Acta Prataculturae Sinica ›› 2026, Vol. 35 ›› Issue (10): 237-251.DOI: 10.11686/cyxb2025402
Mei-jun WANG(
), Long-xuan CUI, Zhi-biao NAN, Chao XIA(
)
Received:2025-09-30
Revised:2025-11-28
Online:2026-10-20
Published:2026-09-09
Contact:
Chao XIA
Mei-jun WANG, Long-xuan CUI, Zhi-biao NAN, Chao XIA. Research progress on the effects of Epichloë endophytes on the structure and diversity of microbial communities in host grasses[J]. Acta Prataculturae Sinica, 2026, 35(10): 237-251.
内生真菌 Endophytes | 宿主 Host | 作用 Function | 参考文献 Reference |
|---|---|---|---|
隐匿香柱菌 E. occultans | 多花黑麦草 Lolium multiflorum | 对根际土壤细菌的呼吸作用没有显著影响。Has no significant effect on the respiratory activity of rhizosphere soil bacteria. | [ |
| 改变了宿主根际土壤细菌群落组成。Alters the composition of the host rhizosphere soil bacterial community. | [ | ||
| 增加真菌活性,降低菌根真菌侵染率。Enhances fungal activity, and lower the mycorrhizal fungi infection rate. | [ | ||
黄化香柱菌 E. amarillans | 美洲沙茅草 A. breviligulata | 在水分胁迫条件下降低了植株根系相关细菌群落的多样性。Reduces the diversity of plant root-associated bacterial communities under water stress conditions. | [ |
| 增加了根部内生真菌的丰富度并且在氮肥富集条件下改变了根部内生真菌群落的组成。Increases the abundance of root endophytic fungi and alters the composition of root endophytic fungal communities under nitrogen fertilizer enrichment conditions. | [ | ||
聚生香柱菌 E. coenophiala | 高羊茅 F. arundinacea | 增加了根际土壤细菌的多样性。Enhances the diversity of rhizosphere soil bacteria. | [ |
| 降低了宿主在黏土生境下的革兰氏阳性细菌(G+)的多样性。Decreases the diversity of Gram’positive bacteria (G+) in the host under clay habitat conditions. | [ | ||
| 对根部溶磷细菌多样性没有显著的相互作用。There is no significant interaction with the diversity of phosphate-solubilizing bacteria (PSB) in the roots. | [ | ||
| 降低了古细菌的群落多样性,抑制了黏壤土中革兰氏阳性菌的生长。Reduces the community diversity of archaea and inhibits the growth of Gram-positive bacteria in clay loam. | [ | ||
| 苇状羊茅Schedonorus arundinaceus | 降低菌根真菌的定殖。Reduces the colonization of mycorrhizal fungi. | [ | |
| 在不同的土壤含水量下,对丛枝菌根真菌的定殖率不同。The colonization rate of AMF varies under different soil moisture contents. | [ | ||
| 减少了根部的菌根定殖。Decreases mycorrhizal colonization in roots. | [ | ||
黑麦草香柱菌 E. festucae var. lolii | 多年生黑麦草 L. perenne | 显著增加了 16S rRNA 基因的绝对丰度以及土壤细菌群落的多样性。Significantly increases the absolute abundance of the 16S rRNA gene and the diversity of soil bacterial communities. | [ |
| 改变了根际土壤中与氮循环相关的细菌基因丰度,尽管对土壤真菌群落的绝对丰度和多样性没有显著影响。Alters the abundance of bacterial genes related to nitrogen cycling in rhizosphere soil, although it has no significant effect on the absolute abundance and diversity of soil fungal communities. | [ | ||
甘肃香柱菌 E. gansuensis | 醉马草 A. inebrians | 减少了根际土壤中可培养细菌的种类数目。Decreases the number of culturable bacterial species in the rhizosphere soil. | [ |
| 降低了根相关细菌多样性,增加了根际土壤细菌群落的多样性。Reduces root-associated bacterial diversity while increasing the diversity of rhizosphere soil bacterial communities. | [ | ||
| 在盐胁迫下,显著增加了宿主养分提取和土壤微生物丰度。Significantly enhances host nutrient uptake and soil microbial abundance under salt stress. | [ | ||
| 宿主抵抗CdCl?过程中,内生真菌增强了根际细菌物种间的协作。During the host’s resistance to CdCl?, strengthen the cooperation between rhizosphere bacterial species. | [ | ||
| 在NH??-N处理下增加了宿主根部细菌的α-多样性。Increases the α-diversity of host root bacteria under NH?+-N treatment. | [ | ||
| 降低了根系相关真菌群落的多样性,显著降低了根相关真菌多样性。Reduces the diversity of root-associated fungal communities, significantly reduces the diversity of root-associated fungi (RAF). | [ | ||
| 减少了根际土壤中真菌的数目。Decreases the number of fungi in rhizosphere soil. | [ | ||
| 降低盐胁迫对真菌群落多样性的影响。Mitigates the impact of salt stress on fungal community diversity. | [ | ||
雀麦香柱菌 E. bromicola | 羊草 Leymus chinensis | 提高丛枝菌根真菌的侵染率和孢子密度。Improves the infection rate and spore density of arbuscular mycorrhizal fungi (AMF). | [ |
| 增加根际土壤中真菌的数目。Increases the number of fungi in rhizosphere soil. | [ | ||
雀麦香柱菌 E. bromicola | 羊草 Leymus chinensis | 增加根系和根际土壤中的真菌群落多样性和丰富度。Enhances the diversity and richness of fungal communities in roots and rhizosphere soil. | [ |
| 随植物生长时间的延长,内生真菌与生长时间互作对真菌和细菌丰度影响显著。With the extension of plant growth period, the interaction between endophytic fungi and growth time has a significant impact on the abundance of fungi and bacteria. | [ | ||
| 对宿主根部丛枝菌根真菌总定殖率没有影响。Has no effect on the total colonization rate of arbuscular mycorrhizal fungi (AMF) in host roots. | [ | ||
| 高羊茅F. arundinacea | 减少丛枝菌根真菌定殖率。Reduces the colonization rate of arbuscular mycorrhizal fungi (AMF). | [ | |
| 降低菌根真菌的定殖。Reduces the colonization of mycorrhizal fungi. | [ | ||
| 在盐碱胁迫条件下,显著增加了宿主根部植物促生真菌的多样性并改变了其组成。Significantly increases the diversity of plant growth-promoting fungi (PSE) in host roots and alters their composition under saline-alkali stress conditions. | [ | ||
| 短芒大麦草Hordeum brevisubulatum | 提高土壤中的氨氧化细菌丰度。Increases the abundance of ammonia-oxidizing bacteria in soil. | [ | |
布顿大麦草 Hordeum bogdanii | 抑制了土壤真菌的丰富度,但提高了土壤真菌的多样性。Inhibits the abundance of soil fungi but improves the diversity of soil fungi. | [ | |
| 降低菌根真菌的定殖。Reduces the colonization of mycorrhizal fungi. | [ | ||
羊茅香柱菌 E. festucae | 多年生黑麦草 L. perenne | 显著增加了植物刈割返田后和植物自然生长土壤中真菌群落的多样性。 Significantly increases the diversity of fungal communities in soil after plant mowing and returning to the field, as well as in soil with natural plant growth. | [ |
紫羊茅 Festuca rubra | 显著提高根际土壤真菌群落的代谢途径和次生代谢产物生物合成功能。 Significantly improves the metabolic pathways and secondary metabolite biosynthesis functions of the rhizosphere soil fungal community. | [ | |
潘佩香柱菌 E. panpeana | 奥氏雀麦 Bromus auleticus | 增加根际溶磷真菌多样性。Increases the diversity of phosphate-solubilizing fungi in the rhizosphere. | [ |
西伯利亚香柱菌 E. sibirica | 西伯利亚羽茅Achnatherum sibiricum | 降低菌根真菌的定殖。Reduces the colonization of mycorrhizal fungi. | [ |
滕布拉德香柱菌 E. tembladerae | 刚毛雀麦 Bromus setifolius | 增加菌根真菌的定殖。Increases the colonization of mycorrhizal fungi. | [ |
香柱菌 E. typhina | 多年生黑麦草 L. perenne | 降低菌根真菌的定殖。Reduces the colonization of mycorrhizal fungi. | [ |
| 抑制菌根侵染率。Inhibits the mycorrhizal infection rate. | [ | ||
披碱草香柱菌 E. elymi | 刺毛披碱草 Elymus hystrix | 增加菌根真菌摩西球囊霉(Glomus mosseae)的定殖,降低菌根真菌明球囊霉(Glomus claroideum)的定殖。Increases the colonization of the mycorrhizal fungus G. mosseae and decreases the colonization of the mycorrhizal fungus G. claroideum. | [ |
Table 1 Effects of Epichlo? endophytes on rhizosphere microorganisms
内生真菌 Endophytes | 宿主 Host | 作用 Function | 参考文献 Reference |
|---|---|---|---|
隐匿香柱菌 E. occultans | 多花黑麦草 Lolium multiflorum | 对根际土壤细菌的呼吸作用没有显著影响。Has no significant effect on the respiratory activity of rhizosphere soil bacteria. | [ |
| 改变了宿主根际土壤细菌群落组成。Alters the composition of the host rhizosphere soil bacterial community. | [ | ||
| 增加真菌活性,降低菌根真菌侵染率。Enhances fungal activity, and lower the mycorrhizal fungi infection rate. | [ | ||
黄化香柱菌 E. amarillans | 美洲沙茅草 A. breviligulata | 在水分胁迫条件下降低了植株根系相关细菌群落的多样性。Reduces the diversity of plant root-associated bacterial communities under water stress conditions. | [ |
| 增加了根部内生真菌的丰富度并且在氮肥富集条件下改变了根部内生真菌群落的组成。Increases the abundance of root endophytic fungi and alters the composition of root endophytic fungal communities under nitrogen fertilizer enrichment conditions. | [ | ||
聚生香柱菌 E. coenophiala | 高羊茅 F. arundinacea | 增加了根际土壤细菌的多样性。Enhances the diversity of rhizosphere soil bacteria. | [ |
| 降低了宿主在黏土生境下的革兰氏阳性细菌(G+)的多样性。Decreases the diversity of Gram’positive bacteria (G+) in the host under clay habitat conditions. | [ | ||
| 对根部溶磷细菌多样性没有显著的相互作用。There is no significant interaction with the diversity of phosphate-solubilizing bacteria (PSB) in the roots. | [ | ||
| 降低了古细菌的群落多样性,抑制了黏壤土中革兰氏阳性菌的生长。Reduces the community diversity of archaea and inhibits the growth of Gram-positive bacteria in clay loam. | [ | ||
| 苇状羊茅Schedonorus arundinaceus | 降低菌根真菌的定殖。Reduces the colonization of mycorrhizal fungi. | [ | |
| 在不同的土壤含水量下,对丛枝菌根真菌的定殖率不同。The colonization rate of AMF varies under different soil moisture contents. | [ | ||
| 减少了根部的菌根定殖。Decreases mycorrhizal colonization in roots. | [ | ||
黑麦草香柱菌 E. festucae var. lolii | 多年生黑麦草 L. perenne | 显著增加了 16S rRNA 基因的绝对丰度以及土壤细菌群落的多样性。Significantly increases the absolute abundance of the 16S rRNA gene and the diversity of soil bacterial communities. | [ |
| 改变了根际土壤中与氮循环相关的细菌基因丰度,尽管对土壤真菌群落的绝对丰度和多样性没有显著影响。Alters the abundance of bacterial genes related to nitrogen cycling in rhizosphere soil, although it has no significant effect on the absolute abundance and diversity of soil fungal communities. | [ | ||
甘肃香柱菌 E. gansuensis | 醉马草 A. inebrians | 减少了根际土壤中可培养细菌的种类数目。Decreases the number of culturable bacterial species in the rhizosphere soil. | [ |
| 降低了根相关细菌多样性,增加了根际土壤细菌群落的多样性。Reduces root-associated bacterial diversity while increasing the diversity of rhizosphere soil bacterial communities. | [ | ||
| 在盐胁迫下,显著增加了宿主养分提取和土壤微生物丰度。Significantly enhances host nutrient uptake and soil microbial abundance under salt stress. | [ | ||
| 宿主抵抗CdCl?过程中,内生真菌增强了根际细菌物种间的协作。During the host’s resistance to CdCl?, strengthen the cooperation between rhizosphere bacterial species. | [ | ||
| 在NH??-N处理下增加了宿主根部细菌的α-多样性。Increases the α-diversity of host root bacteria under NH?+-N treatment. | [ | ||
| 降低了根系相关真菌群落的多样性,显著降低了根相关真菌多样性。Reduces the diversity of root-associated fungal communities, significantly reduces the diversity of root-associated fungi (RAF). | [ | ||
| 减少了根际土壤中真菌的数目。Decreases the number of fungi in rhizosphere soil. | [ | ||
| 降低盐胁迫对真菌群落多样性的影响。Mitigates the impact of salt stress on fungal community diversity. | [ | ||
雀麦香柱菌 E. bromicola | 羊草 Leymus chinensis | 提高丛枝菌根真菌的侵染率和孢子密度。Improves the infection rate and spore density of arbuscular mycorrhizal fungi (AMF). | [ |
| 增加根际土壤中真菌的数目。Increases the number of fungi in rhizosphere soil. | [ | ||
雀麦香柱菌 E. bromicola | 羊草 Leymus chinensis | 增加根系和根际土壤中的真菌群落多样性和丰富度。Enhances the diversity and richness of fungal communities in roots and rhizosphere soil. | [ |
| 随植物生长时间的延长,内生真菌与生长时间互作对真菌和细菌丰度影响显著。With the extension of plant growth period, the interaction between endophytic fungi and growth time has a significant impact on the abundance of fungi and bacteria. | [ | ||
| 对宿主根部丛枝菌根真菌总定殖率没有影响。Has no effect on the total colonization rate of arbuscular mycorrhizal fungi (AMF) in host roots. | [ | ||
| 高羊茅F. arundinacea | 减少丛枝菌根真菌定殖率。Reduces the colonization rate of arbuscular mycorrhizal fungi (AMF). | [ | |
| 降低菌根真菌的定殖。Reduces the colonization of mycorrhizal fungi. | [ | ||
| 在盐碱胁迫条件下,显著增加了宿主根部植物促生真菌的多样性并改变了其组成。Significantly increases the diversity of plant growth-promoting fungi (PSE) in host roots and alters their composition under saline-alkali stress conditions. | [ | ||
| 短芒大麦草Hordeum brevisubulatum | 提高土壤中的氨氧化细菌丰度。Increases the abundance of ammonia-oxidizing bacteria in soil. | [ | |
布顿大麦草 Hordeum bogdanii | 抑制了土壤真菌的丰富度,但提高了土壤真菌的多样性。Inhibits the abundance of soil fungi but improves the diversity of soil fungi. | [ | |
| 降低菌根真菌的定殖。Reduces the colonization of mycorrhizal fungi. | [ | ||
羊茅香柱菌 E. festucae | 多年生黑麦草 L. perenne | 显著增加了植物刈割返田后和植物自然生长土壤中真菌群落的多样性。 Significantly increases the diversity of fungal communities in soil after plant mowing and returning to the field, as well as in soil with natural plant growth. | [ |
紫羊茅 Festuca rubra | 显著提高根际土壤真菌群落的代谢途径和次生代谢产物生物合成功能。 Significantly improves the metabolic pathways and secondary metabolite biosynthesis functions of the rhizosphere soil fungal community. | [ | |
潘佩香柱菌 E. panpeana | 奥氏雀麦 Bromus auleticus | 增加根际溶磷真菌多样性。Increases the diversity of phosphate-solubilizing fungi in the rhizosphere. | [ |
西伯利亚香柱菌 E. sibirica | 西伯利亚羽茅Achnatherum sibiricum | 降低菌根真菌的定殖。Reduces the colonization of mycorrhizal fungi. | [ |
滕布拉德香柱菌 E. tembladerae | 刚毛雀麦 Bromus setifolius | 增加菌根真菌的定殖。Increases the colonization of mycorrhizal fungi. | [ |
香柱菌 E. typhina | 多年生黑麦草 L. perenne | 降低菌根真菌的定殖。Reduces the colonization of mycorrhizal fungi. | [ |
| 抑制菌根侵染率。Inhibits the mycorrhizal infection rate. | [ | ||
披碱草香柱菌 E. elymi | 刺毛披碱草 Elymus hystrix | 增加菌根真菌摩西球囊霉(Glomus mosseae)的定殖,降低菌根真菌明球囊霉(Glomus claroideum)的定殖。Increases the colonization of the mycorrhizal fungus G. mosseae and decreases the colonization of the mycorrhizal fungus G. claroideum. | [ |
内生真菌 Endophytes | 宿主 Host | 作用 Function | 参考文献 Reference |
|---|---|---|---|
香柱菌 E. typhina | 博纳早熟禾 Poa bonariensis | 对内生菌群落丰富度和多样性指数没有显著差异。Shows no significant difference in the richness and diversity index of endophytic microbial communities. | [ |
聚生香柱菌 E. coenophiala | 高羊茅 F. arundinacea | 对叶际内生细菌群落没有显著影响。Has no significant effect on the phyllosphere endophytic bacterial community. | [ |
羊茅香柱菌 E. festucae | 多年生黑麦草 L. perenne | 对叶片真菌群落没有显著影响。Has no significant effect on the leaf fungal community. | [ |
甘肃香柱菌 E. gansuensis | 醉马草 A. inebrians | 增加了细菌和真菌群落的Shannon多样性指数,但降低了Simpson多样性指数。Increases the Shannon diversity index of bacterial and fungal communities, but decreases the Simpson diversity index. | [ |
钩状香柱菌 E. uncinata | 草地羊茅 Festuca pratensis | 改变了叶片中的真菌微生物群落。Alters the fungal microbial community in leaves. | [ |
Table 2 Effects of Epichlo? endophytes on leaf-associated microorganisms
内生真菌 Endophytes | 宿主 Host | 作用 Function | 参考文献 Reference |
|---|---|---|---|
香柱菌 E. typhina | 博纳早熟禾 Poa bonariensis | 对内生菌群落丰富度和多样性指数没有显著差异。Shows no significant difference in the richness and diversity index of endophytic microbial communities. | [ |
聚生香柱菌 E. coenophiala | 高羊茅 F. arundinacea | 对叶际内生细菌群落没有显著影响。Has no significant effect on the phyllosphere endophytic bacterial community. | [ |
羊茅香柱菌 E. festucae | 多年生黑麦草 L. perenne | 对叶片真菌群落没有显著影响。Has no significant effect on the leaf fungal community. | [ |
甘肃香柱菌 E. gansuensis | 醉马草 A. inebrians | 增加了细菌和真菌群落的Shannon多样性指数,但降低了Simpson多样性指数。Increases the Shannon diversity index of bacterial and fungal communities, but decreases the Simpson diversity index. | [ |
钩状香柱菌 E. uncinata | 草地羊茅 Festuca pratensis | 改变了叶片中的真菌微生物群落。Alters the fungal microbial community in leaves. | [ |
内生真菌 Endophytes | 宿主 Host | 作用 Function | 参考文献 Reference |
|---|---|---|---|
甘肃香柱菌 E. gansuensis | 醉马草 A. inebrians | 显著降低了种带微生物群落的丰富度和多样性。Significantly reduces the richness and diversity of the seed-borne microbial community. | [ |
| 显著降低了种子内生和附生细菌群落的多样性。Significantly decreases the diversity of endophytic and epiphytic bacterial communities in seeds. | [ | ||
| 改变不同世代之间细菌和真菌的群落组成。Alters the community composition of bacteria and fungi across different generations. | [ | ||
隐匿香柱菌 E. occultans | 多花黑麦草 L. multiflorum | 增加了细菌多样性,并使细菌群落更加均衡。Increases bacterial diversity and makes the bacterial community more balanced. | [ |
香柱菌 E. typhina | 散穗雀麦 Puccinellia distans | 影响真菌群落的组成。Affects the composition of the fungal community. | [ |
中华香柱菌 E. sinensis | 中华羊茅 F.sinensis | 对种带真菌多样性无显著影响。 Has no significant effect on the diversity of seed-borne fungi. | [ |
Table 3 Effects of Epichlo? endophytes on seed-associated microorganisms
内生真菌 Endophytes | 宿主 Host | 作用 Function | 参考文献 Reference |
|---|---|---|---|
甘肃香柱菌 E. gansuensis | 醉马草 A. inebrians | 显著降低了种带微生物群落的丰富度和多样性。Significantly reduces the richness and diversity of the seed-borne microbial community. | [ |
| 显著降低了种子内生和附生细菌群落的多样性。Significantly decreases the diversity of endophytic and epiphytic bacterial communities in seeds. | [ | ||
| 改变不同世代之间细菌和真菌的群落组成。Alters the community composition of bacteria and fungi across different generations. | [ | ||
隐匿香柱菌 E. occultans | 多花黑麦草 L. multiflorum | 增加了细菌多样性,并使细菌群落更加均衡。Increases bacterial diversity and makes the bacterial community more balanced. | [ |
香柱菌 E. typhina | 散穗雀麦 Puccinellia distans | 影响真菌群落的组成。Affects the composition of the fungal community. | [ |
中华香柱菌 E. sinensis | 中华羊茅 F.sinensis | 对种带真菌多样性无显著影响。 Has no significant effect on the diversity of seed-borne fungi. | [ |
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