4.5 Article

Variation in the organization and subunit composition of the mammalian pyruvate dehydrogenase complex E2/E3BP core assembly

期刊

BIOCHEMICAL JOURNAL
卷 437, 期 -, 页码 565-574

出版社

PORTLAND PRESS LTD
DOI: 10.1042/BJ20101784

关键词

E3-binding stoichiometry; E2/E3BP core organization; isothermal titration calorimetry (ITC); pyruvate dehydrogenase complex; small-angle neutron scattering (SANS); variable substitution model

资金

  1. Engineering and Physical Sciences Research Council (EPSRC) [GR/R99393/01, EP/C015452/1]
  2. Wellcome Trust
  3. BBSRC (Biotechnology and Biological Sciences Research Council), U.K.
  4. UMDF (United Mitochondrial Disease Foundation), U.S.A.
  5. EU [HPRI-2001-50065, RII3-CT-2003-505925]
  6. Biotechnology and Biological Sciences Research Council [B20089] Funding Source: researchfish
  7. Engineering and Physical Sciences Research Council [EP/C015452/1] Funding Source: researchfish
  8. EPSRC [EP/C015452/1] Funding Source: UKRI

向作者/读者索取更多资源

Crucial to glucose homoeostasis in humans, the hPDC (human pyruvate dehydrogenase complex) is a massive molecular machine comprising multiple copies of three distinct enzymes (E1-E3) and an accessory subunit, E3BP (E3-binding protein). Its icosahedral E2/E3BP 60-meric 'core' provides the central structural and mechanistic framework ensuring favourable E1 and E3 positioning and enzyme co-operativity. Current core models indicate either a 48E2 + 12E3BP or a 40E2 + 20E3BP subunit composition. In the present study, we demonstrate clear differences in subunit content and organization between the recombinant hPDC core (rhPDC; 40E2 + 20E3BP), generated under defined conditions where E3BP is produced in excess, and its native bovine (48E2 + 12E3BP) counterpart. The results of the present study provide a rational basis for resolving apparent differences between previous models, both obtained using rhE2/E3BP core assemblies where no account was taken of relative E2 and E3BP expression levels. Mathematical modelling predicts that an 'average' 48E2 + 12E3BP core arrangement allows maximum flexibility in assembly, while providing the appropriate balance of bound E1 and E3 enzymes for optimal catalytic efficiency and regulatory fine-tuning. We also show that the rhE2/E3BP and bovine E2/E3BP cores bind E3s with a 2:1 stoichiometry, and propose that mammalian PDC comprises a heterogeneous population of assemblies incorporating a network of E3 (and possibly E1) cross-bridges above the core surface.

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