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Abdel-Salam, E. M.

Publications and source records attributed to Abdel-Salam, E. M..

3 recordsLinked to original sources

Multi-omics dissection of transcriptional and post-transcriptional responses in cyanobacterial high-light adaptation

Understanding how photosynthetic organisms acclimate to excess light is essential for the development of robust chassis for synthetic biology approaches aimed at expanding the photosynthetically active absorption spectrum. High-light (HL) tolerant strains were previously generated by laboratory evolution from a laboratory type (LT) strain of Synechocystis sp. PCC 6803, with tolerance attributed to a small number of specific point mutations. Key mutations affected the NDH-1L complex F1-subunit (NdhF1F124L) and translation elongation factor G2 (EF-G2R461C). Reintroduction of these mutations into the LT background was sufficient to confer HL tolerance. However, the mechanisms by which a limited set of point mutations mediates HL tolerance have remained unclear. Here, integrated transcriptomic and proteomic analyses of HL-tolerant strains reveal a coordinated network of responses underlying HL tolerance. The NdhF1F124L mutation increased the accumulation of NDH-1 complex subunits, likely accounting for the previously observed enhancement of cyclic electron flow. In contrast, EF-G2R461C increased the abundance of multiple functional classes of proteins associated with HL tolerance, while post-transcriptionally reducing the level of the phycobilisome linker protein CpcC2, resulting in a decreased antenna size. Integrated analyses further demonstrated that HL tolerance involves transcriptional regulation of protein abundance, including the maintenance of phosphate metabolism. Consistently, overexpression of two genes from the Pho regulon increased HL tolerance. Overall, this study demonstrates how a small number of point mutations in genes with central cellular functions can reprogram the cyanobacterial cell to achieve enhanced tolerance to HL.

evolutionary biology↗

High-light adaptation in Synechocystis by accumulating NDH proteins and depleting specific phycobilisome linker proteins

Photosynthetic organisms have evolved mechanisms to manage excess light, crucial for maximizing photosynthetic efficiency. High-light (HL) tolerant Synechocystis sp. PCC6803 strains were developed through laboratory evolution, with tolerance attributed to specific point mutations. Key mutations affected the NDH-1L complex F1-subunit (NdhF1F124L) and translation elongation factor G2 (EF-G2R461C). Reintroducing these mutations into laboratory strains conferred HL tolerance. Comparisons with knockout and overexpressor lines showed NdhF1F124L and EF-G2R461C result in gain of function. Transcriptomic and proteomic analysis unveiled a network of responses contributing to HL tolerance, including maintenance of phosphate metabolism and decreased antenna size by depleting a specific linker protein in EF-G2R461C cells. Consequently, overexpression of Pho regulon genes increased HL tolerance. NdhF1F124L enhances cyclic electron flow (CEF) by increasing NDH-1 complex subunit accumulation. Other HL-adapted strains demonstrated that increased CEF and decreased antenna size are recurring outcomes, achievable through various mutations. This study demonstrates how limited mutations can reconfigure cells for enhanced HL tolerance, offering insights for improving photosynthetic efficiency.

physiology↗

Improving tolerance to fluctuating light through adaptive laboratory evolution in the cyanobacterium Synechocystis

Fluctuating light (FL) poses a serious challenge to photosynthetic organisms like cyanobacteria, disrupting carbon assimilation and damaging photosystems. While key components of cyanobacterial FL tolerance have been identified, their genetic enhancement remains unexplored. We applied adaptive laboratory evolution to Synechocystis PCC 6803 under two complex FL regimes, including one lethal to the starter strain (LT), to generate FL-adaptive alleles. Our analysis revealed 44 fully segregated novel mutations in 24 monoclonal evolved strains, 28 of which affected proteins or structural RNAs. We focused on three mutations for further study. Mutations in Pam68, involved in photosystem II (PSII) assembly, and Sll0518 were present in all evolved strains, indicating early emergence. These mutations increased tolerance to non-lethal FL conditions when introduced into LT, with the Pam68 mutation possibly protecting PSI by increasing the proportion of less active PSII monomers. A gain-of-function mutation in RpaB, regulator of phycobilisome association B, was found in three strains tolerant to lethal FL. When introduced into LT, this mutation significantly increased tolerance to both lethal FL and high light conditions, associated with downregulation of photosystem accumulation and light harvesting. As RpaB has plant homologs, this finding could potentially be used to improve agricultural productivity under variable light conditions.

evolutionary biology↗