Liu R., T. Zhu, T. Yang, Z. Y. Yang, A. Ren, L. Shi, J. Zhu, H. S. Yu, M. W. Zhao*, NO regulates ganoderic acid biosynthesis by the S-nitrosylation of aconitase under HS in Ganoderma lucidum, Environmental Microbiology, 2020, 10.1111/1462-2920.15109
Hu Y. R., S. S. Hu, W. Z. Xu, J. Zhu, L. Shi, A. Ren, M. W. Zhao*, In Ganoderma lucidum, Glsnf1 regulates cellulose degradation by inhibiting GlCreA during the utilization of cellulose, Environmental Microbiology, 2020, 22(1): 107–121
Hu Y. R., W. Z. Xu, S. S. Hu, L. D. Lian, J. Zhu, A. Ren, L. Shi, M. W. Zhao*, Glsnf1-mediated metabolic rearrangement participates in coping with heat stress and influencing secondary metabolism in Ganoderma lucidum, Free Radical Biology and Medicine, 2020, 147: 220–230
Zhu J., Z. H. Sun, S. Q. Song, D. K. Shi, L. D. Lian, L. Shi, A. Ren, H. S. Yu, M. W. Zhao*, Dual function of AreA, a GATA transcription factor, in influencing ganoderic acid biosynthesis in Ganoderma lucidum, Environmental Microbiology, 2019, 21(11):4166-4179
Hu Y. R., S. S. Hu, W. Z. Xu, J. Zhu, L. Shi, A. Ren, M. W. Zhao*, In Ganoderma lucidum, Glsnf1 regulates cellulose degradation by inhibiting GlCreA during the utilization of cellulose, Environmental Microbiology, 2019, DOI: 10.1111/EMI.14826
Liu R.※, P. F. Cao※, A. Ren, S. L. Wang, T. Yang, T. Zhu, L. Shi, J. Zhu, A. L. Jiang, M. W. Zhao*, SA inhibits complex III activity to generate reactive oxygen species and thereby induces GA overproduction in Ganoderma lucidum, Redox Biology, 2018, 16: 388-400
Liu Y. N., X. X. Lu, A. Ren, L. Shi, J. Zhu, A. L. Jiang, H. S. Yu, M. W. Zhao*, Conversion of phosphatidylinositol (PI) to PI4-phosphate (PI4P) and then to PI (4,5) P2 is essential for the cytosolic calcium concentration under heat stress in Ganoderma lucidum, Environmental Microbiology, 2018, 20(7): 2456–2468
Gao T. ※, L. Shi※, T. J. Zhang, A. Ren, A. L. Jiang, H. S. Yu, M. W. Zhao*, Cross-talk between calcium and ROS regulates hyphal branching and ganoderic acids biosynthesis in Ganoderma lucidum under copper stress, Applied and Environmental Microbiology, 2018, 84(13) : e00438-18
Liu R.※, L. Shi※, T. Zhu, T. Yang, A. Ren, J. Zhu, M. W. Zhao*, Cross-talk between nitric oxide and calcium-calmodulin to regulate GA biosynthesis in Ganoderma lucidum under heat stress, Applied and Environmental Microbiology, 2018, 84(10) : e00043-18
Liu Y. N., X. X. Lu, C. Dai, Y. P. Lu, A. Ren, L. Shi, J. Zhu, A. L. Jiang, H. S. Yu, M. W. Zhao*, Phospholipase D and phosphatidic acid mediate heat stress induced secondary metabolism in Ganoderma lucidum, Environmental Microbiology, 2017, 19(11), 4657–4669,
Liu Y. N., T. J. Zhang, X. X. Lu, B. L. Ma, A. Ren, L. Shi, A. L. Jiang, H. S. Yu, M. W. Zhao*, Membrane fluidity is involved in the regulation of heat stress induced secondary metabolism in Ganoderma lucidum, Environmental Microbiology, 2017, 19(4): 1653–1668 ,
Ren A.※, R. Liu※, Z. G. Miao※, X. Zhang, P. F. Cao, T. X. Chen, C. Y. Li, L. Shi, A. L. Jiang, M. W. Zhao*, Hydrogen-rich water regulates effects of ROS balance on morphology, growth and secondary metabolism via glutathione peroxidase in Ganoderma lucidum, Environmental Microbiology, 2017, 19(2): 566–583,
Wu C. G., J. L. Tian, R. Liu, P. F. Cao, T. J. Zhang, A. Ren, L. Shi, M. W. Zhao*, Ornithine decarboxylase mediated production of putrescine influences ganoderic acid biosynthesis via the regulation of ROS in Ganoderma lucidum, Applied and Environmental Microbiology, 2017, 83(20): e01289-17
Han Q.※, F. L. Wu※, X. N. Wang, H. Qi, L. Shi, A. Ren, Q. H. Liu, M. W. Zhao* and C. M. Tang*, The bacterial lipopeptide iturins induce Verticillium dahliae cell death by affecting fungal signaling pathways and mediate plant defence responses involved in pathogen-associated molecular pattern-triggered immunity, Environmental Microbiology, 2015, 17(4), 1166–1188
Mu D. S., C. Y. Li, X. C. Zhang, X. B. Li, L. Shi, A. Ren, and M. W. Zhao*, Functions of the nicotinamide adenine dinucleotide phosphate oxidase family in Ganoderma lucidum: an essential role in ganoderic acid biosynthesis regulation, hyphal branching, fruiting body development, and oxidative-stress resistance, Environmental Microbiology, 2014, 16(6), 1709–1728,