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Biology subjects

Terzioglu, M.

Publications and source records attributed to Terzioglu, M..

2 recordsLinked to original sources

A species difference in glycerol-3-phosphate metabolism reveals metabolic adaptations in hares

The temperate climate adapted brown hare (Lepus europaeus) and the cold-adapted mountain hare (Lepus timidus) are evolutionarily closely related and interfertile. Still, their cultured skin fibroblasts show clear differences in the expression of genes related to basic cellular metabolism. To study this further, we utilized targeted metabolomics analysis, metabolite tracing, and high-resolution respirometry, and identified significant differences in metabolic pathways associated with adaptive thermogenesis, including a higher rate of glycerol 3-phosphate (G3P) production in the mountain hare. We therefore investigated mitochondrial heat production and its dependence on G3P in the two hare species. The mountain hare maintained lower mitochondrial temperature and had weaker thermal change following OXPHOS inhibition. Manipulating mitochondrial glycerol 3-phosphate dehydrogenase (GPD2) levels demonstrated its role in mitochondrial thermogenesis and revealed species-specific function in maintaining mitochondrial membrane potential. This study unveils previously undocumented and unexpected species differences in the mitochondrial properties of fibroblasts that could indicate differences in metabolic adaptability. These findings also demonstrate the utility of cell culture models in assessing trait differences between species and their evolutionary significance, contributing to a deeper understanding of metabolic adaptation in animals and underscoring the potential of in vitro approaches for eco-physiological studies.

molecular biology↗

Mitochondrial temperature homeostasis resists external metabolic stresses

Based on studies with a fluorescent reporter dye, Mito Thermo Yellow, and the genetically encoded gTEMP ratiometric fluorescent temperature indicator targeted to mitochondria, the temperature of active mitochondria in four mammalian and one insect cell-line was estimated to be up to 15 {degrees}C above that of the external environment to which the cells were exposed. High mitochondrial temperature was maintained in the face of a variety of metabolic stresses, including substrate starvation or modification, decreased ATP demand due to inhibition of cytosolic protein synthesis, inhibition of the mitochondrial adenine nucleotide transporter and, if an auxiliary pathway for electron transfer was available via the alternative oxidase, even respiratory poisons acting downstream of OXPHOS complex I. We propose that the high temperature of active mitochondria is an inescapable consequence of the biochemistry of oxidative phosphorylation and is homeostatically maintained as a primary feature of mitochondrial metabolism. IMPACT STATEMENTMitochondria are up to 15 {degrees}C hotter than their external environment in living cells. In response to diverse metabolic stresses, mitochondrial temperature re-adjusts to this value whenever possible.

biochemistry↗