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The Barnacle Balanus improvisus as a Marine Model - Culturing and Gene Expression
Published on: August 8, 2018
iTRAQ-based proteomic profiling of the barnacle Balanus amphitrite in response to the antifouling compound meleagrin
Zhuang Han1, Jin Sun, Yu Zhang
1Key Laboratory of Marine Bio-resources Sustainable Utilization, South China Sea Institute of Oceanology, Chinese Academy of Sciences, 164 West Xingang Road, Guangzhou 510301, China.
Abstract:
Marine biofouling refers to the unwanted accumulation of fouling organisms, such as barnacles, on artificial surfaces, resulting in severe consequences for marine industries. Meleagrin is a potential nontoxic antifoulant that is isolated from the fungus Penicillium sp.; however, its mechanistic effect mode of action on larval settlement remains unknown. Here, we applied iTRAQ coupled with 2D LC-MS/MS proteomic analysis to investigate the effect of meleagrin on the proteomic expression profile of cyprid development and aging in the barnacle Balanus amphitrite . Fifty proteins were differentially expressed in response to treatment with meleagrin, among which 26 proteins were associated with cyprid development/aging and 24 were specifically associated with the meleagrin treatment. The 66 proteins that were associated with aging only remained unaltered during exposure to meleagrin. Using KEGG analysis, those proteins were assigned to several groups, including metabolic pathways, ECM-receptor interactions, and the regulation of the actin cytoskeleton. Among the 24 proteins that were not related to the development/aging process, expression of the cyprid major protein (CMP), a vitellogenin-like protein, increased after the meleagrin treatment, which suggested that meleagrin might affect the endocrine system and prevent the larval molting cycle. With the exception of the chitin binding protein that mediates the molting process and ATPase-mediated energy processes, the majority of proteins with significant effects in previous studies in response to cyprid treatment with butenolide and polyether B remained unchanged in the present study, suggesting that meleagrin may exhibit a different mechanism.
Insights
Meleagrin, a natural antifoulant, was studied for its effects on barnacle larvae. Proteomic analysis revealed meleagrin alters proteins related to development and potentially disrupts the molting cycle, suggesting a novel antifouling mechanism.
Area of Science:
- Marine Biology
- Proteomics
- Biochemistry
Background:
- Marine biofouling causes significant economic losses in marine industries.
- Meleagrin, derived from fungus Penicillium sp., is a promising non-toxic antifoulant.
- The mechanism of meleagrin's action on barnacle larval settlement is not well understood.
Purpose of the Study:
- To investigate the proteomic changes in barnacle cyprid larvae exposed to meleagrin.
- To elucidate the mechanism of action of meleagrin as an antifoulant.
- To compare meleagrin's effects with other known antifoulants.
Main Methods:
- iTRAQ coupled with 2D LC-MS/MS proteomic analysis was used.
- Proteomic expression profiles of Balanus amphitrite cyprids were analyzed.
- KEGG pathway analysis was performed on differentially expressed proteins.
Main Results:
- Fifty proteins showed differential expression in response to meleagrin.
- Proteins involved in metabolic pathways, ECM-receptor interactions, and actin cytoskeleton regulation were affected.
- Meleagrin treatment increased cyprid major protein (CMP) expression, suggesting endocrine system interference and molting cycle disruption.
Conclusions:
- Meleagrin exhibits a distinct antifouling mechanism compared to previously studied compounds.
- Meleagrin may act by interfering with the endocrine system and larval molting.
- Further research is needed to fully characterize meleagrin's antifouling properties.
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