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Tomonaga, S.

Publications and source records attributed to Tomonaga, S..

2 recordsLinked to original sources

Antiglycation effects of imidazole dipeptides and 2-oxo-imidazole dipeptides on glyceraldehyde-induced intracellular protein glycation and neuronal cell death

Glyceraldehyde (GA) contributes to the development of various diseases, such as diabetes and Alzheimers disease via protein glycation and the formation of advanced glycation end products (AGEs); however, effective strategies for neutralizing GA are limited. Carnosine (Car), an imidazole dipeptide (IDP) that is abundant in meat, suppresses protein glycation by scavenging reactive aldehydes. There are only a few reports on the antiglycation activity of Car against GA. For other IDPs, such as anserine, balenine (Bal), and homocarnosine, there are almost no reports on their antiglycation activity. In this study, we demonstrated the antiglycation activity of four types of IDPs and 2-oxocarnosine (2-oxo-Car), an oxidized form of Car, against GA-induced intracellular protein glycation and neuronal cytotoxicity. Car and Bal exhibited significantly higher reactivity with GA compared with other IDPs and 2-oxo-Car. An in silico analysis suggested that the difference in reactivity is dependent upon intramolecular hydrogen bond formation and the conformation of each IDP. Although there were differences in reactivity with GA, LC-MS analysis revealed that all of the IDPs and 2-oxo-Car reacted with two molecules of GA to form adducts containing pyridinium rings. Car and Bal exhibited high reactivity with GA and markedly suppressed GA-induced cytotoxicity in SH-SY5Y cells. Western blot and qPCR analyses revealed that IDPs suppressed GA-induced protein glycation and the upregulation of endoplasmic reticulum and oxidative stress response genes. Our results indicate that IDPs represent a novel preventive approach to AGE-related diseases and provide a foundation for the development of strategies to treat GA-related neurotoxicity. Graphical abstractCarnosine and balenine, which are imidazole dipeptides (IDPs), scavenged two molecules of glyceraldehyde to form adducts containing pyridinium rings and suppressed intracellular protein glycation and neuronal cell death. The formation of intramolecular hydrogen bond of IDPs played a crucial role in the strength of antiglycation activity. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=126 SRC="FIGDIR/small/734660v1_ufig1.gif" ALT="Figure 1"> View larger version (33K): org.highwire.dtl.DTLVardef@11d82dorg.highwire.dtl.DTLVardef@187aff0org.highwire.dtl.DTLVardef@12fe482org.highwire.dtl.DTLVardef@14327ee_HPS_FORMAT_FIGEXP M_FIG C_FIG

biochemistry↗

Information Dynamics of the Heart and Respiration Rates: a Novel Venue for Digital Phenotyping in Humans

In recent decade, wearable digital devices have shown potentials for the discovery of novel biomarkers of humans physiology and behavior. Heart rate (HR) and respiration rate (RR) are most crucial bio-signals in humans digital phenotyping research. HR is a continuous and non-invasive proxy to autonomic nervous system and ample evidence pinpoints the critical role of respiratory modulation of cardiac function. In the present study, we recorded longitudinal (up to 6 days, 4.63 {+/-} 1.52) HR and RR of 89 freely-behaving human subjects (Female: 39, age 57.28 {+/-} 5.67, Male: 50, age 58.48 {+/-} 6.32) and analyzed their HR and RR dynamics using linear models and information theoretic measures. While the predictability by linear autoregressive (AR) showed correlation with subjects age, an information theoretic measure of predictability, active information storage (AIS), captured these correlations more clearly. Furthermore, analysis of the information flow between HR and RR by transfer entropy (i.e., HR [->] RR and RR [->] HR) revealed that RR [->] HR is correlated with alcohol consumption and exercise habits. Thus we propose the AIS of HR and the transfer entropy RR [->] HR as two-dimensional biomarkers of cardiorespiratory physiology for digital phenotyping. The present findings provided evidence for the critical role of the respiratory modulation of HR, which was previously only studied in non-human animals.

physiology↗