Singh Shailendra P, Montgomery Beronda L
Department of Energy - Plant Research Laboratory, Michigan State University, Plant Biology Laboratories, 612 Wilson Road, Room 106, East Lansing, MI, 48824-1312, USA.
Mol Microbiol. 2014 Jul;93(1):167-82. doi: 10.1111/mmi.12649. Epub 2014 May 29.
Photoregulation of pigmentation during complementary chromatic acclimation (CCA) is well studied in Fremyella diplosiphon; however, mechanistic insights into the CCA-associated morphological changes are still emerging. F. diplosiphon cells are rectangular under green light (GL), whereas cells are smaller and spherical under red light (RL). Here, we investigate the role of morphogenes bolA and mreB during CCA using gene expression and gene function analyses. The F. diplosiphon bolA gene is essential as its complete removal from the genome was unsuccessful. Depletion of bolA resulted in slow growth, morphological defects and the accumulation of high levels of reactive oxygen species in a partially segregated ΔbolA strain. Higher expression of bolA was observed under RL and was correlated with lower expression of mreB and mreC genes in wild type. In a ΔrcaE strain that lacks the red-/green-responsive RcaE photoreceptor, the expression of bolA and mre genes was altered under both RL and GL. Observed gene expression relationships suggest that mreB and mreC expression is controlled by RcaE-dependent photoregulation of bolA expression. Expression of F. diplosiphon bolA and mreB homologues in Escherichia coli demonstrated functional conservation of the encoded proteins. Together, these studies establish roles for bolA and mreB in RcaE-dependent regulation of cellular morphology.
在双色藻(Fremyella diplosiphon)中,互补色适应(CCA)过程中色素沉着的光调节已得到充分研究;然而,对于与CCA相关的形态变化的机制性见解仍在不断涌现。在绿光(GL)下,双色藻细胞呈长方形,而在红光(RL)下,细胞较小且呈球形。在这里,我们通过基因表达和基因功能分析来研究形态发生基因bolA和mreB在CCA过程中的作用。双色藻bolA基因至关重要,因为从基因组中完全去除它并不成功。在部分分离的ΔbolA菌株中,bolA的缺失导致生长缓慢、形态缺陷以及高水平活性氧的积累。在野生型中,在RL下观察到bolA的表达较高,并且与mreB和mreC基因的较低表达相关。在缺乏红/绿响应性光感受器RcaE的ΔrcaE菌株中,在RL和GL下bolA和mre基因的表达均发生了改变。观察到的基因表达关系表明,mreB和mreC的表达受RcaE依赖的bolA表达的光调节控制。双色藻bolA和mreB同源物在大肠杆菌中的表达证明了所编码蛋白质的功能保守性。总之,这些研究确定了bolA和mreB在RcaE依赖的细胞形态调节中的作用。