植物生态学报 ›› 2014, Vol. 38 ›› Issue (2): 201-208.DOI: 10.3724/SP.J.1258.2013.00037 cstr: 32100.14.SP.J.1258.2013.00037
王纳纳1,2, 陈颖1,3, 应娇妍1,*(
), 高勇生2, 白永飞1
收稿日期:2012-10-18
接受日期:2013-02-09
出版日期:2014-10-18
发布日期:2014-02-12
作者简介:* (E-mail: yingjy@ibcas.ac.cn)基金资助:
WANG Na-Na1,2, CHEN Ying1,3, YING Jiao-Yan1,*(
), GAO Yong-Sheng2, BAI Yong-Fei1
Received:2012-10-18
Accepted:2013-02-09
Online:2014-10-18
Published:2014-02-12
摘要:
为了分析内蒙古草原不同植物物种对土壤微生物群落的影响, 采用实时荧光定量PCR (real-time PCR)以及末端限制性片段长度多态性分析(terminal restriction fragment length polymorphism, T-RFLP)等分子生物学技术, 测定了退化-恢复样地上几种典型植物的根际土壤和非根际土壤中细菌和真菌的数量及群落结构。结果表明, 不同植物物种对根际和非根际细菌及根际真菌数量均有显著影响。根际土壤中的细菌和真菌数量普遍高于非根际土壤, 尤其以真菌更为明显。对T-RFLP数据进行多响应置换过程(multi-response permutation procedures, MRPP)分析和主成分分析(principal component analysis, PCA), 结果表明, 大多数物种的根际细菌及真菌的群落结构与非根际有明显差异, 并且所有物种的真菌群落可以按根际和非根际明显分为两大类群。此外, 细菌和真菌群落结构在一定程度上存在按物种聚类的现象, 以细菌较为明显。这些结果揭示了不同植物对土壤微生物群落的影响特征, 对理解内蒙古草原地区退化及恢复过程中植被演替引起的土壤性质和功能的变化有一定的帮助。
王纳纳, 陈颖, 应娇妍, 高勇生, 白永飞. 内蒙古草原典型植物对土壤微生物群落的影响. 植物生态学报, 2014, 38(2): 201-208. DOI: 10.3724/SP.J.1258.2013.00037
WANG Na-Na, CHEN Ying, YING Jiao-Yan, GAO Yong-Sheng, BAI Yong-Fei. Effects of typical plant on soil microbial communities in an Inner Mongolia grassland. Chinese Journal of Plant Ecology, 2014, 38(2): 201-208. DOI: 10.3724/SP.J.1258.2013.00037
| 微生物类群 Microbial group | 变异来源 Source of variation | df | F | p |
|---|---|---|---|---|
| 细菌 Bacteria | 物种 Species | 5 | 2.16 | 0.095 7 |
| 根际环境 Rhizosphere environment | 1 | 11.89 | 0.002 3 | |
| 物种×根际环境 Species × rhizosphere environment | 5 | 2.55 | 0.057 4 | |
| 真菌 Fungi | 物种 Species | 5 | 2.46 | 0.064 7 |
| 根际环境 Rhizosphere environment | 1 | 136.02 | <0.000 1 | |
| 物种×根际环境 Species × rhizosphere environment | 5 | 0.50 | 0.771 3 |
表1 植物种及根际环境对细菌和真菌数量的影响
Table 1 Effects of plant species and rhizosphere environment on numbers of bacteria and fungi
| 微生物类群 Microbial group | 变异来源 Source of variation | df | F | p |
|---|---|---|---|---|
| 细菌 Bacteria | 物种 Species | 5 | 2.16 | 0.095 7 |
| 根际环境 Rhizosphere environment | 1 | 11.89 | 0.002 3 | |
| 物种×根际环境 Species × rhizosphere environment | 5 | 2.55 | 0.057 4 | |
| 真菌 Fungi | 物种 Species | 5 | 2.46 | 0.064 7 |
| 根际环境 Rhizosphere environment | 1 | 136.02 | <0.000 1 | |
| 物种×根际环境 Species × rhizosphere environment | 5 | 0.50 | 0.771 3 |
图1 不同植物种根际土壤和非根际土壤中细菌的数量(平均值±标准误差)。A、B表示不同物种根际土壤间差异显著(p < 0.05); a、b表示不同物种非根际土壤间差异显著(p < 0.05)。
Fig. 1 Numbers of bacteria in rhizosphere and non-rhizosphere soils of different plant species (mean ± SE). A and B indicate significant difference among rhizosphere soils of different species (p < 0.05); a and b indicate significant difference among non-rhizosphere soils of different species (p < 0.05).
图2 不同植物种根际土壤和非根际土壤中真菌的数量(平均值±标准误差)。A、B表示不同物种根际土壤间差异显著(p < 0.05)。
Fig. 2 Numbers of fungi in rhizosphere and non-rhizosphere soils of different plant species (mean ± SE). A and B indicate significant difference among rhizosphere soils of different species (p < 0.05).
| 微生物类群 Microbial group | 分组 Group | 观测值 Observed value | 预期值 Expected value | T | A | p |
|---|---|---|---|---|---|---|
| 细菌 Bacteria | 根际与非根际 Rhizosphere and non-rhizosphere | 0.457 | 0.500 | -5.014 | 0.086 | < 0.001 |
| 不同物种根际土壤 Rhizosphere soils of different species | 0.233 | 0.500 | -5.518 | 0.533 | < 0.001 | |
| 不同物种非根际土壤 Non-rhizosphere soils of different species | 0.284 | 0.500 | -4.250 | 0.430 | < 0.001 | |
| 真菌 Fungi | 根际与非根际 Rhizosphere and non-rhizosphere | 0.405 | 0.500 | -10.832 | 0.190 | < 0.001 |
| 不同物种根际土壤 Rhizosphere soils of different species | 0.307 | 0.500 | -4.341 | 0.385 | < 0.001 | |
| 不同物种非根际土壤 Non-rhizosphere soils of different species | 0.268 | 0.500 | -4.969 | 0.462 | < 0.001 |
表2 不同物种根际和非根际土壤中细菌和真菌群落结构的多响应置换过程分析
Table 2 Multi-response permutation procedures analysis of bacteria and fungi community structure in rhizosphere and non-rhizosphere soils of different species
| 微生物类群 Microbial group | 分组 Group | 观测值 Observed value | 预期值 Expected value | T | A | p |
|---|---|---|---|---|---|---|
| 细菌 Bacteria | 根际与非根际 Rhizosphere and non-rhizosphere | 0.457 | 0.500 | -5.014 | 0.086 | < 0.001 |
| 不同物种根际土壤 Rhizosphere soils of different species | 0.233 | 0.500 | -5.518 | 0.533 | < 0.001 | |
| 不同物种非根际土壤 Non-rhizosphere soils of different species | 0.284 | 0.500 | -4.250 | 0.430 | < 0.001 | |
| 真菌 Fungi | 根际与非根际 Rhizosphere and non-rhizosphere | 0.405 | 0.500 | -10.832 | 0.190 | < 0.001 |
| 不同物种根际土壤 Rhizosphere soils of different species | 0.307 | 0.500 | -4.341 | 0.385 | < 0.001 | |
| 不同物种非根际土壤 Non-rhizosphere soils of different species | 0.268 | 0.500 | -4.969 | 0.462 | < 0.001 |
图3 不同物种根际土壤和非根际土壤中细菌(A)和真菌(B)群落结构。○, 冰草根际土壤; ●, 冰草非根际土壤; ◇, 冷蒿根际土壤; ◆, 冷蒿非根际土壤; ▽, 羊草根际土壤; ▼, 羊草非根际土壤; △, 糙隐子草根际土壤; ▲, 糙隐子草非根际土壤; □, 西伯利亚羽茅根际土壤; ■, 西伯利亚羽茅非根际土壤; ☆, 大针茅根际土壤; ★, 大针茅非根际土壤。
Fig. 3 Community structures of bacteria (A) and fungi (B) in rhizosphere and non-rhizosphere soils of different species. ○, Agropyron cristatum rhizosphere soil; ●, Agropyron cristatum non-rhizosphere soil; ◇, Fringed sagebrush rhizosphere soil; ◆, Fringed sagebrush non-rhizosphere soil; ▽, Leymus chinensis rhizosphere soil; ▼, Leymus chinensis non- rhizosphere soil; △, Cleistogenes squarrosa rhizosphere soil; ▲, Cleistogenes squarrosa non-rhizosphere soil; □, Achnatherum sibiiricum rhizosphere soil; ■, Achnatherum sibiiricum non-rhizosphere soil; ☆, Stipa grandis rhizosphere soil; ★, Stipa grandis non-rhizosphere soil.
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