Liu Jing, Li Jie, Dong Hong, Chen Yunfu, Wang Yansheng, Wu Hang, Li Changrun, Weaver David T, Zhang Lixin, Zhang Buchang
Institute of Health Sciences, School of Chemistry and Chemical Engineering, School of Life Sciences, Anhui University, Hefei, 230601, China.
State Key Laboratory of Bioreactor Engineering, East China University of Science and Technology, Shanghai, 200237, China.
Appl Microbiol Biotechnol. 2017 Jul;101(14):5773-5783. doi: 10.1007/s00253-017-8339-9. Epub 2017 Jun 11.
Lrp/AsnC family regulators have been found in many bacteria as crucial regulators controlling diverse cellular processes. By genomic alignment, we found that SCO3361, an Lrp/AsnC family protein from Streptomyces coelicolor, shared the highest similarity to the SACE_Lrp from Saccharopolyspora erythraea. Deletion of SCO3361 led to dramatic reduction in actinorhodin (Act) production and delay in aerial mycelium formation and sporulation on solid media. Dissection of the mechanism underlying the function of SCO3361 in Act production revealed that it altered the transcription of the cluster-situated regulator gene actII-ORF4 by directly binding to its promoter. SCO3361 was an auto-regulator and simultaneously activated the transcription of its adjacent divergently transcribed gene SCO3362. SCO3361 affected aerial hyphae formation and sporulation of S. coelicolor by activating the expression of amfC, whiB, and ssgB. Phenylalanine and cysteine were identified as the effector molecules of SCO3361, with phenylalanine reducing the binding affinity, whereas cysteine increasing it. Moreover, interactional regulation between SCO3361 and SACE_Lrp was discovered for binding to each other's target gene promoter in this work. Our findings indicate that SCO3361 functions as a pleiotropic regulator controlling secondary metabolism and morphological development in S. coelicolor.
Lrp/AsnC家族调控因子在许多细菌中被发现是控制多种细胞过程的关键调控因子。通过基因组比对,我们发现来自天蓝色链霉菌的Lrp/AsnC家族蛋白SCO3361与红霉糖多孢菌的SACE_Lrp具有最高的相似性。缺失SCO3361导致放线紫红素(Act)产量显著降低,以及在固体培养基上气生菌丝形成和孢子形成延迟。对SCO3361在Act产生中功能的机制剖析表明,它通过直接结合其启动子改变了簇状调控基因actII-ORF4的转录。SCO3361是一种自调控因子,同时激活其相邻的反向转录基因SCO3362的转录。SCO3361通过激活amfC、whiB和ssgB的表达影响天蓝色链霉菌的气生菌丝形成和孢子形成。苯丙氨酸和半胱氨酸被鉴定为SCO3361的效应分子,苯丙氨酸降低结合亲和力,而半胱氨酸增加结合亲和力。此外,在这项工作中发现了SCO3361和SACE_Lrp之间相互作用调控以结合彼此的靶基因启动子。我们的研究结果表明,SCO3361作为一种多效调控因子控制天蓝色链霉菌的次级代谢和形态发育。