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Biology subjects

Link, A. C.

Publications and source records attributed to Link, A. C..

2 recordsLinked to original sources

A novel, fig-associated microbe promotes reproductive success via variable life history mechanisms in C. elegans and C. inopinata

Variation in life history strategies is among the most striking features of animal diversity. Simultaneously, the microbes an animal interacts with are a critical and dynamic aspect of the host environment that can have profound impacts on their life history traits. As microbial environments diverge across animal lineages, life histories and their responses to such microbial contexts are expected to evolve as a consequence. Caenorhabditis nematodes are bacterivores that exhibit a diversity of life history strategies and fill diverse ecological niches. C. elegans thrives on rotting plants and grows rapidly with high fecundity; C. inopinata thrives in fresh figs and grows more slowly with lower fecundity. To understand how hosts with divergent life histories and ecologies respond to the microbes they interact with, we isolated over forty bacterial species from the natural fig environment of C. inopinata. This microbial survey revealed an isolate, Klebsiella sp. WOUb2, that doubles the population growth rate of C. inopinata. While this isolate also increases the population growth rate of C. elegans, Klebsiella sp. WOUb2 increases individual fecundity and developmental rate in C. elegans, whereas it only increases developmental rate of C. inopinata. Thus, fitness is modulated by variable life history mechanisms in the two species. Comparisons with nucleotide databases reveal Klebsiella sp. WOUb2 is closely related to other Klebsiella isolates known to influence Caenorhabditis nematode fitness. Additionally, the similarity of Klebsiella sp. WOUb2 to microbes associated with fig wasps and figs suggests C. inopinata frequently encounters this microbe in its natural context. Taken together, this shows that different physiological responses can underlie conserved, beneficial interspecific interactions.

evolutionary biology↗

Bifunctional probes reveal the rules of intracellular ether lipid transport

Ether glycerophospholipids bear a long chain alcohol attached via an alkyl or vinyl ether bond at the sn1 position of the glycerol backbone. Emerging evidence suggests that ether lipids play a significant role in physiology and human health but their precise cellular functions remain largely unknown. Here, we introduce bifunctional ether lipid probes bearing diazirine and alkyne groups to study ether lipid biology. To interrogate the kinetics of intracellular ether lipid transport in mammalian cells we used a combination of fluorescence imaging, machine learning-assisted image analysis and mathematical modelling. We find that alkyl-linked ether lipids are transported up to twofold faster than vinyl-linked plasmalogens, suggesting that the lipid transport machinery can distinguish between linkage types differing by as little as two hydrogen atoms. We find that ether lipid transport predominantly occurs via non-vesicular pathways, with varying contributions from vesicular mechanisms between cell types. Altogether, our results suggest that differential recognition of alkyl- and vinyl ether lipids by lipid transfer proteins contributes to their distinct biological functions. In the future, the probes reported here will enable studying ether lipid biology in much greater detail through identification of interacting proteins and in-depth characterization of intracellular ether lipid dynamics.

cell biology↗