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Kurmi, K.

Publications and source records attributed to Kurmi, K..

5 recordsLinked to original sources

Metabolic-epigenetic coupling between leucine catabolism and glycolysis drives CDK4/6 inhibitor resistance

Resistance to CDK4/6 inhibitors limits the durability of therapy for ER+ breast cancer. Despite the identification of mechanisms that regulate resistance, the metabolic adaptations that enable therapeutic escape remain poorly understood. Here, we identify a metabolic-epigenetic circuit that drives resistance by coordinately rewiring amino acid and glucose metabolism. CDK4/6 inhibitor-resistant ER+ tumor cells upregulate the leucine transporter SLC7A5, enhancing leucine uptake. SLC7A5 overexpression is sufficient to confer palbociclib resistance across ER+ cell lines, patient-derived organoids and xenografts. Stable isotope tracing in cell lines and in xenograft tumors revealed that leucine is catabolized through BCAT2 and HMGCL to increase acetyl-CoA levels, and elevated acetyl-CoA promotes H3K27 acetylation at the GLUT1 promoter, upregulating GLUT1 expression and glycolytic activity. Disrupting leucine transport, catabolism, or availability suppresses GLUT1 expression and restores therapeutic sensitivity in resistant models. In patients receiving palbociclib-based therapy, high SLC7A5 expression and coordinated SLC7A5-GLUT1 co-expression are associated with shorter progression-free survival. Together, these findings define a metabolic-epigenetic mechanism linking branched-chain amino acid catabolism to glycolysis and identify a biomarker-associated metabolic vulnerability in advanced ER+ breast cancer.

cancer biology↗

Matrix nucleotide homeostasis couples energetic state to mitochondrial translation

Mitochondrial protein synthesis is essential for oxidative phosphorylation, yet how organellar energetic state regulates the mitochondrial translation machinery remains poorly understood. Here, we show that mitochondrial translation is acutely sensitive to ATP synthase-dependent bioenergetic state. Pharmacological inhibition of the F1Fo-ATP synthase with oligomycin or citreoviridin rapidly and selectively suppresses mitochondrial protein synthesis, while mitoribosome profiling reveals a genome-wide loss of productive ribosome engagement. ATP synthase inhibition induces inner-membrane hyperpolarization, depletes bioavailable matrix ATP, and reduces matrix GTP availability. Relieving hyperpolarization restores nucleotide pools and mitochondrial translation despite persistent ATP synthase inhibition, whereas selective restoration of matrix GTP markedly rescues protein synthesis when adenine nucleotide exchange is restricted. These findings identify matrix GTP availability as a proximal energetic constraint on mitochondrial translation and reveal an organelle-intrinsic mechanism coupling ATP synthase-dependent bioenergetic state to mitoribosome activity.

cell biology↗

A SIRT5-induced metabolic switch underlies chemoresistance and ATR checkpoint dependence in triple-negative breast cancer

Chemoresistance is the leading cause of poor prognosis in triple-negative breast cancer (TNBC), yet the underlying mechanisms remain unknown. To reveal metabolic drivers of de novo chemoresistance in TNBC, we analyzed pretreatment primary tumor biopsies, employing quantitative proteomics and metabolomics. Chemoresistant TNBCs exhibit hallmarks of oxidative phosphorylation (OXPHOS) and altered nucleotide metabolism linked to overexpression of the mitochondrial sirtuin, SIRT5. Through gain- and loss-of-function studies and stable isotope tracing, we demonstrate that SIRT5 induces a coordinated metabolic switch that redirects glycolysis to the pentose phosphate pathway, thereby augmenting nucleotide pools, while enhancing glutaminolysis to support OXPHOS. Mechanistically, SIRT5 enhances conversion of 6-phospho-D-gluconate to ribulose-5-phosphate through demalonylation of 6-phosphogluconate dehydrogenase (6-PGD), and coordinately activates oncogenic c-MYC to promote glutamine utilization and dependence. Concurrently, SIRT5-induced nucleotide deregulation induces replication stress and hypersensitivity to ATR checkpoint activation, and ATR inhibition synergistically reverses chemoresistance in TNBC. Thus, elevated SIRT5 orchestrates a coordinated metabolic switch to expand nucleotide pools and drive chemoresistance, while producing ATR checkpoint dependence that represents a metabolic vulnerability of SIRT5-overexpressing TNBC. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=182 HEIGHT=200 SRC="FIGDIR/small/716852v1_ufig1.gif" ALT="Figure 1"> View larger version (45K): org.highwire.dtl.DTLVardef@1c7a27corg.highwire.dtl.DTLVardef@17cb22borg.highwire.dtl.DTLVardef@1956670org.highwire.dtl.DTLVardef@1786dee_HPS_FORMAT_FIGEXP M_FIG C_FIG

cancer biology↗

Glutamine-Dependent Biosynthetic Pathways Fuel Autoreactive T and B Cells in Foxp3 Deficiency-mediated Disease

Foxp3 deficiency causes a profound loss of immune tolerance, unleashing autoreactive T and B cells, lymphoproliferation, cytokine-driven inflammation, and autoantibody production. This autoimmune pathology is fueled by increased glutamine usage, but it remains unresolved whether glutamine is necessary to produce energy, or for biosynthetic pathways leading to inosine and asparagine production. Here, we demonstrate that glutamine utilization supports Foxp3-deficiency mediated disease independently of pathogenic Foxp3-deficient Treg cell energetic reprogramming. Mechanistically, glutamine biosynthetic pathways sustain conventional T cell activation and proinflammatory cytokine production preventing inosine accumulation and signaling, thus implicating adenosine pathway modulation in autoreactive T cell dysregulation. Conversely, autoreactive B cell activation and autoantibody production depend on glutamine-dependent asparagine synthesis, which we reveal as a targetable vulnerability for autoantibody formation. These findings highlight glutamine-driven biosynthetic processes as critical drivers of autoimmunity and reveal distinct metabolic vulnerabilities in autoreactive T and B cells that can be targeted for therapeutic intervention.

immunology↗

Depletion of extracellular asparagine impairs self-reactive T cells and ameliorates autoimmunity in a murine model of multiple sclerosis

Amino acids play critical roles in the activation and function of lymphocytes. Here we show that the non-essential amino acid, asparagine, is essential for optimal activation and proliferation of CD4+ T cells. We demonstrate that asparagine depletion at different time points after CD4+ T cell activation reduces mitochondrial membrane potential and function. Furthermore, asparagine depletion at specific time points during CD4+ T cell differentiation reduces cytokine production in multiple CD4+ T cell subsets. In an adoptive transfer model of experimental autoimmune encephalomyelitis (EAE), myelin oligodendrocyte-specific pathogenic T helper 17 cells differentiated under Asn-deficient conditions exhibited reduced encephalitogenic potential and attenuated EAE severity. In a model of EAE induced by active immunization, therapeutic depletion of extracellular Asn significantly reduced disease severity. These results identify asparagine as a key metabolic regulator of the pathogenicity of autoreactive CD4+ T cells and suggest that targeting asparagine metabolism may be a novel therapeutic strategy for autoimmunity.

immunology↗