Plant electrical signals reveal the joint interactions of bicarbonate- selenium on cadmium transport in Cardamine violifolia.

Plant signaling & behavior Pub Date : 2025-12-01 Epub Date: 2025-03-31 DOI:10.1080/15592324.2025.2486075
Juyue Xiao, Antong Xia, Yanyou Wu, Dapeng Wang, Zhanghui Qin, Jiqian Xiang, Gratien Twagirayezu
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Abstract

Cardamine violifolia (C. violifolia), a hyperaccumulator selenium plant species, is a common medicinal and edible species as the primary source of Se supplementation in karst areas. Bicarbonate (HCO3-), a byproduct of carbonate rock weathering, may interact with Se, but the synergistic effects of HCO3- and Se on Cd transport in selenium hyperaccumulators remain unclear. In this study, C. violifolia was used to examine the impact of different bicarbonate levels on its growth, photosynthesis, intracellular water dynamics, and nutrient transport. As one result, Se6+ improved the intracellular water-holding capacity (IWHC), the intracellular water/nutrient transfer rate (WTR/NTR), the nutrient translocation capacity (NTC), the nutrient active translocation capacity (NAC), while simultaneously reducing Cd2+ translocation. Bicarbonate and Se6+ together affected Cd2+ transport in C. violifolia. The BSC1 treatment (1 mm HCO3- addition, 0.46 mm Se6+ and 0.27 mm Cd2+) maximized biomass and photosynthesis, likely due to low HCO3- aiding Se6+ translocation and reducing Cd2+ movement. Conversely, BSC3 (15 mm HCO3- addition, 0.46 mm Se6+ and 0.27 mm Cd2+) resulted in the smallest biomass and photosynthesis in C. violifolia, as the high HCO3- level inhibited the translocation of Se6+, which decreased the IWHC, WTR(NTR), NTC and NAC. No significant correlation was found between Se-Cd translocation factors, suggesting that HCO3- may not directly affect Cd2+ transport but could increase root pH, hindering Cd2+ movement from roots to shoots. The 1 mm bicarbonate interacting with selenium can decrease translocation of cadmium and enhance the photosynthesis and growth, thereby enhancing the selenium enrichment capacity and biomass of C. violifolia in karst areas.

小叶红豆杉(C. violifolia)是一种高硒积累植物物种,是一种常见的药用和食用物种,是岩溶地区补充硒的主要来源。碳酸氢盐(HCO3-)是碳酸盐岩风化的副产品,可能会与硒发生相互作用,但 HCO3- 和硒对硒高积累植物中镉迁移的协同作用尚不清楚。本研究利用 C. violifolia 考察了不同碳酸氢盐水平对其生长、光合作用、细胞内水分动态和养分运输的影响。结果之一是,Se6+提高了细胞内持水能力(IWHC)、细胞内水分/养分转移率(WTR/NTR)、养分转运能力(NTC)和养分活性转运能力(NAC),同时降低了Cd2+的转运。碳酸氢盐和 Se6+ 共同影响了 Cd2+ 在 C. violifolia 中的转运。BSC1 处理(添加 1 毫米 HCO3-、0.46 毫米 Se6+ 和 0.27 毫米 Cd2+)可最大限度地提高生物量和光合作用,这可能是由于低 HCO3- 有助于 Se6+ 的转运并减少了 Cd2+ 的移动。相反,BSC3(添加 15 毫米 HCO3-、0.46 毫米 Se6+ 和 0.27 毫米 Cd2+)导致 C. violifolia 的生物量和光合作用最小,因为高水平的 HCO3- 抑制了 Se6+ 的转移,从而降低了 IWHC、WTR(NTR)、NTC 和 NAC。Se-Cd转运因子之间没有发现明显的相关性,这表明 HCO3- 可能不会直接影响 Cd2+ 的转运,但会增加根部 pH 值,阻碍 Cd2+ 从根部向嫩枝的移动。1毫米碳酸氢盐与硒相互作用,可减少镉的转运,促进光合作用和生长,从而提高岩溶地区小叶女贞的富硒能力和生物量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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