Enhanced rock weathering increased soil phosphorus availability and altered root phosphorus‐acquisition strategies

Author:

Bi Boyuan1ORCID,Li Guochen2,Goll Daniel S.34ORCID,Lin Luxiang5,Chen Hui6,Xu Tongtong1,Chen Qiong1,Li Chenlu7,Wang Xing8,Hao Zhanqing1,Fang Yunting2ORCID,Yuan Zuoqiang1ORCID,Lambers Hans9ORCID

Affiliation:

1. Shaanxi Key Laboratory of Qinling Ecological Intelligent Monitoring and Protection, School of Ecology and Environment Northwestern Polytechnical University Xi'an China

2. CAS Key Laboratory of Forest Ecology and Management, Institute of Applied Ecology Chinese Academy of Sciences Shenyang China

3. Institute of Geography University of Augsburg Augsburg Germany

4. Laboratoire Des Sciences du Climat et de l'Environnement Université Paris‐Saclay Paris France

5. CAS Key Laboratory of Tropical Forest Ecology, Xishuangbanna Tropical Botanical Garden Chinese Academy of Sciences Kunming China

6. National Forest Ecosystem Research Station at Xishuangbanna Mengla China

7. Institute of Interdisciplinary and Innovation Research Xi'an University of Architecture and Technology Xi'an China

8. Plant Ecology and Nature Conservation Wageningen University and Research Wageningen The Netherlands

9. School of Biological Sciences and Institute of Agriculture The University of Western Australia Perth Western Australia Australia

Abstract

AbstractEnhanced rock weathering (ERW) has been proposed as a measure to enhance the carbon (C)‐sequestration potential and fertility of soils. The effects of this practice on the soil phosphorus (P) pools and the general mechanisms affecting microbial P cycling, as well as plant P uptake are not well understood. Here, the impact of ERW on soil P availability and microbial P cycling functional groups and root P‐acquisition traits were explored through a 2‐year wollastonite field addition experiment in a tropical rubber plantation. The results show that ERW significantly increased soil microbial carbon‐use efficiency and total P concentrations and indirectly increased soil P availability by enhancing organic P mobilization and mineralization of rhizosheath carboxylates and phosphatase, respectively. Also, ERW stimulated the activities of P‐solubilizing (gcd, ppa and ppx) and mineralizing enzymes (phoADN and phnAPHLFXIM), thus contributing to the inorganic P solubilization and organic P mineralization. Accompanying the increase in soil P availability, the P‐acquisition strategy of the rubber fine roots changed from do‐it‐yourself acquisition by roots to dependence on mycorrhizal collaboration and the release of root exudates. In addition, the direct effects of ERW on root P‐acquisition traits (such as root diameter, specific root length, and mycorrhizal colonization rate) may also be related to changes in the pattern of belowground carbon investments in plants. Our study provides a new insight that ERW increases carbon‐sequestration potential and P availability in tropical forests and profoundly affects belowground plant resource‐use strategies.

Funder

Natural Science Basic Research Program of Shaanxi Province

Key Research and Development Projects of Shaanxi Province

China Postdoctoral Science Foundation

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Publisher

Wiley

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