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Ippolito, J. E.

Publications and source records attributed to Ippolito, J. E..

3 recordsLinked to original sources

Disruption of lactate metabolism in the peripheral nervous system leads to motor-selective deficits

Schwann cells (SCs) myelinate and provide trophic support to axons in the peripheral nervous system (PNS) and disruption of SC cellular metabolism leads to demyelination and axon degeneration, both symptoms of peripheral neuropathies. The lactate shuttle hypothesis proposes that glycolytic support cells supply lactate to adjacent axons to sustain their high metabolic demands, a process that requires the interconversion of lactate and pyruvate via lactate dehydrogenase (LDH) in both SCs and neurons. To test this hypothesis in the PNS, we selectively knocked out the genes for both LDH enzymes, LDHA and LDHB, in motor neurons (MNs), sensory neurons (SNs), or SCs. Interestingly, motor axons and their synapses progressively degenerate when LDH is deleted from either MNs or SCs; however, defects in sensory axons or their terminals were not observed when LDH was excised from either SNs or SCs. Deletion of LDH in SCs also leads to a decrease in total ATP levels in peripheral nerves despite a marked accumulation of pyruvate and glycolytic intermediates, consistent with the failure of pyruvate to lactate conversion in SCs leading to energetic deficits in axons. These results support a model in which motor axons are more dependent on SC-derived lactate than are sensory axons, a specific dependency that suggests LDH and lactate shuttling influence the course of motor-dominated neuropathies such as ALS.

neuroscience↗

De novo serine biosynthesis from glucose predicts sex-specific response to antifolates in non-small cell lung cancer cell lines

Lung cancer is the leading cause of cancer-related death. Intriguingly, males with non-small cell lung cancer (NSCLC), the most common type of lung cancer, have a higher mortality rate than females. Here, we investigated the role of serine metabolism as a predictive marker for sensitivity to the antifolate pemetrexed in male and female NSCLC cell lines. Using [13C6] glucose tracing in NSCLC cell lines, we found that male cells generated significantly more serine from glucose than female cells. Higher serine biosynthesis was further correlated with increased sensitivity to pemetrexed in male cells only. Concordant sex differences in metabolic gene expression were evident in NSCLC and pan-cancer transcriptome datasets, suggesting a potential mechanism with wide-reaching applicability. These data were further validated by integrating antifolate drug cytotoxicity and metabolic pathway transcriptome data from pan-cancer cell lines. Together, these findings highlight the importance of considering sex differences in cancer metabolism to improve treatment for all patients.

cancer biology↗

Sex Differences in Brain Tumor Glutamine Metabolism Reveal Sex-Specific Vulnerabilities to Treatment

Sex differences in normal metabolism are well described, but whether they persist in cancerous tissue is unknown. We assessed metabolite abundance in glioblastoma surgical specimens and found that male glioblastomas are enriched for amino acids, including glutamine. Using PET imaging, we found that gliomas in male patients exhibit significantly higher glutamine uptake. These sex differences were well-modeled in murine transformed astrocytes, in which male cells imported and metabolized more glutamine and were more sensitive to glutaminase 1 (GLS1) inhibition. The sensitivity to GLS1 inhibition in males was driven by their dependence on glutamine-derived glutamate for -ketoglutarate synthesis and TCA cycle replenishment. Females were resistant to GLS1 inhibition through greater pyruvate carboxylase-mediated TCA cycle replenishment. Thus, clinically important sex differences exist in targetable elements of metabolism. Recognition of sex-biased metabolism is an opportunity to improve treatments for all patients through further laboratory and clinical research.

cancer biology↗