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Alternative antiglycation mechanisms: are spermine and fructosamine-3-kinase part of a carbonyl damage control pathway?

Spermine is an ubiquitous molecule that bears unique structural features of regularly spaced positive charges interrupted by hydrophobic methylene bridges. In previous studies we have shown significant antiglycation effects of physiological concentrations of spermine and spermidine. The effect is apparent in four different protein models, two targeting structural changes on histones and ubiquitin, and two targeting impairment of catalytic activities of AT III and plasminogen. We hypothesize that polyamines inhibit glycation and that might be one of their elusive molecular functions. A mammalian fructosamine-3-kinase (FN-3-K), which phosphorylates fructoselysine (FL) residues on glycated proteins, to FL-3-phosphate has been isolated and cloned by two independent groups. This enzyme may function as a deglycating enzyme. Being its Km for FL two orders of magnitude lower than for its protein substrate, we propose the enzyme has a dual role and also functions as a recycler of spermine-carbonyl adducts. Spermine and FN-3-K may be part of a carbonyl damage control pathway. Thirdly, due to critically functional lysine residues, we underscore the vulnerability to glycation of ornithine decarboxylase, the main enzyme in spermine biosynthesis. If glycation is modulated by polyamines and glycation itself impairs polyamine synthesis, a dangerous loop of excessive spermine consumption and slower spermine biosynthesis might ensue in chronic hyperglycemic conditions. In this perspective, small changes in flow rates in the spermine (where ODC and antizyme are key players) and/or FN-3-K pathway could contribute to enhance the effects of hyperglycemia and explain why there are diabetic subjects with higher glycation phenotypes and incidence of complications. They could have altered steady state levels of polyamines and/or decreased FN-3-K expression or activity.

Glucose↗

The fructosamine 3-kinase knockout mouse: a tool for testing the glycation hypothesis of intracellular protein damage in diabetes and aging.

Protein glycation and the formation of AGEs (advanced glycation end-products) and cross-links have been hypothesized to play a role in the pathogenesis of age- and diabetes-related complications. The discovery that FN3K (fructosamine 3-kinase) results in protein deglycation upon phosphorylation of glucose-derived Amadori products suggests that intracellular glycation could be deleterious under certain circumstances. In order to approach the question of the biological relevance of intracellular glycation, in this issue of the Biochemical Journal, Veiga-da-Cunha and colleagues generated an FN3K-knockout mouse. The mice grow normally and are apparently healthy, and levels of protein-bound and free fructoselysine are elevated in several tissues of importance to diabetic complications. This commentary discusses the clinical and evolutionary significance of FN3K, and proposes experimental approaches for revealing the existence of a biological phenotype.

Aging↗

Thiobarbiturate and fructosamine assays: significance and interest of the borohydride blank.

The acute-phase reaction (APR) induces the production by the liver of short-lived glycoproteins. The carbohydrate moiety of these proteins is thought to interfere with the thiobarbiturate (TBA) and nitroblue tetrazolium colorimetric tests which are used for assaying non-enzymatic glycosylation (NEG) of serum proteins. The aim of the present study was to assess the effect of the APR on the specificity of the colorimetric tests in non-diabetic and diabetic subjects. A positive correlation was found between C-reactive protein (CRP), an APR glycoprotein, and non-specific TBA reactivity as determined after borohydride reduction (BH4-resistant TBA, BR-TBA), both in non-diabetics (r = 0.61; P < 0.01) and diabetics (r = 0.68; P < 0.01). The BH4-sensitive specific TBA (SP-TBA) was not influenced by glycoproteins, and its increase in diabetics was correlated with the nitroblue tetrazolium assay (r = 0.89; P < 0.01). An independent effect of diabetes and APR on non-specific TBA was also demonstrated, suggesting an effect of hyperglycaemia on both protein glycation and glycosylation. TBA with borohydride reduction is an attractive tool for the study of complex glycoproteins in diabetes.

Acute-Phase Reaction↗