RNAi knock-down of shrimp Litopenaeus vannamei Toll gene and immune deficiency gene reveals their difference in regulating antimicrobial peptides transcription

2014 ◽  
Vol 44 (2) ◽  
pp. 255-260 ◽  
Author(s):  
Fujun Hou ◽  
Shulin He ◽  
Yongjie Liu ◽  
Xiaowen Zhu ◽  
Chengbo Sun ◽  
...  
2021 ◽  
Author(s):  
Dahlia Nuñez‐Hernandez ◽  
Laura Camacho‐Jiménez ◽  
Lilia Leyva‐Carrillo ◽  
Alma B. Peregrino‐Uriarte ◽  
Elisa M. Valenzuela‐Soto ◽  
...  

Marine Drugs ◽  
2021 ◽  
Vol 19 (5) ◽  
pp. 250
Author(s):  
Mingzhe Sun ◽  
Shihao Li ◽  
Xinjia Lv ◽  
Jianhai Xiang ◽  
Yuanan Lu ◽  
...  

Different shrimp species are known to possess apparent distinct resistance to different pathogens in aquaculture. However, the molecular mechanism underlying this finding still remains unknown. One kind of important antimicrobial peptides, anti-lipopolysaccharide factors (ALF), exhibit broad-spectrum antimicrobial activities. Here, we reported a newly identified ALF from the shrimp Litopenaeus vannamei and compared the immune function with its counterpart in the shrimp Fenneropenaeus chinensis. The ALF, designated as LvALF8, was specifically expressed in the lymphoid organ of L. vannamei. The expression level of LvALF8 was apparently changed after white spot syndrome virus (WSSV) or Vibrio parahaemolyticus challenges. The synthetic LBD peptide of LvALF8 (LvALF8-LBD) showed strong antibacterial activities against most tested Gram-negative and Gram-positive bacteria. LvALF8-LBD could also inhibit the in vivo propagation of WSSV similar as FcALF8-LBD, the LBD of LvALF8 counterpart in F. chinensis. However, LvALF8-LBD and FcALF8-LBD exhibited apparently different antibacterial activity against V. parahaemolyticus, the main pathogen causing acute hepatopancreatic necrosis disease (AHPND) of affected shrimp. A structural analysis showed that the positive net charge and amphipathicity characteristics of LvALF8-LBD peptide were speculated as two important components for its enhanced antimicrobial activity compared to those of FcALF8-LBD. These new findings may not only provide some evidence to explain the distinct disease resistance among different shrimp species, but also lay out new research ground for the testing and development of LBD-originated antimicrobial peptides to control of shrimp diseases.


2009 ◽  
Vol 46 (8-9) ◽  
pp. 1897-1904 ◽  
Author(s):  
Pei-Hui Wang ◽  
Zhi-Hua Gu ◽  
Xian-De Huang ◽  
Bo-Du Liu ◽  
Xie-xiong Deng ◽  
...  

2021 ◽  
Vol 11 (1) ◽  
Author(s):  
Pragya Prakash ◽  
Arghyashree Roychowdhury-Sinha ◽  
Akira Goto

AbstractDrosophila immune deficiency (IMD) pathway is similar to the human tumor necrosis factor receptor (TNFR) signaling pathway and is preferentially activated by Gram-negative bacterial infection. Recent studies highlighted the importance of IMD pathway regulation as it is tightly controlled by numbers of negative regulators at multiple levels. Here, we report a new negative regulator of the IMD pathway, Verloren (Velo). Silencing of Velo led to constitutive expression of the IMD pathway dependent antimicrobial peptides (AMPs), and Escherichia coli stimulation further enhanced the AMP expression. Epistatic analysis indicated that Velo knock-down mediated AMP upregulation is dependent on the canonical members of the IMD pathway. The immune fluorescent study using overexpression constructs revealed that Velo resides both in the nucleus and cytoplasm, but the majority (~ 75%) is localized in the nucleus. We also observed from in vivo analysis that Velo knock-down flies exhibit significant upregulation of the AMP expression and reduced bacterial load. Survival experiments showed that Velo knock-down flies have a short lifespan and are susceptible to the infection of pathogenic Gram-negative bacteria, P. aeruginosa. Taken together, these data suggest that Velo is an additional new negative regulator of the IMD pathway, possibly acting in both the nucleus and cytoplasm.


Marine Drugs ◽  
2018 ◽  
Vol 16 (1) ◽  
pp. 31 ◽  
Author(s):  
Cairé Barreto ◽  
Jaqueline Coelho ◽  
Jianbo Yuan ◽  
Jianhai Xiang ◽  
Luciane Perazzolo ◽  
...  

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