Search bioRxiv⌕ Search

bioRxiv · 10.1101/2023.06.30.547267

Mitigation of the effect of high light on the photosynthetic apparatus of Rhodobacter alkalitolerans when grown in an alkaline environment

Abstract

In the phototrophic alphaproteobacteria, photosynthesis is performed by pigment-protein complexes, including the light-harvesting complexes known as LH1 and LH2. The photosystem also encompasses carotenoids to assist in well-functioning of photosynthesis. Most photosynthetic bacteria are exposed to various abiotic stresses, and here, the Rhodobacter (R.) alkalitolerans were extracted from the alkaline pond. We report the comparative study of the photosynthetic apparatus of R. alkalitolerans in various light intensities in relation to this bacteriums high pH tolerance ability. We found that as the light intensity increased, the stability of photosystem complexes decreased in normal pH (npH pH 6.8{+/-}0.05) conditions, whereas in high pH (hpH pH 8.6{+/-}0.05) acclimation was observed to high light. The content of bacteriochlorophyll a, absorbance spectra, and circular dichroism data shows that the integrity of photosystem complexes is less affected in hpH compared to npH conditions. LP-BN of photosystem complexes also shows that LH2 is more affected in npH than hpH, whereas RC-LH1 monomer or dimer has shown interplay between monomer and dimer in hpH although the dimer and monomer both increased in npH. The sucrose density gradient of {beta}-DM solubilized intracytoplasmic membranes, further evidences the pattern of monomer-dimer conversion. Additionally, thin layer chromatographic separation of isolated membrane lipids shows that phosphatidylcholine (PC) levels have increased in hpH conditions which further confirms the integrity of photosystem complexes in hpH conditions. Moreover, qPCR data showed that the subunit -c of ATPase levels was overexpressed in hpH. Consequently, the P515 measurement shows that more ATP production is required in hpH, which dissipates the protons from the chromatophore lumen. This could be the reason the photosystem protein complex destabilized due to more lumen acidification. To maintain homeostasis in hpH, the antiporter NhaD expressed more than in the npH condition. IMPORTANCER. alkalitolerans is an alkaline tolerant species discovered from an alkaline pond in Gujrat India. Being a photoautotrophic photosynthetic organism, it serves as a good model organism to study the photosynthetic apparatus among phototrophic alphaproteobacteria. In nature organisms not only tackle a single abiotic stress but many including temperature, light, salinity, and many other abiotic stresses. Here we investigate how two different abiotic factors light and alkaline conditions modulate the growth and photosynthetic apparatus in a phototrophic alphaproteobacterium, R. alkalitolerans. Our results of this study will give leads in developing alkali-tolerant algae and higher plants.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Zamal, M. Y., Venkataramana, C., Subramanyam, R.. 2023-07-01. Mitigation of the effect of high light on the photosynthetic apparatus of Rhodobacter alkalitolerans when grown in an alkaline environment. https://doi.org/10.1101/2023.06.30.547267

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related preprints

Global mapping of protein localization in vegetative Dictyostelium discoideum by subcellular spatial proteomics

Dictyostelium discoideum is a genetically tractable amoebozoan model organism widely used to study conserved eukaryotic cellular processes, yet a comprehensive map of its subcellular proteome has been lacking. Here, we combined subcellular fractionation with label-free mass spectrometry to resolve a global protein localization map for D. discoideum. We detected 6,337 proteins (~50% of the predicted proteome) and generated protein abundance profiles across 10 subcellular fractions. Using a curated marker set and a support vector machine classifier with a median cutoff, we assigned high-confidence localizations to 3,169 proteins across 17 subcellular compartments. Independent validation using sequence-based targeting predictions strongly supported the compartment assignments. Together, this study provides the first global subcellular localization map of the Dictyostelium proteome, establishing a foundational resource for functional, cell biological, and evolutionary analyses. We are currently preparing manuscripts that further analyze (i) the membrane trafficking system of Dictyostelium, including detailed investigation of the contractile vacuole, Jotnarlogs, and patchy proteins, and (ii) the composition of the Dictyostelium peroxisome, with a focus on the subcellular localization of sterol biosynthesis enzymes. Investigators interested in using these data are encouraged to contact us prior to publication to avoid overlap and to facilitate coordinated and collaborative use of this resource.

cell biology↗

Experimental and mathematical models reveal that AMPK modulates circadian clock gene expression and period through NAD+-dependent regulation of Bmal1

The circadian clock allows living systems to anticipate environmental daily variations by scheduling cellular mechanisms according to the time of the day. The reciprocal interplay between metabolism and circadian clock is essential for energy homeostasis, and the disruption of metabolic clock inputs contributes to dysfunction of clocks in peripheral tissues. However, the molecular mechanisms through which the feeding/fasting cycle entrains peripheral clocks remain incompletely understood. Here, we investigate experimentally and theoretically the role of AMP-dependent kinase (AMPK), a key fasting sensor, in metabolic regulation of the circadian clock. Using a luciferase reporter driven by the Bmal1 promoter to monitor molecular clock activity in human U2OS cells, and thanks to a signal processing method based on the Hilbert transform to retrieve the instantaneous phase and period of circadian signals, we show that pharmacological activation of AMPK by AICAR significantly elevates Bmal1 promoter activity and markedly lengthens the clock period in a dose-dependent manner. Conversely, the clock period is shortened by the pharmacological inhibition by SR18292 of Peroxisome proliferator-activated receptor gamma coactivator 1-alpha (PGC-1-alpha). Importantly, the action of AICAR is abolished by FK866, a nicotinamide phosphoribosyltransferase (NAMPT) inhibitor, demonstrating that AMPK-dependent modulation of Bmal1 promoter activity requires NAD+ availability. These experimental results are recapitulated by numerical simulations of our previously published mathematical model, where PGC-1-alpha plays a key role in mediating AMPK activity to the clock. Moreover, the comparison of experimentally measured and theoretically predicted phase response curves, following AMPK activation at different circadian phases, provides an additional validation of the model. By integrating biological experiments with mathematical modeling, our results identify a key mechanism through which metabolic factors can entrain and regulate the circadian clock via NAD+-dependent AMPK-mediated regulation of Bmal1 promoter activity.

cell biology↗

Autophagy dependent HIF1α proteostasis is compromised in models of PEX1 deficiencies

Peroxisomes, along with mitochondria, coordinate and compartmentalize oxidative metabolism in eukaryotic cells. Rare genetic disorders caused by mutations in PEX genes impair peroxisome function and cause Peroxisome Biogenesis Disorders, which are characterized by liver and neurological dysfunction, hearing and vision loss, and metabolic abnormalities. The majority of Peroxisome Biogenesis Disorders (PBDs) are caused by mutations in the gene encoding PEX1, which together with PEX6 forms a hetero-hexameric AAA-ATPase complex that drives the import of enzymes into the peroxisome lumen. One particular destabilizing mutation - PEX1G843D - results in almost 30% of all cases. Here we show that deficiencies in PEX1 lead to increased levels of the oxygen-responsive transcription factor HIF1 in normoxia, as well as a HIF1 transcriptional signature. The increase in HIF1 protein was rescued by overexpression of PEX1WT, suggesting PEX1 deficiencies modulate HIF1 signaling. The increased levels of HIF1 were not explained by defects in the oxygen responsive degradation pathway of HIF1 that relies on proline hydroxylase domain enzyme-dependent hydroxylation and von Hippel Lindau tumor suppressor protein-dependent ubiquitination. Instead, we found that PEX1 deficiency alters HIF1 proteostasis by reducing degradation through a hydroxylation- and autophagy- dependent mechanism. Notably, enhancing autophagic capacity by ULK1 agonism was sufficient to reduce HIF1 levels in PEX1 deficient cells. Lastly, we demonstrate that upon hypoxia-reoxygenation, PEX1 deficient cells are slower to reset HIF1 levels. Our results suggest that PBD patients with PEX1 deficiency may be susceptible to dysregulation of the HIF1 pathway, particularly in tissues where oxygen gradients are physiological or developmentally required.

cell biology↗