Early activation of bioenergetic metabolism powers bacterial spore germination.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 41439714.
- Also identified by DOI 10.1073/pnas.2510996122 and PMC identifier 12772218.
- Licence recorded as CC BY.
- The licence permits redistribution, so the abstract is shown in full and the full text is available from the publisher.
Abstract
Dormant bacterial spores germinate to become vegetative cells upon germinant exposure. Despite many germinants being energy sources, bioenergetic processes have been overlooked as germination can proceed, albeit slowly, without exogenous energy sources. Here, we apply remission spectroscopy to noninvasively measure energization of the electron transport chain (ETC) in germinating spores. In <i>Bacillus megaterium</i> and <i>Bacillus subtilis</i>, energization of cytoplasmic metabolism and the ETC occurs early in germination, before or alongside water ingress and bulk CaDPA efflux. The <i>aa</i><sub>3</sub>-type oxidases (Qox, Cta) accumulate nonradical ferryl intermediates of their catalytic cycle, slowed by a high membrane potential. The Yth isoform of the <i>bd</i> oxidase, present in spores, allows rapid electron transfer to O<sub>2</sub> when the <i>aa</i><sub>3</sub>-type oxidases are hindered, establishing a role for this enzyme. Deletion of Yth slows the initiation of "absorbance"/attenuance loss, directly linking bioenergetic processes to germination. We propose a powered germination model, where the Ger-mediated signaling cascade and bioenergetic processes occur in parallel and are mutually influenced by each other. This model explains why germination on energy-rich molecules (e.g., glucose) is often much faster than on energy-poor ones (e.g., KBr).
Medical subject headings
- Spores, Bacterial
- Energy Metabolism
- Bacillus subtilis
- Bacillus megaterium