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Biology subjects

Lesko, S.

Publications and source records attributed to Lesko, S..

3 recordsLinked to original sources

Efficient packaging of HIV-1 genomes via recognition of its adenosine-rich content by a heterologous RNA-binding domain

The HIV-1 genome (gRNA) has an unusually biased nucleotide content and is rich in adenosines. Selective packaging of the gRNA is thought to be driven by specific binding of the nucleocapsid (NC) domain of the viral Gag protein to the packaging signal ({Psi}) in the host cell cytosol. However, deletion of regions within {Psi} reduces--but does not completely abolish--genome packaging. To probe whether another feature of the gRNA may contribute to the selective gRNA packaging process, we replaced NC with heterologous RNA-binding domains (RBDs) with distinct RNA-binding properties. Surprisingly, despite disparate RNA binding specificities, all Gag-RBD chimeras successfully recruited the gRNA to the plasma membrane, suggesting that the initial gRNA recognition in the cytosol is not rate limiting. Notwithstanding, many chimeras exhibiting G/C binding specificity were arrested at the assembly stage. Only the Gag-SRSF5 chimera, which multimerized efficiently on adenosine-rich sequences on the gRNA, assembled efficiently and packaged gRNA at near wild-type levels. Importantly, rationally designed mutations that altered the A/G-rich binding specificity of Gag-SRSF5 decreased genome encapsidation efficiency. Furthermore, many Gag chimeras displayed potent dominant negative activities, highlighting NC functions as a targetable step in virus replication. Together, our findings reveal an unexpected aspect of the HIV-1 gRNA, its biased nucleotide content, as a key driver of selective genome packaging. SIGNIFICANCEHow HIV-1 selectively packages its genome (gRNA) into virions is poorly understood. To probe this, we replaced the viral nucleocapsid (NC) protein with heterologous RNA-binding domains (RBDs) from cellular hnRNP and SR protein families. Remarkably, despite their distinct RNA-binding specificities, all Gag-RBD chimeras successfully recruited the gRNA to the plasma membrane, suggesting that the initial gRNA recognition is not rate limiting. Only the Gag-SRSF5 chimera packaged gRNA efficiently which correlated with its capacity to multimerize on adenosine-rich sequences on the gRNA. Notably, several Gag chimeras exhibited strong dominant negative effects, underscoring NC functions as a targetable step in virus replication. Together, these findings uncover that the biased nucleotide content of the HIV-1 gRNA facilitates its selective packaging into virus particles.

microbiology↗

HIV-1 single transcription start site mutants display complementary replication functions that are restored by reversion

HIV-1 transcription initiates at two positions, generating RNAs with either cap1G or cap3G 5' ends. The replication fates of these RNAs differ, with viral particles encapsidating almost exclusively cap1G RNAs and cap3G RNAs retained in cells where they are enriched on polysomes and among spliced viral RNAs. Here, we studied replication properties of virus promoter mutants that produced only one RNA 5' isoform or the other: separately, in combination, and during spreading infection. Results showed that either single start RNA could serve as both mRNA and genomic RNA when present as the only form in cells, although cap3G RNA was more efficiently translated and spliced while cap1G RNA was packaged into nascent virions slightly better than RNAs from the parental virus. When co-expressed from separate vectors, cap1G RNA was preferentially packaged into virions. During spreading infection cap1G-only virus displayed only minor defects but cap3G-only virus showed severe replication delays in both the highly permissive MT-4 cell line and in primary human CD4+ T cells. Passage of cap3G-only virus yielded revertants that replicated as well as the twinned (cap1G+ cap3G) transcription start site parent. These revertants displayed restored packaging and splicing levels and had regained multiple transcription start site use. ImportanceHIV-1 generates two RNAs during its replication that differ by only two nucleotides in length. Despite this very minor difference, the RNAs perform different and complementary replication functions. When mutants that expressed only one RNA were forced to revert, they regained functions associated with the second RNA.

microbiology↗

One step 4x and 12x 3D-ExM: robust super-resolution microscopy in cell biology

Super-resolution microscopy has become an indispensable tool across diverse research fields, offering unprecedented insights into biological architectures with nanometer scale resolution. Compared to traditional nanometer-scale imaging methods such as electron microscopy, super-resolution microscopy offers several advantages, including the simultaneous labeling of multiple target biomolecules with high specificity and simpler sample preparation, making it accessible to most researchers. In this study, we introduce two optimized methods of super-resolution imaging: 4-fold and 12-fold 3D-isotropic and preserved Expansion Microscopy (4x and 12x 3D-ExM). 3D-ExM is a straightforward expansion microscopy method featuring a single-step process, providing robust and reproducible 3D isotropic expansion for both 2D and 3D cell culture models. With standard confocal microscopy, 12x 3D-ExM achieves a lateral resolution of under 30 nm, enabling the visualization of nanoscale structures, including chromosomes, kinetochores, nuclear pore complexes, and Epstein-Barr virus particles. These results demonstrate that 3D-ExM provides cost-effective and user-friendly super-resolution microscopy, making it highly suitable for a wide range of cell biology research, including studies on cellular and chromatin architectures.

cell biology↗