Search PubMed⌕ Search

Biomedical subjects

T Hoshi

Publications and source records attributed to T Hoshi.

At least 55 records · Page 3Linked to original sources

Early oral intake after arthroscopic surgery under spinal anesthesia.

PURPOSE: We investigated the tolerability of early oral feeding (EOF) and its effects on the recovery of bowel function after spinal anesthesia. METHODS: Thirty-one healthy adult patients undergoing knee arthroscopy or arthroscopic surgeries were randomly assigned to either the EOF group (n = 16) or the nil per os (NPO, n = 15) group. Spinal anesthesia was performed using hyperbaric tetracaine solution in all patients. Patients in the EOF group were allowed free access to solid and liquid food immediately after surgery before analgesia from spinal tetracaine resolved. Oral intake was prohibited for 24 h after completion of surgery in the NPO group. RESULTS: Two patients in each group were mildly nauseated without the need for treatment. While degree of appetite determined by a visual analog scale before the first meal and time to the first gas emission showed no significant differences between groups, the median time to the first defecation in the EOF group (20.6 h) was significantly shorter than that of the NPO group (33.5 h, P = 0.005). No other complications associated with anesthesia, surgery, or EOF were noted. CONCLUSION: Our results suggest that the restriction of EOF after surgery not involving the gastrointestinal tract under spinal anesthesia may not be rational, and that EOF may facilitate recovery of bowel function.

Clinical Trial↗

Molecular cloning and functional expression of a human peptide methionine sulfoxide reductase (hMsrA).

Oxidation of methionine residues in proteins to methionine sulfoxide can be reversed by the enzyme peptide methionine sulfoxide reductase (MsrA, EC 1.8.4.6). We cloned the gene encoding a human homologue (hMsrA) of the enzyme, which has an 88% amino acid sequence identity to the bovine version (bMsrA). With dot blot analyses based on RNA from human tissues, expression of hMsrA was found in all tissues tested, with highest mRNA levels in adult kidney and cerebellum, followed by liver, heart ventricles, bone marrow and hippocampus. In fetal tissue, expression was highest in the liver. No expression of hmsrA was detected in leukemia and lymphoma cell lines. To test if hMsrA is functional in cells, we assayed its effect on the inactivation time course of the A-type potassium channel ShC/B since this channel property strongly depends on the oxidative state of a methionine residue in the N-terminal part of the polypeptide. Co-expression of ShC/B and hMsrA in Xenopus oocytes significantly accelerated inactivation, showing that the cloned enzyme is functional in an in vivo assay system. Furthermore, the activity of a purified glutathione-S-transferase-hMsrA fusion protein was demonstrated in vitro by measuring the reduction of [3H]N-acetyl methionine sulfoxide.

Amino Acid Sequence↗

AKT3, a phloem-localized K+ channel, is blocked by protons.

The potassium-channel gene, AKT3, has recently been isolated from an Arabidopsis thaliana cDNA library. By using the whole-mount and in situ hybridization techniques, we found AKT3 predominantly expressed in the phloem. To study the physiological role of this channel type, AKT3 was heterologously expressed in Xenopus oocytes, and the electrical properties were examined with voltage-clamp techniques. Unlike the plant inward-rectifying guard cell K+ channels KAT1 and KST1, the AKT3 channels were only weakly regulated by the membrane potential. Furthermore, AKT3 was blocked by physiological concentrations of external Ca2+ and showed an inverted pH regulation. Extracellular acidification decreased the macroscopic AKT3 currents by reducing the single-channel conductance. Because assimilate transport in the vascular tissue coincides with both H+ and K+ fluxes, AKT3 K+ channels may be involved in K+ transport accompanying phloem loading and unloading processes.

Arabidopsis↗

Regulation of voltage-dependent K+ channels by methionine oxidation: effect of nitric oxide and vitamin C.

Methionine oxidation is known to alter functional properties of a transient A-type potassium channel expressed in Xenopus oocytes. We show here that nitric oxide (NO) slows down the K+ channel inactivation time course by oxidizing a critical methionine residue in the inactivation ball domain of the channel protein. We also demonstrate that the channel protein is protected from methionine oxidation by the enzyme methionine sulfoxide reductase and the antioxidant vitamin C.

Amino Acid Sequence↗

Rundown of the hyperpolarization-activated KAT1 channel involves slowing of the opening transitions regulated by phosphorylation.

Disappearance of the functional activity or rundown of ion channels upon patch excision in many cells involves a decrease in the number of channels available to open. A variety of cellular and biophysical mechanisms have been shown to be involved in the rundown of different ion channels. We examined the rundown process of the plant hyperpolarization-activated KAT1 K+ channel expressed in Xenopus oocytes. The decrease in the KAT1 channel activity on patch excision was accompanied by progressive slowing of the activation time course, and it was caused by a shift in the voltage dependence of the channel without any change in the single-channel amplitude. The single-channel analysis showed that patch excision alters only the transitions leading up to the burst states of the channel. Patch cramming or concurrent application of protein kinase A (PKA) and ATP restored the channel activity. In contrast, nonspecific alkaline phosphatase (ALP) accelerated the rundown time course. Low internal pH, which inhibits ALP activity, slowed the KAT1 rundown time course. The results show that the opening transitions of the KAT1 channel are enhanced not only by hyperpolarization but also by PKA-mediated phosphorylation.

Alkaline Phosphatase↗

Cell damage and proliferation in human gastric mucosa infected by Helicobacter pylori--a comparison before and after H pylori eradication in non-atrophic gastritis.

Helicobacter pylori (HP) is believed to be involved in the transition from normal gastric mucosa to atrophic gastritis and intestinal metaplasia. Infection with the organism is one of the risk factors for development of intestinal-type gastric adenocarcinoma, possibly through altered cell turnover. Medical eradication of HP is widely performed for the treatment of peptic ulcers and other upper gastrointestinal disorders. Eradication of HP may affect altered cell turnover of the gastric mucosa caused by the infection, but there are few reports comparing sterilized mucosa with HP-infected and non-infected mucosa. In this study, we examined cell damage using terminal deoxynucleotidyl transferase-mediated dUTP-biotin nick-end labeling (TUNEL), in situ nick translation (ISNT), and cell proliferation by Ki 67 immunohistochemistry staining in gastric mucosa before and after HP eradication and in non-infected gastric mucosa. We then compared these findings using endoscopic gastric biopsy specimens. Labeling indices of TUNEL (2.46 +/- 1.22), ISNT (1.13 +/- 0.42), and Ki67 (21.8 +/- 6.14) in tissue from which HP had been eradicated were significantly lower than those of HP-infected mucosa (6.36 +/- 2.26, 4.00 +/- 1.62, 45.8 +/- 5.35, for TUNEL, ISNT, and Ki67, respectively). There were no significant differences between formerly infected and non-infected mucosa (TUNEL: 2.26 +/- 0.69, ISNT: 1.29 +/- 0.63, Ki67: 23.5 +/- 8.20). These results indicate that medical HP eradication results in decreased cell proliferation and damage, restoring the condition seen in non-infected mucosa. Thus, HP eradication may be effective, not only in the treatment of gastric ulcers or gastric symptoms, but also in the prevention of gastric carcinoma.

Anti-Bacterial Agents↗

Propofol decreases diaphragmatic contractility in dogs.

UNLABELLED: Volatile anesthetics depress diaphragmatic muscle function; however, no data are available regarding the effect of propofol on diaphragmatic contractility. We therefore studied this effect in dogs. Pentobarbital-anesthetized animals were divided into three groups of 10 each. Group I received only maintenance fluid; Group II was infused with a subhypnotic dose of propofol (0.1-mg/kg initial dose plus 1.5-mg x kg(-1) x h(-1) maintenance dose); Group III was infused with an anesthetic dose of propofol (0.1-mg/kg initial dose plus 6.0-mg x kg(-1) x h(-1) maintenance dose). We assessed diaphragmatic contractility by transdiaphragmatic pressure (Pdi). With an infusion of propofol in Groups II and III, Pdi at low-frequency (20-Hz) stimulation decreased from the baseline values (P < 0.05), whereas Pdi at high-frequency (100-Hz) stimulation did not change. Compared with Group I, Pdi at 20-Hz stimulation decreased during propofol administration in Groups II and III (P < 0.05). The decrease in Pdi was more in Group III than in Group II (P < 0.05). We conclude that propofol is associated with a dose-related inhibitory effect on diaphragmatic contractility in dogs. IMPLICATIONS: Propofol is an effective IV anesthetic for the induction and maintenance of anesthesia. Subhypnotic and anesthetic doses of propofol decrease diaphragmatic contractility in dogs.

Anesthetics, Intravenous↗

[A case of sleeve resection of the left main bronchus for tuberculous bronchial lesion].

A 31-year-old woman was admitted to our center with left chest pain and dyspnea after treatment of pulmonary tuberculosis. Chest X-ray film showed atelectasis of left lower lobe and left deviation of the mediastium. Bronchofiberscopy revealed obstruction of the left main bronchus. Chest MRI showed intermediate intensity at the left main bronchus and very high intensity at the peripheral bronchus. We performed sleeve resection of the left main bronchus and anastomosed end to end with absorbable monofilament sutures. Postoperative course was uneventful. Bronchoplasty for tuberculous obstructive lesion is a useful procedure.

Adult↗

[Gd-enhanced subtraction MR venography].

We succeeded in distinctly imaging the calf veins using Gd-enhanced subtraction MR venography (Gd SMRV). Gd SMRV was performed in 15 normal legs, 33 varicose legs and 22 legs with suspected deep venous thrombosis. Conventional venography was performed in 46 legs in all. The deep veins of the calf, greater saphenous vein, and intramuscular veins had high rates of demonstration in normal legs and varicose legs (84, 100%, 87, 97%, 67, 73%). The varices were also well demonstrated (100%). When Gd SMRV was compared with conventional venography in terms of diagnosis of calf venous thrombosis, the sensitivity of this method was 100%, specificity was 92% and accuracy was 93%. We found high intensity thrombi on precontrast images in most cases, a finding that was important for the diagnosis of local thrombi. This method was non-invasive and was able to clearly visualize veins in the calf. We concluded that Gd SMRV was useful for calf venous disease, especially calf venous thrombosis.

Aged↗

Apoptotic proteins Reaper and Grim induce stable inactivation in voltage-gated K+ channels.

Drosophila genes reaper, grim, and head-involution-defective (hid) induce apoptosis in several cellular contexts. N-terminal sequences of these proteins are highly conserved and are similar to N-terminal inactivation domains of voltage-gated potassium (K+) channels. Synthetic Reaper and Grim N terminus peptides induced fast inactivation of Shaker-type K+ channels when applied to the cytoplasmic side of the channel that was qualitatively similar to the inactivation produced by other K+ channel inactivation particles. Mutations that reduce the apoptotic activity of Reaper also reduced the synthetic peptide's ability to induce channel inactivation, indicating that K+ channel inactivation correlated with apoptotic activity. Coexpression of Reaper RNA or direct injection of full length Reaper protein caused near irreversible block of the K+ channels. These results suggest that Reaper and Grim may participate in initiating apoptosis by stably blocking K+ channels.

Amino Acid Sequence↗

Oxidation regulates cloned neuronal voltage-dependent Ca2+ channels expressed in Xenopus oocytes.

Functional modifications of neuronal P/Q-type voltage-dependent Ca2+ channels expressed in Xenopus oocytes by oxidation were examined electrophysiologically. Oxidation by external H2O2 enhanced the whole-oocyte currents through the Ca2+ channels composed of the alpha1A, alpha2/delta, and beta3 subunits at negative voltages (<0 mV) without markedly affecting the currents at more positive voltages. Single-channel analysis showed that oxidation accelerates the overall channel opening process. The effect of H2O2 to enhance the Ca2+ channel activity did not require heterologous expression of the alpha2/delta subunit, and it was not mimicked by a cysteine-specific oxidizing agent. The results suggest that oxidative stress may regulate the activity of neuronal Ca2+ channels and that regulation by oxidation may be important in some clinical situations, such as in reperfusion injury after ischemic episodes.

Animals↗

Layer-by-layer construction of enzyme multilayers on an electrode for the preparation of glucose and lactate sensors: elimination of ascorbate interference by means of an ascorbate oxidase multilayer.

A layer-by-layer structure of enzyme multilayers composed of glucose oxidase (GOx) or lactate oxidase (LOx) and ascorbate oxidase (AOx) was prepared on the surface of a platinum electrode. The amperometric response to glucose or lactate was studied in the presence of ascorbic acid as a possible interference. An alternating and repeated deposition of avidin and the biotin-labeled enzymes resulted in the layer-by-layer structure of GOx/AOx and LOx/AOx multilayers. Optical and gravimetric measurements based on an ultraviolet-visible absorption spectroscopy and a quartz crystal microbalance revealed that the enzyme multilayers thus prepared consist of monomolecular layers of the proteins. The GOx/AOx and LOx/AOx enzyme multilayers were useful to eliminate ascorbic acid interference in the glucose and lactate biosensors, because ascorbic acid can be converted to an electrochemically inert form, dehydroascorbic acid, before being oxidized directly on the Pt electrode. Thus, the GOx/AOx or LOx/AOx multilayer-modified biosensors can be used to determine the normal blood level of glucose (5 mM) and lactate (1 mM) in the presence of a physiological level of ascorbic acid (0.1 mM). The effects of the number of the AOx layers and geometry of the enzyme layers in the multilayer on the performance characteristics of the biosensors are discussed.

Ascorbate Oxidase↗

Cyclosporin A selectively reduces the functional expression of Kir2.1 potassium channels in Xenopus oocytes.

The immunosuppressant cyclosporin A (CsA) reduced the functional expression of Kir2.1 potassium channels in Xenopus oocytes in a dose-dependent manner with an IC50 of 11 microM when the oocytes were incubated with CsA after RNA injection. FK506 was less effective than CsA; cyclosporin H, a non-immunosuppressive derivative of CsA, did not have a significant effect. CsA did not impair protein synthesis since other potassium channel types (Kir1.1, Kv1.1, Kv1.4) were much less sensitive to CsA. Our results suggest that the functional expression of Kir2.1 channels is facilitated by the peptidyl-prolyl isomerase cyclophilin. The observations illustrate a new role of CsA in regulation of membrane ion transport, and may provide an alternative explanation for CsA-induced side effects in clinical use.

Animals↗

The N-terminus of the K channel KAT1 controls its voltage-dependent gating by altering the membrane electric field.

Functional roles of different domains (pore region, S4 segment, N-terminus) of the KAT1 potassium channel in its voltage-dependent gating were electrophysiologically studied in Xenopus oocytes. The KAT1 properties did not depend on the extracellular K+ concentration or on residue H267, equivalent to one of the residues known to be important in C-type inactivation in Shaker channels, indicating that the hyperpolarization-induced KAT1 inward currents are related to the channel activation rather than to recovery from inactivation. Neutralization of a positively charged amino acid in the S4 domain (R176S) reduced the gating charge movement, suggesting that it acts as a voltage-sensing residue in KAT1. N-terminal deletions alone (e.g., delta20-34) did not affect the gating charge movement. However, the deletions paradoxically increased the voltage sensitivity of the R176S mutant channel, but not that of the wild-type channel. We propose a simple model in which the N-terminus determines the KAT1 voltage sensitivity by contributing to the electric field sensed by the voltage sensor.

Animals↗