scholarly journals Assembly and symmetry of the fungal E3BP-containing core of the Pyruvate Dehydrogenase Complex

2020 ◽  
Author(s):  
B. O. Forsberg ◽  
S. Aibara ◽  
R. J. Howard ◽  
N. Mortezaei ◽  
E. Lindahl

AbstractThe pyruvate dehydrogenase complex (PDC) is a central component of all aerobic respiration, connecting glycolysis to mitochondrial oxidation of pyruvate. Despite its central metabolic role, its precise composition and means of regulation remain unknown. To explain the variation in stoichiometry reported for the E3-recruiting protein X (PX) in the fungal PDC, we established cryo-EM reconstructions of the native and recombinant PDC from the filamentous fungus and model organism Neurospora crassa. We find that the PX C-terminal domain localizes interior to the E2 core. Critically, we show that two distinct arrangements of a trimeric oligomer exists, which both result in strict tetrahedral symmetry of the PDC core interior. Both oligomerization and volume occlusion of the PDC interior by PX appears to limit its binding stoichiometry, which explains the variety of stoichiometries found previously for S. cerevisiae. This also suggests that the PX oligomer stability and size are potential mechanisms to dynamically adjust PDC compostion in response to external cues. Moreover, we find that the site where PX binds is conserved within fungi but not mammals, suggesting that it could be therapeutically targeted. To this end, we also show that a PX knockout results in loss of activity through dysfunctional E3 recruitment, leading to severely impaired N. crassa growth on sucrose. The fungal PDC is thus shown to be fundamentally similar to the mammalian PDC in function but subject to other conditions of possible regulation, conditioned by a steric restrictions imposed by the symmetry of the PDC and its components.

2020 ◽  
Vol 11 (1) ◽  
Author(s):  
B. O. Forsberg ◽  
S. Aibara ◽  
R. J. Howard ◽  
N. Mortezaei ◽  
E. Lindahl

Abstract The pyruvate dehydrogenase complex (PDC) is a multienzyme complex central to aerobic respiration, connecting glycolysis to mitochondrial oxidation of pyruvate. Similar to the E3-binding protein (E3BP) of mammalian PDC, PX selectively recruits E3 to the fungal PDC, but its divergent sequence suggests a distinct structural mechanism. Here, we report reconstructions of PDC from the filamentous fungus Neurospora crassa by cryo-electron microscopy, where we find protein X (PX) interior to the PDC core as opposed to substituting E2 core subunits as in mammals. Steric occlusion limits PX binding, resulting in predominantly tetrahedral symmetry, explaining previous observations in Saccharomyces cerevisiae. The PX-binding site is conserved in (and specific to) fungi, and complements possible C-terminal binding motifs in PX that are absent in mammalian E3BP. Consideration of multiple symmetries thus reveals a differential structural basis for E3BP-like function in fungal PDC.


1993 ◽  
Vol 123 (6) ◽  
pp. 915-920 ◽  
Author(s):  
C. Marsac ◽  
D. Stansbie ◽  
G. Bonne ◽  
J. Cousin ◽  
P. Jehenson ◽  
...  

1989 ◽  
Vol 160 (2) ◽  
pp. 715-721 ◽  
Author(s):  
Subramanian Gopalakrishnan ◽  
Mohammed Rahmatullah ◽  
Gary A. Radke ◽  
Susan Powers-Greenwood ◽  
Thomas E. Roche

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