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Biomedical subjects

C C Kuo

Publications and source records attributed to C C Kuo.

At least 73 records · Page 4Linked to original sources

Analgesic effect of electric stimulation of peripheral nerves with different electric frequencies using the formalin test.

Although electroacupuncture (EA) has been widely used to treat pain, the optimal frequency of EA therapy remains unclear. The study sought to determine the effect of different EA frequencies in a Sprague-Dawley (SD) rat model of pain. Electric stimulation (ES) at frequencies of 2 Hz, 15 Hz or 100 Hz was applied to the ipsilateral or contralateral sciatic nerve of the injected hindpaw of SD rats. Formalin (50 microl, 5%) was subcutaneously injected into the plantar surface of the left hindpaw to induce a nociceptive response. Behavior, including licking and biting, was observed to have two distinct periods, an early phase during the first 5 mins and a late phase from 21-35 mins after injection. The total biting or licking count served as an Indicator of nociceptive response. Our results indicate that ES of the ipsilateral sciatic nerve at a frequency of 2 Hz or 15 Hz reduced the nociceptive responses in both the early and the late phases of the formalin test, whereas ES at 2 Hz had greater antinociceptive effect than ES at 15 Hz in the early phase. No similar analgesic effect in the early phase was observed for ES at 100 Hz. Both pretreatment with ES at 2 Hz and naloxone (3 mg/kg, s.c.) produced a greater antinociceptive response in the late phase than when ES at 2 Hz was delivered immediately after formalin administration. In addition, ES of the neck muscle or contralateral sciatic nerve at a frequency of 2 Hz also decreased licking and biting activity in both phases. The results of this study indicate that different analgesic mechanisms are involved in the response to ES at frequencies of 2 Hz, 15 Hz and 100 Hz, and that ES at 2 Hz has a greater analgesic effect on formalin-induced nociceptive response, especially when it is delivered prior to the onset of pain. The analgesic effect of ES may be mediated via a central origin in the supraspinal level. These findings suggest that 2 Hz may be a good frequency selection for clinical EA applications in analgesia, and that pretreatment with EA at 2 Hz may be an effective method to treat post-operative pain.

Analgesia↗

Inhibition of Na(+) current by diphenhydramine and other diphenyl compounds: molecular determinants of selective binding to the inactivated channels.

Diphenhydramine is an H1 histamine receptor antagonist, yet it also has a clinically useful local anesthetic effect. We found that diphenhydramine inhibits the neuronal Na(+) current, and the inhibition is stronger with more positive holding potentials. The dissociation constant between diphenhydramine and the inactivated Na(+) channel is approximately 10 microM, whereas the dissociation constant between diphenhydramine and the resting channel is more than 300 microM. The local anesthetic effect of diphenhydramine thus is ascribable to inhibition of Na(+) current by selective binding of the drug to the inactivated channels. Most interestingly, many other compounds, such as the anti-inflammatory drug diclofenac, the anticonvulsant drug phenytoin, the antidepressant drug imipramine, and the anticholinergic drug benztropine, have similar effects on neuronal Na(+) current. There is no apparent common motif in the chemical structure of these compounds, except that they all contain two phenyl groups. Molecular modeling further shows that the two benzene rings in all these drugs have very similar spatial orientations (stem bond angle, approximately 110 degrees; center-center distance, approximately 5 A). In contrast, the two phenyl groups in phenylbutazone, a drug that has only a slight effect on Na(+) current, are oriented in quite a different way. These findings strongly suggest that the two phenyl groups are the key ligands interacting with the channel. Because the binding counterpart of a benzene ring usually is also a benzene ring, some aromatic side chain groups of the Na(+) channel presumably are realigned during the gating process to make the very different affinity to the aforementioned drugs between the inactivated and the resting channels.

Anesthetics, Local↗

K+ binding sites and interactions between permeating K+ ions at the external pore mouth of an inward rectifier K+ channel (Kir2.1).

The arginine at position 148 is highly conserved in the inward rectifier K+ channel family. Increases of external pH decrease the single-channel conductance in mutant R148H of the Kir2.1 channel (arginine is mutated into histidine) but not in the wild type channel. Moreover, in 100 mM external K+, varying external pH induced biphasic changes of open channel noise, which peaks at around pH 7.4 in the R148H mutant but not in the wild type channel. The maximum single-channel conductances are higher in the wild type channel and R148H mutant at pH 6.0 than those in the R148H mutant at pH 7.4. However, the maximal conductance is achieved with much lower external [K+] for the latter. Interestingly, the single-channel conductances and open channel noise of the wild type channel at pH 6. 0 and the R148H mutant at pH 6.0 and 7.4 become the same in [K+] = 10 mM. These results indicate that the residue at position 148 is accessible to the external H+ and probably is involved in the formation of two K+ binding sites in the external pore mouth. Effective repulsion between permeating K+ ions in this area requires a positive charge at position 148, and such K+-K+ interaction is the essential mechanism underlying high K+ conduction rate through the Kir2.1 channel pore.

Animals↗

Zn2+ modulation of neuronal transient K+ current: fast and selective binding to the deactivated channels.

Modulation of voltage-dependent transient K(+) currents (A type K(+) or K(A) current) by Zn(2+) was studied in rat hippocampal neurons by the whole-cell patch-clamp technique. It is found that Zn(2+) selectively binds to the resting (deactivated or closed) K(A) channels with a dissociation constant (K(d)) of approximately 3 microM, whereas the affinity between Zn(2+) and the inactivated K(A) channels is 1000-fold lower. Zn(2+) therefore produces a concentration-dependent shift of the K(A) channel inactivation curve and enhances the K(A) current elicited from relatively positive holding potentials. It is also found that the kinetics of Zn(2+) action are fast enough to compete with the transition rates between different gating states of the channel. The rapid and selective binding of Zn(2+) to the closed K(A) channels keeps the channel in the closed state and explains the ion's concentration-dependent slowing effect on the activation of K(A) current. This in turn accounts for the inhibitory effect of Zn(2+) on the K(A) current elicited from hyperpolarized holding potentials. Because the molecular mechanisms underlying these gating changes are kinetic interactions between the binding-unbinding of Zn(2+) and the intrinsic gating processes of the channel, the shift of the inactivation curve and slowing of K(A) channel activation are quantitatively correlated with ambient Zn(2+) over a wide concentration range without "saturation"; i.e., The effects are already manifest in micromolar Zn(2+), yet are not saturated even in millimolar Zn(2+). Because the physiological concentration of Zn(2+) could vary over a similarly wide range according to neural activities, Zn(2+) may be a faithful physiological "fine tuner," controlling and controlled by neural activities through its effect on the K(A) current.

Animals↗

Chlamydia pneumoniae infection accelerates the progression of atherosclerosis in apolipoprotein E-deficient mice.

Accumulating evidence supports an association between Chlamydia pneumoniae infection and atherosclerosis. To determine whether there is a causal relationship, the effects of chronic infection with C. pneumoniae on the development of atherosclerosis in apolipoprotein E (apoE)-deficient mice were evaluated. Eight-week-old male apoE-deficient mice were inoculated intranasally with C. pneumoniae three times, at 8, 9, and 10 weeks of age. The combined area of atherosclerotic lesions in the lesser curvature of the aortic arch was measured en face by computer-assisted morphometry. The lesion area was 2.4-fold greater (P=.05) at 16 weeks of age and 1.6-fold greater (P=.05) at 20 weeks of age in infected mice than in control mice. There were no differences in total plasma cholesterol levels between groups. This study demonstrates that C. pneumoniae infection accelerates the progression of atherosclerosis in the aortic arch of apoE-deficient mice.

Animals↗

Crystallization and preliminary x-ray diffraction analysis of malic enzyme from pigeon liver.

Recombinant pigeon-liver malic enzyme was expressed in Escherichia coli and purified to homogeneity. Two different crystal forms were grown by the hanging-drop vapour-diffusion method. Both types of crystals belong to the tetragonal space group P4(2)22, with unit-cell dimensions a = b = 163.8, c = 174.3 A for the octahedral crystals and a = b = 124.5, c = 179.2 A for the rod-like crystals. X-ray diffraction data were collected at 100 K using a synchrotron-radiation X-ray source. The Matthews parameter suggests that there are four and two molecules per asymmetric unit for the larger and the smaller tetragonal unit cells, respectively.

Animals↗

Confirmed previous infection with Chlamydia pneumoniae (TWAR) and its presence in early coronary atherosclerosis.

BACKGROUND: Chlamydia pneumoniae has been identified in coronary atheroma, but concomitant serum antibody titers have been inconsistently positive and unavailable before the detection of early or advanced atherosclerotic lesions. METHODS AND RESULTS: This retrospective investigation was performed on premortem serum specimens and autopsy tissue from 60 indigenous Alaska Natives at low risk for coronary heart disease, selected by the potential availability of their stored specimens. Serum specimens were drawn a mean of 8.8 years (range, 0.7 to 26.2 years) before death, which occurred at a mean age of 34.1 years (range, 15 to 57 years), primarily from noncardiovascular causes (97%). Coronary artery tissues were independently examined histologically and, for C pneumoniae organism and DNA, by immunocytochemistry (ICC) and polymerase chain reaction (PCR) with species-specific monoclonal antibody and primers. Microimmunofluorescence detected species-specific IgG, IgA, and IgM antibody in stored serum. C pneumoniae, frequently within macrophage foam cells, was identified in coronary fibrolipid atheroma (raised lesions, Stary types II through V) in 15 subjects (25%) and early flat lesions in 7 (11%) either by PCR (14, 23%) or ICC (20, 33%). The OR for C pneumoniae in raised atheroma after a level of IgG antibody > or =1:256 >8 years earlier was 6.1 (95% CI, 1.1 to 36.6) and for all coronary tissues after adjustment for multiple potential confounding variables, including tobacco exposure, was 9.4 (95% CI, 2.6 to 33.8). CONCLUSIONS: Serological evidence for C pneumoniae infection frequently precedes both the earliest and more advanced lesions of coronary atherosclerosis that harbor this intracellular pathogen, suggesting a chronic infection and developmental role in coronary heart disease.

Adolescent↗

Imipramine inhibition of transient K+ current: an external open channel blocker preventing fast inactivation.

Rapidly inactivating K+ current (KA current) is recorded from rat hippocampal neurons by whole-cell patch-clamp technique and suitable voltage protocols. It is found that imipramine, a commonly prescribed tricyclic antidepressant, is an open KA channel blocker with a binding rate constant of 5.6 x 10(6) M-1 s-1 and an apparent dissociation constant of no more than 6 microM if applied extracellularly in pH 7.4. The inhibitory effect is more pronounced in more alkaline extracellular solution, suggesting that the neutral form of imipramine is much more active than the charged form. In contrast, intracellular imipramine shows no inhibitory effect. Furthermore, the inhibitory effect of imipramine is antagonized by external but not internal K+. These findings suggest an imipramine binding site located close to the external pore mouth. It is also found that the inactivation curve of KA current is not changed by imipramine. Moreover, the recovery of KA current after a step depolarization is accelerated in the presence of imipramine. These findings suggest insignificant binding of imipramine to the fast inactivated KA channel. The selective binding of imipramine to only the activated but not the deactivated or inactivated states seems to suggest continual gating conformational changes in the external pore mouth of these neuronal KA channels during membrane depolarization.

Animals↗

Molecular cloning, characterization and tissue expression of prophenoloxidase cDNA from the mosquito Armigeres subalbatus inoculated with Dirofilaria immitis microfilariae.

A cDNA encoding mosquito Armigeres subalbatus prophenol oxidase (As-pro-PO) was obtained by rapid amplification of cDNA ends-polymerase chain reaction (RACE-PCR) after Dirofilaria immitis inoculation. The 2205 bp As-pro-PO cDNA contains a 32 bp 5'-noncoding region, a 2055 bp open reading frame (685 amino acids), and a 118 bp 3'-noncoding region. Hydrophobic signal peptide for the endoplasmic reticulum targeting is not found in the NH2-terminal region. Two potential copper-binding domains, amino acids 197-245 and 345-412, are highly homologous to those of the other insect pro-POs. A 2.2 kb As-pro-PO transcript was identified by Northern blot analysis using D. immitis microfilariae-inoculated A. subalbatus. Both in situ hybridization and Northern blot analysis demonstrated that As-pro-PO mRNA was synthesized in mosquito haemocytes but not in other tissues, i.e. fat bodies, midguts and ovaries, etc.

Amino Acid Sequence↗

Evidence of systemic dissemination of Chlamydia pneumoniae via macrophages in the mouse.

Chlamydia pneumoniae has been postulated to cause systemic disease by infection of monocytes/macrophages and spread via the blood or lymphatics. To investigate how C. pneumoniae disseminates, the ability of the organism to infect murine macrophages in vivo and whether infection can be transferred via macrophages were determined. C. pneumoniae was detected by direct plating, isolation, and polymerase chain reaction in alveolar macrophages from intranasally inoculated mice and peritoneal macrophages from intraperitoneally inoculated mice. C. pneumoniae were also detected in peripheral blood mononuclear cells, but not plasma, of intranasally and intraperitoneally inoculated mice. When alveolar or peritoneal macrophages were adoptively transferred by intraperitoneal injection from infected to uninfected mice, C. pneumoniae DNA was detected by polymerase chain reaction in lung, thymus, spleen, and/or abdominal lymph nodes. These results demonstrate the ability of C. pneumoniae to infect macrophages in vivo and to disseminate systemically via infected macrophages by hematogenous and lymphatic routes.

Animals↗

Human mannose-binding protein inhibits infection of HeLa cells by Chlamydia trachomatis.

The role that collectin (mannose-binding protein) may play in the host's defense against chlamydial infection was investigated. Recombinant human mannose-binding protein was used in the inhibition of cell culture infection by Chlamydia trachomatis (C/TW-3/OT, E/UW-5/Cx, and L2/434/Bu), Chlamydia pneumoniae (AR-39), and Chlamydia psittaci (6BC). Mannose-binding protein (MBP) inhibited infection of all chlamydial strains by at least 50% at 0.098 microg/ml for TW-3 and UW-5, and at 6.25 microg/ml for 434, AR-39, and 6BC. The ability of MBP to inhibit infection with strain L2 was not affected by supplementation with complement or addition of an L2-specific neutralizing monoclonal antibody. Enzyme-linked immunosorbent assay and dot blot analyses showed MBP bound to the surface of the organism to exert inhibition, which appeared to block the attachment of radiolabeled organisms to HeLa cells. Immunoblotting and affinity chromatography indicated that MBP binds to the 40-kDa glycoprotein (the major outer membrane protein) on the outer surface of the chlamydial elementary body. Hapten inhibition assays with monosaccharides and defined oligosaccharides showed that the inhibitory effects of MBP were abrogated by mannose or high-mannose type oligomannose-oligosaccharide. The latter carbohydrate is the ligand of the 40-kDa glycoprotein of C. trachomatis L2, which is known to mediate attachment, suggesting that the MBP binds to high mannose moieties on the surface of chlamydial organisms. These results suggest that MBP plays a role in first-line host defense against chlamydial infection in humans.

Bacterial Adhesion↗

Survey of Theileria parasite infection in cattle in Taiwan.

An survey of Theileria parasite infection in cattle in Taiwan was carried out by polymerase chain reaction (PCR). A total of 491 blood samples, 105 from southern area and 386 from northern area, were collected from bovine in 16 different farms. From northern area, Theileria piroplasms could be seen in only 4 of 105 blood samples microscopically. However, when p32/34 genes (encoding immunodominant piroplasm surface proteins) were amplified by PCR, 15 blood samples were detected positive. They were analyzed by using allele-specific primers of 3 allelic forms of p32/34 and all contained C type of T. sergenti. Four blood samples were found infected with both C and B (T. buffeli) type parasites. Examination of 386 blood samples from southern area of Taiwan did not reveal any Theileria parasite microscopically, as well as by PCR amplification.

Animals↗

A common anticonvulsant binding site for phenytoin, carbamazepine, and lamotrigine in neuronal Na+ channels.

Phenytoin, carbamazepine, and lamotrigine are anticonvulsants frequently prescribed in seizure clinics. These drugs all show voltage-dependent inhibition of Na+ currents, which has been implicated as the major mechanism underlying the antiepileptic effect. In this study, I examine the inhibition of Na+ currents by mixtures of different anticonvulsants. Quantitative analysis of the shift of steady state inactivation curve in the presence of multiple drugs argues that one channel can be occupied by only one drug molecule. Moreover, the recovery from inhibition by a mixture of two drugs (a fast-unbinding drug plus a slow-unbinding drug) is faster, or at least not slower, than the recovery from inhibition by the slow-unbinding drug alone. Such kinetic characteristics further strengthen the argument that binding of one anticonvulsant to the Na+ channel precludes binding of the other. It also is found that these anticonvulsants are effective inhibitors of Na+ currents only when applied externally, not internally. Altogether these findings suggest that phenytoin, carbamazepine, and lamotrigine bind to a common receptor located on the extracellular side of the Na+ channel. Because these anticonvulsants all have much higher affinity to the inactivated state than to the resting state of the Na+ channel, the anticonvulsant receptor probably does not exist in the resting state. Thus, there may be correlative conformational changes for the making of the receptor on the extracellular side of the channel during the gating process.

Animals↗

Deactivation retards recovery from inactivation in Shaker K+ channels.

In Na+ channels, recovery from inactivation begins with a delay, followed by an exponential course, and hyperpolarization shortens the delay as well as hastens the entire exponential phase. These findings have been taken to indicate that Na+ channels must deactivate to recover from inactivation, and deactivation facilitates the unbinding of the inactivating particle. In contrast, it is demonstrated in this study that recovery from inactivation in Shaker K+ channels begins with no delay on repolarization. Moreover, hyperpolarization hastens only the initial phase (fast component) of recovery yet retards the later phases of recovery by increasing the proportion of slow components. The time course of slow inward "tail" K+ currents, which presumably result from the open state(s) traversed by the recovering inactivated channel, always matches the fast, but not the slow, components of recovery, suggesting that the fast and the slow components primarily correspond to recovery via the open state (unblocking of the inactivating particle before channel deactivation) and via the closed state (deactivation before unblocking), respectively. Besides, changing external K+ concentration effectively alters the absolute value of the initial recovery speed, but not its voltage dependence. It seems that Shaker K+ channel deactivation hinders, rather than facilitates, the unbinding of the inactivating particle and therefore retards recovery from inactivation, whereas external K+ may enhance unbinding of the inactivating particle by binding to a site located near the external entrance of the pore.

Animals↗

Detection of Chlamydia pneumoniae in atherosclerotic plaques in the walls of arteries of lower extremities from patients undergoing bypass operation for arterial obstruction.

PURPOSE: To study surgically excised vascular tissue from lower extremities for the presence of Chlamydia pneumoniae, to extend the previously described association of the organism with atherosclerosis. METHODS: Arterial biopsy specimens obtained from femoral and popliteal arteries during bypass operation for claudication were examined by immunocytochemical analysis and polymerase chain reaction for the presence of organisms. RESULTS: C. pneumoniae was detected in atherosclerotic plaques by either method in either artery of 11 of 23 patients (48%). Eight of 21 popliteal and three of 18 femoral arteries had positive results. CONCLUSIONS: Detection of C. pneumoniae in peripheral arteries indicates that the organism is widespread in atherosclerosis of the vascular system.

Adult↗

Characterization of lamotrigine inhibition of Na+ channels in rat hippocampal neurones.

1. Lamotrigine (LTG), a new antiepileptic drug, requires long depolarizations to inhibit Na+ currents. This suggests either slow binding of LTG to the fast inactivated state or selective binding of LTG to the slow inactivated state of Na+ channels. To differentiate between these possibilities and to characterize further the action of LTG, we studied the affinity and kinetics of LTG binding to the Na+ channels in acutely dissociated hippocampal neurones of the rat. 2. LTG inhibited more Na+ currents at more depolarized holding potentials. The inhibitory effect at various holding potentials could be described by one-to-one binding curves, which yielded an apparent dissociation constant of approximately 7 microM for LTG binding to the inactivated channels (K(I)), and a dissociation constant more than 200 times larger for LTG binding to the resting channels. A similar value of K(I) (approximately 9 microM) was also derived from the LTG concentration-dependent shift of the inactivation curve. 3. The recovery of LTG-bound inactivated Na+ channels was faster than the recovery of normal (drug-free) slow inactivated channels. Moreover, the binding kinetics of LTG onto the inactivated channels were faster than the development of the slow inactivated state, and were linearly correlated with LTG concentrations, with a binding rate constant of approximately 10,000 M(-1) s(-1). These findings suggest that LTG chiefly binds to the fast inactivated state rather than the slow inactivated state. 4. We conclude that LTG, in therapeutic concentrations and at relatively depolarized membrane potentials, may potently inhibit Na+ currents by slow binding to the fast inactivated state of Na+ channels. Like phenytoin, the slow binding rates may explain why LTG effectively inhibits seizure discharges, yet spares most normal neuronal activities.

Animals↗