bioRxiv Science⌕ Search

Biology subjects

Arifah, A.

Publications and source records attributed to Arifah, A..

3 recordsLinked to original sources

RNA editing and trans-splicing with reprogrammed tracrRNAs

Natural CRISPR-Cas9 systems rely on crRNA-tracrRNA duplexes to guide DNA targeting. Prior work showed that tracrRNAs could be reprogrammed to hybridize to cellular RNAs, resulting in their conversion into non-canonical crRNAs that enabled RNA detection and recording. However, the fate of the cellular RNA and the engineering opportunities it affords remain unexplored. Here, we show that the hybridized RNA is not inactivated, allowing the recruitment of Cas9 to the RNA duplex to drive RNA base editing and trans-splicing. Fusing ADAR2dd to dSpyCas9 and systematically engineering the reprogrammed tracrRNA (Rptr) enabled efficient and tunable A-to-I RNA editing, with on- and off-target profiles comparable to dCas13. The methodology extended to the compact CjeCas9 that could be further tailored for RNA targeting by deleting the HNH domain and mutating the PAM-interacting domain. Finally, utilizing Rptrs to block splicing enabled 3' and 5' RNA trans-splicing. Thus, Rptrs offer a versatile alternative to conventional Cas9 guide RNA architectures for programmable RNA manipulation.

Synthetic Biology↗

MprF-mediated immune evasion is necessary for Lactiplantibacillus plantarum resilience in Drosophila gut during inflammation

BackgroundMultiple peptide resistance factor (MprF) confers resistance to cationic antimicrobial peptides (AMPs) in several pathogens, thereby enabling evasion of the host immune response. While MprF has been proven to be crucial for the virulence of various pathogens, its role in commensal gut bacteria remains uncharacterized. To close this knowledge gap, we used a common gut commensal of animals, Lactiplantibacillus plantarum, and its natural host, the fruit fly Drosophila melanogaster, as an experimental model to investigate the role of MprF in commensal-host interactions. ResultsThe L. plantarum {Delta}mprF mutant that we generated exhibited deficiency in the synthesis of lysyl-phosphatidylglycerol (Lys-PG), resulting in increased negative cell surface charge and increased susceptibility to AMPs. Susceptibility to AMPs had no effect on {Delta}mprF mutants ability to colonize guts of uninfected flies. However, we observed significantly reduced abundance of the {Delta}mprF mutant after infection-induced inflammation in the guts of wild-type flies but not flies lacking AMPs. These results demonstrate that host AMPs reduce the abundance of the {Delta}mprF mutant during infection. We found in addition that the {Delta}mprF mutant compared to wild-type L. plantarum induces a stronger intestinal immune response in flies due to the increased release of immunostimulatory peptidoglycan fragments, indicating an important role of MprF in promoting host tolerance to commensals. ConclusionOverall, our results demonstrate that MprF, besides its well-characterized role in pathogen immune evasion and virulence, is also an important resilience factor in maintaining stable microbiota-host interactions during intestinal inflammation.

microbiology↗

SIBR-Cas enables host-independent and universal CRISPR genome engineering in bacteria

CRISPR-Cas is a powerful tool for genome editing in bacteria. However, its efficacy is dependent on host factors (such as DNA repair pathways) and/or exogenous expression of recombinases. In this study, we mitigated these constraints by developing a simple and universal genome engineering tool for bacteria which we termed SIBR-Cas (Self-splicing Intron-Based Riboswitch-Cas). SIBR-Cas was generated from a mutant library of the theophylline-dependent self-splicing T4 td intron that allows for universal and inducible control over CRISPR-Cas counterselection. This control delays CRISPR-Cas counterselection, granting more time for the editing event (e.g., by homologous recombination) to occur. Without the use of exogenous recombinases, SIBR-Cas was successfully applied to knock-out several genes in three bacteria with poor homologous recombination systems. Compared to other genome engineering tools, SIBR-Cas is simple, tightly regulated and widely applicable for most (non-model) bacteria. Furthermore, we propose that SIBR can have a wider application as a universal gene expression and gene regulation control mechanism for any gene or RNA of interest in bacteria.

bioengineering↗