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Discovery of a terpene synthase synthesizing a nearly non-flexible eunicellane reveals the basis of flexibility. | LitMetric

AI Article Synopsis

  • Eunicellane diterpenoids are special compounds that come from marine corals and are known for their unique structure, but we don't find them much in other living things like plants or bacteria.
  • Scientists found a protein called MicA that helps make a type of eunicellane that doesn't move around much, which gives us clues about why these structures are sometimes flexible.
  • By studying different eunicellane synthases and using advanced methods like computer simulations and experiments, researchers learned how MicA works and how it produces this nearly stiff eunicellane structure.

Article Abstract

Eunicellane diterpenoids, containing a typical 6,10-bicycle, are bioactive compounds widely present in marine corals, but rarely found in bacteria and plants. The intrinsic macrocycle exhibits innate structural flexibility resulting in dynamic conformational changes. However, the mechanisms controlling flexibility remain unknown. The discovery of a terpene synthase, MicA, that is responsible for the biosynthesis of a nearly non-flexible eunicellane skeleton, enable us to propose a feasible theory about the flexibility in eunicellane structures. Parallel studies of all eunicellane synthases in nature discovered to date, including 2Z-geranylgeranyl diphosphate incubations and density functional theory-based Boltzmann population computations, reveale that a trans-fused bicycle with a 2Z-configuration alkene restricts conformational flexibility resulting in a nearly non-flexible eunicellane skeleton. The catalytic route and the enzymatic mechanism of MicA are also elucidated by labeling experiments, density functional theory calculations, structural analysis of the artificial intelligence-based MicA model, and mutational studies.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11250809PMC
http://dx.doi.org/10.1038/s41467-024-50209-zDOI Listing

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