Cargando…
The Effect of Dietary Lactic Acid Bacteria on Intestinal Microbiota and Immune Responses of Crucian Carp (Carassius auratus) Under Water Temperature Decrease
Temperature changes have a great impact on fish feeding, intestinal microorganisms, metabolism, and immune function. Therefore, it is necessary to develop effective methods to enhance the survival rates and growth of fish under water temperature changes. Lactic acid bacteria (LAB) are promising immu...
Autores principales: | , , , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Frontiers Media S.A.
2022
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9058164/ https://www.ncbi.nlm.nih.gov/pubmed/35509308 http://dx.doi.org/10.3389/fmicb.2022.847167 |
_version_ | 1784698063364816896 |
---|---|
author | Liu, Yuan Lv, Haoxin Xu, Liping Zhang, Kun Mei, Yan Chen, Jun Wang, Min Guan, Yifei Pang, Huili Wang, Yanping Tan, Zhongfang |
author_facet | Liu, Yuan Lv, Haoxin Xu, Liping Zhang, Kun Mei, Yan Chen, Jun Wang, Min Guan, Yifei Pang, Huili Wang, Yanping Tan, Zhongfang |
author_sort | Liu, Yuan |
collection | PubMed |
description | Temperature changes have a great impact on fish feeding, intestinal microorganisms, metabolism, and immune function. Therefore, it is necessary to develop effective methods to enhance the survival rates and growth of fish under water temperature changes. Lactic acid bacteria (LAB) are promising immunostimulatory feed additive, as demonstrated by their beneficial effects in several fish species. This study investigated the short-term effects of dietary LAB on intestinal microbiota composition and immune responses of crucian carp (Carassius auratus) when water temperature decreased from 30 ± 1°C to 18 ± 1°C. Lactococcus (L.) lactis 1,209 and L. lactis 1,242 with potential probiotics isolated from the intestine of Qinghai naked carp (Gymnocypris przewalskii) were selected as feed additives for the crucian carp feeding experiment. A total of 225 commercially available healthy crucian carp (250 ± 10 g) of similar age were kept in 30°C water for a week and then immediately transferred to 18 ± 1°C water, assigned to three dietary treatments for a 16-day feeding trial randomly: (1) HC, diets without additives (the control group); (2) HT, diets with 10(6) CFU/ml L. lactis 1,209; and (3) HL, with 10(6) CFU/ml L. lactis 1,242. Each group was set up with 3 replicates and each with 25 fish. The results showed that the mortality rate of crucian carp in HC, HT, and HL group was 50, 27, and 33%, respectively. High-throughput sequencing results displayed that the composition of the intestinal microorganism varied dynamically in response to different treatments and water temperature decrease. Among them, compared with the HC group, a higher abundance of Firmicutes and Proteobacteria, and a lower of Actinobacteria appeared in HT and HL. The cytokines heat shock protein 70 (HSP-70) in crucian carp intestinal tract significantly decreased when water temperature decreased (p < 0.05). |
format | Online Article Text |
id | pubmed-9058164 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2022 |
publisher | Frontiers Media S.A. |
record_format | MEDLINE/PubMed |
spelling | pubmed-90581642022-05-03 The Effect of Dietary Lactic Acid Bacteria on Intestinal Microbiota and Immune Responses of Crucian Carp (Carassius auratus) Under Water Temperature Decrease Liu, Yuan Lv, Haoxin Xu, Liping Zhang, Kun Mei, Yan Chen, Jun Wang, Min Guan, Yifei Pang, Huili Wang, Yanping Tan, Zhongfang Front Microbiol Microbiology Temperature changes have a great impact on fish feeding, intestinal microorganisms, metabolism, and immune function. Therefore, it is necessary to develop effective methods to enhance the survival rates and growth of fish under water temperature changes. Lactic acid bacteria (LAB) are promising immunostimulatory feed additive, as demonstrated by their beneficial effects in several fish species. This study investigated the short-term effects of dietary LAB on intestinal microbiota composition and immune responses of crucian carp (Carassius auratus) when water temperature decreased from 30 ± 1°C to 18 ± 1°C. Lactococcus (L.) lactis 1,209 and L. lactis 1,242 with potential probiotics isolated from the intestine of Qinghai naked carp (Gymnocypris przewalskii) were selected as feed additives for the crucian carp feeding experiment. A total of 225 commercially available healthy crucian carp (250 ± 10 g) of similar age were kept in 30°C water for a week and then immediately transferred to 18 ± 1°C water, assigned to three dietary treatments for a 16-day feeding trial randomly: (1) HC, diets without additives (the control group); (2) HT, diets with 10(6) CFU/ml L. lactis 1,209; and (3) HL, with 10(6) CFU/ml L. lactis 1,242. Each group was set up with 3 replicates and each with 25 fish. The results showed that the mortality rate of crucian carp in HC, HT, and HL group was 50, 27, and 33%, respectively. High-throughput sequencing results displayed that the composition of the intestinal microorganism varied dynamically in response to different treatments and water temperature decrease. Among them, compared with the HC group, a higher abundance of Firmicutes and Proteobacteria, and a lower of Actinobacteria appeared in HT and HL. The cytokines heat shock protein 70 (HSP-70) in crucian carp intestinal tract significantly decreased when water temperature decreased (p < 0.05). Frontiers Media S.A. 2022-04-18 /pmc/articles/PMC9058164/ /pubmed/35509308 http://dx.doi.org/10.3389/fmicb.2022.847167 Text en Copyright © 2022 Liu, Lv, Xu, Zhang, Mei, Chen, Wang, Guan, Pang, Wang and Tan. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms. |
spellingShingle | Microbiology Liu, Yuan Lv, Haoxin Xu, Liping Zhang, Kun Mei, Yan Chen, Jun Wang, Min Guan, Yifei Pang, Huili Wang, Yanping Tan, Zhongfang The Effect of Dietary Lactic Acid Bacteria on Intestinal Microbiota and Immune Responses of Crucian Carp (Carassius auratus) Under Water Temperature Decrease |
title | The Effect of Dietary Lactic Acid Bacteria on Intestinal Microbiota and Immune Responses of Crucian Carp (Carassius auratus) Under Water Temperature Decrease |
title_full | The Effect of Dietary Lactic Acid Bacteria on Intestinal Microbiota and Immune Responses of Crucian Carp (Carassius auratus) Under Water Temperature Decrease |
title_fullStr | The Effect of Dietary Lactic Acid Bacteria on Intestinal Microbiota and Immune Responses of Crucian Carp (Carassius auratus) Under Water Temperature Decrease |
title_full_unstemmed | The Effect of Dietary Lactic Acid Bacteria on Intestinal Microbiota and Immune Responses of Crucian Carp (Carassius auratus) Under Water Temperature Decrease |
title_short | The Effect of Dietary Lactic Acid Bacteria on Intestinal Microbiota and Immune Responses of Crucian Carp (Carassius auratus) Under Water Temperature Decrease |
title_sort | effect of dietary lactic acid bacteria on intestinal microbiota and immune responses of crucian carp (carassius auratus) under water temperature decrease |
topic | Microbiology |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9058164/ https://www.ncbi.nlm.nih.gov/pubmed/35509308 http://dx.doi.org/10.3389/fmicb.2022.847167 |
work_keys_str_mv | AT liuyuan theeffectofdietarylacticacidbacteriaonintestinalmicrobiotaandimmuneresponsesofcruciancarpcarassiusauratusunderwatertemperaturedecrease AT lvhaoxin theeffectofdietarylacticacidbacteriaonintestinalmicrobiotaandimmuneresponsesofcruciancarpcarassiusauratusunderwatertemperaturedecrease AT xuliping theeffectofdietarylacticacidbacteriaonintestinalmicrobiotaandimmuneresponsesofcruciancarpcarassiusauratusunderwatertemperaturedecrease AT zhangkun theeffectofdietarylacticacidbacteriaonintestinalmicrobiotaandimmuneresponsesofcruciancarpcarassiusauratusunderwatertemperaturedecrease AT meiyan theeffectofdietarylacticacidbacteriaonintestinalmicrobiotaandimmuneresponsesofcruciancarpcarassiusauratusunderwatertemperaturedecrease AT chenjun theeffectofdietarylacticacidbacteriaonintestinalmicrobiotaandimmuneresponsesofcruciancarpcarassiusauratusunderwatertemperaturedecrease AT wangmin theeffectofdietarylacticacidbacteriaonintestinalmicrobiotaandimmuneresponsesofcruciancarpcarassiusauratusunderwatertemperaturedecrease AT guanyifei theeffectofdietarylacticacidbacteriaonintestinalmicrobiotaandimmuneresponsesofcruciancarpcarassiusauratusunderwatertemperaturedecrease AT panghuili theeffectofdietarylacticacidbacteriaonintestinalmicrobiotaandimmuneresponsesofcruciancarpcarassiusauratusunderwatertemperaturedecrease AT wangyanping theeffectofdietarylacticacidbacteriaonintestinalmicrobiotaandimmuneresponsesofcruciancarpcarassiusauratusunderwatertemperaturedecrease AT tanzhongfang theeffectofdietarylacticacidbacteriaonintestinalmicrobiotaandimmuneresponsesofcruciancarpcarassiusauratusunderwatertemperaturedecrease AT liuyuan effectofdietarylacticacidbacteriaonintestinalmicrobiotaandimmuneresponsesofcruciancarpcarassiusauratusunderwatertemperaturedecrease AT lvhaoxin effectofdietarylacticacidbacteriaonintestinalmicrobiotaandimmuneresponsesofcruciancarpcarassiusauratusunderwatertemperaturedecrease AT xuliping effectofdietarylacticacidbacteriaonintestinalmicrobiotaandimmuneresponsesofcruciancarpcarassiusauratusunderwatertemperaturedecrease AT zhangkun effectofdietarylacticacidbacteriaonintestinalmicrobiotaandimmuneresponsesofcruciancarpcarassiusauratusunderwatertemperaturedecrease AT meiyan effectofdietarylacticacidbacteriaonintestinalmicrobiotaandimmuneresponsesofcruciancarpcarassiusauratusunderwatertemperaturedecrease AT chenjun effectofdietarylacticacidbacteriaonintestinalmicrobiotaandimmuneresponsesofcruciancarpcarassiusauratusunderwatertemperaturedecrease AT wangmin effectofdietarylacticacidbacteriaonintestinalmicrobiotaandimmuneresponsesofcruciancarpcarassiusauratusunderwatertemperaturedecrease AT guanyifei effectofdietarylacticacidbacteriaonintestinalmicrobiotaandimmuneresponsesofcruciancarpcarassiusauratusunderwatertemperaturedecrease AT panghuili effectofdietarylacticacidbacteriaonintestinalmicrobiotaandimmuneresponsesofcruciancarpcarassiusauratusunderwatertemperaturedecrease AT wangyanping effectofdietarylacticacidbacteriaonintestinalmicrobiotaandimmuneresponsesofcruciancarpcarassiusauratusunderwatertemperaturedecrease AT tanzhongfang effectofdietarylacticacidbacteriaonintestinalmicrobiotaandimmuneresponsesofcruciancarpcarassiusauratusunderwatertemperaturedecrease |