Van Ooteghem Suellen A, Beer Stephen K, Yue Paul C
National Energy Technology Center, US Department of Energy, Morgantown, WV 26507, USA.
Appl Biochem Biotechnol. 2002 Spring;98-100:177-89. doi: 10.1385/abab:98-100:1-9:177.
Virtually all members of the order Thermotogales have demonstrated the ability to produce hydrogen; however, some members of this order produce considerably greater quantities than others. With one representative of this order, Thermotoga neapolitana, we have consistently obtained accumulation of 25-30% hydrogen with 12-15% carbon dioxide as the only other prominent product in the batch reaction. In contradistinction to information widely disseminated in the literature, we have also found that most members of this order tolerate and appear to utilize the moderate amounts of oxygen present in the gaseous phase of batch reactors (6-12%), with no apparent decrease in hydrogen production. Hydrogen accumulation has been widely reported to inhibit growth of Thermotogales. While this may be true at very high hydrogen tensions, we have observed log phase bacterial morphology (rods) even in the presence of 25-35% hydrogen concentrations. To maximize hydrogen production and minimize production of hydrogen sulfide, inorganic sulfur donors are avoided and the cysteine concentration in the medium is increased. We and others have demonstrated that different members of the order Thermotogales utilize a wide variety of feedstocks, including complex carbohydrates and proteins. Thus, it appears that organisms within this order have the potential to utilize a variety of organic wastes and to cost-effectively generate hydrogen.
几乎所有嗜热栖热菌目成员都已证明具备产生氢气的能力;然而,该目一些成员产生的氢气量比其他成员多得多。以该目的一个代表菌株——那不勒斯嗜热栖热菌为例,在分批反应中,我们一直能获得25% - 30%的氢气积累,同时仅有12% - 15%的二氧化碳作为唯一其他显著产物。与文献中广泛传播的信息相反,我们还发现该目大多数成员能够耐受并似乎能利用分批反应器气相中存在的适量氧气(6% - 12%),且产氢量无明显下降。据广泛报道,氢气积累会抑制嗜热栖热菌的生长。虽然在极高氢气压力下可能如此,但我们观察到即使在氢气浓度为25% - 35%的情况下,细菌仍呈现对数期形态(杆状)。为了使氢气产量最大化并使硫化氢产量最小化,要避免使用无机硫供体,并提高培养基中的半胱氨酸浓度。我们和其他人已经证明,嗜热栖热菌目的不同成员能利用多种原料,包括复杂碳水化合物和蛋白质。因此,该目内的生物体似乎有潜力利用各种有机废物并经济高效地产生氢气。