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Journal of Arid Land  2026, Vol. 18 Issue (8): 1462-1479    DOI: 10.1016/j.jaridl.2026.08.009    
Research article     
From structure to assembly processes: how salinity regulates soil bacterial communities in arid regions
MOU Na1,2,3, ZHANG Yu1,2,3, MA Jie1,3,*(), LIU Ran1,3, XU Guiqing1,3
1 Key Laboratory of Ecological Safety and Sustainable Development in Arid Lands, Xinjiang Institute of Ecology and Geography, Chinese Academy of Sciences, Urumqi 830011, China
2 University of Chinese Academy of Sciences, Beijing 100049, China
3 Fukang National Field Scientific Observation and Research Station for Desert Ecosystems, Fukang 831505, China
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Abstract  

Although salinity functions as a key environmental filter for soil microorganisms, its comprehensive effects on soil microbial community structure and assembly processes remain poorly understood, particularly in arid regions prone to salinization. In this study, soil bacterial communities along a natural salinity gradient at the edge of Ebinur Lake in Northwest China were investigated. Using 16S ribosomal RNA (16S rRNA) sequencing, we examined variations in soil bacterial community structure, co-occurrence patterns, and assembly mechanisms across different soil salinity groups, including lightly salinized soils (LSS), moderately salinized soils (MSS), and heavily salinized soils (HSS). The results showed that soil bacterial diversity varied significantly among salinity groups, with the highest value observed in LSS. Community dissimilarity increased notably with greater variations in salinity. Notably, a systematic shift in soil bacterial composition occurred along the salinity gradient, with salt-sensitive bacterial phyla (e.g., Acidobacteria and Gemmatimonadetes) being progressively replaced by salt-tolerant ones (e.g., Firmicutes and Bacteroidetes). Network analysis underscored that increased salinity led to reduced soil bacterial network complexity and stability. More positive correlations among soil bacteria occurred in HSS, suggesting a potential shift toward cooperative microbial strategies under severe salt stress. Moreover, the assembly processes governing soil bacterial communities transitioned from stochastic process, predominantly in LSS (71.43%) and MSS (80.00%), to deterministic process in HSS (66.66%). In summary, the results emphasize the multifaceted role of soil salinity in shaping soil bacterial communities in arid ecosystems, thereby enhancing the understanding of the impacts of soil salinization on soil microbial dynamics.



Key wordssalinity      soil bacteria      bacterial community structure      co-occurrence network      community assembly      Ebinur Lake     
Received: 22 January 2026      Published: 31 August 2026
Corresponding Authors: *MA Jie (E-mail: majie@ms.xjb.ac.cn)
About author: First author contact:

Conceptualization: MOU Na, ZHANG Yu, MA Jie; Methodology: MOU Na, ZHANG Yu; Formal analysis: MOU Na, ZHANG Yu, MA Jie; Writing - original draft and preparation: MOU Na, ZHANG Yu; Writing - review and editing: LIU Ran, XU Guiqing; Funding acquisition: MA Jie, LIU Ran, XU Guiqing; Supervision: MA Jie, XU Guiqing. All authors approved the manuscript.

Cite this article:

MOU Na, ZHANG Yu, MA Jie, LIU Ran, XU Guiqing. From structure to assembly processes: how salinity regulates soil bacterial communities in arid regions. Journal of Arid Land, 2026, 18(8): 1462-1479.

URL:

http://jal.xjegi.com/10.1016/j.jaridl.2026.08.009     OR     http://jal.xjegi.com/Y2026/V18/I8/1462

Fig. 1 Layout of the experimental design (a) and representative landscape views of different soil salinity groups (b-d). A1-A9, B1-B9, and C1-C9 represent the sampling sites along the three transects. LSS, lightly salinized soils; MSS, moderately salinized soils; HSS, heavily salinized soils.
Fig. 2 Soil bacterial community composition across three salinity groups. (a), average relative abundance of major bacterial phyla in total soil samples and soils across three salinity groups (LSS, MSS, and HSS); (b), Venn diagram showing shared and unique bacterial operational taxonomic units (OTUs) among the three salinity groups. The number and percentage of shared and unique OTUs are indicated in the Venn diagram.
Fig. 3 Correlations between soil salt content (SSC) and soil bacterial community diversity indices. (a), Shannon index; (b), Chao1 index; (c), phylogenetic diversity index. R2 indicates the coefficient of determination. The shaded area denote the 95.00% confidence intervals. The subplot within each panel shows the difference in each diversity index across three salinity groups. In each boxplot, the central line indicates the median, and the box bounds the interquartile range (IRQ). Whiskers extend to the most extreme data points within 1.5×IQR. Different lowercase letters above boxplots indicate significant differences at the P<0.05 level using Tukey's post hoc test.
Fig. 4 Constrained analysis of principal coordinates (CAP) for assessing the relationship between soil bacterial communities across three salinity groups and main environmental variables. SWC, soil water content; C/N, ratio of soil carbon to nitrogen. CAP1, the first axis of CAP; CAP2, the second axis of CAP.
Salinity group Node Link AD Random network index#
ACCr APLr NDr Mr
LSS 751 7310 19.47 0.05±0.01 2.57±0.02 5.02±0.15 0.18±0.01
MSS 750 5651 15.07 0.04±0.01 2.74±0.01 5.41±0.51 0.21±0.01
HSS 303 748 4.94 0.02±0.03 3.69±0.02 7.97±0.73 0.43±0.01
Salinity group Empirical network index
Me PER (%) NER (%) ACCe APLe NDe ADS
LSS 0.70 57.67 42.32 0.52 4.54 10.34 0.03
MSS 0.60 58.29 41.71 0.44 3.44 8.05 0.02
HSS 0.71 68.04 31.95 0.36 4.57 2.00 0.02
Table 1 Topological properties of the random and empirical networks of soil microbial communities across three salinity groups
Fig. 5 Co-occurrence networks and stability characteristics of soil bacterial communities across three salinity groups. (a-c), network structure in different salinity groups; (d and e), difference in stability and robustness of soil bacterial co-occurrence networks among salinity groups; (f), topological roles of soil bacteria. In Figure 5a-c, node size is proportional to degree; colors represent soil bacteria at the phylum level. Pink and blue edges indicate positive and negative correlations, respectively. In Figure 5d and e, the network stability was calculated as the absolute value of negative cohesion divided by positive cohesion. Robustness of each network was assessed by the slope of the fitted line between the proportion of removed nodes and the proportion of remaining nodes. In each boxplot, the central line indicates the median, and the box bounds the IQR. Whiskers extend to the most extreme data points within 1.5×IQR. Circles within and outside the box represent individual data points; circles beyond the whiskers are outliers. Different lowercase letters above boxplots indicate significant differences at the P<0.05 level using Tukey's post hoc test.
Fig. 6 Relative importance of deterministic and stochastic processes in soil bacterial community assembly. (a), variations of the β nearest taxon index (βNTI) in bacterial communities in different soil salinity groups; (b and c), contributions of different ecological processes to soil bacterial community assembly in different soil salinity groups; (d-f), fit of the bacterial neutral community model (NCM) in LSS, MSS, and HSS, respectively. In Figure 6a, the central line in each subplot indicates the median, and the box bounds the IQR. Whiskers extend to the most extreme data points within 1.5×IQR. Circles within and outside the box represent individual data points; circles beyond the whiskers are outliers. In Figure 6d-f, the green dotted lines indicate the reference lines where |βNTI|=2; points falling between them represent the dominance of stochastic process. The best fit of NCM is shown by the blue solid line, and the blue dotted lines indicate the 95% confidence intervals of the model predictions. Green and orange points represent OTUs that occurred more frequently and less frequently than predicted, respectively. R2 indicates the goodness-of-fit of NCM and Nm represents the dispersal rate within communities.
Salinity
group
Replicates Sampling site Soil physical-chemical property
pH EC (dS/m) SWC (%) SSC (g/kg)
LSS 6 A8-A9, B8-B9,
and C8-C9
8.67±0.12a 0.35±0.14a 1.75±0.10a 3.56±1.18a
MSS 11 A5-A7, B4-B7,
and C4-C7
8.53±0.06a 0.52±0.06a 1.74±0.01a 7.59±0.60a
HSS 10 A1-A4, B1-B3,
and C1-C3
8.58±0.04a 6.00±0.97b 3.50±0.51b 26.46±2.96b
All 27 8.58±0.04 2.51±0.63 2.34±0.21 13.65±2.37
Salinity
group
Soil physical-chemical property Plant community property
SOC (g/kg) TN (g/kg) C/N Coverage (%) Dominate species
LSS 2.14±0.31a 0.32±0.03a 6.57±0.32b 20.50±3.10a Haloxylon persicum and Haloxylon ammodendron
MSS 2.87±0.11a 0.40±0.02a 7.23±0.39a 31.52±2.63a Reaumuria songarica, Haloxylon ammodendron, Seriphidium
santolinum
, Alhagi sparsifolia, and Reaumuria songarica
HSS 10.44±2.65b 1.07±0.19b 8.86±0.82a 44.60±3.53b Tamarix ramosissima, Populus euphratica, Apocynum venetum, Phragmites australis, and Nitraria tangutorum
All 5.52±1.12 0.63±0.09 6.57±0.32 33.94±2.52
Table S1 Soil physical-chemical properties and dominant plant species at 27 sampling sites across three salinity groups
Phylum pH EC SOC TN SWC C/N SSC Plant coverage
Acidobacteria -0.22 -0.57** -0.35 -0.39* -0.43* -0.21 -0.57** -0.48*
Actinobacteria 0.05 -0.75** -0.72** -0.73 -0.52** -0.33 -0.80** -0.66**
Bacteroidetes -0.13 -0.02 0.10 0.11 0.06 0.07 0.05 0.21
Chloroflexi -0.21 0.63 0.43* 0.54 -0.51** -0.12 -0.51** -0.33
Cyanobacteria 0.12 0.58** 0.38 0.45* 0.51** 0.10 0.55** 0.33
Firmicutes 0.10 0.63** 0.51* 0.44* 0.56** 0.36 0.63** 0.38
Gemmatimonadetes -0.22 0.51** 0.50* 0.43* -0.73** -0.31 -0.68** -0.54*
Proteobacteria 0.06 -0.08 -0.04 0.03 0.01 -0.24 -0.08 -0.06
Verrucomicrobia -0.20 0.08 0.31 0.30 0.12 0.01 0.23 0.13
Table S2 Correlations between the main soil bacterial phyla and environmental variables
Fig. S1 Principal coordinate analysis (PCoA) of soil bacterial communities across three salinity groups based on Bray-Curtis dissimilarity. LSS, lightly salinized soils; MSS, moderately salinized soils; HSS, heavily salinized soils; PCoA 1, the first axis of PCoA; PCoA 2, the second axis of PCoA.
Test method Statistic All groups LSS versus MSS LSS versus HSS MSS versus HSS
MRPP Delta 0.28 0.44 0.57 0.50
A 0.49 0.09 0.18 0.31
P <0.01 <0.01 <0.01 <0.01
ANOSIM R 0.78 0.66 0.94 1.00
P <0.01 <0.01 <0.01 <0.01
PERMANOVA R2 0.54 0.24 0.38 0.56
P <0.01 <0.01 <0.01 <0.01
Table S3 Dissimilarity tests of soil bacterial community between different salinity groups
Environmental variable Mantel test Partial Mantel test
Mantel's r P value Mantel's r P value
SSC 0.73 <0.01 0.58 <0.01
TN 0.59 <0.01 0.16 0.07
SWC 0.58 <0.01 0.16 0.04
SOC 0.53 <0.01 0.03 0.37
C/N 0.36 <0.01 -0.01 0.48
pH -0.15 0.99 -0.07 0.85
Table S4 Mantel's correlations between soil bacterial communities and environmental variables
Environmental variable df Explained variance F value P value
SSC 1 0.84 6.69 <0.01
SWC 1 0.19 1.53 0.05
C/N 1 0.18 1.46 0.17
pH 1 0.13 1.02 0.34
Residual 23 2.78
Axis df Explained variance F value P value
CAP1 1 2.06 16.29 <0.01
CAP2 1 0.26 2.58 0.05
CAP3 1 0.17 1.38 0.32
CAP4 1 0.08 0.61 0.87
Residual 22 2.78
Table S5 One-way analysis of variance (ANOVA) of the main environmental variables correlated with soil bacterial beta-diversity in constrained analysis of principal coordinates (CAP) with 999 times permutations
Fig. S2 Relationship between differences of soil salt content (ΔSSC) and Bray-Curtis dissimilarity of soil bacterial communities. R2 represents the coefficient of determination. The shaded area denotes the 95.00% confidence intervals.
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