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Pol, A.

Publications and source records attributed to Pol, A..

3 recordsLinked to original sources

Methanotrophs are vigorous H2S oxidizers using a sulfide:quinone oxidoreductase and a ba3-type terminal oxidase

Hydrogen sulfide (H2S) is produced in a wide range of anoxic environments where sulfate (SO42-) reduction is coupled to decomposition of organic matter. In the same environments, methane (CH4) is the end product of an anaerobic food chain and both H2S and CH4 diffuse upwards into oxic zones where aerobic microorganisms can utilize these gases. Methane-oxidizing bacteria are known to oxidize a major part of the produced CH4 in these ecosystems, mitigating the emissions of this potent greenhouse gas to the atmosphere. However, how methanotrophy is affected by toxic H2S is largely unexplored. Here, we show that a single microorganism can oxidize CH4 and H2S simultaneously. By oxidizing H2S, the thermoacidophilic methanotroph Methylacidiphilum fumariolicum SolV can alleviate the inhibitory effects on CH4 oxidation. In response to H2S, strain SolV upregulated a type III sulfide:quinone oxidoreductase (SQR) and a sulfide-insensitive ba3-type terminal oxidase to dissipate the reducing equivalents derived from H2S oxidation. Through extensive chemostat cultivation of M. fumariolicum SolV we demonstrate that it converts high loads of H2S to elemental sulfur (S0). Moreover, we show chemolithoautotrophy by tracing 13CO2 fixation into new biomass by using H2S as sole energy source. Molecular surveys revealed several putative SQR sequences in a range of proteobacterial methanotrophs from various environments, suggesting that H2S detoxification is much more widespread in methanotrophs than previously assumed, enabling them to connect carbon and sulfur cycles in new ways.

microbiology↗

Proteostatic regulation of caveolins avoids premature oligomerisation and preserves ER homeostasis

Caveolin-1 (CAV1) and CAV3 are membrane sculpting proteins driving formation of plasma membrane caveolae. Caveola formation is unique as it requires oligomerisation of newly synthesised caveolins through the biosynthetic-secretory pathway. Here, we combine structural, biochemical, and microscopy analyses to examine the early proteostasis of caveolin family members and mutants. We describe striking trafficking differences between newly synthesised caveolins, with CAV1 rapidly exported to the Golgi but CAV3 showing ER retention and targeting to lipid droplets. Only monomeric/low oligomeric caveolins are efficiently exported from the ER, with oligomers assembling beyond the cis-Golgi and disease-causing mutations leading to detrimental non-functional complexes. Caveolins in the ER are maintained at low levels by active proteasomal degradation, avoiding premature oligomerisation and ER stress. Increasing lipid availability, cholesterol for CAV1 and fatty acids for CAV3, enhances trafficking and reduces proteasomal degradation. In conclusion, we identify proteostatic mechanisms that modulate stability and trafficking of newly synthesised caveolins, protecting cells against ER stress but perturbed in caveolin-related disease. SummaryUnderstanding the unique proteostasis of caveolins has important implications for cell biology and physiopathology. Combining structural, microscopy, and biochemical analyses, we uncover new insights into the mechanisms that differentiate the early biosynthetic steps of caveolin family members, isoforms, and pathogenic mutants.

cell biology↗

Age-dependent lipid droplet-rich microglia worsen stroke outcome in old mice

Microglial cells of the aged brain manifest signs of dysfunction that could contribute to the worse neurological outcome of stroke in the elderly. Treatment with colony-stimulating factor-1 receptor antagonists enable transient microglia depletion that can be followed by microglia repopulation after interruption of the treatment, causing no known harm to mice. Using this strategy, we aimed to restore microglia function and ameliorate stroke outcome in aged mice. Cerebral ischemia/reperfusion induces strong innate immune responses in microglia highlighted by prominent type I interferon signaling, together with cellular metabolic perturbances and lipid droplet biogenesis in young mice. In aged mice, a subset of microglia accumulates lipid droplets under steady state and displays exacerbated innate immune responses after stroke. Microglia renewal in old mice reduces the lipid droplet content, prevents the ischemia-induced exaggerated type I interferon response, and improves the neurological outcome of stroke. This study shows that age-dependent lipid droplet-enriched microglia contribute to impair stroke outcome in old mice.

neuroscience↗