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Biology subjects

Grab, K.

Publications and source records attributed to Grab, K..

3 recordsLinked to original sources

Sequence-encoded autoinhibition couples mRNA decapping activity to phase separation

Removal of the 5' mG cap by the Dcp1/Dcp2 complex commits mRNAs to degradation, yet the mechanisms regulating decapping remain incompletely understood. Here, we identify residue-level determinants within the extended C-terminus of fission yeast Dcp2 that repress activity. Mutations in conserved inhibitory motifs relieve autoinhibition, enhance RNA binding, and bypass the requirement for the activator Edc3. Strikingly, this activation persists within phase-separated condensates, demonstrating that conformational relief in solution is propagated to the dense phase. We further show that long-range interactions between the intrinsically disordered region of Dcp2 and the catalytic core restrict RNA engagement, providing a mechanistic basis for negative regulation. Together, these findings establish that sequence-encoded elements within the Dcp2 C-terminus control catalytic activity and functional output within biomolecular condensates. More broadly, our results reveal that competing interactions encoded within intrinsically disordered regions of proteins are balanced to allosterically tune enzyme activity, providing a general mechanism by which proteins modulate distinct enzymatic functions within biological condensates.

biochemistry↗

An MST-based assay reveals new binding preferences of IFIT1 for canonically and non-canonically capped RNAs

IFIT proteins (interferon-induced proteins with tetratricopeptide repeats) are key components of the innate immune response that bind to viral and cellular RNA targets to inhibit viral translation and replication. The RNA target recognition is guided by molecular patterns, particularly at the RNA 5 ends. IFIT1 preferably binds RNAs modified with the 7-methylguanosine (m7G) cap-0 structure, while RNAs with cap-1 structure are recognized with lower affinity. Less is known about the propensity of IFIT1 to recognize non-canonical RNA 5 ends, including hypermethylated and non-canonical RNA caps. Deciphering the structure-function relationship for IFIT1-RNA interaction may improve understanding of cellular selection of IFIT targets and guide the design of exogenously delivered therapeutic RNAs, but requires high-throughput and robust analytical methods. Here, we report a biophysical assay for quick, direct, in-solution affinity assessment of differently capped RNAs with IFIT1. The procedure, which relies on measuring microscale thermophoresis (MST) of fluorescently labelled protein as a function of increasing ligand concentration, is applicable to various RNA lengths and sequences without the need for labelling or affinity tagging. Using the assay, we examined thirteen canonically and non-canonically 5-capped RNAs, revealing new binding preferences of IFIT1. The 5 terminal m6A mark in the m7G cap had a protective function against IFIT1, which was additive with the effect observed for the 2-O position (m6Am cap-1). In contrast, an increased affinity for IFIT1 was observed for several non-canonical caps, including trimethylguanosine (TMG), unmethylated (G), and flavin-adenine dinucleotide (FAD) caps. The results suggest new potential cellular targets of IFIT1 and may contribute to broadening the knowledge on the mechanisms of the innate immune response as well as the more effective design of chemically modified mRNAs.

biochemistry↗

HIV-1 infection reduces NAD capping of host cell snRNA and snoRNA

Nicotinamide adenine dinucleotide (NAD) is a critical component of the cellular metabolism and also serves as an alternative 5' cap on various RNAs. However, the function of the NAD RNA cap is still under investigation. We studied NAD capping of RNAs in HIV-1-infected cells because HIV-1 is responsible for the depletion of the NAD/NADH cellular pool and causing intracellular pellagra. By applying the NAD captureSeq protocol to HIV-1-infected and uninfected cells, we revealed that four snRNAs (e.g. U1) and four snoRNAs lost their NAD cap when infected with HIV-1. Here, we provide evidence that the presence of the NAD cap decreases the stability of the U1/HIV-1 pre-mRNA duplex. Additionally, we demonstrate that reducing the quantity of NAD-capped RNA by overexpressing the NAD RNA decapping enzyme DXO results in an increase in HIV-1 infectivity. This suggests that NAD capping is unfavorable for HIV-1 and plays a role in its infectivity. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=192 SRC="FIGDIR/small/515957v2_ufig1.gif" ALT="Figure 1"> View larger version (39K): org.highwire.dtl.DTLVardef@16d5cf0org.highwire.dtl.DTLVardef@f0bc60org.highwire.dtl.DTLVardef@df83bborg.highwire.dtl.DTLVardef@41a2db_HPS_FORMAT_FIGEXP M_FIG C_FIG

biochemistry↗