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Biomedical subjects

C Y Pak

Publications and source records attributed to C Y Pak.

At least 163 records · Page 9Linked to original sources

Attainment of therapeutic fluoride levels in serum without major side effects using a slow-release preparation of sodium fluoride in postmenopausal osteoporosis.

The bioavailability, biochemical effects, and safety of a slow-release preparation of sodium fluoride were examined. In 8 normal volunteers, a single administration of slow-release sodium fluoride (25 mg) caused a slow rise and gradual decline in serum fluoride concentration, thus avoiding sharp peaks produced by a rapid-release preparation. In 37 patients with postmenopausal osteoporosis, serum fluoride concentration was kept within the "therapeutic window" (95-100 ng/ml) during long-term intermittent sodium fluoride (slow-release) therapy (25 mg twice/day, given for 3 months in each 5-month cycle over five cycles). Serum fluoride was also kept within the therapeutic window in 64 patients who took sodium fluoride (slow release) continuously over 12 months. Serum osteocalcin concentration increased progressively during fluoride treatment (correlation coefficient of 0.88, p less than .001 for the relationship between serum osteocalcin and duration of therapy). Side effects to slow-release sodium fluoride therapy, assessed in 101 patients at two study sites, were minor and included diarrhea in 2 patients, nausea in 2 patients, abdominal pain and cramping in 2 patients, foot pain in 2 patients, and joint pain in 6 patients. Thus, slow-release sodium fluoride confers desired level of fluoride in serum, while providing safety of usage.

Aged↗

Management of cystine nephrolithiasis with alpha-mercaptopropionylglycine.

The effect of long-term treatment with alpha-mercaptopropionylglycine was examined in 66 patients with cystinuria. Of the patients 49 took D-penicillamine before therapy, whereas 17 did not. Over-all side effects to alpha-mercaptopropionylglycine were common, and occurred in 75.5 per cent of the patients with and 64.7 per cent without a history of D-penicillamine treatment, compared to 83.7 per cent who suffered toxicity to D-penicillamine. Serious adverse reactions requiring cessation of therapy were less common with alpha-mercaptopropionylglycine. Among the patients who took both drugs 30.6 per cent had to stop taking alpha-mercaptopropionylglycine, whereas 69.4 per cent could not tolerate D-penicillamine. Of the latter group with toxicity to D-penicillamine before therapy, whereas 17 did therapy only 5.9 per cent had side effects to alpha-mercaptopropionylglycine of sufficient severity to require withdrawal. Alpha-mercaptopropionylglycine was equally as effective as D-penicillamine in reducing cystine excretion. During long-term treatment with alpha-mercaptopropionylglycine (average dose 1,193 mg. per day) urinary cystine levels were maintained at 350 to 560 mg. per day and urinary cystine was kept at undersaturated levels. Commensurate with these changes, alpha-mercaptopropionylglycine produced remission of stone formation in 63 to 71 per cent of the patients and reduced individual stone formation rate in 81 to 94 per cent. Thus, alpha-mercaptopropionylglycine has a definite therapeutic role in cystinuric patients with toxicity to D-penicillamine.

Adolescent↗

Successful management of uric acid nephrolithiasis with potassium citrate.

Eighteen patients with uric acid nephrolithiasis (six with uric acid stones alone and 12 with both uric acid and calcium stones) underwent long-term treatment (1 to 5.33 years, mean of 2.78 years) with potassium citrate (30 to 80 mEq/day, usually 60 mEq/day). Urinary pH increased from low (5.30 +/- 0.31 SD) to normal (6.19 to 6.46) during treatment. Urinary content of undissociated uric acid, which was high to begin with at 204 +/- 82 mg/day, decreased to the normal range (64 to 108 mg/day) following treatment. Urinary citrate rose from 503 +/- 225 mg/day to 852 to 998 mg/day. Urinary saturation of calcium oxalate significantly declined with potassium citrate treatment. New stone formation rate declined from 1.20 +/- 1.68 stones/year to 0.01 +/- 0.04 stones/year (P less than 0.001 by chi square). Remission was experienced in 94.4% of patients, and the group stone formation rate declined by 99.2%. Detailed case reports were obtained in five patients showing different responses between sodium alkali and potassium alkali treatment. All five patients had persistently low urinary pH (typically less than 5.5) and normouricosuria, and four had hyperuricemia. Before treatment, they had stones surgically removed or spontaneously passed, which were pure uric acid in composition. When sodium alkali was give (as bicarbonate or citrate, 60 to 118 mEq/day), new stone formation continued in four patients, and a radiolucent (uric acid) calculus become "calcified" in the remaining patient. The stone analysis disclosed calcium oxalate in five patients and calcium phosphate in three patients.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Lack of protection against ascending Escherichia coli pyelonephritis in diabetic rats following immunization with purified lipopolysaccharide.

Purified lipopolysaccharide of Escherichia coli produced specific antibody when injected intraperitoneally or given to rats orally. Either route of immunization did not prevent ascending pyelonephritis in a diabetic rat model. The use of purified LPS excludes the potential contribution of other virulence factors of E. coli as protective antigens in the prevention of ascending pyelonephritis and confirms that anti-lipopolysaccharide antibody is not protective for ascending pyelonephritis.

Administration, Oral↗

Idiopathic hypocitraturic calcium-oxalate nephrolithiasis successfully treated with potassium citrate.

The effects of long-term treatment with potassium citrate, 30 to 80 meq/d over 2.13 +/- 0.76 (SD) years, were examined in 37 patients with "idiopathic" hypocitraturic calcium-oxalate nephrolithiasis, in whom the main causes of hypocitraturia (renal tubular acidosis, chronic diarrhea, urinary tract infection, or hypokalemia) were excluded or considered unlikely. Potassium citrate treatment produced a sustained increase in urinary citrate excretion from initially low values (223 to 253 mg/d) to within normal limits (470 to 620 mg/d). Urinary pH rose significantly and was maintained at 6.5 to 7.0. Along with these changes, urinary saturation of calcium oxalate declined significantly to normal limits. Further stone formation ceased in 89.2% of patients during treatment, and the stone formation rate declined from 2.11 +/- 5.68 to 0.28 +/- 1.30 stones/patient-year (p less than 0.01).

Adult↗

Successful treatment of hyperuricosuric calcium oxalate nephrolithiasis with potassium citrate.

Calcium stone (renal) formation in patients with hyperuricosuria has been ascribed to the urate-induced crystallization of calcium oxalate. Citrate (0.5mM), added to synthetic medium metastably supersaturated with respect to calcium oxalate, was shown to inhibit heterogeneous nucleation of calcium oxalate by monosodium urate (2 mg/mL). Long-term trial with potassium citrate (60 to 80 mEq/day) was therefore undertaken to determine whether induced hypercitraturia would prevent calcium oxalate stone formation in 19 patients with hyperuricosuria. The treatment produced a sustained rise in urinary pH by 0.55 to 0.85 to the high normal range (6.5 to 7.0). Urinary citrate levels rose by 249 to 402 mg/day to approximate the normal mean value of 643 mg/day. Commensurate with these changes, urinary saturation of calcium oxalate (relative saturation ratio) and the amount of undissociated uric acid declined significantly. However, the urinary uric acid and saturation of monosodium urate remained elevated. Stone formation declined from 1.55 +/- 2.70 per patient-year to 0.38 +/- 1.22 per patient-year during mean treatment period of 2.35 +/- 0.88 years. Stones ceased to form in 16 of 19 patients during treatment. The results provide physicochemical and clinical evidence for the utility of potassium citrate in the management of hyperuricosuric calcium oxalate nephrolithiasis.

Adult↗

Correction of hypocitraturia and prevention of stone formation by combined thiazide and potassium citrate therapy in thiazide-unresponsive hypercalciuric nephrolithiasis.

Thirteen patients with hypercalciuric calcium nephrolithiasis continued to form calcium stones when treated with thiazide (4.69 +/- 6.62 [mean +/- SD] stones per patient-year to 5.12 +/- 10.87 stones per patient-year), despite adequate hypocalciuric response (a reduction in urinary calcium levels from 303 +/- 119 mg per day to 193 +/- 88 mg per day, p less than 0.01). Because they had hypocitraturia (250 +/- 86 mg per day versus 643 +/- 236 mg per day in normal subjects, p less than 0.001), potassium citrate (10 to 20 meq three times per day) was added to the ongoing treatment program. During combined treatment with thiazide and potassium citrate, urinary pH significantly rose, and normal levels of urinary citrate were restored. Ten patients stopped forming new stones and all 13 had reduced stone formation rate. Thus, potassium citrate supplementation should be considered in patients requiring thiazide therapy for the control of hypercalciuric nephrolithiasis, especially if they have concurrent hypocitraturia or if it develops during thiazide therapy.

Adult↗

The current role of medical treatment of nephrolithiasis: the impact of improved techniques of stone removal.

To document more clearly the effect of selective medical treatment on the course of nephrolithiasis, we surveyed 103 consecutive patients being followed in our stone clinic. Of the patients who initially had existing stones within the kidneys 69 per cent experienced no symptoms while undergoing medical therapy, compared to 96 per cent of those who had no existing stones. In all subjects studied new stone formation was reduced in more than 95 per cent and no new stones were formed in more than 75 per cent. An operation for newly formed calculi was necessary in only 2 per cent of the patients on medical therapy, whereas 58 to 69 per cent of the patients required an operation for new stones before beginning medical treatment. We believe that selective medical treatment has an important role in the over-all management of nephrolithiasis. Appropriate medical therapy may decrease significantly the number of new stones formed and may obviate the need for a repeat stone operation. Therefore, medical treatment should be an important adjunct to percutaneous nephrostolithotomy and extracorporeal shock wave lithotripsy.

Adult↗

Long-term treatment of calcium nephrolithiasis with potassium citrate.

The long-term effects of potassium citrate therapy (usually 20 mEq. 3 times daily during 1 to 4.33 years) were examined in 89 patients with hypocitraturic calcium nephrolithiasis or uric acid lithiasis, with or without calcium nephrolithiasis. Hypocitraturia caused by renal tubular acidosis or chronic diarrheal syndrome was associated with other metabolic abnormalities, such as hypercalciuria or hyperuricosuria, or occurred alone. Potassium citrate therapy caused a sustained increase in urinary pH and potassium, and restored urinary citrate to normal levels. No substantial or significant changes occurred in urinary uric acid, oxalate, sodium or phosphorus levels, or total volume. Owing to these physiological changes, uric acid solubility increased, urinary saturation of calcium oxalate decreased and the propensity for spontaneous nucleation of calcium oxalate was reduced to normal. Therefore, the physicochemical environment of urine following treatment became less conducive to the crystallization of calcium oxalate or uric acid, since it stimulated that of normal subjects without stones. Commensurate with the aforementioned physiological and physicochemical changes the treatment produced clinical improvement, since individual stone formation decreased in 97.8 per cent of the patients, remission was obtained in 79.8 per cent and the need for surgical treatment of newly formed stones was eliminated. In patients with relapse after other treatment, such as thiazide, the addition of potassium citrate induced clinical improvement. Thus, our study provides physiological, physicochemical and clinical validation for the use of potassium citrate in the treatment of hypocitraturic calcium nephrolithiasis and uric acid lithiasis with or without calcium nephrolithiasis.

Adult↗

Prevention of recurrent calcium stone formation with potassium citrate therapy in patients with distal renal tubular acidosis.

Distal renal tubular acidosis is a common cause of intractable calcium nephrolithiasis. We examined the effect of oral potassium citrate therapy in 9 patients with incomplete distal renal tubular acidosis diagnosed on the basis of an abnormal response to an oral ammonium chloride load. Patients were studied during a control phase and after 3 months of potassium citrate treatment (60 to 80 mEq. daily). Potassium citrate caused a significant increase in urinary pH and urinary citrate, and a decrease in urinary calcium. The urinary relative saturation ratio of calcium oxalate significantly decreased during treatment, while that of brushite did not change. Potassium citrate also was shown to inhibit new stone formation. During a mean treatment period of 34 months none of the 9 patients had new stones, although 39.3 plus or minus 79.7 (standard deviation) stones per patient formed during the 3 years preceding treatment. The results support the potential clinical advantage of potassium citrate therapy in patients with distal renal tubular acidosis and recurrent calcium nephrolithiasis.

Acidosis, Renal Tubular↗

Comparative efficacy of "specific" potassium citrate therapy versus conservative management in nephrolithiasis of mild to moderate severity.

It generally is believed that conservative measures of high fluid intake and dietary modification in the setting of a stone clinic could favorably influence the course of renal stone disease. To establish the effect of specific medical treatment from the stone clinic effect, we compared the results of potassium citrate therapy to those of 11 reported conservative or placebo trials. The 54 patients receiving potassium citrate chosen for this comparison had mild to moderately severe stone disease (less than 1 stone per patient per year), similar to that encountered in conservative placebo trials (mean 0.54 stones per patient per year). New stone formation was virtually eliminated by potassium citrate therapy (a decrease from 0.52 to 0.02 stones per patient per year, a remission rate of 96 per cent, p less than 0.001), whereas it continued in 39 per cent of the patients during conservative or placebo trials. However, in patients participating in conservative or placebo trials new stone formation decreased by only 54 per cent (from 0.54 to 0.25 stones per patient per year). The superior response to potassium citrate suggested that this specific medical treatment exerted an additional favorable effect on the course of stone disease above the stone clinic effect.

Citrates↗

Graphic display of urinary risk factors for renal stone formation.

From the analysis of various urinary constituents and the estimation of urinary saturation of stone-forming salts, it is now possible to identify risk factors responsible for or contributing to stone formation. Metabolic factors included calcium, oxalate, uric acid, citrate and pH. Environmental factors were total volume, sodium, sulfate, phosphate and magnesium. Physicochemical factors represented saturation of calcium oxalate, brushite, monosodium urate, struvite and uric acid. A scheme for graphic display of risk factors was developed to allow ready visual recognition of important risk factors presumed to cause stone formation. This graphic display had diagnostic use as well as practical value in following response to treatment. For example, a low urinary pH and high urinary concentration of undissociated uric acid could be discerned readily in cases of uric acid lithiasis, as were high urinary pH and exaggerated urinary supersaturation of struvite in cases of infection lithiasis. In a patient with absorptive hypercalciuria and hypocitraturia treatment with thiazide and potassium citrate could be shown to abolish high risks (hypercalciuria, hypocitraturia and relative supersaturation of calcium oxalate) displayed before treatment.

Calcium↗

Lack of effect of prostaglandin inhibition on calcium excretion in normal volunteers.

Recent data have shown that administration of indomethacin to patients with hypercalciuric nephrolithiasis decreased urinary calcium excretion, implying a possible pathogenic role for renal prostaglandins in hypercalciuria. To explore this hypothesis we administered indomethacin, ketoprofen and aspirin to normal volunteers for 6 days and assessed daily creatinine clearance and urinary excretion of sodium and calcium. In contrast to previous studies, subjects were maintained on a constant metabolic diet. These nonsteroidal anti-inflammatory drugs decreased urinary sodium excretion but had no effect on creatinine clearance or urinary calcium excretion. In summary, our data do not support an important physiologic role of renal prostaglandins in renal calcium excretion in normal subjects.

Adult↗

Short-term 1,25-dihydroxyvitamin D3 administration raises serum osteocalcin in patients with postmenopausal osteoporosis.

In order to evaluate whether 1,25-dihydroxyvitamin D3 [1,25(OH)2D3] could increase the serum concentration of osteocalcin (BGP) in patients with post-menopausal osteoporosis, we administered 2 micrograms/d of 1,25(OH)2D3 to 14 patients with biopsy proven osteoporosis for two weeks. An additional 13 age and sex-matched patients with osteoporosis received no drug and served as the control. Administration of 1,25(OH)2D3 significantly increased the serum concentration of 1,25(OH)2D from 31 +/- 2 SE to 56 +/- 5 pg/ml (p less than 0.01). Commensurate with the rise in 1,25(OH)2D was a significant increase in BGP from 3.9 +/- 0.6 to 6.4 +/- 0.9 ng/ml (p less than 0.001). There were no significant changes for these parameters in the control group. It is concluded that short term 1,25(OH)2D3 administration is effective in raising BGP concentrations in patients with post-menopausal osteoporosis.

Calcitriol↗

Postmenopausal osteoporosis as a manifestation of renal hypercalciuria with secondary hyperparathyroidism.

An apparently unique presentation of osteoporosis was encountered in eight postmenopausal women (mean age, 56.8 yr). They had renal hypercalciuria, since they had fasting hypercalciuria [0.17 +/- 0.04 (+/- SD) mg/100 ml glomerular filtrate (GF)] in the setting of normocalcemia and parathyroid stimulation (high serum immunoreactive PTH and/or urinary cAMP). Serum 1,25-dihydroxyvitamin D was not significantly different (28 +/- 7 vs. 34 +/- 2 pg/ml) from that in a nonelderly control group, but fractional intestinal calcium (Ca) absorption was significantly lower (0.382 +/- 0.123 vs. 0.49 +/- 0.06; P less than 0.025). Thus, the patients did not have compensatory intestinal hyperabsorption of Ca despite PTH excess. Treatment with hydrochlorothiazide (50 mg/day) produced a decline in fasting urinary Ca (to 0.07 +/- 0.02 mg/100 ml GF; P less than 0.01), serum PTH (from 39 +/- 19 to 21 +/- 1 microliters eq/ml; P less than 0.05), and urinary cAMP excretion (from 5.30 +/- 0.57 to 3.57 +/- 0.59 nmol/100 ml GF; P less than 0.0025). The results suggested that hyperparathyroidism was secondary. Histomorphometric analysis of bone showed reduced trabecular bone volume without mineralization defect, compatible with osteoporosis. Four of eight patients had high or high normal fractional resorption surfaces, fractional formation surfaces, and fractional osteoid volumes. That these abnormalities may reflect PTH-dependent osteoclastic resorption and bone turnover was supported by the reduction of these indices after correction of secondary hyperparathyroidism with hydrochlorothiazide therapy. The remaining four patients, however, had normal histomorphometric results. In summary, postmenopausal osteoporosis may occur sometimes with renal hypercalciuria and secondary hyperparathyroidism. The lack of compensatory intestinal hyperabsorption of Ca predisposes to negative Ca balance, and the hyperparathyroid state may be manifested by stimulated osteoclastic and osteoblastic activities.

Aged↗

Calcium bioavailability from calcium carbonate and calcium citrate.

Fourteen normal subjects took 1000 mg calcium orally as calcium citrate or calcium carbonate. The amount of calcium absorbed was estimated from the rise in urinary calcium. The urinary calcium following calcium citrate load significantly higher (by 20-66%), whether expressed as the total amount or as the increment above basal (fasting) excretion. Thus, calcium citrate provides a more optimum calcium bioavailability than calcium carbonate.

Administration, Oral↗

Exaggerated natriuretic and calciuric responses to hydrochlorothiazide in renal hypercalciuria but not in absorptive hypercalciuria.

Patients with hypercalciuria have been reported to have an exaggerated response to hydrochlorothiazide (HCTZ), implying a renal tubular defect in solute reabsorption. To determine whether this disturbance is generalized or unique to a particular pathogenetic type of hypercalciuria, we measured the increments in urinary sodium (delta Na), calcium (delta Ca), and magnesium after a 100-mg dose of oral HCTZ in 10 normal subjects and 31 patients with different types of hypercalciuric nephrolithiasis. Eleven patients with renal hypercalciuria had significantly greater delta Na (P less than 0.005) and delta Ca (P less than 0.005) than the normal subjects. Ten patients with absorptive hypercalciuria and 10 patients with fasting hypercalciuria without parathyroid stimulation had delta Na and delta Ca indistinguishable from those of normal subjects. In all groups, urinary HCTZ and basal 24-h urinary Na did not differ. The results suggest that the unique natriuretic and calciuric responses to HCTZ occur only in renal hypercalciuric patients with secondary hyperparathyroidism. The data support a renal tubular defect in renal hypercalciuric in contrast to other diagnostic categories of hypercalciuric nephrolithiasis.

Absorption↗

Calcium citrate: reduced propensity for the crystallization of calcium oxalate in urine resulting from induced hypercalciuria of calcium supplementation.

The effect of calcium citrate (800 mg calcium/day in 4 divided doses) on urinary biochemistry and crystallization of calcium salts was examined in 18 normal subjects. During treatment, urinary calcium increased significantly (from 150 +/- 65 (SD) to 248 +/- 77 mg/day). Urinary citrate rose from 611 +/- 208 to 730 +/- 225 mg/day, owing largely to the alkali load. The urinary saturation of calcium oxalate rose by only 41% during calcium citrate treatment, due mainly to citrate complexation of calcium (rather than by 62% without such complexation). Moreover, the formation product of calcium oxalate rose during treatment, indicating that the enhanced citrate excretion augmented the inhibitor activity against calcium oxalate crystallization. Thus, calcium citrate may not be attendant with the risk for stone formation usually associated with calcium supplementation.

Adult↗