Cargando…

Bacillus velezensis EEAM 10B Strengthens Nutrient Metabolic Process in Black Soldier Fly Larvae (Hermetia illucens) via Changing Gut Microbiome and Metabolic Pathways

Insects are a potential alternative protein source to solve the food shortage crisis. Previous studies have illustrated that probiotics can improve the substrate conversion efficiency of insects and increase insect protein content. However, the effects of probiotics on insect physiology and nutrient...

Descripción completa

Detalles Bibliográficos
Autores principales: Pei, Yaxin, Zhao, Sijie, Chen, Xiang, Zhang, Jiran, Ni, Hongyuhang, Sun, Mengxiao, Lin, Hui, Liu, Xinyu, Chen, Hongge, Yang, Sen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9161358/
https://www.ncbi.nlm.nih.gov/pubmed/35662952
http://dx.doi.org/10.3389/fnut.2022.880488
_version_ 1784719467725455360
author Pei, Yaxin
Zhao, Sijie
Chen, Xiang
Zhang, Jiran
Ni, Hongyuhang
Sun, Mengxiao
Lin, Hui
Liu, Xinyu
Chen, Hongge
Yang, Sen
author_facet Pei, Yaxin
Zhao, Sijie
Chen, Xiang
Zhang, Jiran
Ni, Hongyuhang
Sun, Mengxiao
Lin, Hui
Liu, Xinyu
Chen, Hongge
Yang, Sen
author_sort Pei, Yaxin
collection PubMed
description Insects are a potential alternative protein source to solve the food shortage crisis. Previous studies have illustrated that probiotics can improve the substrate conversion efficiency of insects and increase insect protein content. However, the effects of probiotics on insect physiology and nutrient metabolism are still not well understood. Here, the black soldier fly larvae (BSFL), Hermetia illucens (Diptera: Stratiomyidae), was used as a study subject to deeply investigate the specific interaction among a novel probiotic, Bacillus velezensis EEAM 10B (10B), intestinal microbiota, and the host. In this study, the effects of 10B on the survival and physiology of BSFL were first analyzed. It shows that 10B significantly elevated the substrate conversion rate, average dry weight, and protein content of BSFL by 5%, 0.13 g/pc, and 8%, respectively. Then, we assessed the effect of 10B on the microbial community composition in the gut and frass of BSFL using Illumina Miseq sequencing. It shows that 10B significantly altered the microbial composition of the gut, but not that of the frass. Pearson’s correlation analysis further showed that the Bacillus, unclassified_of_Caloramatoraceae, and Gracilibacillus were positively correlated with the survival rate, crude protein content, and substrate conversion rate of BSFL. To further investigate the effect of 10B on host metabolism, metabolic analyses on germ-free BSFL, monobacterial intestinal BSFL, and natural BSFL were also performed. The results proved that 10B (i) played a vital role in the survival of BSFL; and (ii) regulated the amino acid synthetic and metabolic process of BSFL, thus leading to the rise of the protein content of BSFL. In addition, vitamin backfill assays verified that the BSFL survival rate was significantly improved by supplying the germ-free BSFL with riboflavin, which further suggests that 10B determines the survival of BSFL via delivering riboflavin. Overall, this study provides a reference for understanding the comprehensive contribution of a specific probiotic to its host.
format Online
Article
Text
id pubmed-9161358
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-91613582022-06-03 Bacillus velezensis EEAM 10B Strengthens Nutrient Metabolic Process in Black Soldier Fly Larvae (Hermetia illucens) via Changing Gut Microbiome and Metabolic Pathways Pei, Yaxin Zhao, Sijie Chen, Xiang Zhang, Jiran Ni, Hongyuhang Sun, Mengxiao Lin, Hui Liu, Xinyu Chen, Hongge Yang, Sen Front Nutr Nutrition Insects are a potential alternative protein source to solve the food shortage crisis. Previous studies have illustrated that probiotics can improve the substrate conversion efficiency of insects and increase insect protein content. However, the effects of probiotics on insect physiology and nutrient metabolism are still not well understood. Here, the black soldier fly larvae (BSFL), Hermetia illucens (Diptera: Stratiomyidae), was used as a study subject to deeply investigate the specific interaction among a novel probiotic, Bacillus velezensis EEAM 10B (10B), intestinal microbiota, and the host. In this study, the effects of 10B on the survival and physiology of BSFL were first analyzed. It shows that 10B significantly elevated the substrate conversion rate, average dry weight, and protein content of BSFL by 5%, 0.13 g/pc, and 8%, respectively. Then, we assessed the effect of 10B on the microbial community composition in the gut and frass of BSFL using Illumina Miseq sequencing. It shows that 10B significantly altered the microbial composition of the gut, but not that of the frass. Pearson’s correlation analysis further showed that the Bacillus, unclassified_of_Caloramatoraceae, and Gracilibacillus were positively correlated with the survival rate, crude protein content, and substrate conversion rate of BSFL. To further investigate the effect of 10B on host metabolism, metabolic analyses on germ-free BSFL, monobacterial intestinal BSFL, and natural BSFL were also performed. The results proved that 10B (i) played a vital role in the survival of BSFL; and (ii) regulated the amino acid synthetic and metabolic process of BSFL, thus leading to the rise of the protein content of BSFL. In addition, vitamin backfill assays verified that the BSFL survival rate was significantly improved by supplying the germ-free BSFL with riboflavin, which further suggests that 10B determines the survival of BSFL via delivering riboflavin. Overall, this study provides a reference for understanding the comprehensive contribution of a specific probiotic to its host. Frontiers Media S.A. 2022-05-19 /pmc/articles/PMC9161358/ /pubmed/35662952 http://dx.doi.org/10.3389/fnut.2022.880488 Text en Copyright © 2022 Pei, Zhao, Chen, Zhang, Ni, Sun, Lin, Liu, Chen and Yang. 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 Nutrition
Pei, Yaxin
Zhao, Sijie
Chen, Xiang
Zhang, Jiran
Ni, Hongyuhang
Sun, Mengxiao
Lin, Hui
Liu, Xinyu
Chen, Hongge
Yang, Sen
Bacillus velezensis EEAM 10B Strengthens Nutrient Metabolic Process in Black Soldier Fly Larvae (Hermetia illucens) via Changing Gut Microbiome and Metabolic Pathways
title Bacillus velezensis EEAM 10B Strengthens Nutrient Metabolic Process in Black Soldier Fly Larvae (Hermetia illucens) via Changing Gut Microbiome and Metabolic Pathways
title_full Bacillus velezensis EEAM 10B Strengthens Nutrient Metabolic Process in Black Soldier Fly Larvae (Hermetia illucens) via Changing Gut Microbiome and Metabolic Pathways
title_fullStr Bacillus velezensis EEAM 10B Strengthens Nutrient Metabolic Process in Black Soldier Fly Larvae (Hermetia illucens) via Changing Gut Microbiome and Metabolic Pathways
title_full_unstemmed Bacillus velezensis EEAM 10B Strengthens Nutrient Metabolic Process in Black Soldier Fly Larvae (Hermetia illucens) via Changing Gut Microbiome and Metabolic Pathways
title_short Bacillus velezensis EEAM 10B Strengthens Nutrient Metabolic Process in Black Soldier Fly Larvae (Hermetia illucens) via Changing Gut Microbiome and Metabolic Pathways
title_sort bacillus velezensis eeam 10b strengthens nutrient metabolic process in black soldier fly larvae (hermetia illucens) via changing gut microbiome and metabolic pathways
topic Nutrition
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9161358/
https://www.ncbi.nlm.nih.gov/pubmed/35662952
http://dx.doi.org/10.3389/fnut.2022.880488
work_keys_str_mv AT peiyaxin bacillusvelezensiseeam10bstrengthensnutrientmetabolicprocessinblacksoldierflylarvaehermetiaillucensviachanginggutmicrobiomeandmetabolicpathways
AT zhaosijie bacillusvelezensiseeam10bstrengthensnutrientmetabolicprocessinblacksoldierflylarvaehermetiaillucensviachanginggutmicrobiomeandmetabolicpathways
AT chenxiang bacillusvelezensiseeam10bstrengthensnutrientmetabolicprocessinblacksoldierflylarvaehermetiaillucensviachanginggutmicrobiomeandmetabolicpathways
AT zhangjiran bacillusvelezensiseeam10bstrengthensnutrientmetabolicprocessinblacksoldierflylarvaehermetiaillucensviachanginggutmicrobiomeandmetabolicpathways
AT nihongyuhang bacillusvelezensiseeam10bstrengthensnutrientmetabolicprocessinblacksoldierflylarvaehermetiaillucensviachanginggutmicrobiomeandmetabolicpathways
AT sunmengxiao bacillusvelezensiseeam10bstrengthensnutrientmetabolicprocessinblacksoldierflylarvaehermetiaillucensviachanginggutmicrobiomeandmetabolicpathways
AT linhui bacillusvelezensiseeam10bstrengthensnutrientmetabolicprocessinblacksoldierflylarvaehermetiaillucensviachanginggutmicrobiomeandmetabolicpathways
AT liuxinyu bacillusvelezensiseeam10bstrengthensnutrientmetabolicprocessinblacksoldierflylarvaehermetiaillucensviachanginggutmicrobiomeandmetabolicpathways
AT chenhongge bacillusvelezensiseeam10bstrengthensnutrientmetabolicprocessinblacksoldierflylarvaehermetiaillucensviachanginggutmicrobiomeandmetabolicpathways
AT yangsen bacillusvelezensiseeam10bstrengthensnutrientmetabolicprocessinblacksoldierflylarvaehermetiaillucensviachanginggutmicrobiomeandmetabolicpathways