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Mineba Nakajima

Publications and source records attributed to Mineba Nakajima.

2 recordsLinked to original sources

WAVE/Scars in platelets.

Using specific antibodies against isoforms of WAVE (WASP [Wiskott-Aldrich syndrome protein] family Verprolin-homologous protein, also called Scar), we demonstrated that human platelets express all 3 isoforms. With the use of an in vitro pull-down technique, the src homology 3 (SH3) domain of insulin receptor substrate p53 (IRSp53) precipitated WAVE2 from platelet lysates more efficiently than did profilin I. The opposite was true for WAVE1, and neither precipitated WAVE3, suggesting that WAVE isoforms have different affinities to these ligands, while the SH3 domain of abl binds to all 3 isoforms. The 3 WAVE isoforms were distributed in the actin-rich Triton X-100-insoluble pellets following platelet aggregation induced by thrombin receptor-activating peptide. We also found that all 3 WAVE isoforms are substrates for calpain in vivo and in vitro. Although portions of these 3 isoforms were commonly distributed in the actin- and actin-related protein 2 and 3 (Arp2/3)-rich edge of the lamellipodia in spreading platelets, only WAVE2 remained in the cell fringe following detergent extraction or fixation of the cells. Finally, by mass spectrometry, we found that the proteins, which reportedly interact with WAVE/Scars, are present in platelets. These data suggest that the 3 WAVE isoforms exhibit common and distinct features and may potentially be involved in the regulation of actin cytoskeleton in platelets.

Actin Cytoskeleton↗

[Molecular biology of iron in nutritional science].

Iron is regarded as one of the most important nutriments, and many diseases are related to iron deficiency or its overload. Approximately 70% of iron in the body is located in heme, functioning as hemoglobin, myoglobin, and cytochrome P450. Iron itself also has many catalytic functions through the iron-sulfa cluster. It is believed that iron and/or heme plays significant roles in regulation of genes, however, little about the mechanism has been elucidated. Recently, not only iron but also heme has been identified as important regulators of gene activation via oxygen sensing. For example, iron controls the oxygen response of HIF-1 activity by two mechanisms; in cytosol, the half life of HIF-1 alpha is determined by hydroxylation of Pro, and transcriptional activity of HIF1 alpha in nuclei is disturbed by hydroxylation of Asn. Hemoproteins in prokaryotes such as FixL, Dos, and HemAT were found to be oxygen sensors, however, little has been reported in eukaryotes. Our finding on Bach1 seems to be the first report of heme and oxygen-mediated regulation of genes in vertebrates. Understanding of these newly identified mechanisms in iron- and heme-controlled genes is essential in the field of nutritional science. We therefore summarize here the recent findings indicating mechanisms of iron as transcriptional regulators.

Animals↗