276
Suganya T, Varman M, Masjuki HH, Renganathan S (2016) Macroalgae and microalgae as a potential source for commercial applications along with biofuels production: a biorefinery approach.
Renew Sust Energ Rev 55:909–941
Tanaka S, Ikeda K, Miyasaka H et al (2011) Comparison of three Chlamydomonas strains which
show distinctive oxidative stress tolerance. J Biosci Bioeng 112:462–468
Telfer A (2005) Too much light? How β-carotene protects the photosystem II reaction centre.
Photochem Photobiol Sci 4:950–956
Terashima M, Specht M, Naumann B, Hippler M (2010) Characterizing the anaerobic
response of Chlamydomonas reinhardtii by quantitative proteomics. Mol Cell Proteomics
9:1514–1532
Tischer J (1936) Über das Euglenarhodon und andere Carotinoide einer roten Euglene.
(Carotinoide der Süßwasseralgen, I. Teil.). Hoppe-Seyler’s Zeitschrift für Physiol. Chemie
239:257–269
Toepel J, Illmer-Kephalides M, Jaenicke S et al (2013) New insights into Chlamydomonas reinhardtii hydrogen production processes by combined microarray/RNA-seq transcriptomics.
Plant Biotechnol J 11:717–733
Trivedi J, Aila M, Bangwal DP et al (2015) Algae based biorefinery-how to make sense? Renew
Sust Energ Rev 47:295–307
Trovato M, Mattioli R, Costantino P (2008) Multiple roles of proline in plant stress tolerance and
development. Rend Lincei 19:325–346
Vanderauwera S, Hoeberichts FA, Van Breusegem F (2009) Hydrogen peroxide-responsive genes
in stress acclimation and cell death. In: Reactive oxygen species in plant signaling. Springer,
Berlin Heidelberg, pp 149–164
Wang J, Sommerfeld M, Hu Q (2011) Cloning and expression of isoenzymes of superoxide
dismutase in Haematococcus pluvialis (Chlorophyceae) under oxidative stress. J Appl Phycol
23:995–1003
Wang S-B, Chen F, Sommerfeld M, Hu Q (2004a) Proteomic analysis of molecular response to
oxidative stress by the green alga Haematococcus pluvialis (Chlorophyceae). Planta 220:17–29
Wang S-B, Hu Q, Sommerfeld M, Chen F (2004b) Cell wall proteomics of the green alga
Haematococcus pluvialis (Chlorophyceae). Proteomics 4:692–708
Wang T, Ge H, Liu T et al (2016a) Salt stress induced lipid accumulation in heterotrophic culture
cells of Chlorella protothecoides: mechanisms based on the multi-level analysis of oxidative
response, key enzyme activity and biochemical alteration. J Biotechnol 228:18–27
Wang Y, He B, Sun Z, Chen Y-F (2016b) Chemically enhanced lipid production from microalgae
under low sub-optimal temperature. Algal Res 16:20–27
Wase N, Black PN, Stanley BA, DiRusso CC (2014) Integrated quantitative analysis of nitrogen stress response in Chlamydomonas reinhardtii using metabolite and protein profiling.
J Proteome Res 13:1373–1396
Wei D, Chen F, Chen G et al (2008) Enhanced production of lutein in heterotrophic Chlorella
protothecoides by oxidative stress. Sci China Ser C Life Sci 51:1088–1093
Wienkoop S, Weiß J, May P et al (2010) Targeted proteomics for Chlamydomonas reinhardtii combined with rapid subcellular protein fractionation, metabolomics and metabolic flux analyses.
Mol BioSyst 6:1018–1031
Xin L, Hong-ying H, Yu-ping Z (2011) Growth and lipid accumulation properties of a freshwater microalga Scenedesmus sp. under different cultivation temperature. Bioresour Technol
102:3098–3102
Yilancioglu K, Cokol M, Pastirmaci I et al (2014) Oxidative stress is a mediator for increased lipid
accumulation in a newly isolated Dunaliella salina strain. PLoS One 9:e91957
Zhao Y, Li D, Ding K et al (2016) Production of biomass and lipids by the oleaginous microalgae
Monoraphidium sp. QLY-1 through heterotrophic cultivation and photo-chemical modulator
induction. Bioresour Technol 211:669–676
Zhang YM, Chen H, He CL, Wang Q (2013) Nitrogen starvation induced oxidative stress in an
oil-producing green alga Chlorella sorokiniana C3. PLoS One 8:e69225
Zhang J, Sun Z, Sun P et al (2014) Microalgal carotenoids: beneficial effects and potential in
human health. Food Funct 5:413–425
K. Chokshi et al.
Suganya T, Varman M, Masjuki HH, Renganathan S (2016) Macroalgae and microalgae as a potential source for commercial applications along with biofuels production: a biorefinery approach.
Renew Sust Energ Rev 55:909–941
Tanaka S, Ikeda K, Miyasaka H et al (2011) Comparison of three Chlamydomonas strains which
show distinctive oxidative stress tolerance. J Biosci Bioeng 112:462–468
Telfer A (2005) Too much light? How β-carotene protects the photosystem II reaction centre.
Photochem Photobiol Sci 4:950–956
Terashima M, Specht M, Naumann B, Hippler M (2010) Characterizing the anaerobic
response of Chlamydomonas reinhardtii by quantitative proteomics. Mol Cell Proteomics
9:1514–1532
Tischer J (1936) Über das Euglenarhodon und andere Carotinoide einer roten Euglene.
(Carotinoide der Süßwasseralgen, I. Teil.). Hoppe-Seyler’s Zeitschrift für Physiol. Chemie
239:257–269
Toepel J, Illmer-Kephalides M, Jaenicke S et al (2013) New insights into Chlamydomonas reinhardtii hydrogen production processes by combined microarray/RNA-seq transcriptomics.
Plant Biotechnol J 11:717–733
Trivedi J, Aila M, Bangwal DP et al (2015) Algae based biorefinery-how to make sense? Renew
Sust Energ Rev 47:295–307
Trovato M, Mattioli R, Costantino P (2008) Multiple roles of proline in plant stress tolerance and
development. Rend Lincei 19:325–346
Vanderauwera S, Hoeberichts FA, Van Breusegem F (2009) Hydrogen peroxide-responsive genes
in stress acclimation and cell death. In: Reactive oxygen species in plant signaling. Springer,
Berlin Heidelberg, pp 149–164
Wang J, Sommerfeld M, Hu Q (2011) Cloning and expression of isoenzymes of superoxide
dismutase in Haematococcus pluvialis (Chlorophyceae) under oxidative stress. J Appl Phycol
23:995–1003
Wang S-B, Chen F, Sommerfeld M, Hu Q (2004a) Proteomic analysis of molecular response to
oxidative stress by the green alga Haematococcus pluvialis (Chlorophyceae). Planta 220:17–29
Wang S-B, Hu Q, Sommerfeld M, Chen F (2004b) Cell wall proteomics of the green alga
Haematococcus pluvialis (Chlorophyceae). Proteomics 4:692–708
Wang T, Ge H, Liu T et al (2016a) Salt stress induced lipid accumulation in heterotrophic culture
cells of Chlorella protothecoides: mechanisms based on the multi-level analysis of oxidative
response, key enzyme activity and biochemical alteration. J Biotechnol 228:18–27
Wang Y, He B, Sun Z, Chen Y-F (2016b) Chemically enhanced lipid production from microalgae
under low sub-optimal temperature. Algal Res 16:20–27
Wase N, Black PN, Stanley BA, DiRusso CC (2014) Integrated quantitative analysis of nitrogen stress response in Chlamydomonas reinhardtii using metabolite and protein profiling.
J Proteome Res 13:1373–1396
Wei D, Chen F, Chen G et al (2008) Enhanced production of lutein in heterotrophic Chlorella
protothecoides by oxidative stress. Sci China Ser C Life Sci 51:1088–1093
Wienkoop S, Weiß J, May P et al (2010) Targeted proteomics for Chlamydomonas reinhardtii combined with rapid subcellular protein fractionation, metabolomics and metabolic flux analyses.
Mol BioSyst 6:1018–1031
Xin L, Hong-ying H, Yu-ping Z (2011) Growth and lipid accumulation properties of a freshwater microalga Scenedesmus sp. under different cultivation temperature. Bioresour Technol
102:3098–3102
Yilancioglu K, Cokol M, Pastirmaci I et al (2014) Oxidative stress is a mediator for increased lipid
accumulation in a newly isolated Dunaliella salina strain. PLoS One 9:e91957
Zhao Y, Li D, Ding K et al (2016) Production of biomass and lipids by the oleaginous microalgae
Monoraphidium sp. QLY-1 through heterotrophic cultivation and photo-chemical modulator
induction. Bioresour Technol 211:669–676
Zhang YM, Chen H, He CL, Wang Q (2013) Nitrogen starvation induced oxidative stress in an
oil-producing green alga Chlorella sorokiniana C3. PLoS One 8:e69225
Zhang J, Sun Z, Sun P et al (2014) Microalgal carotenoids: beneficial effects and potential in
human health. Food Funct 5:413–425
K. Chokshi et al.
