster formation in most eukaryotes, utilizing inherited machinery from α-proteobacteria.
  • In Archamoebae, such as Entamoeba histolytica and Mastigamoeba balamuthi, this complex system is replaced by an ε-proteobacterial nitrogen fixation (NIF) system with two proteins: NifS and NifU.
  • M. balamuthi has duplicated genes for these proteins that localize to both mitochondria and cytosol, indicating a unique dual NIF machinery, while E. histolytica only has single copies and lacks evidence of the NIF system in its reduced mitochondria.

Article Abstract

In most eukaryotes, the mitochondrion is the main organelle for the formation of iron-sulfur (FeS) clusters. This function is mediated through the iron-sulfur cluster assembly machinery, which was inherited from the α-proteobacterial ancestor of mitochondria. In Archamoebae, including pathogenic Entamoeba histolytica and free-living Mastigamoeba balamuthi, the complex iron-sulfur cluster machinery has been replaced by an ε-proteobacterial nitrogen fixation (NIF) system consisting of two components: NifS (cysteine desulfurase) and NifU (scaffold protein). However, the cellular localization of the NIF system and the involvement of mitochondria in archamoebal FeS assembly are controversial. Here, we show that the genes for both NIF components are duplicated within the M. balamuthi genome. One paralog of each protein contains an amino-terminal extension that targets proteins to mitochondria (NifS-M and NifU-M), and the second paralog lacks a targeting signal, thereby reflecting the cytosolic form of the NIF machinery (NifS-C and NifU-C). The dual localization of the NIF system corresponds to the presence of FeS proteins in both cellular compartments, including detectable hydrogenase activity in Mastigamoeba cytosol and mitochondria. In contrast, E. histolytica possesses only single genes encoding NifS and NifU, respectively, and there is no evidence for the presence of the NIF machinery in its reduced mitochondria. Thus, M. balamuthi is unique among eukaryotes in that its FeS cluster formation is mediated through two most likely independent NIF machineries present in two cellular compartments.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC3645556PMC
http://dx.doi.org/10.1073/pnas.1219590110DOI Listing

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