Common origin of sterol biosynthesis points to a feeding strategy shift in Neoproterozoic animals.

Brunoir, T; Mulligan, C; Sistiaga, A; Vuu, K M; Shih, P M; O'Reilly, S S; Summons, R E; Gold, D A · Nat Commun · 2023

basic_science · Level V

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Abstract

Steranes preserved in sedimentary rocks serve as molecular fossils, which are thought to record the expansion of eukaryote life through the Neoproterozoic Era ( ~ 1000-541 Ma). Scientists hypothesize that ancient C<sub>27</sub> steranes originated from cholesterol, the major sterol produced by living red algae and animals. Similarly, C<sub>28</sub> and C<sub>29</sub> steranes are thought to be derived from the sterols of prehistoric fungi, green algae, and other microbial eukaryotes. However, recent work on annelid worms-an advanced group of eumetazoan animals-shows that they are also capable of producing C<sub>28</sub> and C<sub>29</sub> sterols. In this paper, we explore the evolutionary history of the 24-C sterol methyltransferase (smt) gene in animals, which is required to make C<sub>28+</sub> sterols. We find evidence that the smt gene was vertically inherited through animals, suggesting early eumetazoans were capable of C<sub>28+</sub> sterol synthesis. Our molecular clock of the animal smt gene demonstrates that its diversification coincides with the rise of C<sub>28</sub> and C<sub>29</sub> steranes in the Neoproterozoic. This study supports the hypothesis that early eumetazoans were capable of making C<sub>28+</sub> sterols and that many animal lineages independently abandoned its biosynthesis around the end-Neoproterozoic, coinciding with the rise of abundant eukaryotic prey.

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