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Biomedical subjects

K Shimamoto

Publications and source records attributed to K Shimamoto.

At least 361 records · Page 20Linked to original sources

The method of urinary total kallikrein and prekallikrein measurement, and their urinary excretions in the patients with essential hypertension.

The method of measurement for urinary total kallikrein (KAL) and preKAL in human was developed, and daily excretions of urinary total KAL, KAL and preKAL were investigated in patients with essential hypertension. Forty microliter of urine samples were incubated with or without 120 micrograms of chymotrypsin-free trypsin for total KAL or KAL, respectively. KAL was measured with direct radioimmunoassay and kininogenase assay. PreKAL was calculated by the subtraction of KAL from total KAL. The subjects of this study included 7 normotensives (NT) and 8 essential hypertensives (EHT). Daily excretions of total KAL, KAL and preKAL were significantly lower in EHT than those in NT. KAL/total KAL ratio, which reflects the conversion rate from preKAL to KAL in the kidney, was not significantly different between EHT and NT. From these results, it is suggested that decreased urinary KAL excretion in EHT is mainly caused by reduced preKAL production rather than the impaired conversion from preKAL to KAL in the kidney. It is emphasized that this method of measurement for urinary total KAL and preKAL may be a very useful tool for research of the renal kallikrein-kinin system.

Adult↗

Comprehensive studies on the renal kallikrein-kinin system in essential hypertension.

In order to investigate the role of the renal kallikrein-kinin (K-K) system in normal (NRH) and low renin (LRH) subgroups of essential hypertension (EHT), daily urinary excretions of renal K-K system components including kallikrein (KAL), total KAL, pre-KAL, kinin (KIN) and kininase (total, I and II), were measured in 21 normotensives (NT) and 45 patients with EHT (NRH: 29, LRH: 16). Urinary KAL and KIN quantities, KAL activity, total and pre-KAL, and kininase (total, I and II) were measured by direct RIA, kininogenase assay, direct RIA of KAL after trypsin treatment, and KIN destroying capacity, respectively. The daily excretions of KAL quantity and activity, total and pre-KAL, and KIN were significantly lower in EHT than in NT. That of total kininase and kininase I were significantly higher in EHT than in NT while no significant difference was found in kininase I between EHT and NT. In comparing NRH and LRH, the urinary KAL activity and KIN were lower in LRH than in NRH, and kininase I was higher in LRH than in NRH. No significant difference, however, was found in total and pre-KAL, KAL quantity and kininase II between NRH and LRH. The ratio of KAL quantity/total KAL which reflects the conversion rate from pre-KAL in the kidney, did not show any significant difference among NT, NRH and LRH.(ABSTRACT TRUNCATED AT 250 WORDS)

Humans↗

A comparative study of the measurement of urinary kallikrein by various methods in patients with essential hypertension and patients with proteinuria.

In order to investigate the validity of urinary kallikrein (KAL) measurement, comparative studies were performed among the values obtained by various methods of urinary KAL measurements. Daily urine samples were collected from 37 hospitalized normal subjects (NS, 21 essential hypertensives without complications (EHT) and 20 patients with renal diseases associated with proteinuria (PU). Urinary KAL excretions were determined by direct radioimmunoassay (RIA), kininogenase assay (K-genase), TAMe esterase assay (TAMe), and PPA-MCA (MCA) and PPA-NE amidase assay (NE). By the desalting procedure, urinary KAL levels showed significant changes in TAMe, MCA and NE, but not in d-RIA and K-genase in all three groups. In TAMe, MCA and NE, the recovery of added KAL in urine was significantly lower in non-desalted samples in both EHT and PU, but not in NS. Impaired recovery and correlations between d-RIA or K-genase and TAMe, MCA or NE in non-desalted samples were improved by desalting. Although good correlations were observed between d-RIA or K-genase and TAMe, MCA or NE in desalted samples, the slopes of curves were steeper in EHT and PU than in NS, suggesting that the synthetic substrate methods still have some problems in the KAL measurement in these pathological states, KAL inhibitor, aprotinin and gabezate mesilate did not suppress the esterclytic and amidolytic activities completely, but suppressed K-genase activity completely in PU urine samples, suggesting that certain kinds of non-KAL esterases might remain in PU urine samples. Thus, d-RIA and K-genase appear to be the most reliable methods in the measurement of urinary KAL quantity and activity, respectively.

Humans↗

Purification of human low molecular weight kininogen and its application for a simple ND sensitive method for determination of human urinary kallikrein activity.

Human plasma low molecular weight kininogen was purified with ammonium sulfate fractionation, DEAE-cellulose, CM-Sephadex C-50 and aprotinin-agarose affinity column chromatography, after which this was further purified with Sephadex G-150 and DEAE-Sephadex A-50 column chromatographies. Kallikrein activity was measured as the kininogenase activity reflecting the kinin-producing capacity from kininogen. The purification factor from crude plasma to purified substrate was 44-fold, and the recovery was 18%. The purified human substrate did not contain kinin-generating or destroying enzymes which would interfere with kininogenase activity, and showed a cross-reactivity of less than 0.1% against kinin antiserum. In the kininogenase assay, all kininogen was removed by adding ethanol to terminate the enzyme reaction. Because of the high sensitivity of kinin radioimmunoassay, the kinin levels in urine could be determined in very small amounts of samples (0.5 to 2.0 nl of the original urine). These findings indicated that kinin levels in incubation solution could be measured directly, and the control tubes are unnecessary in this assay procedure. In a comparison among human, dog and bovine low molecular weight kininogen as the substrate for human urinary kallikrein, the enzyme activity was 5 and 80 fold higher in the human low molecular weight kininogen, respectively, suggesting that a human substrate is the best for human enzymes. This simple, specific, sensitive and homologous kininogenase assay system seems to be very useful investigating the physiological or pathophysiological role of the renal kallikrein-kinin system in hypertensive and renal diseases.

Animals↗

A case of adrenal tumor producing renin, aldosterone, and sex steroid hormones.

A 27-year-old woman with an adrenal tumor that produced renin and aldosterone, associated with hypertension and adrenogenital syndrome, is described. Severe hypertension, cardiomegaly, a low serum potassium level, clinical symptoms of adrenogenital syndrome, and a left upper abdominal tumor also were found. Endocrinological studies showed that plasma and urinary levels of sex steroid hormones such as dehydroepiandrosterone, androsterone, and testosterone were markedly increased. Plasma renin activity, plasma angiotensin II, and plasma aldosterone levels also were increased markedly, although deoxycorticosterone levels remained within the normal range. The possibility of renovascular hypertension was excluded by angiography of the renal artery and by venous sampling of plasma renin activity. Abnormal elevations in plasma aldosterone levels persisted despite normalization of plasma angiotensin II by converting enzyme inhibitor administration. It was suspected that this patient had an adrenal tumor producing renin as well as sex steroids and aldosterone. Microscopy of the resected tumor revealed that the tumor was composed mostly of cells with large nuclei and light cytoplasm. The tumor contained dehydroepiandrosterone, dehydroepiandrosterone sulfate, testosterone, aldosterone, and renin. Immunohistochemical study showed that some of the tumor cells produced renin. Biopsy of the left renal tissue showed evident atrophy of the juxtaglomerular cells and pronounced arteriosclerosis. After resection of the tumor, all blood and urinary levels of the abnormally increased hormones returned to a normal range and an apparent fall of blood pressure was noted. To our knowledge, this is the first report of a renin and aldosterone-producing adrenal tumor associated with hypertension and adrenogenital syndrome.

Adrenal Gland Neoplasms↗

A case of lactate dehydrogenase (LDH)-IgG complex formation which causes low plasma LDH activity and an abnormal LDH isozyme pattern.

A case of an LDH-IgG complex formation which causes low plasma LDH activity and an abnormal LDH isozyme pattern was reported. A patient had pericarditis and myocardial hypertrophy of asymmetrical septal hypertrophy type. The same IgG was recognized in pericardial effusion. From a column chromatographic study, the molecular weight of LDH-IgG complex was estimated as being about 490,000. This complex was speculated as the IgG1-LDH2. The mechanism by which LDH-IgG is formed and the relationship between the complex itself and cardiac diseases remain unknown.

Aged↗

The mechanism of the hypotensive effect of captopril (converting enzyme inhibitor) with special reference to the kallikrein-kinin and renin-angiotensin systems.

In order to clarify the mechanism of the hypotensive action of captopril, the acute and chronic effects of this drug on the kallikrein-kinin and renin-angiotensin systems were investigated respectively in 14 and 19 patients with hypertension. To determine the acute effect, a dose of 50 mg of captopril was administered once orally. For the chronic effect, 75-300 mg of the drug was administered daily for 14 days. In observations of the acute effect, blood pressure decreased significantly at 30 min. and maximally at 60-180 min. after administration with no change in heart rate. Significant increases in blood kinin levels and plasma renin activity (PRA), and a decrease in plasma angiotensin II levels were also observed. A marked augmentation was also found in urinary kinin excretion, but not in urinary kallikrein excretion. Moreover, the changes in blood pressure significantly correlated negatively with basal PRA, basal plasma angiotensin II and the changes in blood kinin levels, and positively with the changes in plasma angiotensin II. In our study of the chronic effect of captopril, similar changes in blood kinin levels, PRA, plasma angiotensin II levels, blood pressure and heart rate to the acute effect study were observed. Significant correlations of the changes in blood pressure were found negatively with basal PRA, basal plasma angiotensin II levels and the changes in blood kinin levels and positively with the changes in plasma angiotensin II levels. In addition, significant increases in urine volume and urinary sodium excretion occurred following administration of captopril for 14 days, and both increases negatively correlated with the changes in blood pressure.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Localization of renal kallikrein-kinin system components in the kidney.

In a study using a stop-flow technique in dog kidney, the existence of kallikrein and kinin was recognized in distal tubules. The presence of kininase I was seen in both distal and proximal tubules, and also partly in the distal tubules. The presence of kininase II in the distal tubules was again confirmed by pretreatment with SQ14225. No evidence of kinin formation, however, was obtained in the proximal nephrons in stop-flow method. From these results, it was suggested that kininase I and II localized in proximal tubules may destroy the kinin filtered from glomeruli at the proximal level, while kallikrein and kininogen and also kininase I and II in the distal tubules may regulate the activity of the renal kallikrein-kinin system in the distal nephrons.

Animals↗

Tissue kallikrein of human seminal plasma is secreted by the prostate gland.

Samples of human seminal plasma were subjected to gel filtration, and the eluted fractions were analysed for their contents of tissue kallikrein-like antigen, arginine esterase activity and kininogenase activity. Two peaks of tissue kallikrein-like antigen were detected with apparent molecular masses of about 72 and 48 kDa. As judged by the criteria of molecular mass, immunoreactivity, kininogenase activity, identification of the released kinin as kallidin and inhibition studies, a genuine tissue kallikrein has been identified in the 48-kDa peak. In addition, this peak contains one or more species of immunoreactive tissue kallikrein which differ in molecular mass and enzymatic activities. The 72-kDa peak probably represents the complex of tissue kallikrein with alpha 1-proteinase inhibitor rather than a true high molecular mass tissue kallikrein. The prostate gland was identified as the site of origin of the tissue kallikrein in the seminal fluid by indirect methods and by demonstrating immunoreactive tissue kallikrein in prostatic tissue and secretion.

Chromatography, Gel↗

Plasma prolactin levels in patients with essential hypertension, malignant hypertension and secondary hypertension.

Plasma prolactin level and plasma renin activity were determined in normal subjects and patients with low and normal renin essential hypertension, renal hypertension, renovascular hypertension, primary aldosteronism, Cushing syndrome, pheochromocytoma and malignant hypertension. In both normal subjects and the normal renin essential hypertensives, plasma prolactin was significantly higher in females than in males. Plasma prolactin was also significantly higher in the normal renin essential hypertensives than in normal subjects of both sexes, while no significant difference was found between the low renin group and normal subjects of either sex. A significantly positive correlation was observed between plasma renin activity and the plasma prolactin level in male essential hypertensives, but not in females. Although no significant difference in plasma prolactin level could be detected between patients with secondary hypertension and normal subjects, this level was significantly higher in malignant hypertensives than in normotensives. From these results, it was shown that significant differences of plasma prolactin levels exist between normal renin essential hypertensives, and low renin essential hypertensives or normal subjects, and that these differences may partly depend on renin status which might be related to the central dopaminergic activity. In malignant hypertensives, the high level of plasma prolactin may be caused by diminished renal function, but the suppression of central dopaminergic activity cannot be excluded in the mechanism of plasma prolactin increment.

Adolescent↗

The effect of blood volume changes accompanying isotonic circumstances on plasma antidiuretic hormone levels in normal subjects.

Changes in plasma ADH levels were investigated in human male subjects whose blood volume was altered under isotonic circumstances. Blood volume was reduced by ambulation and increased by isotonic saline infusion in an overnight dehydrated state, and determinations were made on plasma ADH levels, plasma osmolality and hematocrit values. Plasma ADH levels were clearly affected by the small changes in blood volume, and significantly negative correlation was found between plasma ADH levels and the percent changes in blood volume under isotonic circumstances. From these findings, it was concluded that ADH release in human subjects is also controlled by the changes of the blood volume factor in addition to osmotic stimuli.

Adolescent↗

Urinary excretions of kininase I and kininase II activities in essential hypertension. A sensitive and simple method for its kinin-destroying capacity.

To further clarify the role of the renal kallikrein-kinin system in essential hypertension, a sensitive and simple method for the determination of both human urinary kininase I and kininase II was established, and the system components were determined in patients. In the measurement of kininase activity, desalted urine samples were incubated with synthetic bradykinin, and the reaction was terminated with kininase inhibitors, ethylene diamine tetraacetic acid and phenanthroline. Thus, kininase activity was determined as the kinin-destroying capacity. Moreover, the specific inhibitor for kininase II, SQ14225, was applied for the separation of kininase I and kininase II activities. Daily urinary excretions of total kininase and kininase I activities were significantly higher in essential hypertensive patients than those in normotensive subjects, whereas no difference was observed in kininase II activity. As reported previously, daily excretions of urinary kallikrein and kinin simultaneously determined in these patients were significantly lower than excretions in normotensive subjects. From these results, it was suggested that not only decreased renal kallikrein, but also increased kininase activity, may play an important role in the suppression of the renal kallikrein-kinin system through the reduction of active kinin level in essential hypertension.

Adolescent↗

A very sensitive direct radioimmunoassay system for plasma angiotensin II and its clinical application in various hypertensive diseases.

A very sensitive and simplified direct radioimmunoassay system for plasma angiotensin II was developed using the antiserum against synthetic angiotensin II (final dilution = 1: 1,500,000) in combination with 125I-labeled angiotensin II (specific activity = 1,600 microCi/micrograms). In this assay system, it was possible to carry out a direct assay using 100 microliter of plasma without any extraction procedure. This conclusion was supported by 100% recovery, parallelism of plasma samples against the standard curve, and no difference in hormone levels, there was also a high positive correlation between the plasma angiotensin II levels measured by this direct assay and the dowex column extraction method. The sensitivity of this assay system was 0.1 pg/tube, which is the highest sensitivity in studies reported to date. The cross-reactivities of angiotensin III and I against this antiserum were 100% and less than 0.1%, respectively, suggesting that the antiserum was very specific for the C-terminal of angiotensin II. Plasma angiotensin II levels in normal subjects after overnight fasting ranged from 3.0 to 21.3 pg/ml (12.0 +/- 2.1 pg/ml, mean +/- SE). By comparison, plasma angiotensin II levels of patients with essential hypertension were similar to those in the normal renin group, lower than those in low renin group and higher than those in high renin group. In patients with secondary hypertension, levels were lower in those with primary aldosteronism and higher in those with renovascular hypertension when compared to normal subjects.

Angiotensin II↗

A case of normotensive primary aldosteronism--comparison with 13 previously experienced cases with hypertension.

A 47-year-old woman with normotensive primary aldosteronism is reported. In this case, hypopotassemia was found, but the patient's blood pressure was within the normal range. Her condition was diagnosed as primary aldosteronism without hypertension, which is very rare, based on an increased level of plasma aldosterone concentration, low plasma renin activity, and a typical finding of aldosterone-producing adenoma by adrenal scintigraphy. In the present case, similar values for urinary volume, renal function, plasma aldosterone concentration, plasma renin activity, plasma volume, total exchangeable sodium, urinary kallikrein excretion and a similar weight of the resected adenoma, but a shorter duration between the onset of symptom and hospital admission were observed as compared with those in 13 previously experienced cases of primary aldosteronism with hypertension. Thus, a shorter duration of primary aldosteronism appears to be an important factor in explaining the mechanism of normotension. However, we were unable to reach a definite conclusion and this is only a hypothesis. Further investigation will be required to clarify the mechanism of normotension in primary aldosteronism.

Adenoma↗

A simple and sensitive method for determination of human urinary kallikrein activity (kininogenase activity), using human low molecular weight kininogen.

Human low molecular weight kininogen was partially purified and applied to the measurement of human glandular kallikrein as a substrate. The prepared human low molecular weight kininogen did not contain any significant amounts of kinin generating or destroying enzymes. When ethanol was added to the assay tube to stop the enzyme reaction, the substrate was almost completely removed from the incubation solution. Moreover, less than 1.25% ethanol had no effect on the kinin radioimmunoassay. These data suggest that the measurement of generated kinin can be done directly after the addition of ethanol. In this assay system, control tubes were unnecessary since the small volume of the urine samples (0.5 to 2.0 nl) contained negligible amounts of endogenous kinin. In a comparison of the availability as a substrate for human urinary kallikrein among human, dog and bovine low molecular weight kininogens, the enzyme activity was 5 or 100 times as high in the human substrate as in the dog and bovine substrates, suggesting that a human substrate is best for the human enzyme. A significant correlation was found between our previous method using bovine substrate and this method for human urinary kallikrein activity. In both methods, urinary kallikrein excretions were significantly lower in patients with essential hypertension and higher in those with primary aldosteronism, respectively. This simple, specific and sensitive kininogenase assay system seems to be very useful for investigating the physiological or pathophysiological role of the renal kallikrein-kinin system in hypertensive and renal diseases.

Animals↗