Ca2+-ATPases (SERCA):: Energy transduction and heat production in transport ATPases

被引:49
|
作者
de Meis, L [1 ]
机构
[1] Univ Fed Rio de Janeiro, Ctr Ciencias Saude, Inst Ciencias Biomed, Dept Bioquim Med, BR-21941590 Rio De Janeiro, Brazil
来源
JOURNAL OF MEMBRANE BIOLOGY | 2002年 / 188卷 / 01期
关键词
Ca2+-ATPase; thermogenesis; Ca2+ transport; heat production; ATP hydrolysis; ATP synthesis;
D O I
10.1007/s00232-001-0171-5
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The sarcoplasmic reticulum Ca2+-ATPase is able to cleave ATP through two different catalytic routes. In one of them, a part of the chemical energy derived from ATP hydrolysis is used to transport Ca2+ across the membrane and part is dissipated as heat. In the second route, the hydrolysis of ATP is completed before Ca2+ transport and all the energy derived from ATP hydrolysis is converted into heat. The second route is activated by the rise of the Ca2+ concentration in the vesicle lumen. In vesicles derived from white skeletal muscle the rate of the uncoupled ATPase is several-fold faster than the rate of the ATPase coupled to Ca2+ transport, and this accounts for both the low Ca2+/ATP ratio usually measured during transport and for the difference of heat produced during the hydrolysis of ATP by intact and leaky vesicles. Different drugs were found to selectively inhibit the uncoupled ATPase activity without modifying the activity coupled to Ca2+ transport. When the vesicles are actively loaded, part of the Ca2+ accumulated leaks to the medium through the ATPase. Heat is either produced or released during the leakage, depending on whether or not the Ca2+ efflux is coupled to the synthesis of ATP from ADP and P-i.
引用
收藏
页码:1 / 9
页数:9
相关论文
共 50 条
  • [21] Functional proteomics of plasma membrane Ca2+-ATPases (PMCAs) in the brain
    Schmidt, N.
    Kollewe, A.
    Constantin, C.
    Henrich, S.
    Bild, W.
    Saalbach, A.
    Schulte, U.
    Fakler, B.
    ACTA PHYSIOLOGICA, 2017, 219 : 92 - 92
  • [22] Subcellular localization of Ca2+-ATPases in lactating mammary gland.
    Prapong, S
    Horst, RL
    Reinhardt, TA
    FASEB JOURNAL, 2000, 14 (04): : A332 - A332
  • [23] New insights into the Ca2+-ATPases that contribute to cadmium tolerance in yeast
    Mielniczki-Pereira, Albanin Aparecida
    Barth Hahn, Ana Barbara
    Bonatto, Diego
    Riger, Cristiano Jorge
    Araujo Eleutherio, Elis Cristina
    Pegas Henriques, Joao Antonio
    TOXICOLOGY LETTERS, 2011, 207 (02) : 104 - 111
  • [24] Subplasmalemmal mitochondria modulate the activity of plasma membrane Ca2+-ATPases
    Frieden, M
    Arnaudeau, S
    Castelbou, C
    Demaurex, N
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2005, 280 (52) : 43198 - 43208
  • [25] Probing Determinants of Cyclopiazonic Acid Sensitivity of Bacterial Ca2+-ATPases
    Gorgel, Manuela
    Kotsubei, Aljona
    Morth, Jens P.
    Nissen, Poul
    Andersen, Jacob L.
    ACTA CRYSTALLOGRAPHICA A-FOUNDATION AND ADVANCES, 2013, 69 : S367 - S367
  • [26] Ca2+-ATPases and their expression in the mammary gland of pregnant and lactating rats
    Reinhardt, TA
    Horst, RL
    AMERICAN JOURNAL OF PHYSIOLOGY-CELL PHYSIOLOGY, 1999, 276 (04): : C796 - C802
  • [27] Ablation of sarcolipin decreases the energy requirements for Ca2+ transport by sarco(endo)plasmic reticulum Ca2+-ATPases in resting skeletal muscle
    Bombardier, Eric
    Smith, Ian C.
    Vigna, Chris
    Fajardo, Val A.
    Tupling, A. Russell
    FEBS LETTERS, 2013, 587 (11) : 1687 - 1692
  • [28] CA2+-ATPASES AND MG2+-ATPASES IN THE GOLGI-APPARATUS AND MICROSOMES OF THE LACTATING MAMMARY-GLANDS OF COWS
    BINGHAM, EW
    MCGRANAGHAN, MB
    WICKHAM, ED
    LEUNG, CT
    FARRELL, HM
    ANNALS OF THE NEW YORK ACADEMY OF SCIENCES, 1992, 671 : 418 - 420
  • [29] Effects of Cs+ on SERCA2 Ca2+-ATPases.
    Kargacin, ME
    Beca, S
    Kargacin, GJ
    BIOPHYSICAL JOURNAL, 2003, 84 (02) : 576A - 576A
  • [30] Calmodulin-stimulated Ca2+-ATPases in the vacuolar and plasma membranes in cauliflower
    Askerlund, P
    PLANT PHYSIOLOGY, 1997, 114 (03) : 999 - 1007