Silva Rui, Aguiar Tatiana Q, Domingues Lucília
CEB - Centre of Biological Engineering, University of Minho, 4710-057 Braga, Portugal.
CEB - Centre of Biological Engineering, University of Minho, 4710-057 Braga, Portugal.
J Biotechnol. 2015 Jan 10;193:37-40. doi: 10.1016/j.jbiotec.2014.11.009. Epub 2014 Nov 15.
The Ashbya gossypii riboflavin biosynthetic pathway and its connection with the purine pathway have been well studied. However, the outcome of genetic alterations in the pyrimidine pathway on riboflavin production by A. gossypii had not yet been assessed. Here, we report that the blockage of the de novo pyrimidine biosynthetic pathway in the recently generated A. gossypii Agura3 uridine/uracil auxotrophic strain led to improved riboflavin production on standard agar-solidified complex medium. When extra uridine/uracil was supplied, the production of riboflavin by this auxotroph was repressed. High concentrations of uracil hampered this (and the parent) strain growth, whereas excess uridine favored the A. gossypii Agura3 growth. Considering that the riboflavin and the pyrimidine pathways share the same precursors and that riboflavin overproduction may be triggered by nutritional stress, we suggest that overproduction of riboflavin by the A. gossypii Agura3 may occur as an outcome of a nutritional stress response and/or of an increased availability in precursors for riboflavin biosynthesis, due to their reduced consumption by the pyrimidine pathway.
棉阿舒囊霉的核黄素生物合成途径及其与嘌呤途径的联系已得到充分研究。然而,嘧啶途径的基因改变对棉阿舒囊霉核黄素产生的影响尚未得到评估。在此,我们报道,在最近构建的棉阿舒囊霉Agura3尿苷/尿嘧啶营养缺陷型菌株中,从头嘧啶生物合成途径的阻断导致在标准琼脂固化复合培养基上核黄素产量提高。当提供额外的尿苷/尿嘧啶时,该营养缺陷型菌株的核黄素产生受到抑制。高浓度的尿嘧啶会阻碍该(以及亲本)菌株的生长,而过量的尿苷则有利于棉阿舒囊霉Agura3的生长。鉴于核黄素和嘧啶途径共享相同的前体,并且核黄素的过量产生可能由营养应激触发,我们认为棉阿舒囊霉Agura3核黄素的过量产生可能是营养应激反应的结果,和/或由于嘧啶途径对前体的消耗减少,核黄素生物合成的前体可用性增加所致。