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Brunetta, H. S.

Publications and source records attributed to Brunetta, H. S..

2 recordsLinked to original sources

Intrinsic bioenergetic adaptations compensate for reduced mitochondrial content in HER2-driven mammary tumors

It is now recognized that mitochondria play a crucial role in tumorigenesis, however, it has become clear that tumor metabolism varies significantly between cancer types. The failure of recent clinical trials aimed at directly targeting tumor respiration through oxidative phosphorylation inhibitors underscores the critical need for further studies providing an in-depth evaluation of mitochondrial bioenergetics. Accordingly, we comprehensively assessed the bulk tumor and mitochondrial metabolic phenotype in murine HER2-driven mammary cancer tumors and benign mammary tissue. Transcriptomic and proteomic profiling revealed a broad downregulation of mitochondrial genes/proteins in tumors, including OXPHOS subunits comprising Complexes I-IV. Despite reductions in tumor mitochondrial proteins, mitochondrial respiration was several-fold higher compared to benign mammary tissue, which persisted regardless of normalization method (wet weight, total protein content and when corrected for mitochondrial content). This upregulated respiratory capacity could not be explained by OXPHOS uncoupling, suggesting HER2 signaling regulates intrinsic mitochondrial bioenergetics. In further support, lapatinib, an EGFR/HER2 tyrosine kinase inhibitor, attenuated mitochondrial respiration in NF639 murine mammary tumor epithelial cells. Together, this data highlights that the typical correlation between mitochondrial content and respiratory capacity may not apply to all tumor types and implicates HER2-linked activation of mitochondrial respiration supporting tumorigenesis in this model.

cancer biology↗

IF1 controls UCP1-dependent mitochondrial bioenergetics in brown adipocytes

While mechanisms controlling mitochondrial uncoupling protein-1 (UCP1) expression and function in thermogenic adipocytes play a pivotal role in non-shivering thermogenesis (NST), it remains unclear whether F1Fo-ATP synthase function is regulated during NST. Here, we show that Inhibitory Factor 1 (IF1, encoded by Atp5if1), an inhibitor of ATP synthase hydrolytic activity, is a critical negative regulator of brown adipocyte energy metabolism. In mice, IF1 protein content is markedly diminished in brown adipose tissue (BAT) after 5 days of cold exposure. Additionally, the capacity of ATP synthase to generate mitochondrial membrane potential through ATP hydrolysis (the so-called "reverse mode" of ATP synthase) is higher in mitochondria isolated from cold- adapted mice compared to mice housed at room temperature. In vitro, IF1 overexpression results in an inability of mitochondria to sustain mitochondrial membrane potential upon adrenergic stimulation and this occurs in a UCP1-dependent manner. In brown adipocytes, IF1 silencing is sufficient to increase mitochondrial lipid oxidation and the cellular dependency on glycolysis to produce ATP. Conversely, IF1 overexpression blunts mitochondrial respiration without causing cellular energetic stress, leading to a quiescent-like phenotype in brown adipocytes. In mice, adeno-associated virus- mediated IF1 overexpression in BAT suppresses adrenergic-stimulated thermogenesis and decreases mitochondrial respiration in this tissue. Taken together, our data shows that the downregulation of IF1 upon cold serves to facilitate the reverse mode of ATP synthase to enable energetic adaptation and effectively support NST in BAT. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=85 SRC="FIGDIR/small/550888v2_ufig1.gif" ALT="Figure 1"> View larger version (37K): org.highwire.dtl.DTLVardef@16146faorg.highwire.dtl.DTLVardef@17afc1corg.highwire.dtl.DTLVardef@13da476org.highwire.dtl.DTLVardef@1f86fd3_HPS_FORMAT_FIGEXP M_FIG C_FIG

cell biology↗