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The layout measures of micro-sprinkler irrigation under plastic film regulate tomato soil bacterial community and root system

INTRODUCTION: The change in rhizosphere soil bacterial community and root system under new water-saving device is not clear. METHODS: A completely randomized experimental design was used to explore the effects of different micropore group spacing (L1: 30 cm micropore group spacing, L2: 50 cm micropo...

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Autores principales: Zhang, Mingzhi, Xiao, Na, Yang, Haijian, Li, Yuan, Gao, Fangrong, Li, Jianbin, Zhang, Zhenxing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10030703/
https://www.ncbi.nlm.nih.gov/pubmed/36968356
http://dx.doi.org/10.3389/fpls.2023.1136439
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author Zhang, Mingzhi
Xiao, Na
Yang, Haijian
Li, Yuan
Gao, Fangrong
Li, Jianbin
Zhang, Zhenxing
author_facet Zhang, Mingzhi
Xiao, Na
Yang, Haijian
Li, Yuan
Gao, Fangrong
Li, Jianbin
Zhang, Zhenxing
author_sort Zhang, Mingzhi
collection PubMed
description INTRODUCTION: The change in rhizosphere soil bacterial community and root system under new water-saving device is not clear. METHODS: A completely randomized experimental design was used to explore the effects of different micropore group spacing (L1: 30 cm micropore group spacing, L2: 50 cm micropore group spacing) and capillary arrangement density (C1: one pipe for one row, C2: one pipe for two rows, C3: one pipe for three rows) on tomato rhizosphere soil bacteria community, roots and tomato yield under MSPF. The bacteria in tomato rhizosphere soil were sequenced by 16S rRNA gene amplicon metagenomic sequencing technology, the interaction of bacterial community, root system and yield in tomato rhizosphere soil was quantitatively described based on regression analysis. RESULTS: Results showed that L1 was not only beneficial to the development of tomato root morphology, but also promoted the ACE index of tomato soil bacterial community structure and the abundance of nitrogen and phosphorus metabolism functional genes. The yield and crop water use efficiency (WUE) of spring tomato and autumn tomato in L1 were about 14.15% and 11.27%, 12.64% and 10.35% higher than those in L2. With the decrease of capillary arrangement density, the diversity of bacterial community structure in tomato rhizosphere soil decreased, and the abundance of nitrogen and phosphorus metabolism functional genes of soil bacteria also decreased. The small abundance of soil bacterial functional genes limited the absorption of soil nutrients by tomato roots and roots morphological development. The yield and crop water use efficiency of spring and autumn tomato in C2 were significantly higher than those in C3 about 34.76% and 15.23%, 31.94% and 13.91%, respectively. The positive interaction between soil bacterial community and root morphological development of tomato was promoted by the capillary layout measures of MSPF. DISCUSSION: The L1C2 treatment had a stable bacterial community structure and good root morphological development, which positively promoted the increase of tomato yield. The interaction between soil microorganisms and roots of tomato was regulated by optimizing the layout measures of MSPF to provide data support for water-saving and yield-increasing of tomato in Northwest China.
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spelling pubmed-100307032023-03-23 The layout measures of micro-sprinkler irrigation under plastic film regulate tomato soil bacterial community and root system Zhang, Mingzhi Xiao, Na Yang, Haijian Li, Yuan Gao, Fangrong Li, Jianbin Zhang, Zhenxing Front Plant Sci Plant Science INTRODUCTION: The change in rhizosphere soil bacterial community and root system under new water-saving device is not clear. METHODS: A completely randomized experimental design was used to explore the effects of different micropore group spacing (L1: 30 cm micropore group spacing, L2: 50 cm micropore group spacing) and capillary arrangement density (C1: one pipe for one row, C2: one pipe for two rows, C3: one pipe for three rows) on tomato rhizosphere soil bacteria community, roots and tomato yield under MSPF. The bacteria in tomato rhizosphere soil were sequenced by 16S rRNA gene amplicon metagenomic sequencing technology, the interaction of bacterial community, root system and yield in tomato rhizosphere soil was quantitatively described based on regression analysis. RESULTS: Results showed that L1 was not only beneficial to the development of tomato root morphology, but also promoted the ACE index of tomato soil bacterial community structure and the abundance of nitrogen and phosphorus metabolism functional genes. The yield and crop water use efficiency (WUE) of spring tomato and autumn tomato in L1 were about 14.15% and 11.27%, 12.64% and 10.35% higher than those in L2. With the decrease of capillary arrangement density, the diversity of bacterial community structure in tomato rhizosphere soil decreased, and the abundance of nitrogen and phosphorus metabolism functional genes of soil bacteria also decreased. The small abundance of soil bacterial functional genes limited the absorption of soil nutrients by tomato roots and roots morphological development. The yield and crop water use efficiency of spring and autumn tomato in C2 were significantly higher than those in C3 about 34.76% and 15.23%, 31.94% and 13.91%, respectively. The positive interaction between soil bacterial community and root morphological development of tomato was promoted by the capillary layout measures of MSPF. DISCUSSION: The L1C2 treatment had a stable bacterial community structure and good root morphological development, which positively promoted the increase of tomato yield. The interaction between soil microorganisms and roots of tomato was regulated by optimizing the layout measures of MSPF to provide data support for water-saving and yield-increasing of tomato in Northwest China. Frontiers Media S.A. 2023-03-08 /pmc/articles/PMC10030703/ /pubmed/36968356 http://dx.doi.org/10.3389/fpls.2023.1136439 Text en Copyright © 2023 Zhang, Xiao, Yang, Li, Gao, Li and Zhang 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 Plant Science
Zhang, Mingzhi
Xiao, Na
Yang, Haijian
Li, Yuan
Gao, Fangrong
Li, Jianbin
Zhang, Zhenxing
The layout measures of micro-sprinkler irrigation under plastic film regulate tomato soil bacterial community and root system
title The layout measures of micro-sprinkler irrigation under plastic film regulate tomato soil bacterial community and root system
title_full The layout measures of micro-sprinkler irrigation under plastic film regulate tomato soil bacterial community and root system
title_fullStr The layout measures of micro-sprinkler irrigation under plastic film regulate tomato soil bacterial community and root system
title_full_unstemmed The layout measures of micro-sprinkler irrigation under plastic film regulate tomato soil bacterial community and root system
title_short The layout measures of micro-sprinkler irrigation under plastic film regulate tomato soil bacterial community and root system
title_sort layout measures of micro-sprinkler irrigation under plastic film regulate tomato soil bacterial community and root system
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10030703/
https://www.ncbi.nlm.nih.gov/pubmed/36968356
http://dx.doi.org/10.3389/fpls.2023.1136439
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