Glucose and methylglyoxal alter plasma protein dynamics, immune traits and glucose homeostasis in a sex- and season-dependent manner in zebra finches
Glucose and methylglyoxal alter plasma protein dynamics, immune traits and glucose homeostasis in a sex- and season-dependent manner in zebra finches
Moreno Borrallo, A.; Criscuolo, F.; Bertile, F.
AbstractBirds maintain unusually high circulating glucose levels compared with other vertebrates without developing the diabetic complications observed in mammals, yet the mechanisms underlying this resistance remain unclear. We investigated the effects of chronic glucose and methylglyoxal supplementation on physiological condition in zebra finches (Taeniopygia guttata), with particular emphasis on sex- and season-dependent variation in plasma biochemistry, haematology and immune traits. Ninety zebra finches (45 males, 45 females) were randomly assigned to control, glucose-supplemented (50 g/L), or methylglyoxal (8.33 g/L) drinking treatments. Over one year, we analysed plasma proteins, metabolites (glucose, uric acid, bile acids), tissue damage markers (AST, CK), electrolytes, and immune parameters (leukocyte profiles). Both supplementations increased plasma glucose concentrations, with methylglyoxal producing the strongest effect. More importantly, both treatments disrupted seasonal plasma protein dynamics, preventing the increase in total proteins and globulins normally observed in females during the reproductive period, which suggests alterations in reproductive-related protein metabolism. Glucose supplementation elevated the heterophil-to-lymphocyte (H/L) ratio in May and August, consistent with elevated physiological stress. In contrast, methylglyoxal supplementation reduced the H/L ratio in November and unexpectedly lowered plasma AST and CK concentrations in May, suggesting context-dependent protective effects on tissue integrity despite its well-established pro-oxidative properties, potentially through hormetic mechanisms. Supplementation also modified the calcium/phosphate balance, further supporting treatment effects on seasonal (reproductive) physiology. Overall, our findings demonstrate that glucose and methylglyoxal reshape physiological regulation in zebra finches in a strongly sex- and season-dependent manner rather than simply inducing generalized metabolic damage. These results provide new insights into avian resistance to glucose-associated physiological challenges and highlight the importance of considering both biological context and standardized haematological reference values when investigating glucose metabolism in birds.