| Literature DB >> 28553621 |
Tian Luo1, Paige S Dunphy1, Jere W McBride1,2,3,4,5.
Abstract
Ehrlichia chaffeensis infects mononuclear phagocytes and survives intracellularly by exploiting host cell processes to evade host defenses. The mechanisms involved are not fully defined, but appear to rely largely on a subset of tandem repeat proteins (TRP) effectors. E. chaffeensis TRPs are type 1 secreted effectors that interact with a functionally diverse group of host cell targets associated with various biological processes. In this study, we investigated the influence of TRP host target proteins on ehrlichial infection by RNA interference. In total, 138 TRP-interacting host proteins identified by yeast two-hybrid were targeted by siRNA and the infection level determined by real-time qPCR. Knockdown of 124 (89%) TRP target proteins had significant influence on infection either by inhibiting (85%) or promoting (15%) ehrlichial infection. Notably, knockdown of 18 host proteins which interacted with TRP120 promoted the infection, suggesting that these targets may be degraded to promote infection. Host proteins that interact with TRPs are involved in cellular processes, including cell signaling, vesicle trafficking and intracellular transport, transcriptional regulation, metabolism, protein posttranslational modification, and apoptosis. Selected host targets were examined by immunofluorescent microscopy during infection and were found to localize with the morulae, or in the host cell cytoplasm adjacent to morulae. This study confirms that the majority of host proteins known to interact with TRP effectors influence infection and further extends the current knowledge that E. chaffeensis TRPs participate in a complex array of host protein interactions in order to reprogram the host cell and promote intracellular survival.Entities:
Keywords: Ehrlichia chaffeensis; cell signaling; effector-host interaction; infection; posttranslational modification; tandem repeat protein; transcriptional regulation; vesicle trafficking
Mesh:
Substances:
Year: 2017 PMID: 28553621 PMCID: PMC5427065 DOI: 10.3389/fcimb.2017.00178
Source DB: PubMed Journal: Front Cell Infect Microbiol ISSN: 2235-2988 Impact factor: 5.293
Figure 1Verification of knockdown of TRP-interacting host proteins by Western blot. THP-1 cells were transfected with each specific or control siRNA and 2 days posttransfection Western blots were performed to determine knockdown efficiency. The α-tubulin was visualized as a control of Western blot.
Figure 2Influence of knockdown of TRP120-interacting proteins on . THP-1 cells were transfected with target or control siRNA, and then infected by E. chaffeensis. Infection status was determined by qPCR at 1 and 2 days postinfection, compared to control scrambled siRNA-transfected cells. E. chaffeensis dsb gene copy numbers were normalized to host gapdh gene. Results were from three independent experiments, and the values were means ± standard deviations (*P < 0.05, significantly different from control infection).
Impact of TRP120-interacting protein knockdown on .
| By day | ||||
| Day 1 | 39 (44%) | 11 (12%) | 39 (44%) | 89 |
| Day 2 | 58 (65%) | 12 (14%) | 19 (21%) | |
| Overall | 62 (70%) | 18 (20%) | 9 (10%) | |
| By category of function | 89 | |||
| Vesicle trafficking and intracellular transport | 15 | 2 | 3 | 20 |
| Cell signaling | 13 | 4 | 0 | 17 |
| Transcriptional regulation | 9 | 4 | 3 | 16 |
| Metabolism | 12 | 2 | 2 | 16 |
| Posttranslational protein modification | 8 | 2 | 0 | 10 |
| Other miscellaneous | 5 | 4 | 1 | 10 |
Figure 3Influence of knockdown of TRP47-interacting proteins on . THP-1 cells were transfected with target or control siRNA, and then infected by E. chaffeensis. Bacterial number changes were determined by qPCR at 1 and 2 days postinfection, compared to control scrambled siRNA-transfected cells. E. chaffeensis dsb gene copy numbers were normalized to host gapdh gene. Results were from three independent experiments, and the values were means ± standard deviations (*P < 0.05, significantly different from control infection).
Impact of TRP47-interacting protein knockdown on .
| By day | ||||
| Day 1 | 25 (71%) | 1 (3%) | 9 (26%) | 35 |
| Day 2 | 26 (74%) | 1 (3%) | 8 (23%) | |
| Overall | 30 (86%) | 1 (3%) | 4 (11%) | |
| By category of function | 35 | |||
| Cell signaling | 8 | 0 | 2 | 10 |
| Vesicle trafficking and intracellular transport | 7 | 0 | 0 | 7 |
| Transcriptional regulation | 6 | 1 | 0 | 7 |
| Metabolism | 6 | 0 | 0 | 6 |
| Posttranslational protein modification | 2 | 0 | 1 | 3 |
| Others | 1 | 0 | 1 | 2 |
Figure 4Influence of knockdown of TRP32-interacting proteins on . THP-1 cells were transfected with target or control siRNA, and then infected by E. chaffeensis. Bacterial number changes were determined by qPCR at 1 and 2 days postinfection, compared to control scrambled siRNA-transfected cells. E. chaffeensis dsb gene copy numbers were normalized to host gapdh gene. Results were from three independent experiments, and the values were means ± standard deviations (*P < 0.05, significantly different from control infection).
Impact of TRP32-interacting protein knockdown on .
| By day | ||||
| Day 1 | 13 (59%) | 0 | 9 (41%) | 22 |
| Day 2 | 21 (95%) | 0 | 1 (5%) | |
| Overall | 21 (95%) | 0 | 1 (5%) | |
| By category of function | 22 | |||
| Cell signaling | 6 | 0 | 0 | 6 |
| Metabolism | 4 | 0 | 1 | 5 |
| Protein synthesis, modification and degradation | 4 | 0 | 0 | 4 |
| Vesicle trafficking and intracellular transport | 3 | 0 | 0 | 3 |
| Transcriptional regulation | 2 | 0 | 0 | 2 |
| Apoptosis | 2 | 0 | 0 | 2 |
Figure 5Colocalization of TRP120, TRP47, and TRP32 with their interacting host proteins in . Fluorescence microscopy of infected (2 days postinfection) THP-1 cells stained with 4,6′-diamidino-2-phenylindole (blue, showing the nucleus), TRP antibody (green), and host protein antibody (red; panels A–H, respectively) show co-localization of E. chaffeensis TRP-labeled morulae with host protein. The insets (panels A–D,F,H) show the distribution of EIF3A, ERAL1, KDM6B, STAT6, KARS, and SLC43A3 in uninfected THP-1 cells. Fluorescence images were obtained using an Olympus BX61 epifluorescence microscope. Bar, 10 μm.
Figure 6Schematic diagram of important host cellular processes that . 1. Bacterial entry: E. chaffeensis binds and enters the host cell by phagocytosis. TRPs interact with host cytoskeletal proteins including actins and actin-related proteins, and also exploit host cell signaling (such as Wnt) to facilitate phagocytosis; TRPs also interact with host vesicular trafficking system to help establish an intracellular niche in a membrane-bound vacuole that does not undergo phagolysosomal fusion. 2. Bacterial replication: TRPs are secreted into the intramorular space and translocate into cytosol and nucleus of the host cell, where these effectors interact with diverse host proteins to modulate cell processes, including vesicle trafficking and intracellular transport, cell signaling, transcriptional regulation, posttranslational modification, metabolism, apoptosis, and others in order to avoid host defense system and permit intracellular replication. 3. Bacterial exit: TRPs interact with many apoptosis-associated proteins (some in mitochondria) to induce host cell apoptosis; TRPs also interact with host cytoskeletal proteins to facilitate exocytosis. Red dots show TRPs, including TRP120, TRP47, and TRP32. Ec, E. chaffeensis.
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| TRP120 | ADAM17 | ADAM metallopeptidase domain 17 | GPCR, Notch, Hedgehog, EGFR, TGFβ, TNF, cytokine/chemokine |
| AKAP2 | A kinase anchor protein 2 | GPCR | |
| ANXA2 | Annexin A2 | Calcium, Wnt, NFκB, IL, EGFR, STAT3 | |
| CXCL12 | C-X-C motif chemokine ligand 12 | GPCR, NFκB, chemokine | |
| GCSAM | Germinal center associated signaling and motility | B cell receptor | |
| GNAI2 | G protein subunit alpha i2 | GPCR, MAPK, chemokine | |
| GPS1 | G protein pathway suppressor 1 | GPCR, MAPK, JNK | |
| IFNGR2 | Interferon gamma receptor 2 | IFNγ, JAK-STAT | |
| IL2RG | Interleukin 2 receptor subunit gamma | IL, MAPK, PI3K/Akt, FGFR | |
| KRAS | KRAS proto-oncogene, GTPase | EGFR, MAPK, NFκB, Ras, Rac | |
| LGALS1 | Galectin 1 | IKK/NFκB | |
| PDE1B | Phosphodiesterase 1B | GPCR, PLC, FGFR, EGFR | |
| PPP3R1 | Protein phosphatase 3 regulatory subunit B, alpha | MAPK, Wnt | |
| TLE4 | Transducin like enhancer of split 4 | Wnt, Notch | |
| TRP47 | BPI | Bactericidal/permeability-increasing protein | IL, TNF, TLR |
| CAB39 | Calcium binding protein 39 | PI3K/Akt/mTOR, IGF1R, | |
| CDK1 | Cyclin dependent kinase 1 | p53, MAPK, Hedgehog | |
| CDK10 | Cyclin dependent kinase 10 | MAPK | |
| FYN | FYN proto-oncogene, Src family tyrosine kinase | Fcγ receptor, T cell receptor, MAPK, IKK/NFκB, PI3, C-type lectin receptor, VEGF receptor | |
| GNB1 | G protein subunit beta 1 | GPCR, Ras, Wnt, PI3K/Akt, Hedgehog, CXCR3/4, cytokine | |
| IGLL1 | Immunoglobulin lambda like polypeptide 1 | B cell receptor | |
| PRTN3 | Proteinase 3 | Cytokine, IL | |
| PTPN2 | Protein tyrosine phosphatase, non-receptor type 2 | ERK1/2, EGF receptor, IFNγ, IL, TNF, IFN, T cell receptor | |
| TRP32 | CD14 | CD14 molecule | IKK/NFκB, MAPK, TLR, LPS |
| CD63 | CD63 molecule | Integrin, VEGF | |
| RC3H1 | Ring finger and CCCH-type domain 1 | NFκB, T cell receptor | |
| TRP120/TRP47 | IGKC | Immunoglobulin kappa constant | B cell receptor, MAPK, NFκB |
| TRP120/TRP32 | IGHA1 | Immunoglobulin heavy constant alpha 1 | B cell receptor |
| IGLL5 | Immunoglobulin lambda like polypeptide 5 | B cell receptor | |
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| TRP120 | ACTG1 | Actin gamma 1 | Component of the cytoskeleton and mediator of internal cell motility |
| ARPC2 | Actin related protein 2/3 complex subunit 2 | Control of actin polymerization, phagocytosis and endocytosis, vesicle transport, membrane trafficking | |
| CDC42SE2 | CDC42 small effector 2 | F-actin accumulation, phagocytosis, regulation of cell shape | |
| ITGAM | Integrin subunit alpha M | Regulation of actin cytoskeleton, phagocytosis | |
| MYO10 | Myosin X | Actin-based molecular motor, integration of F-actin and microtubule cytoskeletons, phagocytosis, intracellular transport, regulation of cell shape | |
| SPTA1 | Spectrin alpha, erythrocytic 1 | Actin binding and crosslinking, determination of cell shape, molecular scaffold organization of organelles | |
| WASF2 | WAS protein family member 2 | Actin binding, cytoskeleton organization, phagocytosis | |
| WDR1 | WD repeat domain 1 | Actin filament binding and fragmentation, disassembly of actin filaments | |
| TRP47 | CAP1 | Adenylate cyclase associated protein 1 | Actin polymerization or depolymerization, cell morphogenesis and polarity, endocytosis |
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| TRP120 | ARID1B | AT-rich interactive domain 1B | A component of the SWI/SNF chromatin remodeling complex and may play a role in cell cycle activation |
| CDK12 | Cyclin-dependent kinase 12 | Transcriptional regulation of genomic stability, cell cycle and cell differentiation | |
| ILF3 | Interleukin enhancer binding factor 3 | A double-stranded RNA-binding protein that forms a heterodimer with transcription factor ILF2 required for T-cell expression of interleukin 2 | |
| IRF2BP | Interferon regulatory factor 2 binding protein 2 | An interferon regulatory factor-2 (IRF2) binding protein that interacts with the C-terminal transcriptional repression domain of IRF2 | |
| KDM6B | Lysine demethylase 6B | A histone H3-K27 demethylase involved in positive regulation of transcription | |
| NSD1 | Nuclear receptor binding SET domain protein 1 | A histone methyltransferase which may act as a nucleus-localized, basic transcriptional factor and also as a bifunctional transcriptional regulator | |
| TRIM24 | Tripartite motif containing 24 | A member of the tripartite motif family and mediates transcriptional control by interaction with the activation function 2 region of several nuclear receptors | |
| TRP47 | ARID2 | AT-rich interactive domain 2 | A subunit of the PBAF chromatin-remodeling complex which facilitates ligand-dependent transcriptional activation by nuclear receptors |
| HDAC2 | Histone deacetylase 2 | Responsible for the deacetylation of lysine residues at the N-terminal regions of core histones and forms transcriptional repressor complexes by associating with many different proteins | |
| STAT5A | Signal transducer and activator of transcription 5A | A member of the STAT family of transcription factors | |
| STAT6 | Signal transducer and activator of transcription 6 | A member of the STAT family of transcription factors | |
| TFEC | Transcription factor EC | A member of the micropthalmia family of basic helix-loop-helix leucine zipper transcription factors which regulate the expression of target genes by binding to E-box recognition sequences | |
| TRP32 | DAZAP2 | DAZ-associated protein 2 | A coactivator of transcription factor TCF4 in canonical Wnt pathway |
| HHEX | Hematopoietically expressed homeobox | Hematopoietic cell differentiation | |
| TRP120/TRP47 | PCGF5 | Polycomb group ring finger 5 | A component of the polycomb repressive complex which mediates epigenetic regulation |
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| TRP120 | ICAM3 | Intercellular adhesion molecule 3 | Vesicle trafficking |
| SPTA1 | Spectrin alpha, erythrocytic 1 | ||
| ADAM17 | ADAM metallopeptidase domain 17 | Cell signaling | |
| CXCL12 | C-X-C motif chemokine ligand 12 | ||
| KRAS | KRAS proto-oncogene, GTPase | ||
| LGALS1 | Galectin 1 | ||
| PDE1B | Phosphodiesterase 1B | ||
| PPP3R1 | Protein phosphatase 3 regulatory subunit B, alpha | ||
| DDX5 | DEAD-box helicase 5 | Transcriptional regulation | |
| IRF2BP | Interferon regulatory factor 2 binding protein 2 | ||
| KDM6B | Lysine demethylase 6B | ||
| TRIM24 | Tripartite motif containing 24 | ||
| CAT | Catalase | Metabolism | |
| FBXW7 | F-box and WD repeat domain containing 7 | Posttranslational modification | |
| ERAL1 | Era-like 12S mitochondrial rRNA chaperone 1 | Others | |
| ORAOV1 | Oral cancer overexpressed 1 | ||
| SEPX1 | Selenoprotein X, 1 | ||
| TRP47 | CDK1 | Cyclin dependent kinase 1 | Cell signaling |
| GNB1 | G protein subunit beta 1 | ||
| PTPN2 | Protein tyrosine phosphatase, non-receptor type 2 | ||
| HDAC2 | Histone deacetylase 2 | Transcriptional regulation | |
| STAT5A | Signal transducer and activator of transcription 5A | ||
| STAT6 | Signal transducer and activator of transcription 6 | ||
| CAP1 | Adenylate cyclase associated protein 1 | Vesicle trafficking and intracellular transport | |
| TRP32 | CD14 | CD14 molecule | Cell signaling |
| GLCCI1 | Glucocorticoid-induced 1 | Apoptosis | |
| TP53I11 | Tumor protein p53 inducible protein 11 | ||
| TRP120/TRP47 | CA1 | Carbonic anhydrase 1 | Metabolism |
| CLC | Charcot-Leyden crystal galectin | ||
| IGKC | Immunoglobulin kappa constant | Cell signaling | |
| TRP120/TRP32 | EEF1A1 | Eukaryotic translation elongation factor 1 alpha 1 | Others |
| IGHA1 | Immunoglobulin heavy constant alpha 1 | Cell signaling | |
| IGLL5 | Immunoglobulin lambda like polypeptide 5 | ||