Li Chenghua
Ningbo University
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Publication
Featured researches published by Li Chenghua.
Scientific Reports | 2016
Shao Yina; Li Chenghua; Zhang Weiwei; Wang Zhenhui; Lv Zhimeng
In this study, three typical members representative of different arginine metabolic pathways were firstly identified from Apostichopus japonicus, including nitric oxide synthase (NOS), arginase, and agmatinase. Spatial expression analysis revealed that the AjNOS transcript presented negative expression patterns relative to those of Ajarginase or Ajagmatinase in most detected tissues. Furthermore, Vibrio splendidus-challenged coelomocytes and intestine, and LPS-exposed primary coelomocytes could significantly induce AjNOS expression, followed by obviously inhibited Arginase and AjAgmatinase transcripts at the most detected time points. Silencing the three members with two specific siRNAs in vivo and in vitro collectively indicated that AjNOS not only compete with Ajarginase but also with Ajagmatinase in arginine metabolism. Interestingly, Ajarginase and Ajagmatinase displayed cooperative expression profiles in arginine utilization. More importantly, live pathogens of V. splendidus and Vibrio parahaemolyticus co-incubated with primary cells also induced NO production and suppressed arginase activity in a time-dependent at an appropriate multiplicity of infection (MOI) of 10, without non-pathogen Escherichia coli. When increasing the pathogen dose (MOI = 100), arginase activity was significantly elevated, and NO production was depressed, with a larger magnitude in V. splendidus co-incubation. The present study expands our understanding of the connection between arginine’s metabolic and immune responses in non-model invertebrates.
PLOS ONE | 2017
Chen Ji; Shi Hua; Chen Yonglong; Fan Shijie; Liu Dingyi; Li Chenghua
ΔNp63αplays key roles in cell survival and proliferation. So its expression is always tightly controlled in cells. We previously reported that DNA damage down-regulates transcription of ΔNp63αin FaDu and HaCat cells, which contributes to cell apoptosis. In the present study, we found that DNA damage induces down-regulation of ΔNp63αvia facilitating its proteasomal degradation in cell lines such as MDA-MB-231 and MCF10A. Further investigation revealed that transcription of WWP1 is stimulated by DNA damage in these cells. Knock-down of WWP1 abrogates DNA damage-induced down-regulation of ΔNp63αand partially rescues cell apoptosis. Interestingly, DNA damage may stimulate WWP1 through different mechanisms in different cell types: it up-regulates transcription of WWP1 in a p53-dependent manner in MCF10A and HEK293 cells, while miR-452 may be involved in DNA damage-induced up-regulation of WWP1 in MDA-MB-231 cells. Our study demonstrates a novel pathway which regulates ΔNp63αupon cellular response to chemotherapeutic agents.
Archive | 2014
Su Xiurong; Ying Qi; Zhou Jun; Li Chenghua; Zhang Chundan; Li Ye
Fish & Shellfish Immunology | 2016
Sun Xueping; Lv Zhimeng; Li Chenghua; Lu Meng; Zhang Pengjuan; Zhang Weiwei
Journal of The World Aquaculture Society | 2016
Liang Weikang; Zhang Shanshan; Zhang Weiwei; Li Chenghua; Han Qingxi
Archive | 2017
Li Chenghua; Cui Yi; Zhang Weiwei; Zhao Xuelin; Shao Yina
Applied Microbiology and Biotechnology | 2017
Zhang Shanshan; Liu Ningning; Liang Weikang; Han Qingxi; Zhang Weiwei; Li Chenghua
Archive | 2016
Li Chenghua; Liu Ningning; Zhang Weiwei
Archive | 2016
Li Chenghua; Wang Zhenhui; Zhang Weiwei; Shao Yina; Li Ye; Lyu Zhimeng
Journal of Hazardous Materials | 2016
Zhang Weiwei; Liang Weikang; Li Chenghua