30

2 Integrated Approaches for the Production of Biodegradable Plastics and Bioenergy from Waste

23 Yokoi, H., Maki, R., Hirose, J. et al. (2002). Microbial production of hydrogen

from starch-manufacturing wastes. Biomass and Bioenergy 22: 389–395.

24 Halami, P.M. (2008). Production of polyhydroxyalkanoate from starch by the

native isolates Bacillus cereus CFR06. World Journal of Microbiology and Biotech-

nology 24: 805–812. https://doi.org/10.1007/s11274-007-9543-z.

25 Haas, R., Jin, B., and Zepf, F.T. (2008). Production of poly(3-hydroxybutyrate)

from waste potato starch. Bioscience, Biotechnology, and Biochemistry 72: 253–256.

https://doi.org/10.1271/bbb.70503.

26 Poomipuk, N., Reungsang, A., and Plangklang, P. (2014).

Poly-β-hydroxyalkanoates production from cassava starch hydrolysate by Cupri-

avidus sp. KKU38. International Journal of Biological Macromolecules 65: 51–64.

https://doi.org/10.1016/j.ijbiomac.2014.01.002.

27 Bhatia, S.K., Shim, Y.H., Jeon, J.M. et al. (2015). Starch based polyhydroxy-

butyrate production in engineered Escherichia coli. Bioprocess and Biosystems

Engineering 38: 1479–1484.

28 Qiang, S.X., Yan, Y.S., and Feng, J.X. (2016). Efficient hydrolysis of raw starch

and ethanol fermentation: a novel raw starch-digesting glucoamylase from Peni-

cillium oxalicum. Biotechnology for Biofuels 9: 216. https://doi.org/10.1186/s13068-

016-0636-5.

29 Khardenavis, A., Guha, P.K., Kumar, M.S. et al. (2005). Activated sludge is

a potential source for production of biodegradable plastics from wastewater.

Environmental Technology 26 (5): 545–552. https://doi.org/10.1080/

09593332608618536.

30 Parsons, A.S. and Smith, A.J. (2008). Phosphates and global sustainability. phos-

phorus removal and recovery from municipal wastewaters. Elements 4 (2):

109–112.

31 Christopher, W., Antonio, G., and Ana, S. (2013). Sensing and analysis of soluble

phosphates in environmental samples: a review. Biosensors and Bioelectronics 41:

1–11.

32 Liu, F., Li, J., and Zhang, X.L. (2019). Bioplastic production from wastewater

sludge and application. IOP Conference Series: Earth and Environmental Science

344: 012071.

33 Kumar, M.S., Mudliar, S.N., and Reddy, K.M.K. (2004). Production of biodegrad-

able plastics from activated sludge generated from a food processing industrial

wastewater treatment plant. Bioresource Technology 95: 327–330.

34 Bohutskyi, P., Spieling, R.E., Duc, P. et al. (2018). Bioenergy from wastewa-

ter resources: nutrient removal, productivity and settle ability of indigenous

algal-bacteria polyculture, and effect of biomass composition variability on

methane production kinetics and anaerobic digestion energy balance. Algal

Research 36: 217–228.

35 Araki, S., Martín-Gómez, S., Becares, E. et al. (2001). Effect of high-rate algal

ponds on viability of Cryptosporidium parvum oocysts. Applied and Environ-

mental Microbiology: 3322–3324. https://doi.org/10.1128/AEM.67.7.3322-3324

.2001.