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Climax forest has a higher soil bacterial diversity but lower soil nutrient contents than degraded forests in temperate northern China

Bacteria are a crucial component of forest soil biodiversity and play an important role in numerous ecosystem processes. Here, we studied the patterns of soil bacterial community diversity and structure in a climax forest (Larix gmelinii; LG) compared with those in degraded forest ecosystems of four...

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Autores principales: Sui, Xin, Li, Mengsha, Frey, Beat, Wang, Mingyu, Weng, Xiaohong, Wang, Xin, Chen, Fuyuan, Li, Xianda, Du, Zhong, Yang, Libin, Li, Mai‐He
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9682091/
https://www.ncbi.nlm.nih.gov/pubmed/36440312
http://dx.doi.org/10.1002/ece3.9535
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author Sui, Xin
Li, Mengsha
Frey, Beat
Wang, Mingyu
Weng, Xiaohong
Wang, Xin
Chen, Fuyuan
Li, Xianda
Du, Zhong
Yang, Libin
Li, Mai‐He
author_facet Sui, Xin
Li, Mengsha
Frey, Beat
Wang, Mingyu
Weng, Xiaohong
Wang, Xin
Chen, Fuyuan
Li, Xianda
Du, Zhong
Yang, Libin
Li, Mai‐He
author_sort Sui, Xin
collection PubMed
description Bacteria are a crucial component of forest soil biodiversity and play an important role in numerous ecosystem processes. Here, we studied the patterns of soil bacterial community diversity and structure in a climax forest (Larix gmelinii; LG) compared with those in degraded forest ecosystems of four forest vegetation types (BD, Betula dahurica; BP, Betula platyphylla; QM, Quercus mongolica; and LGQM, a mixed coniferous–broadleaved forest composed of Larix gmelinii and Quercus mongolica) in the Heilongjiang Zhongyangzhan Black‐billed Capercaillie Nature Reserve in northern China, using Illumina MiSeq sequencing of 16 S rRNA genes. Soil physicochemical properties (pH, soil organic carbon = SOC, total nitrogen = TN, carbon/nitrogen = C/N, total phosphorous = TP, available nitrogen = AN, available phosphorous = AP) differed significantly (p < .05) among the five forests. SOC, C/N, TP, AN, and AP were highest in QM, whereas SOC was lowest in LGQM. Soil pH was lowest in BD and highest in LGQM. α diversity was highest in LG and lowest in QM. The soil bacterial community composition in the climax forest was significantly different from that in the four degraded forests (p < .05). The dominant bacterial phyla were Acidobacteria, Proteobacteria, Verrucomicrobia, Bacteroidetes, Actinobacteria, Gemmatimonadetes, Firmicutes, Chloroflexi, and Rokubacteria. The highest relative abundances of these phyla were: 30.7% for Acidobacteria in LGQM, 42.6% for Proteobacteria in LG, 17.6% for Verrucomicrobia in BD, 5.5% for Firmicutes in BP, and 6.9% for Actinobacteria in QM. The dominant bacterial genera across the five forest vegetation types were Bryobacter and some poorly characterized taxa (e.g., Candidatus_Udaeobacter and Candidatus_Solibacter). Redundancy analysis indicated that SOC, C/N, TP, AN, and AP were the main soil physicochemical properties that shaped the bacterial communities. Our study revealed distinct bacterial diversity and composition in the climax forest compared with values in degraded forests, suggesting that the biotic and abiotic factors associated with climax ecosystems play an important role in shaping soil bacterial community structure and thus biogeochemical functions. The results of this study contribute to a deeper understanding and better predictions of the network among belowground systems and of the functions and services of degraded forests compared with climax ecosystems.
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spelling pubmed-96820912022-11-25 Climax forest has a higher soil bacterial diversity but lower soil nutrient contents than degraded forests in temperate northern China Sui, Xin Li, Mengsha Frey, Beat Wang, Mingyu Weng, Xiaohong Wang, Xin Chen, Fuyuan Li, Xianda Du, Zhong Yang, Libin Li, Mai‐He Ecol Evol Research Articles Bacteria are a crucial component of forest soil biodiversity and play an important role in numerous ecosystem processes. Here, we studied the patterns of soil bacterial community diversity and structure in a climax forest (Larix gmelinii; LG) compared with those in degraded forest ecosystems of four forest vegetation types (BD, Betula dahurica; BP, Betula platyphylla; QM, Quercus mongolica; and LGQM, a mixed coniferous–broadleaved forest composed of Larix gmelinii and Quercus mongolica) in the Heilongjiang Zhongyangzhan Black‐billed Capercaillie Nature Reserve in northern China, using Illumina MiSeq sequencing of 16 S rRNA genes. Soil physicochemical properties (pH, soil organic carbon = SOC, total nitrogen = TN, carbon/nitrogen = C/N, total phosphorous = TP, available nitrogen = AN, available phosphorous = AP) differed significantly (p < .05) among the five forests. SOC, C/N, TP, AN, and AP were highest in QM, whereas SOC was lowest in LGQM. Soil pH was lowest in BD and highest in LGQM. α diversity was highest in LG and lowest in QM. The soil bacterial community composition in the climax forest was significantly different from that in the four degraded forests (p < .05). The dominant bacterial phyla were Acidobacteria, Proteobacteria, Verrucomicrobia, Bacteroidetes, Actinobacteria, Gemmatimonadetes, Firmicutes, Chloroflexi, and Rokubacteria. The highest relative abundances of these phyla were: 30.7% for Acidobacteria in LGQM, 42.6% for Proteobacteria in LG, 17.6% for Verrucomicrobia in BD, 5.5% for Firmicutes in BP, and 6.9% for Actinobacteria in QM. The dominant bacterial genera across the five forest vegetation types were Bryobacter and some poorly characterized taxa (e.g., Candidatus_Udaeobacter and Candidatus_Solibacter). Redundancy analysis indicated that SOC, C/N, TP, AN, and AP were the main soil physicochemical properties that shaped the bacterial communities. Our study revealed distinct bacterial diversity and composition in the climax forest compared with values in degraded forests, suggesting that the biotic and abiotic factors associated with climax ecosystems play an important role in shaping soil bacterial community structure and thus biogeochemical functions. The results of this study contribute to a deeper understanding and better predictions of the network among belowground systems and of the functions and services of degraded forests compared with climax ecosystems. John Wiley and Sons Inc. 2022-11-22 /pmc/articles/PMC9682091/ /pubmed/36440312 http://dx.doi.org/10.1002/ece3.9535 Text en © 2022 The Authors. Ecology and Evolution published by John Wiley & Sons Ltd. https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Sui, Xin
Li, Mengsha
Frey, Beat
Wang, Mingyu
Weng, Xiaohong
Wang, Xin
Chen, Fuyuan
Li, Xianda
Du, Zhong
Yang, Libin
Li, Mai‐He
Climax forest has a higher soil bacterial diversity but lower soil nutrient contents than degraded forests in temperate northern China
title Climax forest has a higher soil bacterial diversity but lower soil nutrient contents than degraded forests in temperate northern China
title_full Climax forest has a higher soil bacterial diversity but lower soil nutrient contents than degraded forests in temperate northern China
title_fullStr Climax forest has a higher soil bacterial diversity but lower soil nutrient contents than degraded forests in temperate northern China
title_full_unstemmed Climax forest has a higher soil bacterial diversity but lower soil nutrient contents than degraded forests in temperate northern China
title_short Climax forest has a higher soil bacterial diversity but lower soil nutrient contents than degraded forests in temperate northern China
title_sort climax forest has a higher soil bacterial diversity but lower soil nutrient contents than degraded forests in temperate northern china
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9682091/
https://www.ncbi.nlm.nih.gov/pubmed/36440312
http://dx.doi.org/10.1002/ece3.9535
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