Valladares Ana, Maldener Iris, Muro-Pastor Alicia M, Flores Enrique, Herrero Antonia
Instituto de Bioquímica Vegetal y Fotosíntesis, Centro de Investigaciones Científicas Isla de la Cartuja, Américo Vespucio 49, E-41092 Seville, Spain.
J Bacteriol. 2007 Jun;189(12):4425-30. doi: 10.1128/JB.00220-07. Epub 2007 Apr 6.
Heterocyst development was analyzed in mutants of the heterocyst-forming cyanobacterium Anabaena sp. strain PCC 7120 bearing inactivated cox2 and/or cox3 genes, encoding heterocyst-specific terminal respiratory oxidases. At the morphological level, the cox2 cox3 double mutant (strain CSAV141) was impaired in membrane reorganization involving the so-called honeycomb system that in the wild-type strain is largely or exclusively devoted to respiration, accumulated glycogen granules at conspicuously higher levels than the wild type (in both vegetative cells and heterocysts), and showed a delay in carboxysome degradation upon combined nitrogen deprivation. Consistently, chemical analysis confirmed higher accumulation of glycogen in strain CSAV141 than in the wild type. No impairment was observed in the formation of the glycolipid or polysaccharide layers of the heterocyst envelope, consistent with the chemical detection of heterocyst-specific glycolipids, or in the expression of the heterocyst-specific genes nifHDK and fdxH. However, nitrogenase activity under oxic conditions was impaired in strain CSAV135 (cox3) and undetectable in strain CSAV141 (cox2 cox3). These results show that these dedicated oxidases are required for normal development and performance of the heterocysts and indicate a central role of Cox2 and, especially, of Cox3 in the respiratory activity of the heterocysts, decisively contributing to protection of the N(2) fixation machinery against oxygen. However, in contrast to the case for other diazotrophic bacteria, expression of nif genes in Anabaena seems not to be affected by oxygen.
在形成异形胞的蓝细菌鱼腥藻7120(Anabaena sp. strain PCC 7120)的突变体中分析了异形胞的发育情况,这些突变体的cox2和/或cox3基因失活,cox2和cox3基因编码异形胞特异性末端呼吸氧化酶。在形态学水平上,cox2 cox3双突变体(CSAV141菌株)在涉及所谓蜂窝系统的膜重组方面存在缺陷,在野生型菌株中,该系统主要或专门用于呼吸作用;与野生型相比,CSAV141菌株(在营养细胞和异形胞中)糖原颗粒积累水平明显更高;在联合氮剥夺时,羧酶体降解出现延迟。与此一致,化学分析证实CSAV141菌株中糖原的积累高于野生型。未观察到异形胞包膜糖脂或多糖层形成存在缺陷,这与异形胞特异性糖脂的化学检测结果一致,也未观察到异形胞特异性基因nifHDK和fdxH的表达存在缺陷。然而,CSAV135菌株(cox3)在有氧条件下的固氮酶活性受损,而在CSAV141菌株(cox2 cox3)中未检测到固氮酶活性。这些结果表明,这些特定的氧化酶是异形胞正常发育和功能所必需的,表明Cox2尤其是Cox3在异形胞的呼吸活动中起核心作用,对保护固氮机制免受氧气影响起决定性作用。然而,与其他固氮细菌的情况不同,鱼腥藻中nif基因的表达似乎不受氧气影响。