An Hongde, Wei Dongsheng, Xiao Tingting
Department of Microbiology, College of Life Science, Nankai University, Tianjin, 300071, P. R. China.
J Microbiol. 2015 Sep;53(9):606-15. doi: 10.1007/s12275-015-4705-4. Epub 2015 Aug 1.
One of the laccase isoforms in the brown rot fungus Postia placenta is thought to contribute to the production of hydroxyl radicals, which play an important role in lignocellulose degradation. However, the presence of at least two laccase isoforms in this fungus makes it difficult to understand the details of this mechanism. In this study, we systematically investigated the transcriptional patterns of two laccase genes, Pplcc1 and Pplcc2, by quantitative PCR (qPCR) to better understand the mechanism. The qPCR results showed that neither of the two genes was expressed constitutively throughout growth in liquid culture or during the degradation of a woody substrate. Transcription of Pplcc1 was upregulated under nitrogen depletion and in response to a high concentration of copper in liquid culture, and during the initial colonization of intact aspen wafer. However, it was subject to catabolite repression by a high concentration of glucose. Transcription of Pplcc2 was upregulated by stresses caused by ferulic acid, 2, 6-dimethylbenzoic acid, and ethanol, and under osmotic stress in liquid culture. However, the transcription of Pplcc2 was downregulated upon contact with the woody substrate in solid culture. These results indicate that Pplcc1 and Pplcc2 are differentially regulated in liquid and solid cultures. Pplcc1 seems to play the major role in producing hydroxyl radicals and Pplcc2 in the stress response during the degradation of a woody substrate.
褐腐菌胎盘多隔孢漆酶同工酶之一被认为有助于羟基自由基的产生,而羟基自由基在木质纤维素降解中发挥着重要作用。然而,该真菌中至少存在两种漆酶同工酶,这使得难以了解该机制的详细情况。在本研究中,我们通过定量PCR(qPCR)系统地研究了两个漆酶基因Pplcc1和Pplcc2的转录模式,以更好地理解该机制。qPCR结果表明,在液体培养的整个生长过程中或木质底物降解过程中,这两个基因均非组成型表达。Pplcc1的转录在氮缺乏、液体培养中对高浓度铜的响应以及完整白杨薄片的初始定殖过程中上调。然而,它受到高浓度葡萄糖的分解代谢物阻遏。Pplcc2的转录在阿魏酸、2,6 - 二甲基苯甲酸和乙醇引起的胁迫以及液体培养中的渗透胁迫下上调。然而,在固体培养中与木质底物接触后,Pplcc2的转录下调。这些结果表明,Pplcc1和Pplcc2在液体和固体培养中受到不同的调控。在木质底物降解过程中,Pplcc1似乎在产生羟基自由基方面起主要作用,而Pplcc2在应激反应中起主要作用。