bioRxiv Science⌕ Search

Biology subjects

Berndtsson, J.

Publications and source records attributed to Berndtsson, J..

2 recordsLinked to original sources

Bioengineered yeast tethered respiratory supercomplexes reveal mechanisms governing efficient substrate utilization

The mitochondrial respiratory chain (MRC) enzymatic complexes, essential for aerobic energy transduction in eukaryotic cells, are organized into evolutionarily conserved higher-order structures known as supercomplexes (SCs). The elucidation of the physiological relevance of respiratory SCs is essential for our understanding of mitochondrial function and cellular bioenergetics, yet it has been severely hampered by the limited availability of experimental models isolating SC formation as the sole variable. In the yeast Saccharomyces cerevisiae, where SCs are formed by the association of complexes III and IV into III2IV1 and III2IV2 configurations, compelling evidence suggests that SCs confer a competitive advantage by facilitating cytochrome c diffusion along the SC surface and enhancing respiratory rates. However, the significance of the proposed MRC plasticity and the role of distinct SC conformations in substrate utilization remain unresolved, leaving critical gaps in our understanding of mitochondrial bioenergetics and the adaptive evolution of energy transduction. To address these open questions, we engineered a yeast strain expressing a covalently linked III2IV2 SC, whose high-resolution structure is virtually identical to wild-type. Exclusive expression of this tethered SC supports robust overall respiratory activity but selectively affects mitochondrial respiration of cytosolically-generated NADH. This is attributable to the preferential interaction of distinct SC species with mitochondrial NADH dehydrogenases. We propose that in yeast mitochondria, substrate-driven formation of defined respirasome-like SC organizations contributes to the optimization of electron fluxes across the MRC and support metabolic plasticity.

biochemistry↗

Mg2+-dependent conformational equilibria in CorA: an integrated view on transport regulation

The CorA family of proteins regulates the homeostasis of divalent metal ions in many bacteria, archaea, and eukaryotic mitochondria, making it an important target in the investigation of the mechanisms of transport and its functional regulation. Although numerous structures of open and closed channels are now available for the CorA family, the mechanism of the transport regulation remains elusive. Here, we investigated the conformational distribution and associated dynamic behaviour of the pentameric Mg2+ channel CorA at room temperature using small-angle neutron scattering (SANS) in combination with molecular dynamics (MD) simulations and solid-state nuclear magnetic resonance spectroscopy (NMR). We find that neither the Mg2+-bound closed structure nor the Mg2+-free open forms are sufficient to explain the average conformation of CorA. Our data support the presence of conformational equilibria between multiple states, and we further find a variation in the behaviour of the backbone dynamics with and without Mg2+. We propose that CorA must be in a dynamic equilibrium between different non-conducting states, both symmetric and asymmetric, regardless of bound Mg2+ but that conducting states become more populated in Mg2+-free conditions. These properties are regulated by backbone dynamics and are key to understanding the functional regulation of CorA.

biophysics↗