Photoautotrophic Production of Butanol from Genetically Engineered Cyanobacteria
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The development of renewable energy solutions is essential to address rising global energy demands and the climate crisis. Cyanobacteria, oxygenic photosynthetic prokaryotes, provide a sustainable platform for biofuel production by converting solar energy, CO₂, and water into valuable chemicals. Isobutanol, a promising biofuel compatible with existing engines, was synthesized in Synechocystis sp. PCC 6803 through genetic engineering, cultivation optimization, and product recovery strategies. A synthetic 2-keto acid pathway was introduced via heterologous expression of α-ketoisovalerate decarboxylase (Kivd) and alcohol dehydrogenase (Yqhd) under a light-inducible promoter (psbA2), yielding strain DM12 with titres of 371.8 mg L-1 in photobioreactors. Further engineering of a PHB synthase mutant (ECDM12) enhanced titres 3.8-fold, achieving 687.6 mg L-1 under simulated diurnal light. Outdoor validation confirmed 398 mg L-1 under natural sunlight. Media optimization using OFAT and RSM improved titres to 947.8 mg L-1 in photobioreactors under constant light and 892.6 mg L-1 under diurnal cycles, with outdoor titres reaching 538.3 mg L-1. Isobutanol toxicity studies revealed growth inhibition above 500 mg L-1. Integration of AmberSep® OPTIPORE L-493 resin and gas stripping mitigated toxicity, enabling 1.75 g L-1 in batch mode and 7.75 g L-1 cumulatively under continuous cultivation. This work establishes a comprehensive framework for scalable cyanobacteria-based isobutanol production, demonstrating industrial potential under natural sunlight.
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Maiti, Soumen Kumar
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Except where otherwise noted, this item's license is described as https://creativecommons.org/licenses/by-nc-sa/4.0/

