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Biology subjects

Warne, J.

Publications and source records attributed to Warne, J..

2 recordsLinked to original sources

Allosteric capsid inhibitors and their escape mutants drive HIV-1 sensing

Small-molecule capsid inhibitors suppress HIV-1 infectivity by binding to capsid at the same site as FG motif-bearing host cofactors Sec24C, NUP153, CPSF6 and disordered nucleoporins residing in the nuclear pore complex central channel. We have used rational design to develop inhibitors called "allosteres" that target this pocket and inhibit HIV-1 infectivity. X-ray crystal structures of capsid/inhibitor complexes, reveal allosteric shifts upon inhibitor binding in the capsid C-terminal domain which impact the capsid lattice three-fold symmetry axis. Consistent with an uncoating mechanism, we find that allosteres cause HIV-1 to trigger innate immune response dependent on viral DNA and DNA sensor cGAS. Allosteres exhibit a similar loss of potency against clinically induced Lenacapavir resistance mutants but, strikingly, we find that HIV-1 bearing key resistance mutations induces innate immune activation in the absence of inhibitor. We hypothesise that resistant mutant sensitivity to cGAS contributes to reduction of HIV-1 transmission during Lenacapavir use in prophylaxis. Our work expands the physicochemical space and scaffold range for HIV capsid targeting inhibitors, provides mechanistic details of inhibition and facilitates improved inhibitor design.

microbiology↗

A modified cyclosporine enhances lentivector transduction ex vivo and in vivo by degrading IFITM3

Intrinsic innate immune barriers have evolved to suppress viral infection and can reduce effective gene delivery in gene therapy. We have developed BG147, a novel cyclosporine A analogue, optimised via structure-guided design to prevent inhibition of HIV cofactor Cyclophilin A and to specifically inhibit interferon-induced transmembrane proteins (IFITM1-3). BG147 enhances VSV-G pseudotyped lentiviral vector transduction ex vivo in hematopoietic stem and progenitor cells (HSPCs) and in in vivo ocular gene therapy of photoreceptor cells in mice. Upon BG147 treatment, IFITM proteins are mislocalised and degraded through lysosomal acidification-dependent pathways. IFITM3 levels functionally return in cells 96 h after BG147 washout. BG147 promises to transform ex vivo and in vivo eye gene therapies by transiently inhibiting intrinsic immune barriers mediated by IFITM proteins to enhance a wide range of protocols. One Sentence SummaryModified cyclosporine, BG147, enhances lentivector gene therapy transduction, ex vivo in HSPC and in vivo in mouse photoreceptors, by degrading IFITM3.

cell biology↗