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Bruch, E. M.

Publications and source records attributed to Bruch, E. M..

2 recordsLinked to original sources

3D architecture and structural flexibility revealed in the subfamily of large glutamate dehydrogenases by a mycobacterial enzyme

Glutamate dehydrogenases (GDHs) are widespread metabolic enzymes that play key roles in nitrogen homeostasis. Large glutamate dehydrogenases composed of 180 kDa subunits (L-GDHs180) contain long N- and C-terminal segments flanking the catalytic core. Despite the relevance of L-GDHs180 in bacterial physiology, the lack of structural data for these enzymes has limited the progress of functional studies. Here we show that the mycobacterial L-GDH180 (mL-GDH180) adopts a quaternary structure that is radically different from that of related low molecular weight enzymes. Intersubunit contacts in mL-GDH180 involve a C-terminal domain that we propose as a new fold and a flexible N-terminal segment comprising ACT-like and PAS-type domains that could act as metabolic sensors for allosteric regulation. These findings uncover unique aspects of the structure-function relationship in the subfamily of L-GDHs.

microbiology

Actinobacteria challenge the paradigm: a unique protein architecture for a well-known central metabolic complex

-ketoacid dehydrogenase complexes are large, tripartite enzymatic machineries carrying out key reactions in central metabolism. Extremely conserved across the tree of life, they have so far all considered to be structured around a high molecular weight hollow core, consisting of up to 60 subunits of the acyltransferase component. We provide here evidence that Actinobacteria break the rule by possessing an acetyltranferase component reduced to its minimally active, trimeric unit, characterized by a unique C-terminal helix that affects the oligomerization and the full 3D architecture of the complex. We show that this unique feature is characterized by an insertion, which together with OdhA is found spread over Actinobacteria. This phylum includes organisms or great interest for agriculture, industrial bio-production and many human pathogens as Mycobacterium tuberculosis. Moreover, components of this complex are key for M. tuberculosis survival in the human host, and its unique core and protein-protein interactions represent potentially "druggable" targets.

microbiology