Metabolism of pyruvate by the early human embryo

被引:53
作者
Butcher, L
Coates, A
Martin, KL
Rutherford, AJ
Leese, HJ
机构
[1] Univ York, Dept Biol, York YO1 5YW, N Yorkshire, England
[2] Gen Infirm, Assisted Concept Unit, Leeds LS1 3EX, W Yorkshire, England
关键词
D O I
10.1095/biolreprod58.4.1054
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Pyruvate is added to all media used for human in vitro fertilization and embryo culture, but its function(s) in the early embryo is unknown. We tested the possibility that pyruvate can act as an oxidizable energy source by measuring the consumption of pyruvate and oxygen by Day 2 and Day 3 human embryos, using microfluorometric techniques. Oxygen consumption (19.6 pmol/embryo per hour) could account for the oxidation of only 56% of the pyruvate consumed (13.9 pmol/embryo per hour). Oxygen was also consumed in the absence of exogenous substrates. Lactate appeared in the incubation medium with pyruvate (0.47 mM) as sole exogenous substrate at a rate of 12.1 pmol/embryo per hour, at a similar rate (10.85 pmol/embryo per hour) in the presence of 1 mM glucose and 0.47 mM pyruvate, and at 2.25 pmol/embryo per hour in the absence of exogenous substrates, suggesting that a high proportion of the pyruvate taken up by early human embryos is converted to lactate. Pyruvate uptake in the presence of UK5099, a pyruvate transport inhibitor, was reduced to 10% of control values, consistent with the presence of the monocarboxylate carrier in the human embryo plasma membrane.
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页码:1054 / 1056
页数:3
相关论文
共 24 条
[1]   PATTERN OF ENERGY METABOLISM IN MOUSE OOCYTE AND ZYGOTE [J].
BIGGERS, JD ;
WHITTING.DG ;
DONAHUE, RP .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1967, 58 (02) :560-&
[2]  
CONAGHAN J, 1993, J REPROD FERTIL, V99, P87
[3]  
FRIDHANDLER L, 1968, FERTIL STERIL, V19, P424
[4]  
GARDNER DK, 1988, DEVELOPMENT, V104, P423
[5]  
GARDNER DK, 1990, J REPROD FERTIL, V88, P361, DOI 10.1530/jrf.0.0880361
[6]   Control of cytosolic pH in two-cell mouse embryos: Roles of H+-lactate cotransport and Na+/H+ exchange [J].
Gibb, CA ;
Poronnik, P ;
Day, ML ;
Cook, DI .
AMERICAN JOURNAL OF PHYSIOLOGY-CELL PHYSIOLOGY, 1997, 273 (02) :C404-C419
[7]  
Gregory L, 1996, HUM REPROD, V11, P96
[8]   MECHANISMS AND REGULATION OF LACTATE, PYRUVATE AND KETONE-BODY TRANSPORT ACROSS THE PLASMA-MEMBRANE OF MAMMALIAN-CELLS AND THEIR METABOLIC CONSEQUENCES [J].
HALESTRAP, AP ;
POOLE, RC ;
CRANMER, SL .
BIOCHEMICAL SOCIETY TRANSACTIONS, 1990, 18 (06) :1132-1135
[9]   MITOCHONDRIAL PYRUVATE CARRIER - KINETICS AND SPECIFICITY FOR SUBSTRATES AND INHIBITORS [J].
HALESTRAP, AP .
BIOCHEMICAL JOURNAL, 1975, 148 (01) :85-96
[10]   NON-INVASIVE MEASUREMENT OF GLUCOSE AND PYRUVATE UPTAKE BY INDIVIDUAL HUMAN OOCYTES AND PREIMPLANTATION EMBRYOS [J].
HARDY, K ;
HOOPER, MAK ;
HANDYSIDE, AH ;
RUTHERFORD, AJ ;
WINSTON, RML ;
LEESE, HJ .
HUMAN REPRODUCTION, 1989, 4 (02) :188-191