| Literature DB >> 35482828 |
Zhenshan Liu1,2, Xin Wang1,2, Chengrong Liu1,2, Hongying Deng3, Wenshu Li4, Xiaoqian Wang1,2,5, Xue Xu1,2, Maggie Z X Xiao6, Chunxia Wang7,8, Yucai Zhang7,8, Joyce Fu9, Fanxiu Zhu3, Qiming Liang1,2,5,8,10,11.
Abstract
RSK1, an essential cellular kinase for Kaposi's sarcoma-associated herpesvirus (KSHV) replication, is highly phosphorylated and SUMOylated during KSHV lytic cycle, which determine the substrate phosphorylation and specificity of RSK1, respectively. However, the SUMO E3 ligase responsible for attaching SUMO to RSK1 has not yet been identified. By genome-wide screening, we found that KSHV ORF45 is necessary and sufficient to enhance RSK1 SUMOylation. Mechanistically, KSHV ORF45 binds to SUMOs via two classic SUMO-interacting motifs (SIMs) and functions as a SIM-dependent SUMO E3 ligase for RSK1. Mutations on these ORF45 SIMs resulted in much lower lytic gene expressions, viral DNA replication, and mature progeny virus production. Interestingly, KSHV ORF45 controls RSK1 SUMOylation and phosphorylation via two separated functional regions: SIMs and amino acid 17-90, respectively, which do not affect each other. Similar to KSHV ORF45, ORF45 of Rhesus Macaque Rhadinovirus has only one SIM and also increases RSK1 SUMOylation in a SIM-dependent manner, while other ORF45 homologues do not have this function. Our work characterized ORF45 as a novel virus encoded SUMO E3 ligase, which is required for ORF45-RSK1 axis-mediated KSHV lytic gene expression.Entities:
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Year: 2022 PMID: 35482828 PMCID: PMC9089915 DOI: 10.1371/journal.ppat.1010504
Source DB: PubMed Journal: PLoS Pathog ISSN: 1553-7366 Impact factor: 6.823
Fig 1KSHV ORF45 facilitates RSK1 SUMOylation.
(A) KSHV ORF45 enhances RSK1 SUMOylation. Individual KSHV encoded gene or vector control was co-expressed with HA-RSK1 and denatured immunoprecipitation (IP) and immunoblot (IB) were performed at 48 h post-transfection. The band intensities of SUMOylated RSK1 and total RSK1 were quantified and the ratio was calculated. (B-C) ORF45 promotes the SUMOylation of RSK1 and RSK2 by SUMO1/2. HEK293T cells were transfected with indicated plasmids and cell lysates were subjected to denatured IP and IB with indicated antibodies at 48 h post-transfection. (D) ORF45 facilitates RSK1 SUMOylation on K110, K335, and K421. (E) ORF45 is required for KSHV-mediated RSK1 SUMOylation. iSLK-BAC16 and iSLK-BAC16ΔORF45 cells were treated with doxycycline and sodium butyrate to induce KSHV lytic replication. Cells were collected at 0, 24, 48, and 72 h post-treatment and subjected to denatured IP and IB with indicated antibodies.
Fig 2ORF45 binds to SUMO via two SIMs.
(A) KSHV ORF45 binds to SUMO1 and SUMO2 in yeast. Yeast competent cells were co-transformed with indicated plasmids (bait plus prey). Activation of the HIS3 and ADE2 reporters was assessed by growth on -4DO media plates. (B) Recombinant KSHV ORF45 directly binds to SUMO1 and SUMO2 in vitro. 0.5 μg recombinant ORF45 were mixed with GST only, GST-SUMO1, or GST-SUMO2 in vitro for 30 min. The mixture was subjected to GST pull-down and co-precipitated proteins were determined by coomassie blue staining and IB with anti-ORF45 antibody. (C) KSHV ORF45 non-covalently binds to SUMO1/2. (D) KSHV ORF45 contains two SIMs. Alignment between ORF45 SIM1/2 and well-characterized SIMs from indicated genes. Red: core sequence; Blue: acidic amino acid tail. (E) Mutations of SIMs affect ORF45-SUMOs interaction. GST only, GST-SUMO1, or GST-SUMO2 were mixed with the cell lysates from HEK293T transfected with ORF45, ORF45SIM1, ORF45SIM2, or ORF45SIM1/2 for 30 min and the mixture was subjected to GST pull-down assay.
Fig 3KSHV ORF45 acts as a SIM-dependent SUMO E3 ligase for RSK1.
(A) KSHV ORF45 binds to endogenous ubc9. HEK293T cells were transfected with Flag-tagged ORF45 or vector control and cell lysates were subjected to IP and IB with indicated antibodies at 48 h post-transfection. (B-C) KSHV ORF45 binds to endogenous ubc9 during KSHV lytic replication. iSLK-BAC16 (B) and BCBL1 (C) cells were treated with doxycycline/sodium butyrate or TPA to induce KSHV lytic replication, respectively. Cell lysates were subjected to IP and IB with indicated antibodies at 72 h post-induction. (D) KSHV ORF45 enhances RSK1 SUMOylation via SIM1/2 in cells. HEK293T cells were transfected with indicated plasmids and cell lysates were subjected to denatured IP and IB with indicated antibodies at 48 h post-transfection. (E) KSHV ORF45 enhances RSK1 SUMOylation via SIM1/2 in vitro. Recombinant RSK1 was incubated with SAE1/UBA2 (E1), Ubc9 (E2), SUMO1, ATP/Mg, and ORF45 or ORF45SIM1/2 in SUMO reaction buffer. The SUMOylation of RSK1 was detected by indicated antibodies.
Fig 4The SUMO E3 ligase activity of ORF45 is required for KSHV lytic replication.
(A) Generation of BAC16SIM1/2 mutant (ORF45 SUMO E3 ligase defective mutant). (B-C) ORF45 SUMO E3 ligase activity is required for viral gene expressions at both protein and RNA levels during KSHV lytic replication. iSLK-BAC16 and iSLK-BAC16SIM1/2 cell lines were treated with doxycycline and sodium butyrate to induce KSHV lytic replication. Cell lysates were collected at indicated time points and subjected to IB with indicated antibodies (B). Total RNA was extracted, reverse-transcribed into cDNA, and used for KSHV whole-genome qPCR array analysis at 72 h post-induction. The ΔC values for each primer set were calculated and converted to a heatmap using R (C). (D) ORF45 SUMO E3 ligase activity is required for KSHV viral genomic DNA replication. iSLK-BAC16 and iSLK-BAC16SIM1/2 cell lines were induced with doxycycline and sodium butyrate and cell lysates were collected at indicated time point. Total DNA was isolated and viral genomic DNA was quantified by qPCR. (E-F) ORF45 SUMO E3 ligase activity is required for progeny virus production. iSLK-BAC16 and iSLK-BAC16SIM1/2 cell lines were induced with doxycycline and sodium butyrate and the culture medium containing progeny viruses were collected at indicated time point. Total DNA was isolated and viral genomic DNA was quantified by qPCR (E). HEK293A cells were infected by the supernatant containing progeny virus at 72 h post-induction and GFP level was determined by fluorescence microscope at 24 h post-infection (F). (G) RSK1 SUMOylation is impaired in SIM1/2 mutant virus during lytic replication. iSLK-BAC16 or iSLK-BAC16SIM1/2 cells were treated with doxycycline and sodium butyrate to induce lytic replication. The cell lysates were collected at indicated time points and subjected to denatured IP and IB with indicated antibodies. Mean ± SD; n = 5; ***p<0.001 by Student’s t-test in (D) and (E).
Fig 5The SUMO E3 ligase activity is conserved in ORF45 of RRV.
(A) Phylogenetic tree of the indicated γ-herpesviruses based on their ORF45 sequence. Scale: 0.1 (upper panel). Schematic diagram for ORF45 homologues (lower panel). (B-C) The interaction between ORF45 homologues and SUMO1 (B) or SUMO2 (C). GST only, GST-SUMO1, or GST-SUMO2 were mixed with the cell lysates from HEK293T transfected with ORF45KSHV, ORF45RRV, ORF45HVS, ORF45EBV, or ORF45MHV68 for 30 min and the mixture was subjected to GST pull-down assay. (D) The effects of ORF45 homologues on RSK1 SUMOylation. HEK293T cells were transfected with indicated plasmids and cell lysates were subjected to denatured IP and IB with indicated antibodies at 48 h post-transfection. (E) RRV ORF45 only contains one SIM. Alignment between ORF45RRV SIM and well-characterized SIMs from indicated genes. Red: core sequence; Blue: acidic amino acid tail. (F) SIM mutation abolished RRV ORF45-SUMO2 interaction. (G) SIM mutation abrogated RRV ORF45-mediated RSK1 SUMOylation.