trace element solution (tes) (DSMZ)
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DSMZ
trace element solution (tes)
Trace Element Solution (Tes), supplied by DSMZ, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/trace+element+solution+(tes)/trace+element+solution++tes/pm37894191-69-1-16
Average 90 stars, based on 1 article reviews
Trace Element Solution (Tes), supplied by DSMZ, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/trace+element+solution+(tes)/trace+element+solution++tes/pm37894191-69-1-16
Average 90 stars, based on 1 article reviews
trace element solution (tes) - by Bioz Stars,
2026-09
90/100 stars
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Modification:Article Title: Biohydrogen Production from Glycerol using Thermotoga spp. Article Snippet: M3 media was a modified M2 [21] medium consisting of (amounts are in grams per liter of deionized water): 1.5 g KH2PO4; 2.4 g Na2HPO4·2H2O; 0.5 g NH4Cl; 0.2 g MgCl2·6H2O; 2.0 mg NiCl2·6H2O; 11.9 g HEPES (N2-hydroxyethylpiperazine-N -2 ethanesulphonic acid); 2 g yeast extract (YE); 15 ml trace element solution (DSM-TES, see Article Title: Comparison of Various Reducing Agents for Methane Production by Methanothermobacter marburgensis Article Snippet: The trace element solution (TES) was prepared according to Article Title: Thermophilic fermentative hydrogen production from xylose by Thermotoga neapolitana DSM 4359 Article Snippet: Biohydrogen production from xylose by Thermotoga neapolitana was investigated in batch culture using serum bottles and a continuously stirred anaerobic bioreactor (CSABR).. The effect of various xylose concentrations on growth and H2 production were studied in small batch culture for highly efficient H2 production.. The highest hydrogen production of 32.1 1.6 mmol-H2/L and maximum biomass concentration of 959.63 47.9 mg/L were obtained at initial xylose concentration of 5.0 g/L. Article Title: Comparison of Various Reducing Agents for Methane Production by Methanothermobacter marburgensis . Article Snippet: The trace element solution (TES) was prepared according to Article Title: Thermophilic hydrogen fermentation using Thermotoga neapolitana DSM 4359 by fed-batch culture Article Snippet: Biohydrogen fermentation by the hyperthermophile Thermotoga neapolitana was conducted in a continuously stirred anaerobic bioreactor (CSABR).. The production level of H2 from fermentation in a batch culture with pH control was much higher than without pH control from pentose (xylose) and hexose (glucose and sucrose) substrates.. The respective H2 yield in the batch culture with pH control from xylose and glucose was 2.22 0.11 mol-H2 mol 1 xyloseconsumed and 3.2 0.16 mol-H2 mol 1 glucoseconsumed, which was nearly 1.2-fold greater for xylose and 1.6-fold greater for glucose than without pH control. Article Title: Glycerol fermentation to hydrogen by Thermotoga maritima: Proposed pathway and bioenergetic considerations Article Snippet: The production of biohydrogen from glycerol, by the hyperthermophilic bacterium Thermotoga maritima DSM 3109, was investigated in batch and chemostat systems.. T. maritima converted glycerol to mainly acetate, CO2 and H2.. Maximal hydrogen yields of 2.84 and 2.41 hydrogen per glycerol were observed for batch and chemostat cultivations, respectively. Concentration Assay:Article Title: Biohydrogen Production from Glycerol using Thermotoga spp. Article Snippet: M3 media was a modified M2 [21] medium consisting of (amounts are in grams per liter of deionized water): 1.5 g KH2PO4; 2.4 g Na2HPO4·2H2O; 0.5 g NH4Cl; 0.2 g MgCl2·6H2O; 2.0 mg NiCl2·6H2O; 11.9 g HEPES (N2-hydroxyethylpiperazine-N -2 ethanesulphonic acid); 2 g yeast extract (YE); 15 ml trace element solution (DSM-TES, see Article Title: Comparison of Various Reducing Agents for Methane Production by Methanothermobacter marburgensis Article Snippet: The trace element solution (TES) was prepared according to Article Title: Thermophilic fermentative hydrogen production from xylose by Thermotoga neapolitana DSM 4359 Article Snippet: Biohydrogen production from xylose by Thermotoga neapolitana was investigated in batch culture using serum bottles and a continuously stirred anaerobic bioreactor (CSABR).. The effect of various xylose concentrations on growth and H2 production were studied in small batch culture for highly efficient H2 production.. The highest hydrogen production of 32.1 1.6 mmol-H2/L and maximum biomass concentration of 959.63 47.9 mg/L were obtained at initial xylose concentration of 5.0 g/L. Article Title: Comparison of Various Reducing Agents for Methane Production by Methanothermobacter marburgensis . Article Snippet: The trace element solution (TES) was prepared according to Article Title: Thermophilic hydrogen fermentation using Thermotoga neapolitana DSM 4359 by fed-batch culture Article Snippet: Biohydrogen fermentation by the hyperthermophile Thermotoga neapolitana was conducted in a continuously stirred anaerobic bioreactor (CSABR).. The production level of H2 from fermentation in a batch culture with pH control was much higher than without pH control from pentose (xylose) and hexose (glucose and sucrose) substrates.. The respective H2 yield in the batch culture with pH control from xylose and glucose was 2.22 0.11 mol-H2 mol 1 xyloseconsumed and 3.2 0.16 mol-H2 mol 1 glucoseconsumed, which was nearly 1.2-fold greater for xylose and 1.6-fold greater for glucose than without pH control. Article Title: Glycerol fermentation to hydrogen by Thermotoga maritima: Proposed pathway and bioenergetic considerations Article Snippet: The production of biohydrogen from glycerol, by the hyperthermophilic bacterium Thermotoga maritima DSM 3109, was investigated in batch and chemostat systems.. T. maritima converted glycerol to mainly acetate, CO2 and H2.. Maximal hydrogen yields of 2.84 and 2.41 hydrogen per glycerol were observed for batch and chemostat cultivations, respectively. |