植物研究 ›› 2025, Vol. 45 ›› Issue (6): 965-974.doi: 10.7525/j.issn.1673-5102.2025.06.013
收稿日期:2024-09-29
出版日期:2025-11-20
发布日期:2025-11-27
通讯作者:
德吉
E-mail:dg971103@163.com
作者简介:王兰(1997—),女,博士研究生,主要从事微生物生态学研究。
基金资助:
Lan WANG, Di ZHOU, Zhao XUE, Dongxu WANG, Xiaofang GUO, Ji DE(
)
Received:2024-09-29
Online:2025-11-20
Published:2025-11-27
Contact:
Ji DE
E-mail:dg971103@163.com
摘要:
青稞(Hordeum vulgare var. coeleste)是一种适应高寒环境的粮食作物,在农业可持续发展和生态系统稳定中发挥重要作用。为揭示不同生长时期青稞种子内生细菌群落动态变化规律,选取4个青稞品种,在不同生长阶段采集种子样品,并通过16S rRNA高通量测序技术解析种子内生细菌群落结构。采用Shannon指数、Simpson指数、Chao1指数和ACE指数评估青稞种子内生细菌群落α多样性,并分析群落组成及其随生长阶段的演替特征。结果表明:青稞种子内生细菌群落多样性在不同品种间相对稳定,但在灌浆期种子内生细菌群落α多样性显著低于其他生长阶段。变形菌门(Proteobacteria)在所有生长阶段均占主导地位,其他主要菌门包括拟杆菌门(Bacteroidota)、厚壁菌门(Firmicutes)和放线菌门(Actinobacteriota),其相对丰度随生长阶段变化。种子期的优势菌属为不动杆菌属(Acinetobacter),灌浆期的优势菌属为芽孢杆菌属(Bacillus)和假单胞菌属(Pseudomonas),成熟期则以黄杆菌属(Flavobacterium)和乳杆菌属(Lactobacillus)为主。基因型对青稞种子内生细菌群落结构具有显著影响,不同品种间群落组成存在差异。综上,该研究证实青稞种子内生细菌群落组成和多样性随生长阶段变化,并受基因型影响。不同阶段的群落组成和多样性特征表明,内生细菌可能通过促进养分吸收、合成植物生长激素、增强环境胁迫耐受性及抑制病原微生物等机制,在青稞生长发育过程中发挥重要的促进与保护作用。该研究可以为进一步解析其生态功能及分子调控机制提供科学依据。
中图分类号:
王兰, 周迪, 薛曌, 王东旭, 郭小芳, 德吉. 不同生长时期青稞种子内生细菌群落动态研究[J]. 植物研究, 2025, 45(6): 965-974.
Lan WANG, Di ZHOU, Zhao XUE, Dongxu WANG, Xiaofang GUO, Ji DE. Dynamics of Endophytic Bacterial Communities in Highland Barley Seeds at Different Growth Stages[J]. Bulletin of Botanical Research, 2025, 45(6): 965-974.
表 1
不同生长时期青稞种子内生细菌群落多样性比较
品种 Variety | 生长时期 Growth stage | 香农指数 Shannon index | 辛普森指数 Simpson index | Chao1指数 Chao1 index | ACE指数 ACE index |
|---|---|---|---|---|---|
藏青2000 Zangqing 2000 | 种子期Seed stage | 5.40±0.30a | 1.00±0.01a | 170.00±68.90a | 187.00±77.40a |
| 灌浆期Grain-filling stage | 2.30±0.50a | 0.70±0.20a | 20.80±8.30a | 26.70±15.10a | |
| 成熟期Maturity stage | 2.80±2.10a | 0.60±0.50a | 37.90±30.10a | — | |
藏青320 Zangqing 320 | 种子期Seed stage | 4.10±1.10a | 0.90±0.10a | 62.90±39.60a | 70.30±42.50a |
| 灌浆期Grain-filling stage | 2.50±1.20a | 0.70±0.30a | 15.10±5.20a | 16.90±6.52a | |
| 成熟期Maturity stage | 4.90±0.30a | 0.90±0.01a | 102.00±10.50a | 124.00±19.90a | |
喜马拉雅22号 Himalayan 22 | 种子期Seed stage | 3.58±1.40a | 0.79±0.16a | 56.10±33.60a | 58.70±41.90a |
| 灌浆期Grain-filling stage | 0.82±0.56a | 0.28±0.25a | 17.10±5.38a | 22.70±7.84a | |
| 成熟期Maturity stage | 4.62±0.56a | 0.94±0.03a | 68.70±24.50a | 96.80±31.60a | |
藏青13-5171-7 Zangqing 13-5171-7 | 种子期Seed stage | 3.59±0.79a | 0.85±0.05a | 46.70±16.00a | 48.90±19.50a |
| 灌浆期Grain-filling stage | 1.08±0.59a | 0.41±0.26a | 4.50±0.87a | 6.47±1.63a | |
| 成熟期Maturity stage | 4.16±1.02a | 0.88±0.10a | 56.10±32.80a | 71.30±46.70a |
| [1] | AWIKA J M, PIIRONEN V, BEAN S.Advances in cereal science: implications to food processing and health promotion[M].New York:ACS Division of Agricultural and Food Chemistry,2011. |
| [2] | ZENG X Q, LONG H, WANG Z,et al.The draft genome of Tibetan hulless barley reveals adaptive patterns to the high stressful Tibetan Plateau[J].Proceedings of the National Academy of Sciences of the United States of America,2015,112(4):1095-1100. |
| [3] | LUKINA K A, KOVALEVA O N, LOSKUTOV I G.Naked barley:taxonomy,breeding,and prospects of utilization[J].Vavilov Journal of Genetics and Breeding,2022,26(6):524-536. |
| [4] | ZHANG Z M, LU C H.Assessing influences of climate change on highland barley productivity in the Qinghai-Tibet Plateau during 1978—2017[J].Scientific Reports,2022,12(1):7625. |
| [5] | GODFRAY H C J, BEDDINGTON J R, CRUTE I R,et al.Food security:the challenge of feeding 9 billion people[J].Science,2010,327(5967):812-818. |
| [6] | MICHL K, BERG G, CERNAVA T.The microbiome of cereal plants:the current state of knowledge and the potential for future applications[J].Environmental Microbiome,2023,18(1):28. |
| [7] | TRIVEDI P, LEACH J E, TRINGE S G,et al.Plant-microbiome interactions:from community assembly to plant health[J].Nature Reviews Microbiology,2020,18(11):607-621. |
| [8] | BODDEY R M, URQUIAGA S, ALVES B J R,et al.Endophytic nitrogen fixation in sugarcane:present knowledge and future applications[J].Plant and Soil,2003,252(1):139-149. |
| [9] | SUZAKI T, YORO E, KAWAGUCHI M.Leguminous plants:inventors of root nodules to accommodate symbiotic bacteria[J].International Review of Cell and Molecular Biology,2015,316:111-158. |
| [10] | CLÚA J, RODA C, ZANETTI M E,et al.Compatibility between legumes and rhizobia for the establishment of a successful nitrogen-fixing symbiosis[J].Genes,2018,9(3):125. |
| [11] | WALIA A, GULERIA S, CHAUHAN A,et al.Endophytic bacteria:role in phosphate solubilization[J].Endophytes:Crop Productivity and Protection,2017,2:61-93. |
| [12] | EIDA A A, ZIEGLER M, LAFI F F,et al.Desert plant bacteria reveal host influence and beneficial plant growth properties[J].PLoS One,2018,13(12):e0208223. |
| [13] | SYAHRI,GIYANTO, MUTAQIN K H.Screening of plant growth-promoting endophytic bacteria from the maize roots for biocontrol of Stewart wilt disease[J].IOP Conference Series:Earth and Environmental Science,2023,1133(1):012037. |
| [14] | GROßKINSKY D K, TAFNER R, MORENO M V,et al.Cytokinin production by Pseudomonas fluorescens G20-18 determines biocontrol activity against Pseudomonas syringae in Arabidopsis [J].Scientific Reports,2016,6(1):23310. |
| [15] | DONG R S, ZHANG J, HUAN H F,et al.High salt tolerance of a Bradyrhizobium strain and its promotion of the growth of Stylosanthes guianensis [J].International Journal of Molecular Sciences,2017,18(8):1625. |
| [16] | CHEN C Q, XIN K Y, LIU H,et al. Pantoea alhagi,a novel endophytic bacterium with ability to improve growth and drought tolerance in wheat[J].Scientific Reports,2017,7(1):41564. |
| [17] | MUNIR S, LI Y M, HE P B,et al.Defeating Huanglongbing pathogen Candidatus Liberibacter asiaticus with indigenous citrus endophyte Bacillus subtilis L1-21[J].Frontiers in Plant Science,2022,12:789065. |
| [18] | LAU J A, LENNON J T.Rapid responses of soil microorganisms improve plant fitness in novel environments[J].Proceedings of the National Academy of Sciences of the United States of America,2012,109(35):14058-14062. |
| [19] | XU Y T, SUN R, YAN W M,et al.Divergent response of soil microbes to environmental stress change under different plant communities in the Loess Plateau[J].Catena,2023,230:107240. |
| [20] | PAPIK J, FOLKMANOVA M, POLIVKOVA-MAJOROVA M,et al.The invisible life inside plants:deciphering the riddles of endophytic bacterial diversity[J].Biotechnology Advances,2020,44:107614. |
| [21] | 巩文峰,魏丽萍,杜娟,等.西藏青稞根际细菌群落结构及多样性[J].微生物学报,2023,63(10):4034-4050. |
| GONG W F, WEI L P, DU J,et al.Structure and diversity of the bacterial community in the rhizosphere of highland barley in Xizang[J].Acta Microbiologica Sinica,2023,63(10):4034-4050. | |
| [22] | HAO Z, WANG Y H, GUO X F,et al.Deciphering the core seed endo-bacteriome of the highland barley in Tibet plateau[J].Frontiers in Plant Science,2022,13:1041504. |
| [23] | 王艳梅.阿里地区主要农作物青稞营养品质鉴定与内生菌多样性研究[D].拉萨:西藏大学,2024. |
| WANG Y M.Nutritional quality identification and endophyte diversity of barley,a major crop in Ali region[D].Lhasa:Xizang University,2014. | |
| [24] | QUAST C, PRUESSE E, YILMAZ P,et al.The SILVA ribosomal RNA gene database project:improved data processing and web-based tools[J].Nucleic Acids Research,2013,41(D1):D590-D596. |
| [25] | EDWARDS J, JOHNSON C, SANTOS-MEDELLÍN C,et al.Structure,variation,and assembly of the root-associated microbiomes of rice[J].Proceedings of the National Academy of Sciences of the United States of America,2015,112(8):E911-E920. |
| [26] | 古丽尼沙·沙依木,张志东,杨波,等.干旱区不同品种苹果树叶片内生真菌群落组成和功能特征[J].干旱地区农业研究,2023,41(2):211-220. |
| GULINISHA SHAYIMU, ZHANG Z D, YANG B,et al.Community composition and functional characteristics of endophytic fungi in leaves of different apple varieties in arid area of Xinjiang[J].Agricultural Research in the Arid Areas,2023,41(2):211-220. | |
| [27] | LI R, DUAN W Y, RAN Z F,et al.Diversity and correlation analysis of endophytes and metabolites of Panax quinquefolius L. in various tissues[J].BMC Plant Biology,2023,23(1):275. |
| [28] | YANG T, WEISENHORN P, GILBERT J A,et al.Carbon constrains fungal endophyte assemblages along the timberline[J].Environmental Microbiology,2016,18(8):2455-2469. |
| [29] | XIONG C, SINGH B K, HE J Z,et al.Plant developmental stage drives the differentiation in ecological role of the maize microbiome[J].Microbiome,2021,9(1):171. |
| [30] | 李南南,黎妮,曹艳花,等.3个杂交水稻亲本成熟期种子内生细菌多样性研究[J].食品科学技术学报,2017,35(4):56-64. |
| LI N N, LI N, CAO Y H,et al.Diversity of endophytic bacterial communities in three parental seeds of hybrid rice(Oryza sativa L.) at maturity stage[J].Journal of Food Science and Technology,2017,35(4):56-64. | |
| [31] | YANG M, GAO P H, GUO J W,et al.The endophytic fungal community plays a crucial role in the resistance of host plants to necrotic bacterial pathogens[J].Physiologia Plantarum,2024,176(2):e14284. |
| [32] | ASWINI K, SUMAN A, SHARMA P,et al.Seed endophytic bacterial profiling from wheat varieties of contrasting heat sensitivity[J].Frontiers in Plant Science,2023,14:1101818. |
| [33] | 赵霞.水稻种子内生细菌多样性分析及核心微生物组的界定[D].北京:中国农业科学院,2019. |
| ZHAO X.Analysis of endophytic bacteria diversity in rice seeds and definition of core microbiome[D].Beijing:Chinese Academy of Agricultural Sciences,2019. | |
| [34] | WANG Z S, ZHU Y Q, LI N,et al.High-throughput sequencing-based analysis of the composition and diversity of endophytic bacterial community in seeds of saline-alkali tolerant rice[J].Microbiological Research,2021,250:126794. |
| [35] | 刘璐,名晓东,张晓艳,等.高通量测序分析蚕豆种子内生细菌的多样性[J].中国农业科技导报,2021, 23(2):73-80. |
| LIU L, MING X D, ZHANG X Y,et al.Diversity of endophytic bacteria in faba bean seeds by high-throughput sequencing[J].Journal of Agricultural Science and Technology,2021,23(2):73-80. | |
| [36] | RAWEEKUL W, WUTTITUMMAPORN S, SODCHUEN W,et al.Plant growth promotion by endophytic bacteria isolated from rice(Oryza sativa)[J].Science & Technology Asia,2016,21(1):6-17. |
| [37] | 宋雪,付楚涵,李家红,等.内生菌提高植物抗旱性和耐盐性分子机制研究进展[J].草地学报,2024,32(1):13-24. |
| SONG X, FU C H, LI J H,et al.Research progress on molecular mechanism of endophytes improving the drought resistance and salt tolerance of plant[J].Acta Agrestia Sinica,2024,32(1):13-24. | |
| [38] | RANA K L, KOUR D, KAUR T,et al.Endophytic microbes from diverse wheat genotypes and their potential biotechnological applications in plant growth promotion and nutrient uptake[J].Proceedings of the National Academy of Sciences,India Section B:Biological Sciences,2020,90(5):969-979. |
| [39] | KHALIL A M A, HASSAN S E D, ALSHARIF S M,et al.Isolation and characterization of fungal endophytes isolated from medicinal plant Ephedra pachyclada as plant growth-promoting[J].Biomolecules,2021,11(2):140. |
| [40] | VIGNOLO G, SAAVEDRA L, SESMA F,et al.Food bioprotection:lactic acid bacteria as natural preservatives[J].Progress in Food Preservation,2012:451-483. |
| [41] | CHEN C, CAO Z, LI J,et al.A novel endophytic strain of Lactobacillus plantarum CM-3 with antagonistic activity against Botrytis cinerea on strawberry fruit[J].Biological Control,2020,148:104306. |
| [42] | YIN C T, CASA VARGAS J M, SCHLATTER D C,et al.Rhizosphere community selection reveals bacteria associated with reduced root disease[J].Microbiome,2021,9(1):86. |
| [1] | 吴玉虎, 冷振宁, 李聪佳, 张泽林, 庞哲. 青海野生种子植物种的垂直分布[J]. 植物研究, 2025, 45(6): 861-872. |
| [2] | 罗植煜, 余静雅, 郑清清, 张发起. 不同种源臭蒿种子萌发特性与染色体核型[J]. 植物研究, 2025, 45(6): 898-908. |
| [3] | 张珊珊, 阮孙美, 杨文忠. 云南金花茶的遗传多样性评价和核心种质构建[J]. 植物研究, 2025, 45(6): 909-918. |
| [4] | 符莹莹, 赖佳辉, 袁华怡, 余红娅, 刘光华, 徐福荣. 滇重楼种子萌发过程中生理生化指标变化分析[J]. 植物研究, 2025, 45(6): 952-964. |
| [5] | 白宏超, 赵熙明, 邓睿, 刘宇宁, 杜玉啸, 郑宝江. 中国野生茶藨子属物种多样性与分布格局[J]. 植物研究, 2025, 45(6): 975-983. |
| [6] | 岑念, 任柳伊, 白新祥, 李美君. 四川省野生凤仙花属物种多样性与地理分布[J]. 植物研究, 2025, 45(6): 984-996. |
| [7] | 龙姿羽, 王志成, 赵蕊, 刘冰, 陈功锡. 德夯地质公园岩溶河谷源头瀑布草本群落植物多样性[J]. 植物研究, 2025, 45(5): 707-721. |
| [8] | 程薪宇, 郭梦桥, 官海云, 茹剑, 白琰, 郭连金. 香果树种子萌发的光照需求及其转录组响应分析[J]. 植物研究, 2025, 45(4): 546-557. |
| [9] | 王喆, 李明月, 朱美如, 张鹏. 不同初生休眠类型林木种子适宜萌发温度及其对热休眠诱导的响应[J]. 植物研究, 2025, 45(4): 569-579. |
| [10] | 汤嘉莹, 张进坤, 胡继文, 王福德, 辛培尧, 麻文俊. 大兴安岭地区野生芍药居群表型多样性[J]. 植物研究, 2025, 45(2): 299-314. |
| [11] | 刘婷, 李明月, 朱美如, 辛昊, 董博文, 张鹏. 不同水曲柳无性系种子休眠差异[J]. 植物研究, 2024, 44(5): 711-720. |
| [12] | 张喜亭, 张建宇, 仲召亮, 王文杰. 大兴安岭绰纳河保护区植物多样性特征[J]. 植物研究, 2024, 44(5): 730-737. |
| [13] | 靳旭红, 于聪, 张庭耀, 吕松瞳, 刘扬, 陈乐, 龙生, 穆怀志. 基于种子活力和苗期生长的枫桦半同胞家系初选[J]. 植物研究, 2024, 44(5): 763-773. |
| [14] | 秦斗文, 刘伟强, 田吉婷, 唐楠, 巨秀婷. 基于SRAP分子标记的郁金香遗传多样性分析[J]. 植物研究, 2024, 44(5): 783-792. |
| [15] | 唐双龙, 陈时鑫, 王煜, 马丹炜, 杨世辉, 聂申明, 扎西泽里, 田正友. 中国特有种大理白前对高寒环境的形态适应特征[J]. 植物研究, 2024, 44(3): 389-399. |
| 阅读次数 | ||||||
|
全文 |
|
|||||
|
摘要 |
|
|||||