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Beijing Yiketai Ecological Technology Co., Ltd
sales@eco-tech.com.cn
18210150760
101B, Unit 1, Building 6, Courtyard 3, Gaolizhang Road, Haidian District, Beijing
1. Multiomics resolution of molecular events during a day in the life ofChlamydomonas. StrenkertD, et al. 2019, PNAs, 116 (6):2374-2383
2. Chlorella vulgarisintegrates photoperiod and chloroplast redox signals in response to growth at high light. HollisL, et al. 2019, Plant,249(4):1189-1205
3. Growth kinetics and mathematical modeling ofSynechocystissp. PCC 6803 under flashing light. PartyL, et al. 2019, Biotechnology and bioengineering, 116(2):469-474
4. CO2Capture for Industries by Algae. AnguishV, et al. 2019, Algae,DOI: 10.5772/intechopen.73417
5. Glycolate from microalgae: an efficient carbon source for biotechnological applications. TaubertA, et al. 2019, Plant biotechnology journal,DOI: 10.1111/pbi.13078
6. Response of the thylakoid proteome ofSynechocystissp. PCC 6803 to photohinibitory intensities of orange-red light. CordaraA, et al. 2018, Plant physiology and biochemistry,132:524-534
7. Effect of culture density on biomass production and light utilization efficiency ofSynechocystissp. PCC 6803. PartyL, et al. 2018, Biotechnology and bioengineering, 115(2):507-511
8. Effect of carbon limitation on photosynthetic electron transport inNannochloropsis oculata. ClosedT, et al. 2018, Journal of Photochemistry and Photobiology B: Biology, 181:31-43
9. Diel regulation of photosynthetic activity in the oceanic unicellular diazotrophic cyanobacteriumCrocosphaera watsoniiWH8501. MasudaT, et al. 2018, Environmental Microbiology,20(2):546–560
10. Analysis of the light intensity dependence of the growth ofSynechocystisand of the light distribution in a photobioreactor energized by 635 nm light. CordaraA, et al. 2018, PeerJ,6:e5256,DOI 10.7717/peerj.5256
11. C*tion, characterization, and properties ofChlorella vulgarismicroalgae with different lipid contents and effect on fast pyrolysis oil composition. AdamakisID, et al. 2018, Environmental Science and Pollution Research International,25(23):23018-23032
12. Dynamic response ofSynechocystissp. PCC 6803 to changes in light intensity. PartyL, et al. 2018, Algal Research,32:210-220
13. Growth bottlenecks of microalgaDunaliella tertiolectain response to an up-shift in light intensity. Binte SafieSR, et al. 2018, European Journal of Phycology, 53(4):509-519
14. Advancement of the c*tion and upscaling of photoautotrophic suspension cultures usingRed Chenopodiumas a case study. SegechovaA, et al. 2018, Plant Cell, Tissue and Organ Culture,135(1):37–51
15. Enhanced biomass production ofWe forgot.in a flat-panel photobioreactor, grown in photoautotrophic mode. TrivediJ, et al. 2018, Biofuels, DOI: 10.1080/17597269.2018.1448634
16. Comparison of ethanol tolerance between potential cyanobacterial production hosts. CamarineJ, et al. 2018, Journal of biotechnology, 283:140-145
17. Rerouting of metabolism into desired cellular products by nutrient stress: Fluxes reveal the selected pathways in cyanobacterial photosynthesis. QianX, et al. 2018, ACS synthetic biology, 7(5):1465-1476
18. Growth of algal biomass in laboratory and in large-scale algal photobioreactors in the temperate climate of western Germany. SchreiberC, et al. 2017, Bioresource Technology,234:140-149.
19. Intracellular spectral recompositioning of light enhances algal photosynthetic efficiency. FuW, et al. 2017, Science Advances, 3(9):e1603096
20. Carotenoid Production Process Using Green Microalgae of theDunaliellaGenus: Model-Based Analysis of Interspecies Variability. FactorM, et al. 2017,Ind. Eng. Chem. Res.,56(45):12888-12898
21. Light attenuation changes with photo-acclimation in a culture ofSynechocystissp. PCC 6803. Straka L, et al. 2017, Algal Research, DOI: 10.1016/j.algal.2016.11.024
22. Metabolic Flexibility Underpins Growth Capabilities of the Fastest Growing Alga. Treves H, et al. 2017, Current Biology,27(16): 2559-2567
23. Quantitating active Photosystem II reaction center content from fluorescence induction transients. Murphy CD, et al. 2017, Limnology and Oceanography: Methods, 15(1): 54-69
24. Comparative evaluation of phototrophic microtiter plate c*tion against laboratory-scale photobioreactors. Morschett H, et al. 2017, Bioprocess and Biosystems Engineering, 40(5): 663-673
25. Impaired mitochondrial transcription termination disrupts the stromal redox poise inChlamydomonas. Uhmeyer A, et al. 2017, Plant Physiology, 174(3): 1399-1419
26. Interactive effects of nitrogen and light on growth rates and RUBISCO content of small and large centric diatoms. Li G, et al. 2017, Photosynthesis Research, 131(1): 93-103
27. A method to decompose spectral changes inSynechocystisPCC 6803 during light-induced state transitions. Acuña AM, et al. 2016, Photosynthesis Research, 130 (1) : 1-13
28. Comparison of D1´‐and D1‐containing PS II reaction centre complexes under different environmental conditions inSynechocystissp. PCC 6803. Crawford TS, et al. 2016, Plant, Cell & Environment, 39(8): 1715-1726
29. The source of inoculum drives bacterial community structure inSynechocystissp. PCC6803-based photobioreactors. Zevin AS, et al. 2016, Algal Research, 13: 109-115
30. Flow cytometry enables dynamic tracking of algal stress response: A case study using carotenogenesis inDunaliella salina, Fachet M, et al. 2016, Algal Research, 13: 227-234
31. The nitrogen costs of photosynthesis in a diatom under current and future pCO2,G Li, et al. 2015, New Phytologist, 205(2): 533-543
32. Synechococcus elongatusUTEX 2973, a fast growing cyanobacterial chassis for biosynthesis using light and CO2. J Yu, et al. 2015, Sci Rep. 5: 8132.
33. Sustained circadian rhythms in continuous light inSynechocystissp. PCC6803 growing in a well-controlled photobioreactor. P van Alphen, et al. 2015, PLoS ONE 10(6): e0127715.
34. Effects of phosphate limitation on soluble microbial products and microbial community structure in semi‐continuousSynechocystis‐based photobioreactors. AS Zevin, et al. 2015, Biotechnology and Bioengineering, 112(9): 1761-1769
35. C*tion ofNannochloropsisfor eicosapentaenoic acid production in wastewaters of pulp and paper industry. A Polishchuk, et al. 2015, Bioresource Technology, 193: 469-476
36. Interactive effects of and light on growth rates and RUBISCO content of small and large centric diatoms. G Li, et al. 2015, Biogeosciences Discuss. , 12: 16645-16672
37. The role of an electron pool in algal photosynthesis during sub-second light–dark cycling. C Vejrazka, et al. 2015, Algal Research, 12: 43-51