Do the Leaves of Multiple Invasive Plants Decompose More Easily than a Native Plant’s under Nitrogen Deposition with Different Forms?

Nitrogen Pub Date : 2024-03-04 DOI:10.3390/nitrogen5010014
Chuang Li, Yue Li, Shanshan Zhong, Zhelun Xu, Zhongyi Xu, Mawei Zhu, Yuqing Wei, Cong-yan Wang, Daolin Du
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Abstract

This study aimed to clarify the differences in the decomposition rates, soil carbon and nitrogen contents, soil enzyme activities, and the structure of the soil bacterial community between the four Asteraceae invasive plants (AIPs), Bidens pilosa L., Conyza canadensis (L.) Cronq., Solidago canadensis L., and Symphyotrichum subulatum (Michx.) G.L. Nesom, and the native plant Pterocypsela laciniata (Houtt.) Shih under the artificially modeled nitrogen with four forms (including nitrate, ammonium, urea, and the mixed nitrogen forms with an equal mixture of three individual nitrogen forms). The mixed nitrogen forms significantly increased the decomposition rate of the four AIPs and P. laciniata. The positive effects of the mixed nitrogen forms on the decomposition rate of the four AIPs and P. laciniata were obviously greater than those of individual nitrogen forms. Nitrogen with four forms visibly up- or down-regulated the dominant role of predominant soil bacterial biomarkers, and significantly increased the species number, richness, and phylogenetic diversity of the soil bacterial community, as well as the number of most of the functional gene pathways of the soil bacterial communities involved in the decomposition process. The decomposition rate of the four AIPs was similar to that of P. laciniata. The leaves of C. canadensis decomposed more easily than those of S. subulatum. The decomposition process of the four AIPs caused remarkable changes in the relative abundance of several taxa of the soil bacterial community and soil bacterial beta diversity, and caused apparent up- or down-regulation in the dominant role of predominant soil bacterial biomarkers and the number of several functional gene pathways of the soil bacterial communities involved in the decomposition process.
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在不同形式的氮沉积条件下,多种入侵植物的叶子是否比本地植物的叶子更容易腐烂?
本研究旨在阐明四种菊科入侵植物 Bidens pilosa L.、Conyza canadensis (L.)Cronq.、Solidago canadensis L.、和 Symphyotrichum subulatum (Michx.) G.L. Nesom,以及本地植物 Pterocypsela laciniata (Houtt.) Shih。混合氮显著提高了四种 AIP 和 P. laciniata 的分解率。混合氮形式对四种 AIP 和 P. laciniata 的分解率的积极影响明显大于单独氮形式。四种形态的氮明显上调或下调了主要土壤细菌生物标志物的优势作用,显著增加了土壤细菌群落的物种数量、丰富度和系统发育多样性,以及参与分解过程的土壤细菌群落大部分功能基因通路的数量。四种 AIP 的分解率与 P. laciniata 相似。C. canadensis 的叶片比 S. subulatum 的叶片更容易分解。四种AIPs的分解过程导致土壤细菌群落中多个类群的相对丰度和土壤细菌β多样性发生显著变化,并导致参与分解过程的土壤细菌群落中主要细菌生物标志物的优势作用和多个功能基因通路的数量发生明显的上调或下调。
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