Key Laboratory of Smart Farming for Agricultural Animals, College of Engineering, Huazhong Agricultural University, No. 1, Shizishan Street, Hongshan District, Wuhan 430070, PR China; Key Laboratory of Aquaculture Facilities Engineering, Ministry of Agriculture and Rural Affairs, Wuhan 430070, China; Technology & Equipment Center for carbon Neutrality in Agriculture, Huazhong Agricultural University, No. 1, Shizishan Street, Hongshan District, Wuhan 430070, PR China.
Key Laboratory of Smart Farming for Agricultural Animals, College of Engineering, Huazhong Agricultural University, No. 1, Shizishan Street, Hongshan District, Wuhan 430070, PR China; Key Laboratory of Aquaculture Facilities Engineering, Ministry of Agriculture and Rural Affairs, Wuhan 430070, China; Technology & Equipment Center for carbon Neutrality in Agriculture, Huazhong Agricultural University, No. 1, Shizishan Street, Hongshan District, Wuhan 430070, PR China.
Water Res. 2024 May 1;254:121405. doi: 10.1016/j.watres.2024.121405. Epub 2024 Feb 29.
The accumulation and transformation of lead (Pb) and arsenic (As) during the digestion of sewage sludge (SS) by black soldier fly larvae (BSFL) remain unclear. In this study, we used 16 s rRNA and metagenomic sequencing techniques to investigate the correlation between the microbial community, metalloregulatory proteins (MRPs), and Pb and As migration and transformation. During the 15-day test period, BSFL were able to absorb 34-48 % of Pb and 32-45 % of As into their body. Changes in bacterial community abundance, upregulation of MRPs, and redundancy analysis (RDA) results confirmed that ZntA, EfeO, CadC, ArsR, ArsB, ArsD, and ArsA play major roles in the adsorption and stabilization of Pb and As, which is mainly due to the high contribution rates of Lactobacillus (48-59 %) and Enterococcus (21-23 %). Owing to the redox reaction, the regulation of the MRPs, and the change in pH, the Pb and As in the BSFL residue were mainly the residual fraction (F4). The RDA results showed that Lactobacillus and L.koreensis could significantly (P < 0.01) reduce the reducible fraction (F2) and F4 of Pb, whereas Firmicutes and L.fermentum can significantly (P < 0.05) promote the transformation of As to F4, thus realizing the passivation Pb and As. This study contributes to the understanding of Pb and As in SS adsorbed by BSFL and provides important insights into the factors that arise during the BSFL-mediated migration of Pb and As.
黑蝇幼虫(BSFL)消化污水污泥(SS)过程中铅(Pb)和砷(As)的积累和转化尚不清楚。本研究采用 16s rRNA 和宏基因组测序技术,研究了微生物群落、金属调控蛋白(MRPs)与 Pb 和 As 迁移转化的相关性。在 15 天的试验期内,BSFL 能够将 34-48%的 Pb 和 32-45%的 As 吸收到体内。细菌群落丰度变化、MRPs 上调以及冗余分析(RDA)结果证实,ZntA、EfeO、CadC、ArsR、ArsB、ArsD 和 ArsA 在吸附和稳定 Pb 和 As 方面发挥主要作用,这主要归因于乳杆菌(48-59%)和肠球菌(21-23%)的高贡献率。由于氧化还原反应、MRPs 的调节以及 pH 的变化,BSFL 残渣中的 Pb 和 As 主要以残渣态(F4)存在。RDA 结果表明,乳杆菌和 L.koreensis 可以显著(P<0.01)降低 Pb 的可还原态(F2)和 F4,而厚壁菌门和 L.fermentum 可以显著(P<0.05)促进 As 向 F4 的转化,从而实现 Pb 和 As 的钝化。本研究有助于了解 BSFL 吸附 SS 中的 Pb 和 As,并为 BSFL 介导的 Pb 和 As 迁移过程中出现的因素提供了重要的见解。