Nitrogen Input Alters Root Exudation of Kandelia obovata and Nitrogen Cycling in Constructed Mangrove Wetlands
Abstract
1. Introduction
2. Materials and Methods
2.1. Design and Operation of Constructed Wetlands
2.2. Water Quality Analysis
2.3. Detection of Nitrous Greenhouse Gas
2.4. Soil Collection and Analysis
2.5. Root Morphology and Exudate Analysis
2.6. DNA Extraction, Sequencing, and Functional Gene Analysis
2.7. Statistical Analysis
3. Results and Discussion
3.1. Effects of N Input on Root Morphology and Exudation in Planted Constructed Wetlands
3.2. Composition and Effects of Root Exudates
3.3. Effect of Kandelia obovata Roots on Denitrification Efficiency
3.4. Effect of Kandelia obovata Roots on N2O Net Flux
3.5. Effect of Kandelia obovata Root Exudates on Soil N Storage
3.5.1. Storage of N Forms in the Soil
3.5.2. Vertical Distribution of N Forms in the Soil
3.5.3. Changes in Soil N Components Driven by Root Exudates
3.6. Analysis of Soil Microbial N Metabolic Potential
3.6.1. Soil Microbial High-Throughput Sequencing and Community Structure Analysis
3.6.2. Nitrogen Metabolic Functional Genes and N-Cycle Analysis
3.6.3. Phylum- and Genus-Level Microbial Community Composition in N Metabolic Pathways
Phylum Level
Genus Level
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
- Allen, D.E.; Dalal, R.C.; Rennenberg, H.; Meyer, R.L.; Reeves, S.; Schmidt, S. Spatial and temporal variation of nitrous oxide and methane flux between subtropical mangrove sediments and the atmosphere. Soil Biol. Biochem. 2007, 39, 622–631. [Google Scholar] [CrossRef]
- Lovelock, C.E.; Cahoon, D.R.; Friess, D.A.; Guntenspergen, G.R.; Krauss, K.W.; Reef, R.; Kerrylee Rogers, K.; Saunders, M.L.; Sidik, F.; Swales, A.; et al. The vulnerability of Indo-Pacific mangrove forests to sea-level rise. Nature 2015, 526, 559–563. [Google Scholar] [CrossRef]
- Mao, F.; Ullah, S.; Gorelick, S.M.; Hannah, D.M.; Krause, S. Increasing nutrient inputs risk a surge of nitrous oxide emissions from global mangrove ecosystems. One Earth 2021, 4, 742–748. [Google Scholar] [CrossRef]
- Jia, D.; Qi, F.; Xu, X.; Feng, J.J.; Wu, H.; Guo, J.M.; Lu, W.Z.; Peng, R.H.; Zhu, X.S.; Luo, Y.Q.; et al. Co-Regulations of Spartina alterniflora Invasion and exogenous nitrogen loading on soil N2O efflux in subtropical mangrove mesocosms. PLoS ONE 2016, 11, e0146199. [Google Scholar] [CrossRef] [PubMed]
- Bahram, M.; Espenberg, M.; Pärn, J.; Lehtovirta-Morley, L.; Anslan, S.; Kasak, K.; Kõljalg, U.; Liira, J.; Maddison, M.; Mari, M.; et al. Structure and function of the soil microbiome underlying N2O emissions from global wetlands. Nat. Commun. 2022, 13, 1430. [Google Scholar] [CrossRef]
- Ministry of Ecology and Environment (MEE) of the People’s Republic of China. Bulletin of Marine Ecology and Environment Status of China in 2023; Ministry of Ecology and Environment (MEE) of the People’s Republic of China: Beijing, China, 2024. (In Chinese)
- Perchlik, M.; Tegeder, M. Leaf amino acid supply affects photosynthetic and plant nitrogen use efficiency under nitrogen stress. Plant Physiol. 2018, 178, 174–188. [Google Scholar] [CrossRef] [PubMed]
- Tian, T.; Wang, J.G.; Wang, H.J.; Cui, J.; Shi, X.Y.; Song, J.H.; Li, W.D.; Zhong, M.T.; Qiu, Y.; Xu, T. Nitrogen application alleviates salt stress by enhancing osmotic balance, ROS scavenging, and photosynthesis of rapeseed seedlings (Brassica napus). Plant Signal. Behav. 2022, 17, e2081419. [Google Scholar] [CrossRef]
- Queiroz, H.M.; Artur, A.G.; Taniguchi, C.A.K.; Regia, S.D.S.M.; Do Nascimento, J.C.; Nobrega, G.N.; Luis Otero, X.; Ferreira, T.O. Hidden contribution of shrimp farming effluents to greenhouse gas emissions from mangrove soils. Estuar. Coast. Shelf Sci. 2019, 221, 8–14. [Google Scholar] [CrossRef]
- Zhao, L.; Fu, G.; Pang, W.; Li, X.; Pan, C.; Hu, Z.L. A novel autotrophic denitrification and nitrification integrated constructed wetland process for marine aquaculture wastewater treatment. Chemosphere 2023, 321, 138157. [Google Scholar] [CrossRef]
- Song, W.; Zhao, Y.; Zhou, J.; Feng, J.; Wang, Z.; Han, G.; Pendall, E.; Lin, G. The effects of climate warming and exogenous nitrogen input on soil N2O emissions from mangroves. Soil Biol. Biochem. 2024, 199, 109607. [Google Scholar] [CrossRef]
- Coskun, D.; Britto, D.T.; Shi, W.M.; Kronzucker, H.J. How plant root exudates shape the nitrogen cycle. Trends Plant Sci. 2017, 22, 661–673. [Google Scholar] [CrossRef]
- Horst, M. Mineral Nutrition of Higher Plants, 2nd ed.; Academic Press: Cambridge, MA, USA, 1995. [Google Scholar]
- Lin, Y.; Mei, L.; Wei, Q.; Li, B.; Zhang, P.; Sun, S.; Cui, G. Leymus chinensis resists degraded soil stress by modulating root exudate components to attract beneficial microorganisms. Front. Microbiol. 2022, 13, 951838. [Google Scholar] [CrossRef]
- Wu, H.L.; Wang, X.Z.; He, X.J. Effects of selected root exudate components on nitrogen removal and development of denitrifying bacteria in constructed wetlands. Water 2017, 9, 430. [Google Scholar] [CrossRef]
- Chai, Y.N.; Schachtman, D.P. Root exudates impact plant performance under abiotic stress. Trends Plant Sci. 2022, 27, 80–91. [Google Scholar] [CrossRef] [PubMed]
- Bardon, C.; Piola, F.; Bellvert, F.; Haichar, F.E.Z.; Comte, G.; Meiffren, G.; Meiffren, G.; Pommier, T.; Puijalon, S.; Tsafack, N.; et al. Evidence for biological denitrification inhibition (BDI) by plant secondary metabolites. New Phytol. 2014, 204, 620–630. [Google Scholar] [CrossRef]
- Vives-Peris, V.; de Ollas, C.; Gómez-Cadenas, A.; Pérez-Clemente, R.M. Root exudates: From plant to rhizosphere and beyond. Plant Cell Rep. 2020, 39, 3–17. [Google Scholar] [CrossRef] [PubMed]
- Zhu, Q.Y.; Jiang, N.; Sun, W.J.; Chen, L.C.; Pan, X.F.; Xiong, X.Y. Coordinated monitoring of nitrogen and phosphorus pollution in Shenzhen river and Shenzhen bay based on UV–visible absorption spectroscopy sensor. Ecol. Environ. Monit. Three Gorges 2023, 244–251. [Google Scholar] [CrossRef]
- Williams, A.; Langridge, H.; Straathof, A.L.; Fox, G.; Muhammadali, H.; Hollywood, K.A.; Xu, Y.; Goodacre, R.; de Vries, F.T. Comparing root exudate collection techniques: An improved hybrid method. Soil Biol. Biochem. 2021, 161, 108391. [Google Scholar] [CrossRef]
- Xu, J.; Huang, X.X.; Luo, P.; Zhang, M.; Li, H.; Gong, D.; Liu, F.; Xiao, R.; Wu, J. Root exudates release from Myriophyllum aquaticum and effects on nitrogen removal by constructed wetlands. J. Clean. Prod. 2022, 375, 134095. [Google Scholar] [CrossRef]
- Haelterman, L.; Louvieaux, J.; Chiodi, C.; Bouchet, A.S.; Kupcsik, L.; Stahl, A.; Rousseau-Gueutin, M.; Snowdon, R.; Laperche, A.; Nesi, N.; et al. Genetic control of root morphology in response to nitrogen across rapeseed diversity. Physiol. Plant. 2024, 176, e14315. [Google Scholar] [CrossRef]
- Li, D.X.; Zhang, T.T.; Yu, H.H.; Li, Y.; Lv, T.; Yu, D.; Liu, C. The impacts of different nitrogen supply on root traits, root exudates, and soil enzyme activities of exotic and native plant communities. Plant Soil 2024, 508, 209–226. [Google Scholar] [CrossRef]
- McCormack, M.L.; Dickie, I.A.; Eissenstat, D.M.; Fahey, T.J.; Fernandez, C.W.; Guo, D.; Helmisaari, H.S.; Hobbie, E.A.; Iversen, C.M.; Jackson, R.B.; et al. Redefining fine roots improves understanding of below-ground contributions to terrestrial biosphere processes. New Phytol. 2015, 207, 505–518. [Google Scholar] [CrossRef] [PubMed]
- Li, X.; Dong, J.L.; Chu, W.Y.; Chen, Y.; Duan, Z. The relationship between root exudation properties and root morphological traits of cucumber grown under different nitrogen supplies and atmospheric CO2 concentrations. Plant Soil 2018, 425, 415–432. [Google Scholar] [CrossRef]
- Yao, S.; Yang, B.; Li, J.; Tang, S.; Tang, S.; Kim, S.C.; Wang, X. Phosphatidic acid signaling in modulating plant reproduction and architecture. Plant Commun. 2025, 6, 101234. [Google Scholar] [CrossRef]
- Jin, S.; Fu, J.; Qian, J.; Lu, B.; Liu, Y.; Tang, S.; Shen, J.; Yan, Y.; Zhao, S. Metabolomic insights into rhizosphere soil carbon component variations of Phragmites communis in the exposure of propranolol. Sci. Total Environ. 2024, 957, 177776. [Google Scholar] [CrossRef] [PubMed]
- Xie, H.T.; Chen, Z.M.; Feng, X.X.; Wang, M.; Luo, Y.; Wang, Y.; Xu, P. L-theanine exuded from Camellia sinensis roots regulates element cycling in soil by shaping the rhizosphere microbiome assembly. Sci. Total Environ. 2022, 837, 155801. [Google Scholar] [CrossRef]
- Xu, X.R.; Dong, Y.; Fu, W.G. Effect of phenolic acid Allelochemicals on nutrient supply capacity of rhizosphere soil. J. Ecol. Rural Environ. 2024, 40, 1358–1365. [Google Scholar] [CrossRef]
- Dong, Y.; Zhang, Z.; Jin, Y.; Li, Z.; Lu, J. Nitrification performance of nitrifying bacteria immobilized in waterborne Polyurethane at low ammonia nitrogen concentrations. J. Environ. Sci. 2011, 23, 366–371. [Google Scholar] [CrossRef]
- Wu, H.L.; Wang, X.Z.; He, X.J.; Zhang, S.; Liang, R.; Shen, J. Effects of root exudates on denitrifier gene abundance, community structure and activity in a micro-polluted constructed wetland. Sci. Total Environ. 2017, 598, 697–703. [Google Scholar] [CrossRef]
- Craig, H.; Antwis, R.E.; Cordero, I.; Ashworth, D.; Robinson, C.H.; Osborne, T.Z.; Bardgett, R.D.; Rowntree, J.K.; Simpson, L.T. Nitrogen addition alters composition, diversity, and functioning of microbial communities in mangrove soils: An incubation experiment. Soil Biol. Biochem. 2021, 153, 108076. [Google Scholar] [CrossRef]
- Pierre, F.S.; Michael, O.S.; Matthew, W.J. Global carbon budget 2023. Earth Syst. Sci. Data 2023, 15, 5301–5369. [Google Scholar] [CrossRef]
- Law, Y.Y.; Ye, L.; Pan, Y.T.; Yuan, Z. Nitrous oxide emissions from wastewater treatment processes. Philos. Trans. R. Soc. B Biol. Sci. 2012, 367, 1265–1277. [Google Scholar] [CrossRef]
- Jia, L.X.; Gou, E.F.; Liu, H.; Lu, S.; Wu, S.; Wu, H. Exploring utilization of recycled agricultural biomass in constructed wetlands: Characterization of the driving force for high-rate nitrogen removal. Environ. Sci. Technol. 2019, 53, 1258–1268. [Google Scholar] [CrossRef] [PubMed]
- Zhang, Y.; Wang, J.H.; Zhang, J.T.; Chi, Z.Y.; Kong, F.T.; Zhang, Q. The long overlooked microalgal nitrous oxide emission: Characteristics, mechanisms, and influencing factors in microalgae-based wastewater treatment scenarios. Sci. Total Environ. 2023, 856, 159153. [Google Scholar] [CrossRef] [PubMed]
- Kong, A.Y.; Fonte, S.J.; van Kessel, C.; Six, J. Soil aggregates control N cycling efficiency in long-term conventional and alternative cropping systems. Nutr. Cycl. Agroecosystems 2007, 79, 45–58. [Google Scholar] [CrossRef]
- Kuypers, M.M.; Marchant, H.K.; Kartal, B. The microbial nitrogen-cycling network. Nat. Rev. Microbiol. 2018, 16, 263–276. [Google Scholar] [CrossRef]
- Chen, J.H.; Yuan, C.Y.; Zhang, Y.; Wu, J.; Chen, G.; Chen, S.; Wu, H.; Zhu, H.; Ye, Y. Dredging wastewater discharge from shrimp ponds affects mangrove soil physical-chemical properties and enzyme activities. Sci. Total Environ. 2024, 926, 171916. [Google Scholar] [CrossRef]
- Liu, Y.C.; Yin, X.H.; Xiao, J.X.; Tang, L.; Zheng, Y. Interactive influences of intercropping by nitrogen on flavonoid exudation and nodulation in faba bean. Sci. Rep. 2019, 9, 4818. [Google Scholar] [CrossRef]
- Yao, D.D.; Dai, N.; Hu, X.J.; Cheng, C.; Xie, H.; Hu, Z.; Liang, S.; Zhang, J. New insights into the effects of wetland plants on nitrogen removal pathways in constructed wetlands with low C/N ratio wastewater: Contribution of partial denitrification-anammox. Water Res. 2023, 243, 120277. [Google Scholar] [CrossRef]
- Morse, N.; Payne, E.; Henry, R.; Hatt, B.; Chandrasena, G.; Shapleigh, J.; Cook, P.; Coutts, S.; Hathaway, J.; Walter, M. T Plant-microbe interactions drive denitrification rates, dissolved nitrogen removal, and the abundance of denitrification genes in stormwater control measures. Environ. Sci. Technol. 2018, 52, 9320–9329. [Google Scholar] [CrossRef]
- Delgado-Baquerizo, M.; Oliverio, A.M.; Brewer, T.E.; Benavent-González, A.; Eldridge, D.J.; Bardgett, R.D.; Maestre, F.T.; Singh, B.K.; Fierer, N. A global atlas of the dominant bacteria found in soil. Science 2018, 359, 320–325. [Google Scholar] [CrossRef] [PubMed]
- Zhang, X.; Song, Z.; Tang, Q.; Wu, M.; Zhou, H.; Liu, L.; Qu, Y. Performance and microbial community analysis of bioaugmented activated sludge for nitrogen-containing organic pollutants removal. J. Environ. Sci. 2021, 101, 373–381. [Google Scholar] [CrossRef]
- Kitzinger, K.; Padilla, C.C.; Marchant, H.K.; Hach, P.F.; Herbold, C.W.; Kidane, A.T.; Könneke, M.; Littmann, S.; Mooshammer, M.; Niggemann, J.; et al. Cyanate and urea are substrates for nitrification by Thaumarchaeota in the marine environment. Nat. Microbiol. 2019, 4, 234–243. [Google Scholar] [CrossRef] [PubMed]
- Ren, M.; Feng, X.; Huang, Y.; Wang, H.; Hu, Z.; Clingenpeel, S.; Swan, B.K.; Fonseca, M.M.; Posada, D.; Stepanauskas, R.; et al. Phylogenomics suggests oxygen availability as a driving force in Thaumarchaeota evolution. ISME J. 2019, 13, 2150–2161. [Google Scholar] [CrossRef]
- Miao, Y.; Wang, Z.; Liao, R.; Shi, P.; Li, A. Assessment of phenol effect on microbial community structure and function in an anaerobic denitrifying process treating high concentration nitrate wastewater. Chem. Eng. J. 2017, 330, 757–763. [Google Scholar] [CrossRef]
- Grubba, D.; Yin, Z.; Majtacz, J.; Al-Hazmi, H.E.; Mąkinia, J. Incorporation of the sulfur cycle in sustainable nitrogen removal systems—A review. J. Clean. Prod. 2022, 372, 133495. [Google Scholar] [CrossRef]
- Yang, B.; Huanhuan, H.; PoHeng, L.; Zhussupbekova, A.; Shvets, I.V.; Du, B.; Terada, A.; Zhan, X. Nitrate removal in iron sulfide-driven autotrophic denitrification biofilter: Biochemical and chemical transformation pathways and its underlying microbial mechanism. Sci. Total Environ. 2023, 901, 165908. [Google Scholar] [CrossRef]
- He, C.; Du, W.; Ma, Z.; Jiang, W.; Pang, Y. Identification and analysis of flavonoid pathway genes in responsive to drought and salinity stress in Medicago truncatula. J. Plant Physiol. 2024, 302, 154320. [Google Scholar] [CrossRef]
- Zhang, Y.; Wang, F.; Wang, L.; Zhang, L.; Espley, R.V.; Lin-Wang, K.; Cao, F. The response of growth and transcriptome profiles of tea grey blight disease pathogen pestalotiopsis theae to the variation of exogenous l-theanine. Int. J. Mol. Sci. 2024, 25, 3493. [Google Scholar] [CrossRef] [PubMed]







| Measured Indicators | Low Nitrogen | Medium Nitrogen | High Nitrogen |
|---|---|---|---|
| Salinity (‰) | 10.0 | 10.0 | 10.0 |
| Total organic carbon (TOC, mg/L) | 26.63 ± 5.52 | 23.60 ± 7.62 | 24.92 ± 6.97 |
| NH4+-N (mg/L) | 1.02 ± 0.31 | 1.02 ± 0.35 | 1.1 ± 0.31 |
| NO3−-N (mg/L) | 4.17 ± 1.01 | 8.67 ± 0.99 | 17.72 ± 1.37 |
| Hydraulic retention time (HRT, h) | 12 | 12 | 12 |
| Surface hydraulic loading rate (m3/m2∙d) | 0.26 | 0.26 | 0.26 |
| Organic loading rate (g TOC/m2∙d) | 6.79 | 6.01 | 6.35 |
| Nitrogen loading rate (g N/m2∙d) | 1.32 | 2.47 | 4.79 |
| C/N | 5.13 | 2.43 | 1.32 |
| Root Morphology and Exudation Rate | PCWs-L | PCWs-M | PCWs-H |
|---|---|---|---|
| Total root length (cm) | 476.66 ± 106.62 a | 261.05 ± 20.66 b | 267.10 ± 20.22 bc |
| Surface area (cm2) | 184.94 ± 21.64 | 139.35 ± 53.65 | 194.23 ± 62.02 |
| Volume (cm3) | 11.42 ± 5.76 | 10.10 ± 5.83 | 15.14 ± 6.47 |
| Diameter (mm) | 3.63 ± 0.79 | 2.83 ± 0.51 | 3.54 ± 0.51 |
| Specific root surface area (SRSA) (cm2/g) | 36.13 ± 3.75 | 28.27 ± 7.12 | 24.77 ± 5.98 |
| Specific root length (SRL) (cm/g) | 93.23 ± 19.63 | 69.80 ± 14.93 | 45.90 ± 8.98 |
| Root density (g/cm) | 1.15 ± 0.32 | 3.77 ± 1.79 | 2.64 ± 1.28 |
| Biomass (g) | 5.10 ± 0.26 | 4.37 ± 0.71 | 6.90 ± 1.14 |
| Root tip number | 582.83 ± 106.48 a | 370.67 ± 34.62 ab | 302.00 ± 53.00 b |
| Dissolved organic carbon content in root exudates (DOC) (mg/L) | 8.18 ± 2.26 | 5.24 ± 0.38 | 6.64 ± 1.30 |
| Root exudation rate (RDOC) (mg C/(g·h) | 8.74 ± 2.53 | 6.19 ± 0.83 | 4.24 ± 0.83 |
| Wetlands | TN (mg/kg) | TON (mg/kg) | TIN (mg/kg) | NH4+-N (mg/kg) | NO2−-N (mg/kg) | NO3−-N (mg/kg) |
|---|---|---|---|---|---|---|
| PCWs-H | 746.74 ± 95.35 ab | 727.38 ± 100.45 ab | 19.36 ± 1.19 a | 9.71 ± 1.16 a | 0.40 ± 0.07 a | 9.25 ± 0.47 a |
| PCWs-M | 814.68 ± 131.72 a | 801.18 ± 130.43 a | 13.49 ± 3.35 b | 7.92 ± 3.68 a | 0.06 ± 0.04 b | 5.51 ± 0.58 bc |
| PCWs-L | 520.99 ± 170.04 c | 526.84 ± 177.69 bc | 4.84 ± 1.45 d | 4.35 ± 1.72 b | 0.03 ± 0.02 bc | 0.81 ± 0.34 d |
| Average value of PCWs | 694.13 ± 179.95 | 685.13 ± 173.17 | 12.57 ± 6.54 | 7.33 ± 2.86 | 0.16 ± 0.19 | 5.19 ± 4.50 |
| NCWs-H | 588.02 ± 394.63 bc | 419.93 ± 170.11 bc | 6.80 ± 3.24 c | 0.57 ± 0.25 c | 0.02 ± 0.02 c | 7.80 ± 0.91 ab |
| NCWs-M | 298.48 ± 144.47 d | 475.28 ± 251.12 d | 5.81 ± 1.41 cd | 0.66 ± 0.15 c | 0.02 ± 0.01 c | 5.25 ± 1.09 bc |
| NCWs-L | 411.80 ± 228.61 cd | 377.83 ± 192.40 cd | 6.64 ± 2.77 d | 0.67 ± 0.40 c | 0.01 ± 0.01 c | 4.30 ± 0.21 c |
| Average value of NCWs | 430.77 ± 170.76 | 424.35 ± 170.55 | 6.42 ± 1.96 | 0.63 ± 0.12 | 0.01 ± 0.01 c | 5.78 ± 1.98 |
| Wetlands | Effective Sequences | OTUs | Alpha Indices | ||||
|---|---|---|---|---|---|---|---|
| Sobs | Shannon | Simpson | Chao 1 | Coverage | |||
| PCWs-H | 40,834 | 3187 d | 3231.00 d | 6.10 d | 0.013 a | 4423.13 e | 0.97 a |
| PCWs-M | 40,834 | 3572 cd | 3574.15 cd | 6.39 cd | 0.009 ab | 4844.29 de | 0.97 a |
| PCWs-L | 40,834 | 3885 bc | 3886.40 bc | 6.53c | 0.007 bc | 5305.48 cd | 0.97 a |
| NCWs-H | 40,834 | 4416 b | 4407.22 b | 6.91b | 0.004 bc | 6031.85 bc | 0.96 c |
| NCWs-M | 40,834 | 4466 b | 4458.33 b | 6.94b | 0.004 bc | 6168.03 bc | 0.96 c |
| NCWs-L | 40,834 | 4511 b | 4525.11 b | 6.94b | 0.004 bc | 6384.19 b | 0.96 c |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
Share and Cite
Wang, P.; Yin, D.; Fu, G.; Yi, X.; Guo, Z. Nitrogen Input Alters Root Exudation of Kandelia obovata and Nitrogen Cycling in Constructed Mangrove Wetlands. Plants 2026, 15, 1851. https://doi.org/10.3390/plants15121851
Wang P, Yin D, Fu G, Yi X, Guo Z. Nitrogen Input Alters Root Exudation of Kandelia obovata and Nitrogen Cycling in Constructed Mangrove Wetlands. Plants. 2026; 15(12):1851. https://doi.org/10.3390/plants15121851
Chicago/Turabian StyleWang, Peiyin, Dongpeng Yin, Guiping Fu, Xiaohan Yi, and Zhipeng Guo. 2026. "Nitrogen Input Alters Root Exudation of Kandelia obovata and Nitrogen Cycling in Constructed Mangrove Wetlands" Plants 15, no. 12: 1851. https://doi.org/10.3390/plants15121851
APA StyleWang, P., Yin, D., Fu, G., Yi, X., & Guo, Z. (2026). Nitrogen Input Alters Root Exudation of Kandelia obovata and Nitrogen Cycling in Constructed Mangrove Wetlands. Plants, 15(12), 1851. https://doi.org/10.3390/plants15121851

