Hunan Institute of Microbiology, Changsha, Hunan 410009, China.
Hunan Institute of Microbiology, Changsha, Hunan 410009, China; Hunan Engineering and Technology Research Center of Agricultural Microbiology Application, Changsha, Hunan 410009, China.
Ecotoxicol Environ Saf. 2024 Oct 1;284:116892. doi: 10.1016/j.ecoenv.2024.116892. Epub 2024 Aug 16.
Citrobacter sp. XT1-2-2, a functional microorganism with potential utilization, has the ability to immobilize soil cadmium. In this study, the regulatory gene cysH, as a rate-limiting enzyme in the sulfur metabolic pathway, was selected for functional analysis affecting cadmium immobilization in soil. To verify the effect of APS reductase on CdS formation, the ΔAPS and ΔAPS-com strains were constructed by conjugation transfer. Through TEM analysis, it was found that the adsorption of Cd was affected by the absence of APS reductase in XT1-2-2 strain. The difference analysis of biofilm formation indicated that APS reductase was necessary for cell aggregation and biofilm formation. The p-XRD, XPS and FT-IR analysis revealed that APS reductase played an important role in the cadmium immobilization process of XT1-2-2 strain and promoting the formation of CdS. According to the pot experiments, the cadmium concentration of roots, culms, leaves and grains inoculated with ΔAPS strain was significantly higher than that of wild-type and ΔAPS-com strains, and the cadmium removal ability of ΔAPS strain was significantly lower than that of wild-type strain. The study provided insights into the exploration of new bacterial assisted technique for the remediation and safe production of rice in cadmium-contaminated paddy soils.
希特洛伯氏菌 XT1-2-2 是一种具有潜在利用价值的功能微生物,具有固定土壤镉的能力。在本研究中,选择了调节基因 cysH 作为硫代谢途径中的限速酶,对其进行了功能分析,以影响土壤中镉的固定。为了验证 APS 还原酶对 CdS 形成的影响,通过接合转移构建了 ΔAPS 和 ΔAPS-com 菌株。通过 TEM 分析,发现 APS 还原酶的缺失影响了 XT1-2-2 菌株对 Cd 的吸附。生物膜形成的差异分析表明,APS 还原酶是细胞聚集和生物膜形成所必需的。p-XRD、XPS 和 FT-IR 分析表明,APS 还原酶在 XT1-2-2 菌株的镉固定过程中发挥了重要作用,并促进了 CdS 的形成。根据盆栽实验,与野生型和 ΔAPS-com 菌株相比,接种 ΔAPS 菌株的根、茎、叶和籽粒中的镉浓度显著升高,而 ΔAPS 菌株的镉去除能力显著低于野生型菌株。该研究为探索新的细菌辅助技术在镉污染稻田土壤的修复和水稻安全生产中的应用提供了思路。