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土壤环境对细根功能影响的解剖结构阐释

Anatomical structure interpretation of the effect of soil environment on fine root function.

作者信息

Li Tianyi, Ren Jingjing, He Wenchun, Wang Yu, Wen Xiaochen, Wang Xiao, Ye Mengting, Chen Gang, Zhao Kuangji, Hou Guirong, Li Xianwei, Fan Chuan

机构信息

College of Forestry, Sichuan Agricultural University, Chengdu, China.

National Forestry and Grassland Administration Key Laboratory of Forest Resources Conservation and Ecological Safety on the Upper Reaches of the Yangtze River and Forestry Ecological Engineering in the Upper Reaches of the Yangtze River Key Laboratory of Sichuan Province, Chengdu, China.

出版信息

Front Plant Sci. 2022 Aug 30;13:993127. doi: 10.3389/fpls.2022.993127. eCollection 2022.

Abstract

Fine root anatomy plays an important role in understanding the relationship between fine root function and soil environment. However, in different soil environments, the variation of fine root anatomical structure in different root sequences is not well studied. We measured the soil conditions and anatomical structure characteristics (root diameter, cortical tissue, vascular tissue and xylem) of fine roots of in four experimental sites, and analyzed each level of fine roots separately. We link these data to understand the relationship between fine root anatomy and soil conditions. We found that the anatomical structure of fine roots is closely related to soil environmental factors. The fine roots of lower root order are mainly affected by soil nutrients. Among them, the cortical tissue of first-order fine roots was positively correlated with potassium and phosphorus, but negatively correlated with nitrogen, while second- and third-order fine roots was positively correlated with soil total potassium and negatively correlated with nitrogen and phosphorus. For the fine roots of high root order, the cortical tissue disappeared, and the secondary vascular tissue was mainly affected by soil moisture. In addition, we also found that the division of fine root functional groups is not fixed. On the one hand, the function of third-order fine roots will slip. For example, the decrease of soil moisture will promote the transformation of third-order fine roots into transport roots, and the reduction of nitrogen will promote the transformation of third-order fine roots into absorption roots to fix nitrogen. This transformation strategy can effectively prevent the restriction of soil nutrients on plant growth. On the other hand, with the change of habitat, the first- and second-order fine roots are still the absorbing root, and the fourth- and fifth-order fine roots are still the transport root, but the efficiency of absorption and transport will be affected. In conclusion, our findings emphasize the fine roots in different soil environment to show high levels of plasticity, shows that fine root anatomical structure changes may make plants, and reveals that the fine is just order of reaction and its mechanism in the soil environment.

摘要

细根解剖结构在理解细根功能与土壤环境之间的关系中起着重要作用。然而,在不同的土壤环境中,不同根序的细根解剖结构变化尚未得到充分研究。我们测量了四个实验地点细根的土壤条件和解剖结构特征(根直径、皮层组织、维管组织和木质部),并分别对细根的各个水平进行了分析。我们将这些数据联系起来以了解细根解剖结构与土壤条件之间的关系。我们发现细根的解剖结构与土壤环境因素密切相关。较低根序的细根主要受土壤养分影响。其中,一级细根的皮层组织与钾和磷呈正相关,但与氮呈负相关,而二级和三级细根与土壤全钾呈正相关,与氮和磷呈负相关。对于高根序的细根,皮层组织消失,次生维管组织主要受土壤水分影响。此外,我们还发现细根功能组的划分并非固定不变。一方面,三级细根的功能会发生变化。例如,土壤水分的减少会促进三级细根向运输根的转变,而氮的减少会促进三级细根向吸收根的转变以固定氮。这种转变策略可以有效防止土壤养分对植物生长的限制。另一方面,随着生境的变化,一级和二级细根仍然是吸收根,四级和五级细根仍然是运输根,但吸收和运输效率会受到影响。总之,我们的研究结果强调了细根在不同土壤环境中表现出高度的可塑性,表明细根解剖结构的变化可能影响植物,并揭示了细根根序反应及其在土壤环境中的机制。

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