异养硝化好氧反硝化枯草芽孢杆菌HL-1的分离鉴定及其特性

Isolation, identification, and characterization of the heterotrophic nitrification–aerobic denitrification Bacillus subtilis strain HL-1

  • 摘要:
    目的 筛选适用于循环水养殖系统的高效脱氮功能菌株,明确枯草芽孢杆菌HL-1的脱氮特性及菌剂制备条件。
    方法 从大口黑鲈循环水养殖系统生物滤池滤材中分离HL-1,通过16S rRNA鉴定其分类;采用氮源动力学、氮平衡和还原酶活性测定评价其氮转化能力,并以响应面法优化脱氮条件和菌粉配方。
    结果 HL-1被鉴定为枯草芽孢杆菌。好氧条件下,NH4+-N和NO2-N在24 h内分别由3.0 mg/L降至0.10 mg/L和0 mg/L;NO3-N呈先升后降趋势,72 h降至15 mg/L。硝酸还原酶和亚硝酸还原酶活性分别为0.131和0.200 U/(mg protein)。氮平衡显示,好氧条件下气态氮占76.75%~81.70%,厌氧条件下仅为0.29%~2.31%。最佳脱氮条件为160 r/min、C/N=15、28 ℃、pH 7.0,TN去除率为87.6%。菌粉优化配方为豆粕约2.01 g/L、葡萄糖约1.75 g/L,成品活菌数达2×1011 CFU/g。
    结论 HL-1以异养硝化好氧反硝化为主要脱氮途径,具备开发为循环水养殖系统生物强化脱氮菌剂的潜力。

     

    Abstract: Recirculating aquaculture systems are usually operated under high dissolved oxygen, which promotes nitrification but may lead to nitrate accumulation and transient nitrite toxicity. In this study, a functional strain, HL-1, was isolated from biofilter media of a largemouth bass recirculating aquaculture system and identified as Bacillus subtilis by 16S rRNA sequencing and phylogenetic analysis. Its heterotrophic nitrification–aerobic denitrification capacity was evaluated using nitrogen removal kinetics, reductase activities, nitrogen mass balance and response surface optimization. Under aerobic simulated aquaculture conditions, HL-1 rapidly removed NH4+-N and NO2-N, reducing them from 3.0 mg/L to 0.10 mg/L and 0 mg/L within 24 h, respectively, while NO3-N showed transient accumulation followed by decline. Nitrate reductase and nitrite reductase activities reached (0.131±0.003) and (0.200±0.005) U/(mg protein), respectively. Aerobic nitrogen balance showed that gaseous nitrogen accounted for 76.75%–81.70%, whereas intracellular assimilation contributed only 1.27%-2.07%; under anaerobic conditions, gaseous nitrogen decreased to 0.29%-2.31%. The optimized TN removal conditions were 160 r/min, C/N=15, 28 ℃ and pH 7.0, giving a validated TN removal efficiency of 87.6%. Fermentation optimization further produced a bacterial powder with 2×1011 CFU/g. These results indicate that HL-1 is a promising aerobic bioaugmentation candidate for inorganic nitrogen control in high-DO recirculating aquaculture systems.

     

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