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Belculfine, S. J.

Publications and source records attributed to Belculfine, S. J..

2 recordsLinked to original sources

Overexpression of a Gene That Modulates Cyclic-di-GMP Enhances Granulation in Mycobacterium smegmatis

Granulation is a complex microbial-aggregation process essential for forming aerobic granular sludge (AGS) and other microbial granules used in wastewater treatment. However, the biological mechanisms that drive granule formation remain poorly understood. Cyclic-di-GMP (c-di-GMP) is a well-established second messenger that regulates biofilm formation, suggesting it may be used to enhance microbial granulation. Mycobacterium smegmatis, a nonpathogenic model bacterium for Mycobacterium tuberculosis, naturally forms granules. Because M. smegmatis carries a single c-di-GMP modulating gene, dcpA, that encodes an enzyme with both diguanylate cyclase (DGC) and phosphodiesterase (PDE) activities, it offers a unique opportunity to examine the role of c-di-GMP in granulation. Here, we generated and studied two engineered M. smegmatis strains overexpressing dcpA or dcpA{Delta}EAL, the latter of which is defective in PDE activity. Using these engineered strains, we examined different forms of biofilm growth, cell morphology, plastic surface adhesion, granulation, and settleability. Results of sludge volume index and microscopy indicated that the aggregates of M. smegmatis were granules rather than flocs, and the settleability of the granules was particularly robust when the cells were grown in a carbon rich medium known to promote granulation. Engineered strains sustained stable granulation more effectively than the wildtype under low concentration Tween-80 treatment, which was used to induce dispersion. These results suggest that overproduction of DcpA and thus the modulated level of intracellular c-di-GMP enhances granulation and promotes granule persistence in M. smegmatis. Our study further demonstrates that M. smegmatis is a useful model for elucidating biological mechanisms underlying granulation, which could be leveraged to improve granular technologies for wastewater treatment.

bioengineering↗

Impact of chronic alcohol and stress on mid-life cognition and locus coeruleus integrity

BackgroundExcessive alcohol consumption and stress are associated with structural and functional alterations in the brain and impaired cognition. However, the persistence of long-term neural impacts after alcohol and stress are less understood. This study investigated midlife cognition and neuropathological changes following a history of alcohol and stress exposure. MethodsC57BL/6J mice acclimated to ethanol drinking (15% v/v) before exposure to four cycles of alternating chronic intermittent ethanol (CIE) vapor exposure and repeated forced swim stress (FSS), with control groups exposed to air and no stress (AIR/NS). After three months of abstinence, mice were evaluated at midlife (11 months old) on volitional drinking and a final CIE/FSS challenge for stress induced drinking. Spatial learning and cognitive flexibility were assessed using the Barnes maze before brains were collected to evaluate locus coeruleus integrity at 12 months old. ResultsCIE/FSS increased volitional alcohol intake, and this drinking phenotype persisted through to midlife despite extended abstinence. CIE/FSS mice showed intact spatial learning but impaired flexibility in the Barnes maze reversal phase. Flexibility impairments were driven by decreased time in the target quadrant and increased errors during the reversal test compared to AIR/NS. Furthermore, CIE/FSS mice showed pathological measures of reduced locus coeruleus integrity common to dementia related disorders, including elevated markers of oxidative stress, apoptosis and reduced autoinhibitory function. ConclusionsOur findings highlight the long-lasting impact of alcohol and stress exposure on cognition, with flexibility impairments persisting into midlife. In addition to cognitive changes, alcohol and stress history produced pathological changes in the locus coeruleus, an area known to mediate cognitive flexibility via its forebrain projections. Together, these results give an insight into the long-lasting impacts of chronic alcohol and stress and how they may accelerate age-related cognitive decline.

neuroscience↗