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Morris, E. R.

Publications and source records attributed to Morris, E. R..

3 recordsLinked to original sources

The mechanical code of DNA impacts its interaction with DNA gyrase

DNA:protein interactions involving large structural deformations of DNA underpin essential biological processes. Although correlative evidence suggests that local, sequence-encoded, mechanical properties of DNA can modulate its interactions with large bent-DNA complexes like nucleosomes, direct high-throughput measurements of programmable mechanical modulation of DNA:protein interactions remain lacking. DNA gyrase is a type II topoisomerase that introduces negative supercoils in bacterial chromosomes via a process that involves extensive, nucleosome-scale, DNA wrapping around its two C-terminal domains (CTDs). Here we combine Systematic Evolution of Ligands by EXponential enrichment (SELEX), neural network predictions of DNA intrinsic cyclizability, and high-throughput DNA-compete binding assays to broadly reveal that sequence-encoded DNA mechanics tunes gyrase:DNA interactions by modulating wrapping of DNA around the CTDs. Further, we find that both genomic gyrase cleavage sites, and SELEX-enriched strong gyrase-binding sequences, display marked mechanical asymmetry: an extended region of flexible DNA facilitating wrapping around only one CTD exists on one half of the enzyme footprint. High throughput binding assays further reveal that strong binding to one CTD alone can compensate for weaker dual binding, suggesting that asymmetric attachment may have evolved to balance the need for stable anchoring with conformational flexibility required for catalytic remodelling. Additionally, we identify key GC-rich motifs that independently enhance gyrase:DNA interactions, also in an asymmetric fashion. Our findings establish sequence-encoded DNA mechanics as a tunable determinant of protein:DNA interactions and illustrate how functional asymmetry within a symmetric enzyme can couple stable substrate association with structural plasticity.

biophysics↗

Structural and functional characterization of the KHNYN extended-diKH domain for mediating ZAP antiviral activity

Zinc finger antiviral protein (ZAP) binds CpG dinucleotides in viral RNA and targets them for decay. ZAP interacts with several cofactors to form the ZAP antiviral system, including KHNYN, a multidomain endoribonuclease required for ZAP-mediated RNA decay. However, it is unclear how the individual domains in KHNYN contribute to its activity. Here, we demonstrate that the KHNYN amino terminal extended-diKH (ex-diKH) domain is required for antiviral activity and present its crystal structure. The structure belongs to a rare group of KH-containing domains, characterized by a non-canonical arrangement between two type-1 KH modules, with an additional helical bundle. N4BP1 is a KHNYN paralog with an ex-diKH domain that functionally complements the KHNYN ex-diKH domain. Interestingly, the ex-diKH domain structure is present in N4BP1-like proteins in lancelets, which are basal chordates, indicating that it is evolutionarily ancient. While many KH domains demonstrate RNA binding activity, biolayer interferometry and electrophoretic mobility shift assays indicate that the KHNYN ex-diKH domain does not bind RNA. Furthermore, residues required for canonical KH domains to bind RNA are not required for KHNYN antiviral activity. By contrast, an inter-KH domain cleft in KHNYN is a potential protein-protein interaction site and mutations that eliminate arginine salt bridges at the edge of this cleft decrease KHNYN antiviral activity. This suggests that this domain could be a binding site for an unknown KHNYN cofactor.

microbiology↗

Regulation of KHNYN antiviral activity by the extended di-KH domain and nucleo-cytoplasmic trafficking

The zinc finger antiviral protein (ZAP) restricts a broad range of viruses by binding CpG dinucleotides in viral RNA to target it for degradation and inhibit its translation. KHNYN was recently identified as an antiviral protein required for ZAP to inhibit retroviral replication, though little is known about its functional determinants. KHNYN contains an N-terminal extended di-KH-like domain, a PIN endoribonuclease domain and a C-terminal CUBAN domain that binds NEDD8 and ubiquitin. We show that deletion of the extended di-KH domain reduces its antiviral activity. However, despite its similarity to RNA binding KH domains, the extended di-KH domain in KHNYN does not appear to bind RNA. Mutation of residues in the CUBAN domain that bind NEDD8 increase KHNYN abundance but do not alter its antiviral activity, suggesting that this interaction regulates KHNYN homeostatic turnover. In contrast, a CRM1-dependent nuclear export signal (NES) at the C-terminus of the CUBAN domain is required for antiviral activity. Deletion of this signal retains KHNYN in the nucleus and inhibits its interaction with ZAP. Interestingly, this NES appeared in the KHNYN lineage at a similar time as when ZAP evolved in tetrapods, indicating that these proteins may have co-evolved to restrict viral replication. AUTHOR SUMMARYAntiviral proteins restrict viral replication in many different ways, including inhibiting viral gene expression. ZAP is an antiviral RNA binding protein that must interact with other cellular proteins to inhibit viral protein synthesis. KHNYN is a ZAP cofactor that is required for it to inhibit retroviral replication. Because little is known about how KHNYN functions in this role, we have analyzed how two of its domains regulate its antiviral activity. We first show that the extended di-KH domain in KHNYN is required for its antiviral activity. While it is related to di-KH domains in RNA binding proteins, it appears to have lost its ability to bind RNA and KHNYN likely acts in the restriction pathway after ZAP binds a target viral RNA. Second, we show that the KHNYN CUBAN domain regulates both its protein abundance and trafficking within the cell. The CUBAN domain contains a nuclear export signal and, when this signal is mutated, KHNYN is sequestered in the nucleus, has substantially reduced antiviral activity and does not interact with ZAP. Overall, we show that the extended di-KH and CUBAN domains in KHNYN are required for it to act as a cofactor for ZAP to restrict viral replication.

microbiology↗