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Biology subjects

Medipally, H.

Publications and source records attributed to Medipally, H..

2 recordsLinked to original sources

Expression landscape of heterologous enzymes in Synechocystis sp. PCC 6803

Photosynthetic cyanobacteria are promising platforms for sustainable chemical production, as they can convert light and CO2 into valuable compounds. Achieving this often requires engineering cyanobacteria with non-native enzymes with strong promoters to maximize enzyme accumulation. However, despite extensive engineering efforts, the extent to which these enzymes misfold and undergo degradation in cyanobacteria remains unknown. Here, we systematically investigate the fate of recombinant proteins in Synechocystis sp. PCC 6803 by estimating protein loss due to protease degradation. To do this, we developed a quantitative approach that combines split-GFP reporting with inducible CRISPRi knockdown of Clp protease system, enabling estimation of portion of proteins that would otherwise be degraded. Applying this method to 103 heterologous proteins previously used in cyanobacterial metabolic engineering studies, we find that, on average, one-third of recombinant protein accumulation is lost to degradation, with some enzymes exhibiting more than 95% protein loss. Furthermore, we compare expression from identical expression constructs in E. coli and Synechocystis and find broad similarities in their protein accumulation patterns. Together, these findings provide the first quantitative overview of heterologous protein expression in cyanobacteria and identify enzymes that are suboptimal for their respective pathways, information usable to increase production titers in photosynthetic cell factories.

synthetic biology↗

A clickable photosystem I, ferredoxin, and ferredoxin NADP+ reductase fusion system for light-driven NADPH regeneration

Photosynthetic organisms like plants, algae, and cyanobacteria use light for the regeneration of dihydronicotinamide dinucleotide phosphate (NADPH). The process starts with the light-driven oxidation of water by photosystem II (PSII) and the released electrons are transferred via the cytochrome b6f complex towards photosystem I (PSI). This membrane protein complex is responsible for the light-driven reduction of the soluble electron mediator ferredoxin (Fd), which passes the electrons to ferredoxin NADP+ reductase (FNR). Finally, NADPH is regenerated by FNR at the end of the electron transfer chain. In this study, we established a clickable fusion system for in vitro NADPH regeneration with PSI-Fd and PSI-Fd-FNR, respectively. For this, we fused immunity protein 7 (Im7) to the C-terminus of the PSI-PsaE subunit in the cyanobacterium Synechocystis sp. PCC 6803. Furthermore, colicin DNase E7 (E7) fusion chimeras of Fd and FNR with varying linker domains were expressed in E. coli. Isolated Im7-PSI was coupled with the E7-Fd or E7-Fd-FNR fusion proteins through high-affinity binding of the E7/Im7 protein pair. The corresponding complexes were tested for NADPH regeneration capacity in comparison to the free protein systems demonstrating the general applicability of the strategy.

biochemistry↗