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VanDemark, A. P.

Publications and source records attributed to VanDemark, A. P..

3 recordsLinked to original sources

GDAP1 binds 4-hydroxynonenal, the toxic end-product of lipid peroxidation, using its GST-like binding pocket

GDAP1 (Ganglioside-induced differentiation-associated protein 1) is a novel member of the GST superfamily of detoxifying enzymes that is anchored to the outer mitochondrial membrane. GDAP1 mutations and changes in expression levels result in the inherited neuropathy Charcot-Marie-Tooth (CMT) disease, types 2K, 4A and 4H. GDAP1 activity has been associated with many mitochondrial functions however direct molecular interactions underpinning these connections have remained elusive. Here we establish that GDAP1 can bind 4-hydroxynonenal (4HNE), a toxic end-product of lipid peroxidation. 4HNE binding requires the -loop, a large sequence motif that is inserted within the substrate recognition domain and is unique to GDAP1. In human cells, GDAP1 overexpression plays a cytoprotective role against oxidative stress. This effect is lost upon deletion of the -loop. Lastly, we demonstrate that a CMT-causing mutant that destabilizes -loop positioning also results in a decrease in 4HNE binding affinity. Together these results establish 4HNE as the biological ligand for GDAP1, provide mechanistic insight into 4HNE binding, and demonstrate that altered 4HNE recognition is the likely mechanism underlying CMT-causing mutants such as T157P near the 4HNE binding site.

biochemistry↗

Unexpected growth of a classic yeast auxotroph

Organisms must either synthesize or assimilate essential organic compounds to survive. The homocysteine synthase Met15 has been considered essential for inorganic sulfur assimilation in yeast since its discovery in the 1970s. As a result, MET15 has served as a genetic marker for hundreds of experiments that play a foundational role in eukaryote genetics and systems biology. Nevertheless, we demonstrate here through structural and evolutionary modeling, in vitro kinetic assays, and genetic complementation, that an alternative homocysteine synthase encoded by the previously uncharacterized gene YLL058W enables cells lacking Met15 to assimilate enough inorganic sulfur for survival and proliferation. These cells however fail to grow in patches or liquid cultures unless provided with exogenous methionine or other organosulfurs. We show that this growth failure, which has historically justified the status of MET15 as a classic auxotrophic marker, is largely explained by toxic accumulation of the gas hydrogen sulfide due to a metabolic bottleneck. When patched or cultured with a hydrogen sulfide chelator, and when propagated as colony grids, cells without Met15 assimilate inorganic sulfur and grow, and cells with Met15 achieve even higher yields. Thus, Met15 is not essential for inorganic sulfur assimilation in yeast. Instead, MET15 is the first example of a yeast gene whose loss conditionally prevents growth in a manner that depends on local gas exchange. Our results have broad implications for investigations of sulfur metabolism, including studies of stress response, methionine restriction, and aging. More generally, our findings illustrate how unappreciated experimental variables can obfuscate biological discovery.

molecular biology↗

Protein-Metabolite Interactomics Reveals Novel Regulation of Carbohydrate Metabolism

Metabolism is highly interconnected and also has profound effects on other cellular processes. However, the interactions between metabolites and proteins that mediate this connectivity are frequently low affinity and difficult to discover, hampering our understanding of this important area of cellular biochemistry. Therefore, we developed the MIDAS platform, which can identify protein-metabolite interactions with great sensitivity. We analyzed 33 enzymes from central carbon metabolism and identified 830 protein-metabolite interactions that were mostly novel, but also included known regulators, substrates, products and their analogs. We validated previously unknown interactions, including two atomic-resolution structures of novel protein-metabolite complexes. We also found that both ATP and long-chain fatty acyl-CoAs inhibit lactate dehydrogenase A (LDHA), but not LDHB, at physiological concentrations in vitro. Treating cells with long-chain fatty acids caused a loss of pyruvate/lactate interconversion, but only in cells reliant on LDHA. We propose that these regulatory mechanisms are part of the metabolic connectivity that enables survival in an ever-changing nutrient environment, and that MIDAS enables a broader and deeper understanding of that network.

biochemistry↗