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Biology subjects

Kley, M.

Publications and source records attributed to Kley, M..

2 recordsLinked to original sources

Assembly-Activating Protein Phase Separation Properties Are Required for Adeno-Associated Virus Type 2 Assembly

Adeno-associated virus serotype 2 (AAV2), a non-pathogenic parvovirus reliant on helper viruses, is studied extensively as a potential gene delivery vector. A +1 open reading frame within the cap gene encodes a nonstructural protein of 204-amino-acids termed assembly-activating protein (AAP), which has been attributed a critical role in transporting the viral capsid protein VP3 into the nucleolus for assembly. However, AAP remains poorly characterized because of its relatively late discovery and lack of commercial antibodies. In the absence of other virus proteins, AAP localizes in the nucleolus due to five redundant nuclear and nucleolar localization signals. Additionally, AAP, a predicted intrinsically disordered protein, forms spontaneous dose-dependent nuclear globular condensates, a trait of liquid-liquid phase separated inclusions. Consistent with LLPS biophysical properties, the AAP condensates recovered rapidly from photobleaching and are sensitive to aliphatic diol treatment--moreover, AAP self-oligomerizes. We produced an AAP-specific antibody to analyze the role of this protein during productive AAV2 replication. In this context, we observed that AAP also forms nuclear globular condensates with LLPS biophysical properties in cells co-infected with AAV2 and either herpes simplex virus type 1 (HSV-1) or adenovirus type 5 (AdV-5) as the helper viruses. The screening of AAP deletion mutants revealed that the N-terminal region (amino acids 1-61) is necessary for condensate formation and self-oligomerization. Interestingly, this AAP region contains a predicted alpha-helix spanning amino acids 16 to 45. The substitution in this region of the hydrophobic residues by alanines drastically impaired AAP-LLPS biophysical properties and its ability to trigger AAV2 capsid assembly. Identifying the amino acids involved in assembly and LLPS may improve AAV vector production. Author SummaryAdeno-associated virus serotype 2 (AAV2) is a non-pathogenic virus extensively studied for its potential in gene therapy. It relies on a protein called assembly-activating protein (AAP) to transport its capsid protein, VP3, to the nucleolus for assembly. The 204-amino-acid AAP is not well characterized because it was discovered only relatively recently and commercial antibodies are not availabe, making it challenging to study. Here, we demonstrate that AAP localizes in the nucleolus and forms globular condensates through liquid-liquid phase separation (LLPS), a property characterized by rapid recovery from photobleaching and sensitivity to aliphatic diol treatment. Additionally, we prepared a specific antibody to study AAP during AAV2 co-infection with helper viruses like herpes simplex virus type 1 (HSV-1) or adenovirus type 5 (AdV-5). We found that AAP also forms nuclear condensates with LLPS properties in co-infected cells. We demonstrate that the N-terminal region of AAP (amino acids 1-61) is crucial for condensate formation and self-oligomerization. Within this region, a predicted alpha-helix (amino acids 16-45) is essential, as substituting its hydrophobic residues with alanines significantly impaired the LLPS properties of AAP and its ability to facilitate AAV2 capsid assembly. Identifying these key amino acids may enhance AAV vector production for gene therapy applications.

microbiology↗

Recruitment of TRiC chaperonin in rotavirus viroplasms directly associates with virus replication.

Rotavirus replication takes place in the viroplasms, cytosolic inclusions that allow the synthesis of virus genome segments and their encapsidation in the core shell followed by the addition of the second layer of the virion. The viroplasms are composed of several viral proteins, including NSP5, which is the main building block. Microtubules, lipid droplets, and miRNA-7 are among the host components recruited in viroplasms. To investigate the relationship between rotavirus proteins and host components of the viroplasms, we performed a pull-down assay of lysates from rotavirus-infected cells expressing NSP5-BiolD2. Subsequent tandem mass spectrometry identified all eight subunits of the TRiC complex, a cellular chaperonin responsible for folding at least 10% of the cytosolic proteins. Our validated results show that TRiC is recruited in viroplasms and specifically surrounds newly formed double-layered particles (DLPs). Chemical inhibition of TRiC and silencing of its subunits drastically reduced virus progeny production. Interestingly, TRiC-inhibited RV-infected cells lacked triple-layered particles (TLPs) but harbored empty DLPs. Through sequence-specific direct RNA nanopore sequencing, we show that TRiC is critical for RV replication by controlling dsRNA genome segment synthesis, particularly (-)ssRNA. Moreover, TRiC associates and regulates the folding of VP2, a cofactor allowing dsRNA synthesis. This study provides in-cell culture evidence of the regulatory mechanism by which dsRNA genome segment replication is controlled and coordinated in the rotavirus viroplasms. ImportanceThe replication of rotavirus takes place in cytosolic inclusions termed viroplasms. In these inclusions, the eleven double-stranded RNA genome segments are synthesized and packaged individually into the newly generated virus particles. In this study, we show for the first time that the TRiC complex, a cellular chaperonin responsible for the folding of at least 10% of the cytosolic proteins, is a component of viroplasms and is required for the synthesis of the viral (-)ssRNA. Specifically, TRiC interacts and assists in folding VP2, the cofactor involved in RNA replication. Our study adds a new component to the current model of rotavirus replication, where TRiC is recruited in viroplasm to assist replication.

microbiology↗