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Liu M, Sui C, Wang B, Ma P, Zhang W, Huang R, Wang Y, Qiu Z, Zhao W, Zhang T, Zhang Q, Liu Y. Effect of Pomacea canaliculata on Limnodrilus hoffmeisteri: Behavior, Oxidative Stress, and Microbiota Alterations. Ecol Evol 2024; 14:e70603. [PMID: 39600922 PMCID: PMC11588428 DOI: 10.1002/ece3.70603] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 07/29/2024] [Revised: 10/29/2024] [Accepted: 11/06/2024] [Indexed: 11/29/2024] Open
Abstract
Pomacea canaliculata is an invasive species which has significantly impacted native ecosystems globally. The benthic worm Limnodrilus hoffmeisteri is essential for the stability of the native aquatic ecosystem, facilitating the nutrient cycle dynamics through bioturbation. Nevertheless, limited information exists regarding the impact of P. canaliculata on those key native benthic species. Present study evaluated the impacts of P. canaliculata on L. hoffmeisteri by exposing L. hoffmeisteri to P. canaliculata (PC group) and the native snail Bellamya aeruginosa (BA group), with a control group consisting of no snails (NS group). The survival rate of L. hoffmeisteri in the PC group persisted diminished over 14 days, with notable declines in the rates of successful food acquisition and aggregation, an increase in migration, and a decrease in swing frequency. Elevated oxidative stress levels were linked to these alterations in L. hoffmeisteri behavior. Additionally, the presence of P. canaliculata increased the abundance of intestinal pathogenic bacteria in L. hoffmeisteri, with Aeromonas being one of the most lethal. Experimental models of Aeromonas-free P. canaliculata (AFPC), re-infected AFPC (IPC), and Aeromonas (As) were established to illustrate the role of Aeromonas in the decline of L. hoffmeisteri. Similar patterns in L. hoffmeisteri survival, behavior, and oxidative stress were observed in As, IPC, and PC group; however, these effects were mitigated by the elimination of Aeromonas in the AFPC group. Furthermore, L. hoffmeisteri was fatally affected by the four Aeromonas strains that were obtained from P. canaliculata intestine. These findings indicate that P. canaliculata exerts a deleterious impact on L. hoffmeisteri, and Aeromonas colonizing in intestine plays an important role. This study reveals a novel invasion mechanism of P. canaliculata.
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Affiliation(s)
- Mingyuan Liu
- School of Life ScienceLiaoning Normal UniversityDalianChina
- Key Laboratory of Environment Controlled Aquaculture (Dalian Ocean University) Ministry of EducationDalianChina
| | - Changrun Sui
- School of Life ScienceLiaoning Normal UniversityDalianChina
- Key Laboratory of Environment Controlled Aquaculture (Dalian Ocean University) Ministry of EducationDalianChina
| | - Baolong Wang
- Key Laboratory of Environment Controlled Aquaculture (Dalian Ocean University) Ministry of EducationDalianChina
- College of Fisheries and Life ScienceDalian Ocean UniversityDalianChina
| | - Pengfei Ma
- Key Laboratory of Environment Controlled Aquaculture (Dalian Ocean University) Ministry of EducationDalianChina
- College of Marine Science and TechnologyDalian Ocean UniversityDalianChina
| | - Weixiao Zhang
- Key Laboratory of Environment Controlled Aquaculture (Dalian Ocean University) Ministry of EducationDalianChina
- College of Marine Science and TechnologyDalian Ocean UniversityDalianChina
| | - Ruipin Huang
- Key Laboratory of Environment Controlled Aquaculture (Dalian Ocean University) Ministry of EducationDalianChina
- College of Fisheries and Life ScienceDalian Ocean UniversityDalianChina
| | - Yuqing Wang
- Key Laboratory of Environment Controlled Aquaculture (Dalian Ocean University) Ministry of EducationDalianChina
- College of Marine Science and TechnologyDalian Ocean UniversityDalianChina
| | - Zhujun Qiu
- Key Laboratory of Environment Controlled Aquaculture (Dalian Ocean University) Ministry of EducationDalianChina
- College of Marine Science and TechnologyDalian Ocean UniversityDalianChina
| | - Wenyu Zhao
- Key Laboratory of Environment Controlled Aquaculture (Dalian Ocean University) Ministry of EducationDalianChina
- College of Marine Science and TechnologyDalian Ocean UniversityDalianChina
| | - Tao Zhang
- Key Laboratory of Environment Controlled Aquaculture (Dalian Ocean University) Ministry of EducationDalianChina
- College of Marine Science and TechnologyDalian Ocean UniversityDalianChina
| | - Qian Zhang
- Key Laboratory of Environment Controlled Aquaculture (Dalian Ocean University) Ministry of EducationDalianChina
- College of Fisheries and Life ScienceDalian Ocean UniversityDalianChina
| | - Ying Liu
- Key Laboratory of Environment Controlled Aquaculture (Dalian Ocean University) Ministry of EducationDalianChina
- College of Biosystems Engineering and Food ScienceZhejiang UniversityHangzhouChina
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Sui C, Liu M, Chuan S, Wang B, Zhang T, Zhang W, Huang R, Qiu Z, Wang Y, Zhao W, Liu Y, Zhang Q, Li J. Responses of survival, antioxidant system and intestinal microbiota of native snail Bellamya purificata to the invasive snail Pomacea canaliculata. Sci Rep 2024; 14:21267. [PMID: 39261504 PMCID: PMC11391085 DOI: 10.1038/s41598-024-71520-1] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 03/20/2024] [Accepted: 08/28/2024] [Indexed: 09/13/2024] Open
Abstract
Pomacea canaliculata is one of the most successful invader in worldwide, adversely affecting native ecosystem through direct predation or indirect competition, while the mechanism of indirect effects on native species remain poorly understood. To clarify the effects of P. canaliculata on the native near-niche species, Bellamya purificata, a widespread freshwater gastropod in China, was selected as the research subject. The changes of mortality, histology, antioxidant system as well as the intestinal flora diversity of B. purificata were explored in present study. The results showed that the median lethal dose of P. canaliculata culture solution for B. purificata was 23.76 ind/L and a concentration-dependent damage of both the gonad and hepatopancreas were observed, the gonadal villi were dissolved and the hepatopancreas cells were broken at 20 ind/L. Furthermore, different concentrations of P. canaliculata culture solution leading to the antioxidant damage on the enzyme or non-enzyme systems of B. purificata at various degrees. Additionally, a decrease in the diversity of the intestinal flora was observed, accompanied by an increase in the abundance of pathogenic bacteria such as Pseudomonas and Aeromonas after the exposure of the culture solution of P. canaliculata. Last, after being recovered in freshwater for 24 h, the antioxidant damage of B. purificata and the disturbance of intestinal flora diversity were still not recovered especially in the high concentration group. The indirect competitive mechanism of P. canaliculata culture solution on B. purificata were explored from the aspects of tissue, biochemical level and intestinal flora, which enriched the research of P. canaliculata invasion on native snails in China, and provided new insights for the study of the invasion strategy of P. canaliculata.
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Affiliation(s)
- Changrun Sui
- Liaoning Normal University, Dalian, 116081, China
| | - Mingyuan Liu
- Liaoning Normal University, Dalian, 116081, China
| | | | - Baolong Wang
- Key Laboratory of Environment Controlled Aquaculture, Ministry of Education (Dalian Ocean University), Dalian, 116023, China
| | - Tao Zhang
- Key Laboratory of Environment Controlled Aquaculture, Ministry of Education (Dalian Ocean University), Dalian, 116023, China
| | - Weixiao Zhang
- Key Laboratory of Environment Controlled Aquaculture, Ministry of Education (Dalian Ocean University), Dalian, 116023, China
| | - Ruipin Huang
- Key Laboratory of Environment Controlled Aquaculture, Ministry of Education (Dalian Ocean University), Dalian, 116023, China
| | - Zhujun Qiu
- Key Laboratory of Environment Controlled Aquaculture, Ministry of Education (Dalian Ocean University), Dalian, 116023, China
| | - Yuqing Wang
- Key Laboratory of Environment Controlled Aquaculture, Ministry of Education (Dalian Ocean University), Dalian, 116023, China
| | - Wenyu Zhao
- Key Laboratory of Environment Controlled Aquaculture, Ministry of Education (Dalian Ocean University), Dalian, 116023, China
| | - Ying Liu
- Zhejiang University, Hangzhou, 310030, China
| | - Qian Zhang
- Key Laboratory of Environment Controlled Aquaculture, Ministry of Education (Dalian Ocean University), Dalian, 116023, China.
| | - Jun Li
- Liaoning Normal University, Dalian, 116081, China.
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Liu M, Sui C, Wang B, Huang R, Zhang W, Zhang T, Zhang Q, Liu Y. Effects of short-term exposure to Pomacea canaliculata secretions on Limnodrilus hoffmeisteri and Propsilocerus akamusi: A study based on behavior, intestinal microbiota, and antioxidant system. Ecol Evol 2024; 14:e11591. [PMID: 38932957 PMCID: PMC11199190 DOI: 10.1002/ece3.11591] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 10/08/2023] [Revised: 05/27/2024] [Accepted: 06/03/2024] [Indexed: 06/28/2024] Open
Abstract
Pomacea canaliculata is one of the most notorious invasive aquatic snail, capable of influencing various aquatic organisms through their secretions. Limnodrilus hoffmeisteri and Propsilocerus akamusi are the most prevalent and powerful bioturbators in aquatic ecosystems. However, the mechanism of P. canaliculata's secretions affecting bioturbators remains unknown. This study aimed to investigate the effects of P. canaliculata's secretion on L. hoffmeisteri and P. akamusi. L. hoffmeisteri and P. akamusi were treated for 24 h with P. canaliculata and the native species Bellamya aeruginosa secretions at different densities (1 or 20). The migration numbers and aggregation rate of L. hoffmeisteri indicated that P. canaliculata secretion caused L. hoffmeisteri to become alert and migrate away from the nucleus community, resulting in poor population identification, especially at high concentrations. Moreover, the antioxidant enzymatic activity, lipid peroxidation, intestinal microbial diversity, and composition of the two bioturbators were analyzed. Superoxide dismutase (SOD) activity and malondialdehyde (MDA) concentration were elevated following P. canaliculata secretion treatment, indicating oxidative damage. Furthermore, the composition and diversity of intestinal microbiota of L. hoffmeisteri and P. akamusi were changed. The abundance of functional microbiota decreased, and pathogenic bacteria such as Aeromonas became dominant in the intestines of both bioturbators. The current research evaluates the effects of P. canaliculata secretion on the behavior, oxidative stress, and intestinal microbial composition and diversity of two bioturbators, providing new insights into the assessment of post-invaded ecosystems.
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Affiliation(s)
- Mingyuan Liu
- School of Life ScienceLiaoning Normal UniversityDalianChina
- Key Laboratory of Environment Controlled Aquaculture (Dalian Ocean University) Ministry of EducationDalianChina
| | - Changrun Sui
- School of Life ScienceLiaoning Normal UniversityDalianChina
- Key Laboratory of Environment Controlled Aquaculture (Dalian Ocean University) Ministry of EducationDalianChina
| | - Baolong Wang
- Key Laboratory of Environment Controlled Aquaculture (Dalian Ocean University) Ministry of EducationDalianChina
- College of Marine Science and EnvironmentDalian Ocean UniversityDalianChina
| | - Ruipin Huang
- Key Laboratory of Environment Controlled Aquaculture (Dalian Ocean University) Ministry of EducationDalianChina
- College of Marine Science and EnvironmentDalian Ocean UniversityDalianChina
| | - Weixiao Zhang
- Key Laboratory of Environment Controlled Aquaculture (Dalian Ocean University) Ministry of EducationDalianChina
- College of Marine Science and EnvironmentDalian Ocean UniversityDalianChina
| | - Tao Zhang
- Key Laboratory of Environment Controlled Aquaculture (Dalian Ocean University) Ministry of EducationDalianChina
- College of Marine Science and EnvironmentDalian Ocean UniversityDalianChina
| | - Qian Zhang
- Key Laboratory of Environment Controlled Aquaculture (Dalian Ocean University) Ministry of EducationDalianChina
- College of Marine Science and EnvironmentDalian Ocean UniversityDalianChina
| | - Ying Liu
- Key Laboratory of Environment Controlled Aquaculture (Dalian Ocean University) Ministry of EducationDalianChina
- College of Biosystems Engineering and Food ScienceZhejiang UniversityHangzhouChina
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Lee J, Secor R, Prokopyeva N, Chen X, Macdonald O, Frost R, Finnerty JR. TEMPERATURE AND SALINITY AFFECT DEVELOPMENT OF THE PARASITIC SEA ANEMONE EDWARDSIELLA LINEATA POTENTIALLY LIMITING ITS IMPACT AS A BIOLOGICAL CONTROL ON THE CTENOPHORE MNEMIOPSIS LEIDYI. J Parasitol 2023; 109:574-579. [PMID: 38104628 DOI: 10.1645/23-15] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/19/2023] Open
Abstract
The lined sea anemone, Edwardsiella lineata, parasitizes the ctenophore Mnemiopsis leidyi, which is one of the most destructive marine invasive species in the world. Mnemiopsis leidyi is known to tolerate a wide range of environmental conditions. However, the environmental tolerances of its most prominent parasite have never been characterized. Here we determined the effects of temperature (18, 22, 26, and 30 C) and salinity (6, 15, 24, and 33 ppt) on the survival and development of E. lineata from a vermiform parasite to a free-living polyp. At higher temperatures and lower salinities, E. lineata experienced significantly higher mortality, and it failed to develop into an adult polyp at the highest temperature (30 C) and lowest salinities we tested (6 ppt or 15 ppt). While such temperature and salinity restrictions would not currently prevent E. lineata from infecting M. leidyi in many of the European waters where it has become a destructive invasive species, these environmental limitations may be reducing overlap between host and parasite within the host's native range, a situation that could be exacerbated by climate change.
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Affiliation(s)
- Joanna Lee
- Department of Biology, Boston University, 5 Cummington Mall, Boston, Massachusetts 02215
| | - Riley Secor
- Department of Biology, Boston University, 5 Cummington Mall, Boston, Massachusetts 02215
| | - Nadiya Prokopyeva
- Department of Biology, Boston University, 5 Cummington Mall, Boston, Massachusetts 02215
| | - Xuqing Chen
- Department of Biology, Boston University, 5 Cummington Mall, Boston, Massachusetts 02215
| | - Ophelia Macdonald
- Department of Biology, Boston University, 5 Cummington Mall, Boston, Massachusetts 02215
| | - Ryan Frost
- Department of Mathematics and Statistics, Boston University, 111 Cummington Mall, Boston, Massachusetts 02215
| | - John R Finnerty
- Department of Biology, Boston University, 5 Cummington Mall, Boston, Massachusetts 02215
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Chen Y, Zhuang Z, Liu J, Wang Z, Guo Y, Chen A, Chen B, Zhao W, Niu J. Effects of Hermetia illucens larvae meal on the Pacific white shrimp (Litopenaeus vannamei) revealed by innate immunity and 16S rRNA gene sequencing analysis. COMPARATIVE BIOCHEMISTRY AND PHYSIOLOGY. PART D, GENOMICS & PROTEOMICS 2023; 46:101080. [PMID: 37141643 DOI: 10.1016/j.cbd.2023.101080] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Subscribe] [Scholar Register] [Received: 02/23/2023] [Revised: 03/30/2023] [Accepted: 04/20/2023] [Indexed: 05/06/2023]
Abstract
The larvae of the black soldier fly, Hermetia illucens, are now attracting attention and becoming promising sources for aquafeed ingredient due to the nutritious substance. However, the introduction of a novel ingredient into the recipe may have unpredictable effects on the innate immune function and gut bacteria composition of crustaceans. Therefore, the present study aimed to evaluate how dietary black soldier fly larvae meal (BSFLM) affected the antioxidant ability, innate immunity and gut microbiome of shrimp (Litopenaeus vannamei) fed with a practical diet, including the gene expression of Toll and immunodeficiency (IMD) pathways. Six experimental diets were formulated by replacing gradient levels of fish meal (0 %, 10 %, 20 %, 30 %, 40 % and 50 %) based on a commercial shrimp diet. Four replicates of shrimp were fed different diets three times daily for 60 days. Growth performance linearly decreased with increasing BSFLM inclusion. Results of antioxidative enzyme activities and gene expression suggested that low dietary BSFLM levels activated the antioxidant capacity of shrimp, while dietary BSFLM levels up to 100 g/kg may induce oxidative stress and inhibit glutathione peroxidase activity. Although traf6, toll1, dorsal and relish were significantly upregulated in different BSFLM groups, the expression of tak1 was significantly downregulated in groups containing BSFLM, implying the immune susceptibility may be weakened. Gut flora analysis indicated dietary BSFLM altered both beneficial and opportunistic pathogenic bacterial abundance, with low levels of dietary BSFLM increased the abundance of bacteria that may contribute to carbohydrate utilization, while high levels of dietary BSFLM may cause intestinal disease and low intestinal immune response. To conclude, 60-80 g/kg of dietary BSFLM showed no adverse effects on the growth, antioxidant capacity and gut flora of shrimp, which was the adequate level in shrimp diet. While 100 g/kg dietary BSFLM may induce oxidative stress and potentially weaken the innate immunity of shrimp.
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Affiliation(s)
- Yongkang Chen
- State key Laboratory of Biocontrol, Guangdong Provincial Key Laboratory for Aquatic Economic Animals and Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai), School of Life Sciences, Sun Yat-Sen University, Guangzhou 510275, Guangdong Province, PR China
| | - Zhenxiao Zhuang
- State key Laboratory of Biocontrol, Guangdong Provincial Key Laboratory for Aquatic Economic Animals and Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai), School of Life Sciences, Sun Yat-Sen University, Guangzhou 510275, Guangdong Province, PR China
| | - Jieping Liu
- State key Laboratory of Biocontrol, Guangdong Provincial Key Laboratory for Aquatic Economic Animals and Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai), School of Life Sciences, Sun Yat-Sen University, Guangzhou 510275, Guangdong Province, PR China
| | - Ziqiao Wang
- State key Laboratory of Biocontrol, Guangdong Provincial Key Laboratory for Aquatic Economic Animals and Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai), School of Life Sciences, Sun Yat-Sen University, Guangzhou 510275, Guangdong Province, PR China
| | - Yucai Guo
- State key Laboratory of Biocontrol, Guangdong Provincial Key Laboratory for Aquatic Economic Animals and Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai), School of Life Sciences, Sun Yat-Sen University, Guangzhou 510275, Guangdong Province, PR China
| | - Anqi Chen
- State key Laboratory of Biocontrol, Guangdong Provincial Key Laboratory for Aquatic Economic Animals and Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai), School of Life Sciences, Sun Yat-Sen University, Guangzhou 510275, Guangdong Province, PR China
| | - Baoyang Chen
- State key Laboratory of Biocontrol, Guangdong Provincial Key Laboratory for Aquatic Economic Animals and Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai), School of Life Sciences, Sun Yat-Sen University, Guangzhou 510275, Guangdong Province, PR China
| | - Wei Zhao
- State key Laboratory of Biocontrol, Guangdong Provincial Key Laboratory for Aquatic Economic Animals and Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai), School of Life Sciences, Sun Yat-Sen University, Guangzhou 510275, Guangdong Province, PR China.
| | - Jin Niu
- State key Laboratory of Biocontrol, Guangdong Provincial Key Laboratory for Aquatic Economic Animals and Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai), School of Life Sciences, Sun Yat-Sen University, Guangzhou 510275, Guangdong Province, PR China.
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