Effects of Two Biochar Types on Mitigating Drought and Salt Stress in Tomato Seedlings

Author:

Zhang Wenqian12,Wei Jiahua2ORCID,Guo Lili34,Fang Heng35ORCID,Liu Xiaojuan36,Liang Kehao3,Niu Wenquan1,Liu Fulai3ORCID,Siddique Kadambot H. M.7

Affiliation:

1. Key Laboratory of Agricultural Soil and Water Engineering in Arid and Semiarid Areas, Ministry of Education, Northwest A&F University, Yangling 712100, China

2. State Key Laboratory of Hydroscience and Engineering, Department of Hydraulic Engineering, Tsinghua University, Beijing 100084, China

3. Department of Plant and Environmental Science, Faculty of Science, University of Copenhagen, DK-2630 Taastrup, Denmark

4. College of Plant Science & Technology, Huazhong Agricultural University, Wuhan 430070, China

5. Anhui Province Key Laboratory of Farmland Ecological Conservation and Pollution Prevention, College of Resources and Environment, Anhui Agricultural University, Hefei 230036, China

6. Triticeae Research Institute, Sichuan Agricultural University, Chengdu 611130, China

7. The UWA Institute of Agriculture, The University of Western Australia, Perth, WA 6001, Australia

Abstract

Biochar’s underlying biochemical and physiological mechanisms in reducing irrigation and salinity stress are elusive. This paper investigates the effects of two types of biochar (wood biochar and poultry biochar) on the growth and physiology of tomato seedlings exposed to the combined effects of drought and salinity stress. Two types of biochar, wood biochar (WB) and poultry biochar (PB), were added to the soil separately, with three salinity gradients of 0, 100, and 200 mmol/L and two water supply conditions of full irrigation (FI) and deficit irrigation (DI). Results showed that biochar addition effectively improved the root water potential and osmotic potential of tomato plant under drought and salinity stress. Biochar application also mitigated leaf relative water content by 9.86% and 24.37% under drought and salinity stress, respectively. Furthermore, biochar application decreased abscisic acid concentrations in xylem sap under drought and salinity stress. Biochar altered the soil structure and increased field water holding capacity, indirectly increasing the soil water supply. While water use efficiency did not increase significantly after biochar application, a synergistic increase in seedling growth and water consumption occurred. In conclusion, biochar addition shows promise for promoting seedling growth to help mitigate the adverse impacts of drought and salinity stress on plant growth and physiology.

Funder

National Natural Science Foundation Program

Shandong Key R&D Plan

Chinese Scholarship Council

Publisher

MDPI AG

Subject

Agronomy and Crop Science

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