Frequency dependence of electrorheological fluids in an ac electric field.
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Biomedical subjects
Publications and source records attributed to W Wen.
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Cyclic AMP (cAMP) stimulates the expression of numerous genes through the protein kinase A (PK-A)-mediated phosphorylation of the nuclear factor CREB at Ser-133 (G. A. Gonzalez and M. R. Montminy, Cell 59:675-680, 1989). Like other signal transduction pathways, cAMP induces gene expression with burst-attenuation kinetics; cAMP-dependent transcription and CREB phosphorylation peak within 30 min and decline steadily over the next 4 to 6 h via the protein phosphatase 1-mediated dephosphorylation of CREB (M. Hagiwara, A. Alberts, P. Brindle, J. Meinkoth, J. Feramisco, T. Deng, M. Karin, S. Shenolikar, and M. Montminy, Cell 70:105-113, 1992). Here we characterize a third phase in cAMP-responsive transcription--a refractory period during which hormone-treated cells become transcriptionally unresponsive to subsequent stimulation by cAMP. This refractory period begins 6 to 8 h after stimulation and lasts 3 to 5 days after the removal of hormone. In contrast to the earlier attenuation phase, transcription of cAMP-responsive genes during the refractory period is not restored by inhibitors of protein phosphatase 1 activity. Rather, the establishment and maintenance of this phase rely on a marked reduction in PK-A catalytic subunit expression at the translational level. As overexpression of C-subunit protein can reactive transcription of cAMP-responsive genes during the refractory period, our results suggest that hormone-responsive cells may stimulate, attenuate, and then silence signal-dependent genes through distinct regulatory mechanisms.
The heat-stable inhibitor of cAMP-dependent protein kinase (PKI) was shown previously to export the kinase catalytic subunit (C) from the nucleus (Fantozzi, D. A., Harootunian, A. T., Wen, W., Taylor, S. S., Feramisco, J.R., Tsien, R. Y., and Meinkoth, J. L. (1994) J. Biol. Chem. 269, 2676-2686), in addition to its ability to inhibit kinase activity. In this study, the mechanism of PKI export is investigated. The injection of a C-PKI complex containing both labeled PKI and C-subunit revealed that both proteins exit the nucleus in unison. A fusion protein of C-subunit with glutathione S-transferase (GST) (140 kDa) cannot transverse the nuclear membrane in either direction, but can be exported from the nucleus when complexed with PKI, supporting the presence of a nuclear export signal (NES) in the C-PKI complex. Fusions of PKI alpha with GST (70 kDa) or PKI beta 1 with maltose-binding protein (MBP) (50 kDa) remain effective at exporting complexes with C-subunit. The export of C-PKI is also sensitive to temperature and energy depletion. Taken together, these results demonstrate that export is both energy- and temperature-dependent, but size-independent, consistent with an active signal-mediated export process. GST-PKI exits from the nucleus even in the absence of C-subunit, indicating that the NES resides entirely on PKI, but suggesting that fusion of PKI to GST leads to a conformational change that mimics the exposure of the NES caused by the binding of C. Since both PKI alpha and PKI beta 1 can export C-subunit, the predicted export signal is likely to reside on the residues conserved between PKI alpha and PKI beta 1.
The two classes of physiological inhibitors of the catalytic subunit of cAMP-dependent protein kinase are the regulatory subunits and the heat-stable protein kinase inhibitors (PKIs), and both share a common mechanism of inhibition. Each has a similar inhibitor site that resembles a peptide substrate, and this occupies the P-3 to P+1 portion of the peptide recognition site. However, in addition to this consensus site, each inhibitor requires a peripheral binding site to achieve high affinity binding. Arg134 and Arg133 lie on the surface of the catalytic subunit with Arg133 coming close to the amphipathic helix of PKI(5-24) (Knighton, D. R., Zheng, J., Ten Eyck, L. F., Xuong, N.-h., Taylor, S. S., and Sowadski, J. M. (1991) Science 253, 414-420). Replacement of Arg134 and Arg133 with Ala selectively abolishes the high affinity binding of PKI. Replacement of Arg133 alone is sufficient to give the same phenotype. In the presence of MgATP, the Kd,app, is increased from < 0.2 to 105 nM and, in the absence of ATP, the Kd is too large to be reliably measured. Based on the crystal structure, Arg133 hydrogen bonds to the P-7 backbone carbonyl of PKI(5-24). However, more importantly, it also contributes to the hydrophobicity of the P-11 binding site in the C.PKI(5-24) complex. We predict that it is the perturbation of this hydrophobic pocket that accounts for the effects of this mutation. In the absence of peptide, Arg133 may help to stabilize Glu230, a buried carboxylate that binds to the P-2 Arg in the crystal structure of C.PKI(5-24). Replacement of Arg133 and Arg134 with Ala has little effect on catalysis using a heptapeptide substrate and has no effect on the inhibition of the catalytic subunit by the regulatory subunit. The results thus demonstrate that these two inhibitor proteins that both bind to the catalytic subunit with a high affinity utilize different sites on the enzyme to achieve tight binding. The gamma isoform of the catalytic subunit is insensitive to inhibition by PKI and in this isoform Arg133 is replaced with Gln. We predict that this change accounts for the altered inhibitor properties of C gamma.
The catalytic (C) subunit of cAMP-dependent protein kinase is inhibited by the regulatory (R) subunit and by a thermostable inhibitor (PKI). Both inhibitors also affect the intracellular distribution of the C subunit. Whether injected into the cytoplasm or into the nucleus, free C subunit can enter and exit the nucleus freely. After 30 min its distribution is identical and is independent of the initial site of injection. In contrast, when C is injected into the cytoplasm complexed with R or PKI, the complexes are restricted to the cytoplasm (1-3). However, unlike the R subunit, which is restricted to the cytoplasm like the holoenzyme, free PKI enters the nucleus rapidly following its injection into the cytoplasm. When holoenzyme is injected directly into the nucleus, it cannot exit and return to the cytoplasm. In contrast, nuclear injection of a C.PKI complex results in the rapid exit of the C subunit from the nucleus. In equilibrated cells previously injected with the C subunit, subsequent cytoplasmic injection of either PKI or type 1 R depletes the nucleus of C although PKI does so faster, consistent with its ability to enter the nucleus. Both inhibitors block the cAMP response element-regulated gene expression. Hence PKI may serve as a nuclear scavenger of C providing a mechanism not only for inhibition but also for subcellular localization in the presence of cAMP by restricting the access of the C subunit to the nucleus.
The human regulatory subunit RI beta of cAMP-dependent protein kinases was expressed in Escherichia coli as a fusion protein with glutathione S-transferase. Purification was performed by affinity chromatography on glutathione-agarose beads after cleavage with thrombin. The human recombinant RI beta protein migrated at 55 kDa on SDS-PAGE and displayed immunoreactivity with an anti-human RI beta antiserum. Furthermore, the purified recombinant RI beta protein was shown to exist as a dimer that was able to form holoenzyme with the catalytic subunit C alpha. The rate of RI beta 2C alpha 2 holoenzyme formation was faster in the presence than in the absence of MgATP. The kinase activity measured before and after adding cAMP to the holoenzyme showed that the presence of cAMP resulted in holoenzyme dissociation and release of active C alpha-subunit, due to cAMP binding to RI beta. Compared to a RI alpha 2C alpha 2 holoenzyme, the RI beta 2C alpha 2 holoenzyme exhibited a more than twofold higher sensitivity to cAMP. The subcellular localization of RI beta was analyzed in quiescent REF-52 fibroblasts and Wistar rat thyroid (WRT) cells after microinjection of fluorescently labeled proteins into the cytoplasm. A cytoplasmic distribution was observed when free RI beta was injected, whereas free C alpha injected into the cytoplasm appeared in the nucleus. When holoenzymes with labeled RI beta and unlabeled C alpha, or unlabeled RI beta and labeled C alpha, were injected, unstimulated cells showed fluorescence in the cytoplasm of both cell types. REF-52 cells stimulated with 8-bromo-cAMP (8-Br-cAMP) and WRT cells treated with thyrotropin (TSH) showed fluorescence mainly in the cytoplasm when RI beta was the labeled subunit of the in vivo dissociated holoenzyme. In contrast, nuclear fluorescence was evident from the release and translocation of labeled C alpha from the holoenzyme complex after stimulation with 8-Br-cAMP or TSH.
Fifteen adult dogs were divided into three groups randomly in the experiment. Function rehabilitation of the adduction and abduction after vocal cords paralysis was attempted by selective reinnervation of the laryngeal muscles. Observation showed: onset of recovery of spontaneous adduction was 3 months following surgery, whereas onset of spontaneous abduction was 4 months postoperatively, all experimental animals except control group successfully regained synchronous adduction and abduction in 6 months after operation. Electromyography, tension of contraction of laryngeal muscles and histology studies were performed at 6 months postoperatively. The results demonstrated that it was possible and successful to reinnervate the adductor and abductor muscles of the larynx. Moreover, the delay of reinnervation of laryngeal muscles is discussed in the article.
The catalytic (C) subunit of cyclic AMP (cAMP) dependent protein kinase (PKA) has previously been shown to enter and exit the nucleus of cells when intracellular cAMP is raised and lowered, respectively. To determine the mechanism of nuclear translocation, fluorescently labeled C subunit was injected into living REF52 fibroblasts either as free C subunit or in the form of holoenzyme (PKA) in which the catalytic and regulatory subunits were labeled with fluorescein and rhodamine, respectively. Quantification of nuclear and cytoplasmic fluorescence intensities revealed that free C subunit nuclear accumulation was most similar to that of macromolecules that diffuse into the nucleus. A glutathione S-transferase-C subunit fusion protein did not enter the nucleus following cytoplasmic microinjection. Puncturing the nuclear membrane did not decrease the nuclear concentration of C subunit, and C subunit entry into the nucleus did not appear to be saturable. Cooling or depleting cells of energy failed to block movement of C subunit into the nucleus. Photobleaching experiments showed that even after reaching equilibrium at high [cAMP], individual molecules of C subunit continued to leave the nucleus at approximately the same rate that they had originally entered. These results indicate that diffusion is sufficient to explain most aspects of C subunit subcellular localization.
Microinjection of a dominant interfering mutant of Ras (N17 Ras) caused a significant reduction in thyrotropin (thyroid-stimulating hormone [TSH])-stimulated DNA synthesis in rat thyroid cells. A similar reduction was observed following injection of the heat-stable protein kinase inhibitor of the cyclic AMP-dependent protein kinase. Coinjection of both inhibitors almost completely abolished TSH-induced DNA synthesis. In contrast to TSH, overexpression of cellular Ras protein did not stimulate the expression of a cyclic AMP response element-regulated reporter gene. Similarly, injection of N17 Ras had no effect on TSH-stimulated reporter gene expression. Moreover, overexpression of cellular Ras protein stimulated similar levels of DNA synthesis in the presence or absence of the heat-stable protein kinase inhibitor. Together, these results suggest that in Wistar rat thyroid cells, a full mitogenic response to TSH requires both Ras and cyclic APK-dependent protein kinase.
The canine thyroarytenoid muscle was investigated after being reinnervated from the thyrohyoid branch or sternothyroid branch of the ansa hypoglosis. The results showed that the thyroarytenoid muscle was reinnervated from both of the branches regained contraction. On the contractile function, it was different to the contractile tension of the thyroarytenoid muscle on the reinnervated side and on the normal side, and the contractile time of the thyroarytenoid muscle on the reinnervated side was slower than that on the normal side. The results demonstrate that it is more effective to reinnervate the thyroarytenoid muscle by the thyrohyoid branch of the ansa hypoglosis.
The three sources of dietary aluminium were investigated. IPC was used for measuring aluminium content of individual foods. It was found that aluminium level in natural foods is generally less than 1 ppm, rarely exceeds 10 ppm. Some foods may contain up to 10-30 ppm aluminium during processing and handling. The concentration of aluminium in tape water was usually less than 0.05 ppm. The richest natural sources of aluminium are tea leaves, Chinese prickly ash and mustard. The aluminium content of tea leaves ranges from 300 to 1800 ppm and about 16-20% of the aluminium is extracted from the leaves. Foods made with aluminium-containing food additives contain extremely high level of aluminium. In most cases, the amount of aluminium leaching from aluminium utensils is very small or undetectable except when foods with low pH such as tomatoes are heated in aluminium utensils. Generally 4-15 mg, seldom up to 20 mg aluminium is taken daily from diet by Chinese people. Some people may consume more than 100mg aluminium from diet due to intake of foods made with aluminium-containing food additives.
We have studied the effects of liuwei dihuang decoction (LDD) and its compositions on blood sugar and glycogen in mice, and found that sanbu, shanzhuyu-danpi and shanyao-fuling matched pairs can reduce the level of blood sugar, while LDD, sanbu, shudi-zexie and shanzhuyu-danpi matched pairs can increase the content of glycogen in liver. The present study is only a preliminary research on the effects of LDD and its compositions on the metabolism of sugar in the body.
Temperature, pH, oxidative substances and other constituents in foods were studied on their effects on aluminium leaching from aluminium-utensils, using ICPAES method for determining the aluminium contents. The influence of heating on accelerating aluminium leaching was stressed and the effect of F- on aluminium leaching was confirmed. Fe3+ and NaCl were suggested for the first time as being able to promote aluminium leaching. The mechanism and practical significance of these effects are discussed.
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