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Biology subjects

Akmel, A.

Publications and source records attributed to Akmel, A..

3 recordsLinked to original sources

Viral rewiring of DDR signaling activates a pro-survival network that drives chemotherapy resistance

Radiation and chemotherapy rely on an intact DNA damage response (DDR) to halt cell-cycle progression and eliminate damaged cells, yet many tumors evade these outcomes and develop resistance. Adenoviruses remodel host signaling networks in ways that mirror tumor evolution, providing a powerful system to dissect how DDR pathways are subverted. Here, we identify two scenarios in which the central DDR kinases ATM and ATR are reprogrammed from enforcing CHK1/CHK2-dependent checkpoint arrest to activating a NEMO-NF-{kappa}B survival pathway. This rewiring induces transcriptional programs associated with stress tolerance, anti-apoptotic signaling, and chemoresistance, and promotes the accumulation of cells with abnormal DNA content. These findings reveal a previously unrecognized mode of DDR plasticity that generates a pro-survival state reminiscent of early tumor evolution and suggest how ATM- and ATR-dependent pathways can be co-opted to promote therapeutic resistance.

molecular biology↗

The impact of intermittent palatable food consumption on microbiota structure in male and female rats

The gut microbiome plays a vital role in metabolism, behavior, and overall health, with diet being a key factor shaping its composition. This study examines the impact of intermittent palatable food (PF) consumption on microbiota structure in male and female rats, focusing on feeding preferences and sex differences. Rats were characterized as high preferring (HP) or low preferring (LP) based on PF intake, and microbial analyses were conducted across different gastrointestinal regions, including the colon, feces, cecum, and cecal contents. However, microbiota composition varied with significant differences in Firmicutes, Bacteroidetes, and Actinobacteria abundances. Sex-based differences were evident particularly in fecal and cecal samples, where Proteobacteria and Actinobacteria populations varied between males and females within the same feeding groups. Our findings support the notion that dietary habits and microbiota composition may form a feedback loop, reinforcing food preferences through gut-brain axis signaling. While alpha diversity remained unchanged, beta diversity analysis indicated subtle, but significant differences in microbial community structures based on sex and feeding behavior. This research provides novel insights into the interplay between diet, gut microbiota, and behavior, while emphasizing the importance of considering sex as a variable in microbiome studies. Understanding these relationships may inform dietary interventions aimed at optimizing microbiota composition to improve metabolic and mental health outcomes linked to diet-induced microbiota shifts. ImportanceThe gut microbiome plays a critical role in various bodily functions, from the brains protective mechanisms to dietary behaviors and food choices. In this study, we sought to broaden the understanding of how various levels of high fat and high carbohydrate diet consumption alter gut microbiota, and ultimately, shape food preference behaviors. We assessed preference behaviors by categorizing rats into high-preference and low-preference groups based on their consumption of high calorie, palatable food, then analyzed their gut bacterial composition, comparing diet preference groups and examining whether sex differences were reflected in the results. The findings from this research hold significant implications for understanding the complex interplay between diet, microbiota, and behavior. Understanding the bidirectional relationship between feeding behavior and microbiota may provide novel insights into the mechanisms underlying eating disorders and metabolic dysregulation.

microbiology↗

The adenovirus E4orf1 protein initiates a feedback loop involving insulin and growth factor receptors, AKT, and NF-κB, leading to abnormal DNA content in infected cells

Abnormal DNA levels, such as aneuploidy and polyploidy, can indicate cellular transformation and cancer; however, the mechanisms remain poorly understood. All tumor viruses inherently cause abnormal DNA content in cells due to their oncogenes. During infections, adenovirus (Ad) oncogenes--early region 1A (E1A), early region 4 open reading frame 3 (E4orf3), and E4 open reading frame 1 (E4orf1)--promote the abnormal buildup of cellular DNA. Previous studies have described how E1A and E4orf3 lead infected cells to accumulate abnormal DNA content; however, the role of E4orf1 remains speculative. In this study, we generated cells that express E4orf1 to investigate its role in abnormal DNA content. The E4orf1-expressing cells initially exhibited no increase in DNA content compared to the control group. However, after Ad infection, they displayed higher ploidy levels. To detail how E4orf1 influences ploidy levels in Ad-infected cells, we employed pharmacological agents that target E4orf1 signaling. Our results indicate that E4orf1 enhances signaling from insulin and growth factor receptors to AKT and NF-{kappa}B, creating a feedback loop that elevates levels of cellular DNA in Ad-infected cells. Author SummaryThe early region 4 open reading frame 1 of adenovirus (E4orf1) is recognized for its ability to initiate signals that convert normal cells into cancerous ones. In the initial stages of cancer, cells exhibit DNA content that exceeds the typical levels seen during the G2 and M phases of the cell cycle. This study demonstrates that E4orf1 can trigger a feedback loop involving EGFR, INSR, IGF1R, AKT, and NF-kB, which is both dependent on and independent of PI3 kinase and leads to the accumulation of abnormal DNA content.

cancer biology↗