CONVERSION OF ARACHIDONIC-ACID TO PROSTAGLANDINS IN HOMOGENATES OF HUMAN SKELETAL-MUSCLE AND KIDNEY

被引:29
作者
BERLIN, T
CRONESTRAND, R
NOWAK, J
SONNENFELD, T
WENNMALM, A
机构
[1] KAROLINSKA INST,DEPT SURG,S-10401 STOCKHOLM 60,SWEDEN
[2] HUDDINGE HOSP,DEPT UROL,S-14186 HUDDINGE,SWEDEN
来源
ACTA PHYSIOLOGICA SCANDINAVICA | 1979年 / 106卷 / 04期
关键词
Arachidonic acid; kidney homogenate; muscle homogenate; prostaglandin formation;
D O I
10.1111/j.1748-1716.1979.tb06424.x
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
The capacity of human skeletal muscle and kidney homogenates to synthetize prostaglandins (PGs) from exogenous precursor was investigated. Low–speed supernatants of muscle as well as renal medullary and cortical homogenates were incubated with 14C–labelled arachidonic acid (14C–AA) prepared as a sodium salt. 14C–PGs in the incubates were extracted, separated with thin–layer chromatography (TLC) and quantified by radioscanning. In the skeletal muscle incubates 14C–AA was converted into 14C–PGs with a time–dependent yield, most effectively after 10–15 min incubation. Well–defined radiopeaks parallel to unlabelled standards of PGD2, PGE2, PGF2α and 6–keto–PGF1α were obtained in the chromatograms. PGE2 was the main PG formed, constituting over 50% of 14C–activity, whereas 6–keto–PGF1α, PGD2 and PGF2α were found in considerably lower proportions. In the renal medullary incubates, PGE2 likewise accounted for the largest part of 14C–PGs formed, but significant relative amounts of PGF2α and PGD2 were also found. A minor peak, corresponding to 6–keto–PGF,a and thus indicating formation of PGI2, was also obtained. In contrast to the medulla, no 14C–PGs could be found in the renal cortical incubates. The results demonstrate the existence of a considerable tissue specificity in the quantitative and qualitative expression of PG biosynthesis in man. © 1979 Scandinavian Physiological Society
引用
收藏
页码:441 / 445
页数:5
相关论文
共 13 条
[1]   SOME CHARACTERISTICS OF PROSTAGLANDIN SYNTHESIZING SYSTEM IN RABBIT KIDNEY MICROSOMES [J].
BLACKWELL, GJ ;
FLOWER, RJ ;
VANE, JR .
BIOCHIMICA ET BIOPHYSICA ACTA, 1975, 398 (01) :178-190
[2]   PROSTAGLANDIN BIOSYNTHESIS FROM ENDOGENOUS PRECURSORS IN RABBIT KIDNEY [J].
CROWSHAW, K .
NATURE-NEW BIOLOGY, 1971, 231 (25) :240-&
[3]   PROSTACYCLIN IS MAJOR PROSTAGLANDIN RELEASED FROM ISOLATED PERFUSED RABBIT AND RAT-HEART [J].
DEDECKERE, EAM ;
NUGTEREN, DH ;
HOOR, FT .
NATURE, 1977, 268 (5616) :160-163
[4]   RENAL PROSTAGLANDIN SYNTHESIS IN SPONTANEOUSLY HYPERTENSIVE RAT [J].
DUNN, MJ .
JOURNAL OF CLINICAL INVESTIGATION, 1976, 58 (04) :862-870
[5]   BIOSYNTHESIS OF PROSTAGLANDINS IN RENAL MEDULLA OF RABBIT [J].
HAMBERG, M .
FEBS LETTERS, 1969, 5 (02) :127-&
[6]  
HAMBERG M, 1966, J BIOL CHEM, V241, P257
[7]   REGIONAL DIFFERENCES IN FORMATION AND METABOLISM OF PROSTAGLANDINS IN RABBIT KIDNEY [J].
LARSSON, C ;
ANGGARD, E .
EUROPEAN JOURNAL OF PHARMACOLOGY, 1973, 21 (01) :30-36
[8]  
MONCADA S, 1977, LANCET, V1, P18
[9]   HUMAN FOREARM AND KIDNEY CONVERSION OF ARACHIDONIC-ACID TO PROSTAGLANDINS [J].
NOWAK, J ;
WENNMALM, A .
ACTA PHYSIOLOGICA SCANDINAVICA, 1979, 106 (03) :307-312
[10]   DISTRIBUTION OF PROSTAGLANDIN BIOSYNTHETIC PATHWAYS IN SEVERAL RAT TISSUES FORMATION OF 6-KETOPROSTAGLANDIN F1-ALPHA [J].
PACEASCIAK, CR ;
RANGARAJ, G .
BIOCHIMICA ET BIOPHYSICA ACTA, 1977, 486 (03) :579-582