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Sailer, A.-L.

Publications and source records attributed to Sailer, A.-L..

2 recordsLinked to original sources

Control of motility and cell shape of Haloferax volcanii is linked by a transcriptional regulator

Archaea rely on motility and morphological plasticity to navigate their environments, yet the transcriptional regulation of these processes remains poorly understood. In Haloferax volcanii, archaellum-dependent motility is transcriptionally regulated, but an EarA-like master regulator is absent. Here, we identify CsmR as a transcriptional regulator that links archaellum biogenesis and cell-shape transitions in H. volcanii. Deletion of csmR abolished detectable motility, whereas overexpression increased motility and promoted a sustained rod-like morphology. Comparative transcriptomics defined a CsmR-associated regulon that includes archaellum and chemotaxis genes as well as rod-shape determinants (e.g., Sph3 and RdfA), and upstream motif enrichment supports a direct role for CsmR in transcriptional control. Furthermore, csmR and cirA, a KaiC-like regulator, share extensive transcriptional overlap, with CirA likely fine-tuning CsmR-mediated regulation through post-translational modification. These findings establish CsmR as a key integrator of motility and cell shape regulation in Haloferax volcanii, suggesting that haloarchaea coordinate these fundamental processes through an unidentified transcriptional network. Moreover, Northern blotting and cell shape observation suggest that transcription factor RosR is involved in the regulation of an sRNA that shares extensive overlap with the cirA gene, possibly fine-tuning the effect of CirA on the regulation of the archaellum cluster and the rod shape determinants sph3 and rdfA. Understanding this interplay provides new insights into archaeal adaptability and may reveal broader regulatory principles in prokaryotic cell biology.

microbiology↗

Internal in-frame translation generates Cas11b, which is important for effective interference in an archaeal CRISPR-Cas system

CRISPR-Cas is a sophisticated defence system used by bacteria and archaea to fend off invaders. CRISPR-Cas systems vary in their Cas protein composition and have therefore been divided into different classes and types. Type I systems of bacteria have been shown to contain the small Cas11 protein as part of the interference complex. Here we show for the first time that an archaeal CRISPR-Cas type I system also contains a Cas11 protein. In addition, we show for the first time an internal in-frame translation of an archaeal protein. The Cas11b protein from the Haloferax volcanii type I-B system is encoded in the cas8b gene. Translation initiation at an internal methionine of the cas8b open reading frame results in synthesis of Cas11b. Cas11b is required for an effective interference reaction and without Cas11b fewer Cascade complexes form. Comparison of transcriptomes from wild type and a Cas11b less strain show that the depletion of Cas11b results in differential regulation of many genes. Taken together Cas11b is important for the defence reaction of the type I-B CRISPR-Cas system and seems to play an additional cellular role.

molecular biology↗