A multi-objective optimization approach for the production of polyhydroxybutyrate via Chlorogloea fritschii under diurnal light with single-stage cultivation

Int J Biol Macromol. 2024 Jan:255:128067. doi: 10.1016/j.ijbiomac.2023.128067. Epub 2023 Nov 13.

Abstract

The present study aims to optimize the nutrients for maximization of cyanobacterial biomass with high content of polyhydroxybutyrate (PHB), a bioplastic, and recovery of biomass by auto-sedimentation under diurnal light mimic to sunlight. The multi-objective optimization with desirability approach was used to improve dry cell weight (DCW), PHB content (% w/w), and auto-sedimentation concentration factor (SCF) of biomass. Initially, NaNO3, K2HPO4, TRACE (micronutrient solution), Na2EDTA, and MgSO4.7H2O were screened as important media compositions. Screening was followed by the application of response surface methodology for the development of a model used in multi-objective optimization. The optimized media selected from many optimal solutions, a set of Pareto solutions generated by multi-objective optimization was validated in a flat panel photobioreactor. Using a single-stage cultivation strategy under diurnal light, Chlorogloea fritschii TISTR 8527 has shown capability to produce DCW of 1.23 g/l with PHB content of 31.78 % and SCF of 93.63 with optimal media. This leads to the enhancement of both PHB content (2.72 fold) and SCF (1.64 fold) were observed when compared to the non-optimal medium. This is the first multi-objective optimization study for media optimization using cyanobacteria reported till now under diurnal light mimic to sunlight for bioplastic production.

Keywords: Auto-sedimentation; Cyanobacteria; Multi-objective optimization; Polyhydroxybutyrate.

MeSH terms

  • Biomass
  • Biopolymers / metabolism
  • Cyanobacteria* / metabolism
  • Hydroxybutyrates* / metabolism
  • Polyhydroxybutyrates

Substances

  • Hydroxybutyrates
  • Polyhydroxybutyrates
  • Biopolymers

Supplementary concepts

  • Chlorogloeopsis fritschii