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Vacanti, N. M.

Publications and source records attributed to Vacanti, N. M..

2 recordsLinked to original sources

Vitamin B12 supports skeletal muscle oxidative phosphorylation capacity in male mice

ObjectivesVitamin B12 plays a vital role in folate-mediated one-carbon metabolism (FOCM), a series of one-carbon transfer reactions that generate nucleotides (thymidylate (dTMP) and purines) and methionine. Inadequate levels of B12 impair FOCM, depressing de novo thymidylate (dTMP) synthesis, which in turn leads to uracil accumulation in DNA. This phenomenon has been well documented in nuclear DNA. Our previous work in liver tissue has shown that mitochondrial DNA (mtDNA) is more sensitive to FOCM impairments in that mtDNA exhibits elevated uracil levels before uracil concentrations in nuclear DNA change. However, the functional consequences of uracil accumulation in mtDNA are largely unknown. The purpose of this study was to determine how a functional B12 deficiency (induced by reduced levels of the B12-dependent enzyme methionine synthase (MTR)) and dietary B12 deficiency affects mtDNA integrity and mitochondrial function in energetic and mitochondria-rich tissues such as skeletal muscle. MethodsMale Mtr+/+ and Mtr+/- mice were weaned to either an AIN93G-based control (C) diet containing 25 {micro}g/kg vitamin B12 or a B12-deficient (-B12) diet containing 0 {micro}g/kg vitamin B12 to explore the effects of functional (Mtr+/-) and dietary B12 deficiency on muscle weight, uracil content in mtDNA, mtDNA content, and oxidative phosphorylation complex capacity in skeletal muscle. Aged (20-22mo) male C57BL6/N mice were acclimated to an AIN93G control diet four weeks, then received either weekly injections of saline (vehicle control [30 uL 0.9% NaCl]) or B12 (0.65mg per 30uL 0.9% NaCl) in each of two hindleg muscles [1.25 mg B12 total]) for 8 weeks. ResultsThe tibialis anterior (TA) muscle from Mtr+/-mice exhibited lowered maximal respiratory capacity of complex I, II, and IV of the electron transport chain than did TA from Mtr+/+ mice. Exposure to the -B12 diet lowered maximal capacity of complex I in red, mitochondrially rich muscle (soleus and mitochondria-rich portions of quadriceps and gastrocnemius) (p=0.02). Levels of uracil accumulation in mtDNA in red muscle and gastrocnemius were elevated [~]10 fold with exposure to -B12 diet (p=0.04 and p<0.001, respectively). In aged mice gastrocnemius complex IV activity increased with intramuscular B12 supplementation (p=0.04) ConclusionsExposure to a B12-deficient diet led to uracil accumulation in mtDNA and impaired maximal oxidative capacity in two different types of skeletal muscle. B12 supplementation improved complex IV maximal capacity in gastrocnemius from aged mice.

biochemistry↗

Proteomic analysis reveals microvesicles containing NAMPT as mediators of radiation resistance in glioma

Glioma is a malignant brain tumor that is highly resistant to radiation and chemotherapy, where patients survive on average only 15 months after diagnosis. Furthering the understanding of mechanisms leading to radiation resistance of glioma is paramount to identify novel therapeutic targets. Previous studies have shown that glioma stem cells (GSCs) play an important role in promoting radiation resistance and disease recurrence. Herein we analyze the proteomic alterations occurring in patient-derived GSCs upon radiation treatment in order to identify molecular drivers of resistance. We show that proteome changes upon radiation accurately predict the resistance status of the cells, whereas resistance to radiation does not correlate with glioma transcriptional subtypes. We further show that the radio-resistant GSC-267 cell line sheds microvesicles (MVs) enriched in the metabolic enzyme nicotinamide phosphoribosyltransferase (NAMPT). These MVs can be transferred to recipient fibroblasts and radio-sensitive GSCs, enhancing their intracellular total NAD+ and NADH level, and their ability to proliferate when cultured in low serum, treated with a radio-mimetic drug or irradiated. The NAMPT enzymatic inhibitor FK-866 blocked the ability of MVs from GSC-267 cells to mediate these effects. Similarly, GSC-267 cells where NAMPT was knocked-down using shRNA, which produced MVs depleted of this enzyme, were unable to promote cell proliferation. Collectively, our findings demonstrates that proteome-level regulation can accurately predict the radio-resistance status of GSCs, and identifies NAMPT transfer via MVs as a mechanism for spreading radiation resistance within the glioma tumor microenvironment. SignificanceThe highly aggressive and deadly brain cancer glioma is commonly resistant to standard chemo- and radio-therapy. We used systems biology approaches to study patient-derived glioma stem cells (GSCs), which are known to be responsible for therapeutic resistance, and cell-to-cell communication mediated by extracellular vesicles (EVs), which plays an important role in tumor progression. Analysis of the proteome of GSCs and of the EVs they release led us to determine that the EV-mediated transfer of the metabolic enzyme nicotinamide phosphorybosyltransferase (NAMPT) from radio-resistant to less aggressive cells confers resistance to radiation. Our findings identify a mechanism of therapy resistance in glioma, and suggest that NAMPT inhibition could enhance the efficacy of radiation for the treatment of glioma.

cancer biology↗