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Allak, A. L.

Publications and source records attributed to Allak, A. L..

2 recordsLinked to original sources

Contrasting effects of glucose and methylglyoxal supplementation on blood oxidative status, blood cells' telomere dynamics and apoptosis in birds

Birds exhibit longer lifespans than similarly sized mammals, despite having higher mass-adjusted blood glucose levels. This makes them a valuable model for the comparative study of the metabolic and physiological aspects of aging. Circulating glucose contributes to multiple pathological processes, primarily through glycation reactions and the formation of advanced glycation end-products (AGEs), as well as by promoting oxidative stress. These mechanisms are interconnected by feedback loops and play a key role in the development of age-related pathologies. To explore the causal role of glycaemia in avian ageing, we conducted a one-year dietary supplementation experiment in captive zebra finches. Birds received either glucose- or methylglyoxal-enriched water. Previously, we observed that chronic glucose supplementation in zebra finches increased mortality, an effect that did not appear to be mediated by the associated increase in plasma protein glycation or AGE levels. Therefore, the mechanisms underlying increased mortality in the glucose group remained unclear. In the present study, we investigated how glucose and methylglyoxal supplementation affect blood oxidative status and red blood cell telomere dynamics and apoptosis. We found that methylglyoxal supplementation decreased the non-enzymatic antioxidant capacity (OXY) of plasma and increased DNA damage, while glucose supplementation had no significant effect on oxidative stress, although circulating glucose levels influenced oxidative status in a sex-dependent manner. Males exhibited a positive correlation between glucose levels and organic hydroperoxides and protein carbonyls. Additionally, we report, for the first time in birds, a seasonal variation in telomere length, which was more pronounced in glucose-supplemented individuals, yet seemed independent of oxidative status. Apoptosis probability increased with both treatments, particularly with the methylglyoxal supplementation. These results highlight that glucose and methylglyoxal trigger different glucotoxicity-related pathways, with distinct effects on bird health and aging. However, the relationship between glucose supplementation and mortality remains still unclear and warrants further investigation.

physiology↗

Decoupling glycation from mortality: glucose, but not methylglyoxal, reduces survival in zebra finches

Birds provide a unique model for ageing research, with greater longevity and slower senescence compared to mammals of similar body size, despite a higher mass-adjusted metabolic rate and blood glucose levels than other vertebrate groups. While the effects of glucose, glycation, and advanced glycation end-products (AGE) on ageing are well-documented in biomedical research, their impact on avian physiology and ageing remains poorly understood. Although birds may possess adaptations mitigating the potential detrimental effects of glucose, elevated glucose still predicts reduced lifespan, and protein glycation varies with age and can influence survival and some fitness-related traits, implying that glycation or AGE accumulation may have relevant effects on avian longevity. In this study, we experimentally investigated how one year of dietary supplementation with glucose or methylglyoxal affects survival and physiology (metabolic rate, flying performance, and beak coloration) in captive zebra finches (Taeniopygia guttata). We reveal a significant increase in mortality exclusively in glucose-supplemented birds, with also an elevated albumin glycation rate and AGE formation. However, these variables did not directly explain the increased mortality, which was also absent in methylglyoxal-treated individuals, despite similar AGE accumulation. Additionally, we observed some other effects, like an age-related constraint on seasonal metabolic adjustment, a treatment-influenced age decline in secondary sexual traits expression, and a decline in flight performance during the peak mortality period, suggesting a broader deterioration of health. Thus, although we demonstrate glucose supplementation to be more deleterious than methylglyoxal, the underlying mechanisms for the increase in mortality induced by the treatment remain unresolved.

physiology↗