Search bioRxivSearch

Biology subjects

Frieg, B.

Publications and source records attributed to Frieg, B..

2 recordsLinked to original sources

α-Synuclein polymorphism determines oligodendroglial dysfunction

Synucleinopathies, such as Parkinsons disease (PD) and Multiple System Atrophy (MSA) are progressive and unremitting neurological diseases. For both PD and MSA, -synuclein fibril inclusions inside brain cells are neuropathological hallmarks. In addition, amplification of -synuclein fibrils from body fluids is a potential biomarker distinguishing PD from MSA. However, little is known about the structure of -synuclein fibrils amplified from human samples and its connection to -synuclein fibril structure in the human brain. Here we amplified -synuclein fibrils from PD and MSA brain tissue, characterized its seeding potential in oligodendroglia, and determined the 3D structures by cryo-electron microscopy. We show that the -synuclein fibrils from a MSA patient are more potent in recruiting the endogenous -synuclein and evoking a redistribution of TPPP/p25 protein in mouse primary oligoden-droglial cultures compared to those amplified from a PD patient. Cryo-electron microscopy shows that the PD- and MSA-amplified -synuclein fibrils share a similar protofilament fold but differ in their inter-protofilament interface. The structures of the brain-tissue amplified -synuclein fibrils are also similar to other in vitro and ex vivo -synuclein fibrils. Together with published data, our results suggest that Syn fibrils differ between PD and MSA in their quaternary arrangement and could further vary between different forms of PD and MSA.

neuroscience

Functional and structural characterization of interactions between opposite subunits in HCN pacemaker channels

Hyperpolarization-activated and cyclic nucleotide (HCN) modulated channels are tetrameric cation channels. In each of the four subunits, the intracellular cyclic nucleotide-binding domain (CNBD) is coupled to the transmembrane domain via a helical structure, the C-linker. High-resolution channel structures suggest that the C-linker enables functionally relevant interactions with the opposite subunit, which might be critical for coupling the conformational changes in the CNBD to the channel pore. We combined mutagenesis, patch-clamp technique, confocal patch-clamp fluorometry, and molecular dynamics simulations to show that residue K464 of the C-linker is essential for stabilizing the closed state of the mHCN2 channel by forming interactions with the opposite subunit. MD simulations revealed that both cAMP and K464E induce a rotation of the intracellular domain relative to the channel pore, weakening the autoinhibitory effect of the unoccupied CL-CNBD region. The adopted poses are in excellent agreement with structural results.

biophysics