Toward an Understanding of the Structural and Mechanistic Aspects of Protein-Protein Interactions in 2-Oxoacid Dehydrogenase Complexes

The 2-oxoglutarate dehydrogenase complex (OGDHc) is a key enzyme in the tricarboxylic acid (TCA) cycle and represents one of the major regulators of mitochondrial metabolism through NADH and reactive oxygen species levels. The OGDHc impacts cell metabolic and cell signaling pathways through the coup...

Full description

Bibliographic Details
Main Authors: Natalia S. Nemeria, Xu Zhang, Joao Leandro, Jieyu Zhou, Luying Yang, Sander M. Houten, Frank Jordan
Format: Article
Language:English
Published: MDPI AG 2021-04-01
Series:Life
Subjects:
Online Access:https://www.mdpi.com/2075-1729/11/5/407
id doaj-287852682b644e1d865912d3f42da563
record_format Article
spelling doaj-287852682b644e1d865912d3f42da5632021-04-29T23:02:18ZengMDPI AGLife2075-17292021-04-011140740710.3390/life11050407Toward an Understanding of the Structural and Mechanistic Aspects of Protein-Protein Interactions in 2-Oxoacid Dehydrogenase ComplexesNatalia S. Nemeria0Xu Zhang1Joao Leandro2Jieyu Zhou3Luying Yang4Sander M. Houten5Frank Jordan6Department of Chemistry, Rutgers, The State University of New Jersey, Newark, NJ 07102, USADepartment of Chemistry, Rutgers, The State University of New Jersey, Newark, NJ 07102, USADepartment of Genetics and Genomic Sciences, Icahn School of Medicine at Mount Sinai, New York, NY 10029, USADepartment of Chemistry, Rutgers, The State University of New Jersey, Newark, NJ 07102, USADepartment of Chemistry, Rutgers, The State University of New Jersey, Newark, NJ 07102, USADepartment of Genetics and Genomic Sciences, Icahn School of Medicine at Mount Sinai, New York, NY 10029, USADepartment of Chemistry, Rutgers, The State University of New Jersey, Newark, NJ 07102, USAThe 2-oxoglutarate dehydrogenase complex (OGDHc) is a key enzyme in the tricarboxylic acid (TCA) cycle and represents one of the major regulators of mitochondrial metabolism through NADH and reactive oxygen species levels. The OGDHc impacts cell metabolic and cell signaling pathways through the coupling of 2-oxoglutarate metabolism to gene transcription related to tumor cell proliferation and aging. <i>DHTKD1</i> is a gene encoding 2-oxoadipate dehydrogenase (E1a), which functions in the L-lysine degradation pathway. The potentially damaging variants in <i>DHTKD1</i> have been associated to the (neuro) pathogenesis of several diseases. Evidence was obtained for the formation of a hybrid complex between the OGDHc and E1a, suggesting a potential cross talk between the two metabolic pathways and raising fundamental questions about their assembly. Here we reviewed the recent findings and advances in understanding of protein-protein interactions in OGDHc and 2-oxoadipate dehydrogenase complex (OADHc), an understanding that will create a scaffold to help design approaches to mitigate the effects of diseases associated with dysfunction of the TCA cycle or lysine degradation. A combination of biochemical, biophysical and structural approaches such as chemical cross-linking MS and cryo-EM appears particularly promising to provide vital information for the assembly of 2-oxoacid dehydrogenase complexes, their function and regulation.https://www.mdpi.com/2075-1729/11/5/407neurodegenerationglucose metabolismenzyme catalysisprotein-protein interactionhydrogen exchange mass spectrometryprotein cross-linking
collection DOAJ
language English
format Article
sources DOAJ
author Natalia S. Nemeria
Xu Zhang
Joao Leandro
Jieyu Zhou
Luying Yang
Sander M. Houten
Frank Jordan
spellingShingle Natalia S. Nemeria
Xu Zhang
Joao Leandro
Jieyu Zhou
Luying Yang
Sander M. Houten
Frank Jordan
Toward an Understanding of the Structural and Mechanistic Aspects of Protein-Protein Interactions in 2-Oxoacid Dehydrogenase Complexes
Life
neurodegeneration
glucose metabolism
enzyme catalysis
protein-protein interaction
hydrogen exchange mass spectrometry
protein cross-linking
author_facet Natalia S. Nemeria
Xu Zhang
Joao Leandro
Jieyu Zhou
Luying Yang
Sander M. Houten
Frank Jordan
author_sort Natalia S. Nemeria
title Toward an Understanding of the Structural and Mechanistic Aspects of Protein-Protein Interactions in 2-Oxoacid Dehydrogenase Complexes
title_short Toward an Understanding of the Structural and Mechanistic Aspects of Protein-Protein Interactions in 2-Oxoacid Dehydrogenase Complexes
title_full Toward an Understanding of the Structural and Mechanistic Aspects of Protein-Protein Interactions in 2-Oxoacid Dehydrogenase Complexes
title_fullStr Toward an Understanding of the Structural and Mechanistic Aspects of Protein-Protein Interactions in 2-Oxoacid Dehydrogenase Complexes
title_full_unstemmed Toward an Understanding of the Structural and Mechanistic Aspects of Protein-Protein Interactions in 2-Oxoacid Dehydrogenase Complexes
title_sort toward an understanding of the structural and mechanistic aspects of protein-protein interactions in 2-oxoacid dehydrogenase complexes
publisher MDPI AG
series Life
issn 2075-1729
publishDate 2021-04-01
description The 2-oxoglutarate dehydrogenase complex (OGDHc) is a key enzyme in the tricarboxylic acid (TCA) cycle and represents one of the major regulators of mitochondrial metabolism through NADH and reactive oxygen species levels. The OGDHc impacts cell metabolic and cell signaling pathways through the coupling of 2-oxoglutarate metabolism to gene transcription related to tumor cell proliferation and aging. <i>DHTKD1</i> is a gene encoding 2-oxoadipate dehydrogenase (E1a), which functions in the L-lysine degradation pathway. The potentially damaging variants in <i>DHTKD1</i> have been associated to the (neuro) pathogenesis of several diseases. Evidence was obtained for the formation of a hybrid complex between the OGDHc and E1a, suggesting a potential cross talk between the two metabolic pathways and raising fundamental questions about their assembly. Here we reviewed the recent findings and advances in understanding of protein-protein interactions in OGDHc and 2-oxoadipate dehydrogenase complex (OADHc), an understanding that will create a scaffold to help design approaches to mitigate the effects of diseases associated with dysfunction of the TCA cycle or lysine degradation. A combination of biochemical, biophysical and structural approaches such as chemical cross-linking MS and cryo-EM appears particularly promising to provide vital information for the assembly of 2-oxoacid dehydrogenase complexes, their function and regulation.
topic neurodegeneration
glucose metabolism
enzyme catalysis
protein-protein interaction
hydrogen exchange mass spectrometry
protein cross-linking
url https://www.mdpi.com/2075-1729/11/5/407
work_keys_str_mv AT nataliasnemeria towardanunderstandingofthestructuralandmechanisticaspectsofproteinproteininteractionsin2oxoaciddehydrogenasecomplexes
AT xuzhang towardanunderstandingofthestructuralandmechanisticaspectsofproteinproteininteractionsin2oxoaciddehydrogenasecomplexes
AT joaoleandro towardanunderstandingofthestructuralandmechanisticaspectsofproteinproteininteractionsin2oxoaciddehydrogenasecomplexes
AT jieyuzhou towardanunderstandingofthestructuralandmechanisticaspectsofproteinproteininteractionsin2oxoaciddehydrogenasecomplexes
AT luyingyang towardanunderstandingofthestructuralandmechanisticaspectsofproteinproteininteractionsin2oxoaciddehydrogenasecomplexes
AT sandermhouten towardanunderstandingofthestructuralandmechanisticaspectsofproteinproteininteractionsin2oxoaciddehydrogenasecomplexes
AT frankjordan towardanunderstandingofthestructuralandmechanisticaspectsofproteinproteininteractionsin2oxoaciddehydrogenasecomplexes
_version_ 1721500168688238592