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Nikelshparg, E.

Publications and source records attributed to Nikelshparg, E..

3 recordsLinked to original sources

Mitochondrial cytochrome c accumulation accompanies reduced electron flux through complex IV without enhancing cell sensitivity to apoptosis

We show that chronic impairment of mitochondrial respiration is associated with marked accumulation of cytochrome c (Cytc) protein. Using SCO2-deficient HCT116 cells lacking functional cytochrome c oxidase and wild-type cells exposed to sustained hypoxia, we found that substantial mitochondrial Cytc accumulation parallels reduced electron flux through Cytc. SCO2-deficient cells exhibited equally elevated Cytc levels under normoxia (19% O2) and hypoxia (0.1-3% O2). Wild-type cells under sustained hypoxia accumulated Cytc, reaching levels comparable to those in SCO2-deficient cells. This effect was reversible upon reoxygenation. Increased Cytc protein levels were also observed in other cell models, including primary cortical neurons cultured under chronic hypoxia and in cerebral cortex tissue from hypoxia-exposed mice. Cytc accumulation occurred independently of CYCS transcription, mRNA translation, HIF activation, ROS production and changes in mitochondrial network. Pharmacological inhibition of complex III was likewise accompanied by increased Cytc levels, whereas mitochondrial uncoupling had no effect, suggesting that impaired electron transfer rather than membrane depolarisation per se underlies this association. Raman spectroscopy revealed enrichment of reduced Cytc and an increased Cytc-to-cytochrome b ratio in respiration-deficient cells. Further supporting a stabilisation-based mechanism, the fraction of membrane-unbound ferro-Cytc was decreased in SCO2-deficient cells, consistent with moderate cardiolipin enrichment, which is known to enhance retention of Cytc at the inner mitochondrial membrane. Despite elevated mitochondrial Cytc content, SCO2-deficient cells were less susceptible to apoptosis induced by intermittent hypoxia or dichloroacetate. Together, these findings indicate that reduced electron flux through complex IV is associated with Cytc accumulation through increased protein stability and membrane retention without enhancing apoptotic sensitivity.

Cell Biology↗

The mitochondrial chaperone HSPD1 folds MTHFD2 independently of its co-chaperone HSPE1

Acquiring new cellular states entails metabolic reprogramming driven by changes in the expression of cytosolic and mitochondrial metabolic enzymes. Most mitochondrial proteins are synthesized in the cytosol and imported into the mitochondria in a linear form, after which they are folded by a network of mitochondrial chaperones and co-chaperones. Which mitochondrial protein is dependent upon which chaperone for its folding is largely unknown. HSPD1/HSPE1 (HSP60/HSP10) are evolutionarily conserved mammalian homologues of the bacterial proteins GroEL/GroES, forming a chamber-and-lid chaperonin to facilitate the folding of client proteins. We used gene knockdown and SILAC-based proteomics to identify HSPD1 client proteins. We found that HSPD1 supports the expression of Methylenetetrahydrofolate Dehydrogenase 2 (MTHFD2), a key essential protein in the mitochondrial one-carbon (1C) pathway, in cells and tumors, and directly folds MTHFD2, independently of its co-chaperone HSPE1. HSPD1 interacts with MTHFD2 in mitochondria, and MTHFD2 is degraded by LONP1 in HSPD1 knockdown cells. Consequently, we observed reduced nucleotide and S-adenosylmethionine (SAM) levels in HSPD1 knockdown and found minimal overlap in the transcriptional and metabolic cellular responses to HSPD1 vs. HSPE1 depletion. In C. elegans, knockout of HSP60 triggers the mitochondrial stress response in the gut, while HSP10 knockout triggers the mitochondrial stress response in muscle tissue. Our data support that HSPD1 is an MTHFD2 chaperone and that, in addition to working together, HSPD1 and HSPE1 have distinct biological functions.

cell biology↗

A Tunable and Druggable Mechanism to Delay Forgetting of Olfactory Memories in C. elegans

The poet W.B Yeats wrote that "All that is personal soon rots, it must be packed in ice or salt". Here we show that in Caenorhabditis elegans nematodes, simple animals with just 302 neurons, memories are preserved on ice and in lithium salt. C. elegans nematodes can form associative memories, which are typically forgotten quickly. We discovered that when placed on ice, worms delay forgetting of specific olfactory memories by at least 8-fold. Delayed forgetting was canceled completely when the worms were gradually adapted to low temperatures, owing to a genetically-encoded program that turns acclimated worms cold-tolerant. RNA-seq, mutant analyses, and pharmacological assays revealed that regulation of membrane properties switches cold-induced delayed forgetting ON and OFF, and, remarkably, that lithium delays forgetting only in cold-sensitive but not cold-tolerant worms. We found that downregulation of the diacylglycerol pathway in the AWC sensory neurons is essential for lithium-mediated delayed forgetting, and using neuronal activity recordings located the memory trace to the downstream AIY interneurons. We suggest that the awesome genetic tractability of C. elegans might be harnessed to study the effects of lithium and cold temperatures on the brain, why it influences psychiatric disorders, and even more fundamentally how memory is stored and lost.

neuroscience↗