Cargando…

Biochar Addition Altered Bacterial Community and Improved Photosynthetic Rate of Seagrass: A Mesocosm Study of Seagrass Thalassia hemprichii

Seagrass meadows, as typical “blue carbon” ecosystems, play critical ecological roles in the marine ecosystem and decline every year. The application of biochar in soil has been proposed as a potential soil amendment to improve soil quality and mitigate global climate change. The effects of biochar...

Descripción completa

Detalles Bibliográficos
Autores principales: Zhang, Jian, Ling, Juan, Zhou, Weiguo, Zhang, Wenqian, Yang, Fangfang, Wei, Zhangliang, Yang, Qingsong, Zhang, Ying, Dong, Junde
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8678274/
https://www.ncbi.nlm.nih.gov/pubmed/34925287
http://dx.doi.org/10.3389/fmicb.2021.783334
_version_ 1784616296339472384
author Zhang, Jian
Ling, Juan
Zhou, Weiguo
Zhang, Wenqian
Yang, Fangfang
Wei, Zhangliang
Yang, Qingsong
Zhang, Ying
Dong, Junde
author_facet Zhang, Jian
Ling, Juan
Zhou, Weiguo
Zhang, Wenqian
Yang, Fangfang
Wei, Zhangliang
Yang, Qingsong
Zhang, Ying
Dong, Junde
author_sort Zhang, Jian
collection PubMed
description Seagrass meadows, as typical “blue carbon” ecosystems, play critical ecological roles in the marine ecosystem and decline every year. The application of biochar in soil has been proposed as a potential soil amendment to improve soil quality and mitigate global climate change. The effects of biochar on soil bacterial activities are integrally linked to the potential of biochar in achieving these benefits. However, biochar has been rarely applied in marine ecosystems. Whether the application of biochar could work on the seagrass ecosystem remained unknown. In this study, we investigated the responses of sediment and rhizosphere bacterial communities of seagrass Thalassia hemprichii to the biochar addition derived from maize at ratios of 5% by dry weight in the soil during a one-month incubation. Results indicated that the biochar addition significantly changed the sedimental environment with increasing pH, total phosphorus, and total kalium while total nitrogen decreased. Biochar addition significantly altered both the rhizosphere and sediment bacterial community compositions. The significant changes in rhizosphere bacterial community composition occurred after 30days of incubation, while the significant variations in sediment bacterial community composition distinctly delayed than in sediment occurred on the 14th day. Biochar application improved nitrification and denitrification, which may accelerate nitrogen cycling. As a stabilizer to communities, biochar addition decreased the importance of deterministic selection in sediment and changed the bacterial co-occurrence pattern. The biochar addition may promote seagrass photosynthesis and growth by altering the bacterial community compositions and improving nutrient circulation in the seagrass ecosystem, contributing to the seagrass health improvement. This study provided a theoretical basis for applying biochar to the seagrass ecosystem and shed light on the feasible application of biochar in the marine ecosystem.
format Online
Article
Text
id pubmed-8678274
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-86782742021-12-18 Biochar Addition Altered Bacterial Community and Improved Photosynthetic Rate of Seagrass: A Mesocosm Study of Seagrass Thalassia hemprichii Zhang, Jian Ling, Juan Zhou, Weiguo Zhang, Wenqian Yang, Fangfang Wei, Zhangliang Yang, Qingsong Zhang, Ying Dong, Junde Front Microbiol Microbiology Seagrass meadows, as typical “blue carbon” ecosystems, play critical ecological roles in the marine ecosystem and decline every year. The application of biochar in soil has been proposed as a potential soil amendment to improve soil quality and mitigate global climate change. The effects of biochar on soil bacterial activities are integrally linked to the potential of biochar in achieving these benefits. However, biochar has been rarely applied in marine ecosystems. Whether the application of biochar could work on the seagrass ecosystem remained unknown. In this study, we investigated the responses of sediment and rhizosphere bacterial communities of seagrass Thalassia hemprichii to the biochar addition derived from maize at ratios of 5% by dry weight in the soil during a one-month incubation. Results indicated that the biochar addition significantly changed the sedimental environment with increasing pH, total phosphorus, and total kalium while total nitrogen decreased. Biochar addition significantly altered both the rhizosphere and sediment bacterial community compositions. The significant changes in rhizosphere bacterial community composition occurred after 30days of incubation, while the significant variations in sediment bacterial community composition distinctly delayed than in sediment occurred on the 14th day. Biochar application improved nitrification and denitrification, which may accelerate nitrogen cycling. As a stabilizer to communities, biochar addition decreased the importance of deterministic selection in sediment and changed the bacterial co-occurrence pattern. The biochar addition may promote seagrass photosynthesis and growth by altering the bacterial community compositions and improving nutrient circulation in the seagrass ecosystem, contributing to the seagrass health improvement. This study provided a theoretical basis for applying biochar to the seagrass ecosystem and shed light on the feasible application of biochar in the marine ecosystem. Frontiers Media S.A. 2021-12-02 /pmc/articles/PMC8678274/ /pubmed/34925287 http://dx.doi.org/10.3389/fmicb.2021.783334 Text en Copyright © 2021 Zhang, Ling, Zhou, Zhang, Yang, Wei, Yang, Zhang and Dong. 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
Zhang, Jian
Ling, Juan
Zhou, Weiguo
Zhang, Wenqian
Yang, Fangfang
Wei, Zhangliang
Yang, Qingsong
Zhang, Ying
Dong, Junde
Biochar Addition Altered Bacterial Community and Improved Photosynthetic Rate of Seagrass: A Mesocosm Study of Seagrass Thalassia hemprichii
title Biochar Addition Altered Bacterial Community and Improved Photosynthetic Rate of Seagrass: A Mesocosm Study of Seagrass Thalassia hemprichii
title_full Biochar Addition Altered Bacterial Community and Improved Photosynthetic Rate of Seagrass: A Mesocosm Study of Seagrass Thalassia hemprichii
title_fullStr Biochar Addition Altered Bacterial Community and Improved Photosynthetic Rate of Seagrass: A Mesocosm Study of Seagrass Thalassia hemprichii
title_full_unstemmed Biochar Addition Altered Bacterial Community and Improved Photosynthetic Rate of Seagrass: A Mesocosm Study of Seagrass Thalassia hemprichii
title_short Biochar Addition Altered Bacterial Community and Improved Photosynthetic Rate of Seagrass: A Mesocosm Study of Seagrass Thalassia hemprichii
title_sort biochar addition altered bacterial community and improved photosynthetic rate of seagrass: a mesocosm study of seagrass thalassia hemprichii
topic Microbiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8678274/
https://www.ncbi.nlm.nih.gov/pubmed/34925287
http://dx.doi.org/10.3389/fmicb.2021.783334
work_keys_str_mv AT zhangjian biocharadditionalteredbacterialcommunityandimprovedphotosyntheticrateofseagrassamesocosmstudyofseagrassthalassiahemprichii
AT lingjuan biocharadditionalteredbacterialcommunityandimprovedphotosyntheticrateofseagrassamesocosmstudyofseagrassthalassiahemprichii
AT zhouweiguo biocharadditionalteredbacterialcommunityandimprovedphotosyntheticrateofseagrassamesocosmstudyofseagrassthalassiahemprichii
AT zhangwenqian biocharadditionalteredbacterialcommunityandimprovedphotosyntheticrateofseagrassamesocosmstudyofseagrassthalassiahemprichii
AT yangfangfang biocharadditionalteredbacterialcommunityandimprovedphotosyntheticrateofseagrassamesocosmstudyofseagrassthalassiahemprichii
AT weizhangliang biocharadditionalteredbacterialcommunityandimprovedphotosyntheticrateofseagrassamesocosmstudyofseagrassthalassiahemprichii
AT yangqingsong biocharadditionalteredbacterialcommunityandimprovedphotosyntheticrateofseagrassamesocosmstudyofseagrassthalassiahemprichii
AT zhangying biocharadditionalteredbacterialcommunityandimprovedphotosyntheticrateofseagrassamesocosmstudyofseagrassthalassiahemprichii
AT dongjunde biocharadditionalteredbacterialcommunityandimprovedphotosyntheticrateofseagrassamesocosmstudyofseagrassthalassiahemprichii