Centro Brasileiro de Pesquisas Físicas, Urca, Rio de Janeiro, RJ, Brazil.
Eur Biophys J. 2012 May;41(5):405-13. doi: 10.1007/s00249-012-0789-5. Epub 2012 Feb 15.
Candidatus Magnetoglobus multicellularis (CMm) is a multicellular organism in which each constituent cell is a magnetotactic bacterium. It has been observed that disaggregation of this organism provokes the death of the individual cells. The observed flagellar movement of the CMm indicates that the constituent cells move in a coordinated way, indicating a strong correlation between them and showing that this aggregate could be considered as an individual. As every constituent cell is a magnetotactic bacterium, every cell contributes with a magnetic moment vector to the resultant magnetic moment of the CMm organism that can be calculated through the vectorial sum of all the constituent magnetic moments. Scanning electron microscopy images of CMm organisms have shown that the constituent cells are distributed on a helix convoluted on a spherical surface. To analyze the magnetic properties of the distribution of magnetic moments on this curve, we calculated the magnetic energy numerically as well as the vectorial sum of the magnetic moment distribution as a function of the number of cells, the sphere radius and the number of spiral loops. This distribution proposes a magnetic organization not seen in any other living organism and shows that minimum energy configurations of magnetic moments are in spherical meridian chains, perpendicular to the helix turns. We observed that CMm has a high theoretical degree of magnetic optimization, showing that its geometrical structure is important to the magnetic response. Our results indicate that the helical structure must have magnetic significance.
多细胞磁小体(CMm)是一种多细胞生物,其中每个组成细胞都是磁细菌。已经观察到该生物的解聚会导致单个细胞死亡。CMm 的观察到的鞭毛运动表明组成细胞以协调的方式移动,这表明它们之间存在很强的相关性,并表明该聚集体可以被视为一个个体。由于每个组成细胞都是磁细菌,因此每个细胞都会向 CMm 生物体的总磁矩贡献一个磁矩向量,该向量可以通过所有组成磁矩的矢量和来计算。CMm 生物体的扫描电子显微镜图像表明,组成细胞分布在一个卷曲在球体表面上的螺旋上。为了分析该曲线上磁矩分布的磁特性,我们通过数值计算了磁能量以及磁矩分布的矢量和作为细胞数量、球体半径和螺旋圈数的函数。该分布提出了在任何其他生物体中都未见的磁组织,并且表明磁矩的最小能量配置是在垂直于螺旋圈的球径子午链中。我们观察到 CMm 具有很高的理论磁优化程度,表明其几何结构对磁响应很重要。我们的结果表明,螺旋结构必须具有磁意义。