Improving Marine Algae for Bioenergy 299
Yang, B., J. Liu, X. Ma, B. Guo, B. Liu, T. Wu, Y. Jiang and F. Cheng. 2017. Genetic engineering of the Calvin cycle towards
enhanced photosynthetic fixation in microalgae. Biotechno. Biofuels 10: 229. doi. 10.1186/s13068-017-0916-8.
Yoshino, F., H. Ikeda, H. Masukawa and H. Sakurai. 2007. High photobiological hydrogen production activity of a Nostoc sp.
PCC 7422 uptake hydrogenase-deficient mutant with high nitrogenase activity. Mar. Biotechnol. 9: 101–112.
Zaslavskaia, L.A., J.C. Lippmeier, C. Shih, D. Ehrhardt, A.R. Grossman and K.E. Apt. 2001. Trophic conversion of an obligate
photoautotrophic organism through metabolic engineering. Science 292: 2073–2075.
Zhang, L., T. Happe and A. Melis. 2002. Biochemical and morphological characterization of sulfur-deprived and H 2 -producing
Chlamydomonas reinhardtii (green alga). Planta 214: 552–561.
Zhu, X.G., E. de Sturler and S.P. Long. 2007. Optimizing the distribution of resources between enzymes of carbon metabolism
can dramatically increase photosynthetic rate: a numerical simulation using an evolutionary algorithm. Plant Physiol.
145: 513–526.
Yang, B., J. Liu, X. Ma, B. Guo, B. Liu, T. Wu, Y. Jiang and F. Cheng. 2017. Genetic engineering of the Calvin cycle towards
enhanced photosynthetic fixation in microalgae. Biotechno. Biofuels 10: 229. doi. 10.1186/s13068-017-0916-8.
Yoshino, F., H. Ikeda, H. Masukawa and H. Sakurai. 2007. High photobiological hydrogen production activity of a Nostoc sp.
PCC 7422 uptake hydrogenase-deficient mutant with high nitrogenase activity. Mar. Biotechnol. 9: 101–112.
Zaslavskaia, L.A., J.C. Lippmeier, C. Shih, D. Ehrhardt, A.R. Grossman and K.E. Apt. 2001. Trophic conversion of an obligate
photoautotrophic organism through metabolic engineering. Science 292: 2073–2075.
Zhang, L., T. Happe and A. Melis. 2002. Biochemical and morphological characterization of sulfur-deprived and H 2 -producing
Chlamydomonas reinhardtii (green alga). Planta 214: 552–561.
Zhu, X.G., E. de Sturler and S.P. Long. 2007. Optimizing the distribution of resources between enzymes of carbon metabolism
can dramatically increase photosynthetic rate: a numerical simulation using an evolutionary algorithm. Plant Physiol.
145: 513–526.
