Determination of the water-use patterns for two xerophyte shrubs by hydrogen isotope offset correction

Author:

Chen Zhixue12,Wang Guohui34,Pan Yanhui56,Shen Yuying12,Yang Xianlong12

Affiliation:

1. College of Pastoral Agriculture Science and Technology, Lanzhou University , No. 768 Jiayuguanxi Road, Lanzhou, Gansu , China

2. State Key Laboratory of Herbage Improvement and Grassland Agro-Ecosystems, Lanzhou University , No. 768 Jiayuguanxi Road, Lanzhou, Gansu , China

3. Key Laboratory for Model Innovation in Forage Production Efficiency , Ministry of Agriculture and Rural Affairs, , No. 489 Helan West Road, Yinchuan, Ningxia , China

4. Ningxia University , Ministry of Agriculture and Rural Affairs, , No. 489 Helan West Road, Yinchuan, Ningxia , China

5. Key Laboratory of Western China’s Environmental Systems , Ministry of Education, , No. 222 Tianshui South Road, Lanzhou, Gansu , China

6. Lanzhou University , Ministry of Education, , No. 222 Tianshui South Road, Lanzhou, Gansu , China

Abstract

Abstract The stable hydrogen and oxygen isotope technique is typically used to explore plant water uptake; however, the accuracy of the technique has been challenged by hydrogen isotope offsets between plant xylem water and its potential source water. In this study, the soil hydrogen and oxygen isotope waterline was used to correct the hydrogen isotope offsets for Salix psammophila and Caragana korshinskii, two typical shrub species on the Chinese Loess Plateau. Five different types of isotopic data [(i) δ18O, (ii) δ2H, (iii) combination δ18O with δ2H, (iv) corrected δ2H and (v) combination δ18O with corrected δ2H] were separately used to determine the water-use patterns of the two shrubs. The δ2H offset values of S. psammophila and C. korshinskii did not show significant temporal variation among the sampling months (May, July and September) but showed notable differences between the two shrubs (−0.4 ± 0.5‰ in S. psammophila vs −4.3 ± 0.9‰ in C. korshinskii). The obtained water absorption proportion (WAP) of S. psammophila in the different soil layers (0–20, 20–60 and 60–200 cm) did not differ significantly among the five different input data types. However, compared with the input data types (iii) and (v), the data types (i), (ii) and (iv) overestimated the WAP of C. korshinskii in the 0–20 cm soil layer and underestimated that in the 60–200 cm layer. The data type (iii) overestimated the WAP of C. korshinskii in 0–20 cm soil layer (25.9 ± 0.8%) in July in comparison with the WAP calculated based on data type (v) (19.1 ± 1.1%). The combination of δ18O and corrected δ2H, i.e., data type (v), was identified as the best data type to determine the water use patterns of C. korshinskii due to the strong correlation between the calculated WAP and soil water content and soil sand content. In general, S. psammophila mainly used (57.9–62.1%) shallow soil water (0–60 cm), whereas C. korshinskii mainly absorbed (52.7–63.5%) deep soil water (60–200 cm). We confirm that the hydrogen isotope offsets can cause significant errors in determining plant water uptake of C. korshinskii, and provide valuable insights for accurately quantifying plant water uptake in the presence of hydrogen isotope offsets between xylem and source water. This study is significant for facilitating the application of the stable hydrogen and oxygen isotope technique worldwide, and for revealing the response mechanism of shrub key ecohydrological and physiological processes to the drought environment in similar climate regions.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Physiology

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