Meijer Susan, de Jongh Willem Adriaan, Olsson Lisbeth, Nielsen Jens
Center for Microbial Biotechnology, DTU-BioSys, Lyngby, Denmark.
Appl Microbiol Biotechnol. 2009 Aug;84(1):157-67. doi: 10.1007/s00253-009-2027-3. Epub 2009 May 15.
The acuB gene of Aspergillus niger is an ortholog of facB in Aspergillus nidulans. Under carbon-repression conditions, facB is repressed, thereby preventing acetate metabolism when the repressing carbon source is present. Even though facB is reported to be repressed directly by CreA, it is believed that a basal level of FacB activity exists under glucose-repressive conditions. In the present study, the effect of deletion of acuB on the physiology of A. niger was assessed. Differences in organic acid and acetate production, enzyme activities and extracellular amino and non-amino organic acid production were determined under glucose-repressing and -derepressing conditions. Furthermore, consumption of alternative carbon sources (e.g. xylose, citrate, lactate and succinate) was investigated. It was shown that AcuB has pleiotropic effects on the physiology of A. niger. The results indicate that metabolic pathways that are not directly involved in acetate metabolism are influenced by acuB deletion. Clear differences in organic acid consumption and production were detected between the acuB and reference strain. However, the hypothesis that AcuB is responsible for basal AcuA activity necessary for activation of acetate metabolic pathways, even during growth on glucose, could not be confirmed. The experiments demonstrated that also when acuB was deleted, no acetate was formed. Therefore, AcuB cannot be the only activator of AcuA, and another control mechanism has to be available for activating AcuA.
黑曲霉的acuB基因是构巢曲霉中facB的直系同源基因。在碳源阻遏条件下,facB受到抑制,从而在存在阻遏性碳源时阻止乙酸代谢。尽管据报道facB直接受CreA抑制,但据信在葡萄糖阻遏条件下存在基础水平的FacB活性。在本研究中,评估了acuB缺失对黑曲霉生理学的影响。在葡萄糖阻遏和去阻遏条件下,测定了有机酸和乙酸产量、酶活性以及细胞外氨基酸和非氨基酸有机酸产量的差异。此外,还研究了替代碳源(如木糖、柠檬酸盐、乳酸盐和琥珀酸盐)的消耗情况。结果表明,AcuB对黑曲霉的生理学具有多效性影响。结果表明,不直接参与乙酸代谢的代谢途径受acuB缺失的影响。在acuB菌株和参考菌株之间检测到有机酸消耗和产量的明显差异。然而,即使在葡萄糖生长期间,AcuB负责激活乙酸代谢途径所需的基础AcuA活性这一假设也无法得到证实。实验表明,即使删除acuB,也不会形成乙酸。因此,AcuB不可能是AcuA的唯一激活剂,必须有另一种控制机制来激活AcuA。