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首页> 外文期刊>Journal of Applied Phycology >Enhanced hydrogen production by Nostoc sp. CU2561 immobilized in a novel agar bead
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Enhanced hydrogen production by Nostoc sp. CU2561 immobilized in a novel agar bead

机译:Nostoc SP的增强氢气产生。 Cu2561固定在新的琼脂珠粒中

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A large number of microalgae isolated from Thailand were screened for their hydrogen production capacity. The selected highly efficient microalga, identified as Nostoc sp. CU2561, was investigated for the conditions under which the cells had maximal hydrogen production rate. Nostoc sp. CU2561 showed highest hydrogen production rate when grown in BG11 medium deprived of nitrogen and sulfur (BG11-N-S). To further improve hydrogen production, newly invented agar beads were used as matrix for cell immobilization. The highest hydrogen production rate by 1.5% (w/v) agar bead immobilized cells was obtained using cell concentration of 0.125 mg dry wt mL(-1). Agar bead-immobilized cells showed superior hydrogen production rate, 1.5-fold higher when compared with agar cube-immobilized cells, and 5- and 10-fold higher when compared with those in alginate bead-immobilized and alginate bead-suspended cells, respectively. Supplementation of 0.5% (w/v) fructose increased hydrogen production rate of agar bead-immobilized cells approximately 1.7-fold, whereas the reducing agent beta-mercaptoethanol increased hydrogen production rate by about 8.2-fold. Overall, Nostoc sp. CU2561 immobilized in agar bead showed the highest hydrogen production rate when incubated in BG11-N-S containing 5 mM beta-mercaptoethanol with the highest hydrogen production rate of 18.78 +/- 1.44 mu mol H-2 mg(-1) chl a h(-1). In addition, agar bead-immobilized cells could continuously produce hydrogen for 3 cycles. The hydrogen production by immobilized cells could be prolonged up to 120 h during the first cycle. This study provides a potential of new immobilization strategy using cyanobacteria immobilized in agar bead for hydrogen production which can be applied to scale up at industrial level in the future.
机译:筛选出从泰国分离的大量微藻进行培养的氢气生产能力。所选高效的微藻,被确定为Nostoc SP。研究了Cu2561,用于细胞具有最大氢气产生率的条件。 nostoc sp。 Cu2561在脱离氮气和硫(BG11-N-S)的BG11培养基中生长时,Cu2561显示出最高的氢气产率。为了进一步改善氢生产,将新发明的琼脂珠作为细胞固定的基质。使用0.125mg干燥Wtm(-1)的细胞浓度,获得最高氢气产率1.5%(w / v)琼脂珠粒固定细胞。与琼脂立方体固定的细胞相比,琼脂珠珠固定细胞显示出优异的氢气产生速率,较高的氢气产生速率,1.5倍,与海藻酸盐珠子固定和藻酸盐珠末悬浮细胞相比,5倍和10倍。补充0.5%(w / v)果糖增加琼脂固定细胞的氢生产率约为1.7倍,而还原剂β-巯基乙醇增加了氢气产率约8.2倍。总的来说,nostoc sp。在琼脂珠中固定的Cu2561显示在含有5mmβ-巯基乙醇的BG11-NS中的最高氢气产生率为18.78 +/- 1.44 mmol H-2mg(-1)CHL AH(-1 )。另外,琼脂珠珠固定细胞可以连续产生3个循环的氢。在第一次循环期间,通过固定化细胞产生的氢气产生高达120小时。本研究提供了使用固定在琼脂珠中的Cyanobacteria用于氢气生产的Cyanobacteria的潜力,这可以应用于未来的工业水平。

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