林业科学 ›› 2026, Vol. 62 ›› Issue (4): 1-11.doi: 10.11707/j.1001-7488.LYKX20260101
收稿日期:2026-02-13
出版日期:2026-04-15
发布日期:2026-04-11
通讯作者:
崔丽娟
E-mail:wangsk94@163.com;wetlands108@126.com
基金资助:
Shaokun Wang1,2(
),Jing Li1,2,Lijuan Cui1,*(
)
Received:2026-02-13
Online:2026-04-15
Published:2026-04-11
Contact:
Lijuan Cui
E-mail:wangsk94@163.com;wetlands108@126.com
摘要:
滨海湿地作为海陆过渡带的重要生态系统,受潮汐作用、盐度梯度以及盐生植被分布等多重环境因子的共同影响,形成了独特的氮(N)循环模式,在缓解近岸水体富营养化和维持生态系统功能方面具有重要作用。滨海湿地土壤脱N过程的驱动机制已受到广泛关注,但现有研究多侧重于环境因子或微生物过程的单一解析,盐生植物对微生物脱N过程的影响机制仍缺乏系统梳理。盐生植物根系性状是调控植被特征与土壤N循环过程耦合关系的重要功能属性。本研究系统梳理了滨海湿地水文与盐度条件以及盐生植物对脱N过程的影响。重点从根系功能性状的角度,整合了根系生理性状、化学性状和形态性状通过碳(C)输入、根系泌氧、调节根际微环境等途径对微生物脱N过程的影响,以期揭示根系介导的微生物群落结构重塑、核心脱N功能类群富集以及C—N、铁(Fe)—N等关键元素耦合脱N过程的调控机制。本研究旨在填补盐生植物根系性状与滨海湿地微生物脱N过程之间系统认识的不足,为未来相关研究的深化开展提供理论参考。
中图分类号:
王绍坤,李晶,崔丽娟. 盐生植物根系性状对滨海湿地微生物脱氮过程的影响机制研究进展[J]. 林业科学, 2026, 62(4): 1-11.
Shaokun Wang,Jing Li,Lijuan Cui. Research Progress on Mechanisms of Halophyte Plant Root Traits Influencing Microbial Nitrogen Removal in Coastal Wetlands[J]. Scientia Silvae Sinicae, 2026, 62(4): 1-11.
图1
盐生植物根系性状、微生物脱氮过程及相互作用示意 AMO: 氨单加氧酶 Ammonia monooxygenase; HAO: 羟胺氧化还原酶 Hydroxylamine oxidoreductase; NXR: 亚硝酸盐氧化还原酶 Nitrite oxidoreductase; Nar: 硝酸盐还原酶(异化型)Nitrate reductase, dissimilatory; NAP: 硝酸盐还原酶 Nitrate reductase; NirK: 含铜亚硝酸盐还原酶 Copper-containing nitrite reductase; NirS: 含细胞色素cd1亚硝酸盐还原酶 Cytochrome cd1-containing nitrite reductase; Nor: 一氧化氮还原酶 Nitric oxide reductase; Nos: 氧化亚氮还原酶 Nitrous oxide reductase; Nir: NADPH依赖型亚硝酸盐还原酶 NADPH-dependent nitrite reductase; HZS: 肼合成酶Hydrazine synthase."
表1
盐生植物根系性状调控滨海湿地脱氮过程的微生物机制"
| 根系性状 Root traits | 影响机制 Mechanisms | 微生物类群 Microbial taxa | 参考文献 References |
| 根系泌氧 Radial oxygen loss | 根系泌氧塑造基质中好氧和微好氧区域,影响氮 去除过程反应强度 Radial oxygen loss creates aerobic and microaerobic zones within the substrate, thereby influencing the intensity of nitrogen removal processes | 拟杆菌纲,地杆菌属,假单胞菌 Petrimonas, Geobacter, Pseudomonas | |
| 根系生物量 Root biomass | 植物较高的根系生物量提供更多碳源输入,促进反硝化过程 Greater root biomass enhances carbon inputs, thereby facilitating denitrification | nirS, nirK型反硝化微生物 nirS, nirK type denitrifiers | |
| 比表面积 Specific root area | 高比表面积植物根系,提供更大附着界面,提高功能 微生物多样性和活性 Higher root surface area provides greater carrier for microorganisms, enhancing their diversity and activity | 放线菌门,节杆菌属Actinobacteria, Arthrobacter | |
| 根直径,比根长 Root diameter,specific root length | 控制分泌速率和细根周转的速率进一步调节碳输入, 调控反硝化过程 Regulation of exudation rates and root turnover further modulates carbon inputs, thereby regulating denitrification | 固氮螺菌属,慢生根瘤菌属,中华根瘤菌属Azospira, Bradyrhizobium, Sinorhizobium | |
| 根氮浓度 Root nitrogen content | 不仅决定了植物本身的养分吸收率,还减少了 土壤中的氮底物,抑制反硝化 This not only determines the nutrient uptake rate of plants themselves, but also reduces nitrogen substrates in the soil, thereby inhibiting denitrification | ||
| 根系次生代谢产物 Root secondary metabolites | 脂肪酸甲酯、脂肪酸酰胺、豆甾醇作为信号分析促进 反硝化菌氮去除活性 Fatty acid methyl esters, fatty acid amides, and stigmasterol function as signaling molecules, enhancing the nitrogen removal activity of denitrifying bacteria | 假单胞菌属Pseudomonas | |
| 根系初生代谢产物 Root primary metabolites | 有机酸、蛋白质、氨基酸、糖类作为碳源促进反硝化过程 Organic acids, proteins, amino acids, and carbohydrates serve as carbon sources to promote denitrification | 绿脓杆菌,地杆菌属,梭状芽孢杆菌属Pseudomonas aeruginosa,Geobacter, Clostridium | |
| 生物反硝化抑制剂 Biological denitrification inhibitors | 根系分泌的黄酮和萜类化合物抑制反硝化;类腐殖酸以及氨氧化过程产生的羟胺抑制厌氧氨氧化活性 Flavonoids and terpenoids exuded by roots inhibit denitrification, while humic-like substances and hydroxylamine generated during ammonia oxidation suppress anaerobic ammonium oxidation activity | nirS, nirK, nosZ型反硝化微生物 nirS, nirK, nosZ type denitrifiers |
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| [1] | 谢锦莹,丁丽霞,王志辉,刘丽娟. 基于FCN与面向对象的滨海湿地植被分类[J]. 林业科学, 2020, 56(8): 98-106. |
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