Ludwig Maximillian University Munich, Department of Biology I, Großhaderner Str. 2, D-82152 Martinsried, Germany.
J Bacteriol. 2012 Mar;194(5):1018-23. doi: 10.1128/JB.06356-11. Epub 2011 Dec 22.
Magnetotactic bacteria have the ability to orient along geomagnetic field lines based on the formation of magnetosomes, which are intracellular nanometer-sized, membrane-enclosed magnetic iron minerals. The formation of these unique bacterial organelles involves several processes, such as cytoplasmic membrane invagination and magnetosome vesicle formation, the accumulation of iron in the vesicles, and the crystallization of magnetite. Previous studies suggested that the magA gene encodes a magnetosome-directed ferrous iron transporter with a supposedly essential function for magnetosome formation in Magnetospirillum magneticum AMB-1 that may cause magnetite biomineralization if expressed in mammalian cells. However, more recent studies failed to detect the MagA protein among polypeptides associated with the magnetosome membrane and did not identify magA within the magnetosome island, a conserved genomic region that is essential for magnetosome formation in magnetotactic bacteria. This raised increasing doubts about the presumptive role of magA in bacterial magnetosome formation, which prompted us to reassess MagA function by targeted deletion in Magnetospirillum magneticum AMB-1 and Magnetospirillum gryphiswaldense MSR-1. Contrary to previous reports, magA mutants of both strains still were able to form wild-type-like magnetosomes and had no obvious growth defects. This unambiguously shows that magA is not involved in magnetosome formation in magnetotactic bacteria.
趋磁细菌能够根据磁小体的形成沿着地磁场线定向,磁小体是细胞内纳米大小的、膜包裹的磁性铁矿物。这些独特的细菌细胞器的形成涉及几个过程,例如细胞质膜内陷和磁小体泡的形成、泡内铁的积累以及磁铁矿的结晶。以前的研究表明,magA 基因编码一种磁小体导向亚铁转运体,对于 Magnetospirillum magneticum AMB-1 中的磁小体形成具有重要功能,如果在哺乳动物细胞中表达,可能会导致磁铁矿生物矿化。然而,最近的研究未能在与磁小体膜相关的多肽中检测到 MagA 蛋白,也没有在磁小体岛上鉴定出 magA,磁小体岛是趋磁细菌中磁小体形成所必需的保守基因组区域。这引发了人们对 magA 在细菌磁小体形成中的假定作用的质疑,这促使我们通过在 Magnetospirillum magneticum AMB-1 和 Magnetospirillum gryphiswaldense MSR-1 中靶向缺失来重新评估 MagA 的功能。与以前的报道相反,这两个菌株的 magA 突变体仍然能够形成类似于野生型的磁小体,并且没有明显的生长缺陷。这清楚地表明,magA 不参与趋磁细菌的磁小体形成。