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Van Etten, J. L.

Publications and source records attributed to Van Etten, J. L..

2 recordsLinked to original sources

A small viral potassium ion channel with an inherent inward rectification

Some algal viruses have coding sequences for K+ channels with structural and functional characteristics of pore modules of complex K+ channels. Here we exploit the immense structural diversity of natural channel orthologs to discover new basic principles of structure/function correlates in K+ channels. The comparative analysis of three similar K+ channels with monomer sizes [≤] 86 amino acids (AA) shows that one channel (Kmpv1) generates an ohmic conductance in HEK293 cells while the other two channels (KmpvSP1, KmpvPL1) exhibit typical features of canonical Kir channels. Like Kir channels, the rectification of the viral channels is a function of the K+ driving force. Reconstitution of KmpvSP1 and KmpvPL1 in planar lipid bilayers showed rapid channel fluctuations only at voltages negative of the K+ reversal voltage. This rectification was maintained in KCl buffer with 1 mM EDTA, which excludes blocking cations as the source of rectification. This means that rectification of the viral channels must be, unlike Kir channels, an inherent property of the channel proteins. The structural basis for rectification was investigated by a chimera between rectifying and non-rectifying channels as well as point mutations, which made the rectifying channels similar to the ohmic conducting channel. The results of these experiments exclude the domain, which connects the two transmembrane helixes and which includes the pore helix and the selectivity filter, as playing a major role in rectification; inward rectification must be conferred by the transmembrane domains. The finding that a swapping of the AA, which is typical for the two inward rectifiers, with the respective AA from Kmpv1 did not compromise rectification suggests that tertiary or quaternary structural interactions are responsible for this type of gating.

biophysics

Cryopreservation of Paramecium bursaria Chlorella Virus-1 during an active infection cycle of its host

Best practices in laboratory culture management often include cryopreservation of microbiota, but this can be challenging with some virus particles. By preserving viral isolates researchers can mitigate genetic drift and laboratory-induced selection, thereby maintaining genetically consistent strains between experiments. To this end, we developed a method to cryopreserve the model, green-alga infecting virus, Paramecium bursaria Chlorella virus 1 (PBCV-1). We explored cryotolerance of the infectivity of this virus particle, whereby freezing without cryoprotectants was found to maintain the highest infectivity (~2.5%). We then assessed the cryopreservation potential of PBCV-1 during an active infection cycle in its Chlorella variabilis NC64A host, and found that virus survivorship was highest (69.5 {+/-} 16.5 %) when the infected host is cryopreserved during mid-late stages of infection (i.e., coinciding with virion assembly). The most optimal condition for cryopreservation was observed at 240 minutes post-infection. Overall, utilizing the cell as a vehicle for viral cryopreservation resulted in 24.9 - 30.1 fold increases in PBCV-1 survival based on 95% confidence intervals of frozen virus particles and virus cryopreserved at 240 minutes post-infection. Given that cryoprotectants are often naturally produced by psychrophilic organisms, we suspect that cryopreservation of infected hosts may be a reliable mechanism for virus persistence in non-growth permitting circumstances in the environment, such as ancient permafrosts.

microbiology