28
2 Integrated Approaches for the Production of Biodegradable Plastics and Bioenergy from Waste
substrates, such as glucose, lactose, propionate, acetate, malate, and lactate, and it
was found that the strain WP3-5 utilizes lactate, propionate, malate, and acetate
which lead to the production of H2, whereas it was able to synthesize PHB on
propionate and acetate. Under specific pH stress conditions, PHB synthesis can
also decrease the H2 production [39]. However, such a decrease was not observed
in R. palustris under limited amount of nitrogen. Under a nitrogen-limited growth
condition, R. palustris synthesized 40 mg/l/day of PHB and around 200 ml/l/day of
H2 was also produced when the studies were supplemented with 60 mg/l/day of
nitrogen [1].
2.7
Conclusions
Both biodegradable plastics and bioenergy were produced separately from differ-
ent wastes like food, dairy, starch wastes, and wastewater itself. However, separate
processes and systems should be set up for the production of plastics and bioen-
ergy which are cumbersome, not eco-friendly and not economical. Hence, integrated
production of bioenergy and bioplastics will be an advantageous process. However,
further improvement of microbial strains and more integrated studies on different
wastes or their derived products for the production of bioenergy and bioplastics will
definitely augment the existing processes for the economic production of both the
products at industrial level.
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