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gfp  (OriGene)
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Localization of host SNARE proteins at the Plasmodium PVM during liver-stage infection. ( A – C ) Confocal live cell imaging of <t>GFP-tagged</t> SNARE proteins VAMP7-GFP ( A ), VAMP8-GFP ( B ), and Stx7-GFP ( C ) in P. berghei -infected HeLa cells expressing mCherry (parasite cytoplasm, red) at 6, 24, and 48 hpi. SNARE localization is shown in green. ( D – G ) Immunofluorescence analysis of Vti1B ( D ), VAMP7 ( E ), VAMP8 ( F ), and Stx7 ( G ) in HeLa cells fixed at 0.5, 1, and 1.5 hpi. SNAREs were detected <t>with</t> <t>anti-GFP</t> (green) or anti-Vti1B (green); the PVM was labeled with anti-UIS4 (red); and DAPI (blue) stained nuclei. ( H ) Localization of SNARE <t>proteins</t> <t>(anti-Vti1B/anti-GFP</t> in green) with the PVM marker UIS4 (red) at 24 hpi, visualized by expansion microscopy (5-fold expanded). Merged channels (yellow) highlight PVM-SNARE protein association. Nuclei were counterstained with DAPI (blue). Scale bars: 5 μm ( A – G ); 10 μm ( H ).
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Localization of host SNARE proteins at the Plasmodium PVM during liver-stage infection. ( A – C ) Confocal live cell imaging of <t>GFP-tagged</t> SNARE proteins VAMP7-GFP ( A ), VAMP8-GFP ( B ), and Stx7-GFP ( C ) in P. berghei -infected HeLa cells expressing mCherry (parasite cytoplasm, red) at 6, 24, and 48 hpi. SNARE localization is shown in green. ( D – G ) Immunofluorescence analysis of Vti1B ( D ), VAMP7 ( E ), VAMP8 ( F ), and Stx7 ( G ) in HeLa cells fixed at 0.5, 1, and 1.5 hpi. SNAREs were detected <t>with</t> <t>anti-GFP</t> (green) or anti-Vti1B (green); the PVM was labeled with anti-UIS4 (red); and DAPI (blue) stained nuclei. ( H ) Localization of SNARE <t>proteins</t> <t>(anti-Vti1B/anti-GFP</t> in green) with the PVM marker UIS4 (red) at 24 hpi, visualized by expansion microscopy (5-fold expanded). Merged channels (yellow) highlight PVM-SNARE protein association. Nuclei were counterstained with DAPI (blue). Scale bars: 5 μm ( A – G ); 10 μm ( H ).
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Localization of host SNARE proteins at the Plasmodium PVM during liver-stage infection. ( A – C ) Confocal live cell imaging of <t>GFP-tagged</t> SNARE proteins VAMP7-GFP ( A ), VAMP8-GFP ( B ), and Stx7-GFP ( C ) in P. berghei -infected HeLa cells expressing mCherry (parasite cytoplasm, red) at 6, 24, and 48 hpi. SNARE localization is shown in green. ( D – G ) Immunofluorescence analysis of Vti1B ( D ), VAMP7 ( E ), VAMP8 ( F ), and Stx7 ( G ) in HeLa cells fixed at 0.5, 1, and 1.5 hpi. SNAREs were detected <t>with</t> <t>anti-GFP</t> (green) or anti-Vti1B (green); the PVM was labeled with anti-UIS4 (red); and DAPI (blue) stained nuclei. ( H ) Localization of SNARE <t>proteins</t> <t>(anti-Vti1B/anti-GFP</t> in green) with the PVM marker UIS4 (red) at 24 hpi, visualized by expansion microscopy (5-fold expanded). Merged channels (yellow) highlight PVM-SNARE protein association. Nuclei were counterstained with DAPI (blue). Scale bars: 5 μm ( A – G ); 10 μm ( H ).
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Localization of host SNARE proteins at the Plasmodium PVM during liver-stage infection. ( A – C ) Confocal live cell imaging of <t>GFP-tagged</t> SNARE proteins VAMP7-GFP ( A ), VAMP8-GFP ( B ), and Stx7-GFP ( C ) in P. berghei -infected HeLa cells expressing mCherry (parasite cytoplasm, red) at 6, 24, and 48 hpi. SNARE localization is shown in green. ( D – G ) Immunofluorescence analysis of Vti1B ( D ), VAMP7 ( E ), VAMP8 ( F ), and Stx7 ( G ) in HeLa cells fixed at 0.5, 1, and 1.5 hpi. SNAREs were detected <t>with</t> <t>anti-GFP</t> (green) or anti-Vti1B (green); the PVM was labeled with anti-UIS4 (red); and DAPI (blue) stained nuclei. ( H ) Localization of SNARE <t>proteins</t> <t>(anti-Vti1B/anti-GFP</t> in green) with the PVM marker UIS4 (red) at 24 hpi, visualized by expansion microscopy (5-fold expanded). Merged channels (yellow) highlight PVM-SNARE protein association. Nuclei were counterstained with DAPI (blue). Scale bars: 5 μm ( A – G ); 10 μm ( H ).
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Localization of host SNARE proteins at the Plasmodium PVM during liver-stage infection. ( A – C ) Confocal live cell imaging of <t>GFP-tagged</t> SNARE proteins VAMP7-GFP ( A ), VAMP8-GFP ( B ), and Stx7-GFP ( C ) in P. berghei -infected HeLa cells expressing mCherry (parasite cytoplasm, red) at 6, 24, and 48 hpi. SNARE localization is shown in green. ( D – G ) Immunofluorescence analysis of Vti1B ( D ), VAMP7 ( E ), VAMP8 ( F ), and Stx7 ( G ) in HeLa cells fixed at 0.5, 1, and 1.5 hpi. SNAREs were detected <t>with</t> <t>anti-GFP</t> (green) or anti-Vti1B (green); the PVM was labeled with anti-UIS4 (red); and DAPI (blue) stained nuclei. ( H ) Localization of SNARE <t>proteins</t> <t>(anti-Vti1B/anti-GFP</t> in green) with the PVM marker UIS4 (red) at 24 hpi, visualized by expansion microscopy (5-fold expanded). Merged channels (yellow) highlight PVM-SNARE protein association. Nuclei were counterstained with DAPI (blue). Scale bars: 5 μm ( A – G ); 10 μm ( H ).
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Localization of host SNARE proteins at the Plasmodium PVM during liver-stage infection. ( A – C ) Confocal live cell imaging of <t>GFP-tagged</t> SNARE proteins VAMP7-GFP ( A ), VAMP8-GFP ( B ), and Stx7-GFP ( C ) in P. berghei -infected HeLa cells expressing mCherry (parasite cytoplasm, red) at 6, 24, and 48 hpi. SNARE localization is shown in green. ( D – G ) Immunofluorescence analysis of Vti1B ( D ), VAMP7 ( E ), VAMP8 ( F ), and Stx7 ( G ) in HeLa cells fixed at 0.5, 1, and 1.5 hpi. SNAREs were detected <t>with</t> <t>anti-GFP</t> (green) or anti-Vti1B (green); the PVM was labeled with anti-UIS4 (red); and DAPI (blue) stained nuclei. ( H ) Localization of SNARE <t>proteins</t> <t>(anti-Vti1B/anti-GFP</t> in green) with the PVM marker UIS4 (red) at 24 hpi, visualized by expansion microscopy (5-fold expanded). Merged channels (yellow) highlight PVM-SNARE protein association. Nuclei were counterstained with DAPI (blue). Scale bars: 5 μm ( A – G ); 10 μm ( H ).
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SA-N-hACE2 mice are susceptible to SARS-CoV-2 <t>ΔN/GFP-HiBiT</t> infection. a Experimental design for intranasal infection. After TAM treatment, SA-N-hACE2 mice were infected either with 5 × 10 4 or 1 × 10 6 TCID 50 of SARS-CoV-2 ΔN/GFP-HiBiT. Tissue samples were collected at the indicated dpi. b Changes in the weights of the mice are shown ( n = 4 per group). c qRT‒PCR was used to quantify viral loads in tissues at 7 dpi ( n = 4 per group). The viral loads ( d ) and luminescence ( e ) were measured in the lungs collected at 2, 4, and 7 dpi ( n = 4 per group). f Immunofluorescence staining of lung sections at 2, 4, and 7 dpi was conducted using DAPI (blue) and <t>an</t> <t>anti-GFP</t> antibody (green) specific to GFP in SARS-CoV-2 ΔN/GFP-HiBiT. g – j Pathological changes observed using H&E staining in lung ( g ) and brain ( i ) tissues from SA-N-hACE2 mice challenged with 1 × 10 6 TCID 50 at 0, 2, 4, and 7 dpi. Pathology scores for the lungs ( h ) and brain ( j ) were calculated ( n = 4 per group). Data are presented as means ± SD. Statistical significance was determined using one-way ANOVA with Dunnett’s multiple comparisons test ( h ). ns not significant; * p < 0.05; ** p < 0.01; *** p < 0.001; **** p < 0.0001. ND not detected
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Image Search Results


Localization of host SNARE proteins at the Plasmodium PVM during liver-stage infection. ( A – C ) Confocal live cell imaging of GFP-tagged SNARE proteins VAMP7-GFP ( A ), VAMP8-GFP ( B ), and Stx7-GFP ( C ) in P. berghei -infected HeLa cells expressing mCherry (parasite cytoplasm, red) at 6, 24, and 48 hpi. SNARE localization is shown in green. ( D – G ) Immunofluorescence analysis of Vti1B ( D ), VAMP7 ( E ), VAMP8 ( F ), and Stx7 ( G ) in HeLa cells fixed at 0.5, 1, and 1.5 hpi. SNAREs were detected with anti-GFP (green) or anti-Vti1B (green); the PVM was labeled with anti-UIS4 (red); and DAPI (blue) stained nuclei. ( H ) Localization of SNARE proteins (anti-Vti1B/anti-GFP in green) with the PVM marker UIS4 (red) at 24 hpi, visualized by expansion microscopy (5-fold expanded). Merged channels (yellow) highlight PVM-SNARE protein association. Nuclei were counterstained with DAPI (blue). Scale bars: 5 μm ( A – G ); 10 μm ( H ).

Journal: Cells

Article Title: Host SNARE Proteins Mediate Lysosome and PVM Fusion to Support Plasmodium Liver Infection

doi: 10.3390/cells15070584

Figure Lengend Snippet: Localization of host SNARE proteins at the Plasmodium PVM during liver-stage infection. ( A – C ) Confocal live cell imaging of GFP-tagged SNARE proteins VAMP7-GFP ( A ), VAMP8-GFP ( B ), and Stx7-GFP ( C ) in P. berghei -infected HeLa cells expressing mCherry (parasite cytoplasm, red) at 6, 24, and 48 hpi. SNARE localization is shown in green. ( D – G ) Immunofluorescence analysis of Vti1B ( D ), VAMP7 ( E ), VAMP8 ( F ), and Stx7 ( G ) in HeLa cells fixed at 0.5, 1, and 1.5 hpi. SNAREs were detected with anti-GFP (green) or anti-Vti1B (green); the PVM was labeled with anti-UIS4 (red); and DAPI (blue) stained nuclei. ( H ) Localization of SNARE proteins (anti-Vti1B/anti-GFP in green) with the PVM marker UIS4 (red) at 24 hpi, visualized by expansion microscopy (5-fold expanded). Merged channels (yellow) highlight PVM-SNARE protein association. Nuclei were counterstained with DAPI (blue). Scale bars: 5 μm ( A – G ); 10 μm ( H ).

Article Snippet: The cells were then incubated in 10% FCS/PBS for 1 h, at room temperature with primary antibodies: Vti1B (mouse mAb 1:1000 (1:500 PS-ExM), BD Transduction Laboratories #611404, Allschwil, Switzerland), UIS4 (rabbit 1:1000, P. sinnis ; chicken 1:10000, Proteogenix, Schiltigheim, France), hLAMP1 (mouse mAb 1:1000 (1:500 PS-ExM), DSHB H4A3 (Iowa City, USA); rabbit pAb 1:1000, Cell Signaling #9091, Allschwill, Switzerland), GFP (rabbit pAb 1:1000, Origene TA100030, Herford, Germany; mouse mAb 1:1000, Roche AQ160, Basel, Switzerland), and α-tubulin (guinea pig pAb 1:500, ABCD AA345, Geneva, Switzerland).

Techniques: Infection, Live Cell Imaging, Expressing, Immunofluorescence, Labeling, Staining, Marker, Microscopy

SA-N-hACE2 mice are susceptible to SARS-CoV-2 ΔN/GFP-HiBiT infection. a Experimental design for intranasal infection. After TAM treatment, SA-N-hACE2 mice were infected either with 5 × 10 4 or 1 × 10 6 TCID 50 of SARS-CoV-2 ΔN/GFP-HiBiT. Tissue samples were collected at the indicated dpi. b Changes in the weights of the mice are shown ( n = 4 per group). c qRT‒PCR was used to quantify viral loads in tissues at 7 dpi ( n = 4 per group). The viral loads ( d ) and luminescence ( e ) were measured in the lungs collected at 2, 4, and 7 dpi ( n = 4 per group). f Immunofluorescence staining of lung sections at 2, 4, and 7 dpi was conducted using DAPI (blue) and an anti-GFP antibody (green) specific to GFP in SARS-CoV-2 ΔN/GFP-HiBiT. g – j Pathological changes observed using H&E staining in lung ( g ) and brain ( i ) tissues from SA-N-hACE2 mice challenged with 1 × 10 6 TCID 50 at 0, 2, 4, and 7 dpi. Pathology scores for the lungs ( h ) and brain ( j ) were calculated ( n = 4 per group). Data are presented as means ± SD. Statistical significance was determined using one-way ANOVA with Dunnett’s multiple comparisons test ( h ). ns not significant; * p < 0.05; ** p < 0.01; *** p < 0.001; **** p < 0.0001. ND not detected

Journal: Signal Transduction and Targeted Therapy

Article Title: A biosafe mouse model for SARS-CoV-2 infection that more realistically simulates COVID-19 symptoms

doi: 10.1038/s41392-026-02640-5

Figure Lengend Snippet: SA-N-hACE2 mice are susceptible to SARS-CoV-2 ΔN/GFP-HiBiT infection. a Experimental design for intranasal infection. After TAM treatment, SA-N-hACE2 mice were infected either with 5 × 10 4 or 1 × 10 6 TCID 50 of SARS-CoV-2 ΔN/GFP-HiBiT. Tissue samples were collected at the indicated dpi. b Changes in the weights of the mice are shown ( n = 4 per group). c qRT‒PCR was used to quantify viral loads in tissues at 7 dpi ( n = 4 per group). The viral loads ( d ) and luminescence ( e ) were measured in the lungs collected at 2, 4, and 7 dpi ( n = 4 per group). f Immunofluorescence staining of lung sections at 2, 4, and 7 dpi was conducted using DAPI (blue) and an anti-GFP antibody (green) specific to GFP in SARS-CoV-2 ΔN/GFP-HiBiT. g – j Pathological changes observed using H&E staining in lung ( g ) and brain ( i ) tissues from SA-N-hACE2 mice challenged with 1 × 10 6 TCID 50 at 0, 2, 4, and 7 dpi. Pathology scores for the lungs ( h ) and brain ( j ) were calculated ( n = 4 per group). Data are presented as means ± SD. Statistical significance was determined using one-way ANOVA with Dunnett’s multiple comparisons test ( h ). ns not significant; * p < 0.05; ** p < 0.01; *** p < 0.001; **** p < 0.0001. ND not detected

Article Snippet: The samples were first immunostained with an anti-GFP antibody (Sino Biological, 13105-R208, 1:500) followed by an Alexa Fluor 488-conjugated secondary antibody (Thermo Fisher Scientific, A-11008, 1:1000).

Techniques: Infection, Immunofluorescence, Staining

Sftpc-N-hACE2 mice are susceptible to SARS-CoV-2 ΔN/GFP-HiBiT infection. a Illustration of the protocol for intranasal infection with tissue samples collected at the indicated dpi. Sftpc-N-hACE2 mice were infected with 5 × 10 4 or 1 × 10 6 TCID 50 of SARS-CoV-2 ΔN/GFP-HiBiT. b Changes in the body weights of the mice are shown ( n = 4 per group). c Viral loads in the tissues obtained at 7 dpi were quantified via qRT‒PCR ( n = 4 per group). The viral loads ( d ) and luminescence ( e ) were measured in the lungs collected at 2, 4, and 7 dpi ( n = 4 per group). f Immunofluorescence staining of lung sections at 2, 4, and 7 dpi was conducted using DAPI (blue) and an anti-GFP antibody (green) specific to GFP in SARS-CoV-2 ΔN/GFP-HiBiT. g – j Pathological changes in the lungs ( g ) and brains ( i ) of Sftpc-N-hACE2 mice challenged with 1 × 10 6 TCID 50 at 0, 2, 4, and 7 dpi were assessed using H&E staining. Pathology scores for the lungs ( h ) and brains ( j ) are shown ( n = 4 per group). Data are presented as means ± SD. Statistical significance was determined using one-way ANOVA with Dunnett’s multiple comparisons test ( h ). ns not significant; * p < 0.05; ** p < 0.01; *** p < 0.001; **** p < 0.0001. ND not detected

Journal: Signal Transduction and Targeted Therapy

Article Title: A biosafe mouse model for SARS-CoV-2 infection that more realistically simulates COVID-19 symptoms

doi: 10.1038/s41392-026-02640-5

Figure Lengend Snippet: Sftpc-N-hACE2 mice are susceptible to SARS-CoV-2 ΔN/GFP-HiBiT infection. a Illustration of the protocol for intranasal infection with tissue samples collected at the indicated dpi. Sftpc-N-hACE2 mice were infected with 5 × 10 4 or 1 × 10 6 TCID 50 of SARS-CoV-2 ΔN/GFP-HiBiT. b Changes in the body weights of the mice are shown ( n = 4 per group). c Viral loads in the tissues obtained at 7 dpi were quantified via qRT‒PCR ( n = 4 per group). The viral loads ( d ) and luminescence ( e ) were measured in the lungs collected at 2, 4, and 7 dpi ( n = 4 per group). f Immunofluorescence staining of lung sections at 2, 4, and 7 dpi was conducted using DAPI (blue) and an anti-GFP antibody (green) specific to GFP in SARS-CoV-2 ΔN/GFP-HiBiT. g – j Pathological changes in the lungs ( g ) and brains ( i ) of Sftpc-N-hACE2 mice challenged with 1 × 10 6 TCID 50 at 0, 2, 4, and 7 dpi were assessed using H&E staining. Pathology scores for the lungs ( h ) and brains ( j ) are shown ( n = 4 per group). Data are presented as means ± SD. Statistical significance was determined using one-way ANOVA with Dunnett’s multiple comparisons test ( h ). ns not significant; * p < 0.05; ** p < 0.01; *** p < 0.001; **** p < 0.0001. ND not detected

Article Snippet: The samples were first immunostained with an anti-GFP antibody (Sino Biological, 13105-R208, 1:500) followed by an Alexa Fluor 488-conjugated secondary antibody (Thermo Fisher Scientific, A-11008, 1:1000).

Techniques: Infection, Immunofluorescence, Staining

SARS-CoV-2 ΔN/GFP-HiBiT infection in Sftpc-N-hACE2 mice can lead to lethal disease. a The schematic outlines the procedure for infecting the mice with 5 × 10 6 TCID 50 of SARS-CoV-2 ΔN/GFP-HiBiT. At 0, 7, 10, 14, and 21 dpi, four mice were euthanized at each time point for sample collection. Mice that experienced a loss of more than 20% of their initial body weight were euthanized as a humane endpoint. Mice were monitored for body weight changes ( b ) and survival ( c ) ( n = 16). E gene copies in lung ( d ) and brain ( e ) tissues were quantified via qRT‒PCR. f – i Pathological changes were assessed using H&E staining in the lungs ( f ) and brains ( g ). Pathology scores for the lungs ( h ) and brains ( i ) were recorded ( n = 4 per group). j Immunofluorescence staining of brain sections was performed using DAPI (blue) and an anti-GFP antibody (green) specific to GFP in SARS-CoV-2 ΔN/GFP-HiBiT. k Immunofluorescence analysis was performed on brain sections from mock-infected mice, K18-hACE2 KI mice challenged with live SARS-CoV-2, and both SA-N-hACE2 and Sftpc-N-hACE2 mice exposed to SARS-CoV-2 ΔN/GFP-HiBiT. The sections were stained with anti-IBA1 (red) and anti-CD68 (green) antibodies. l Light-sheet imaging of cleared lung tissues from Sftpc-N-hACE2 mice at 7 dpi confirmed the distribution of SARS-CoV-2 N in lung epithelial cells and SARS-CoV-2 ΔN/GFP-HiBiT infection. Data are presented as means ± SD. Statistical significance was determined using one-way ANOVA with Dunnett’s multiple comparisons test ( h ). ns not significant; * p < 0.05; ** p < 0.01; *** p < 0.001; **** p < 0.0001. ND not detected

Journal: Signal Transduction and Targeted Therapy

Article Title: A biosafe mouse model for SARS-CoV-2 infection that more realistically simulates COVID-19 symptoms

doi: 10.1038/s41392-026-02640-5

Figure Lengend Snippet: SARS-CoV-2 ΔN/GFP-HiBiT infection in Sftpc-N-hACE2 mice can lead to lethal disease. a The schematic outlines the procedure for infecting the mice with 5 × 10 6 TCID 50 of SARS-CoV-2 ΔN/GFP-HiBiT. At 0, 7, 10, 14, and 21 dpi, four mice were euthanized at each time point for sample collection. Mice that experienced a loss of more than 20% of their initial body weight were euthanized as a humane endpoint. Mice were monitored for body weight changes ( b ) and survival ( c ) ( n = 16). E gene copies in lung ( d ) and brain ( e ) tissues were quantified via qRT‒PCR. f – i Pathological changes were assessed using H&E staining in the lungs ( f ) and brains ( g ). Pathology scores for the lungs ( h ) and brains ( i ) were recorded ( n = 4 per group). j Immunofluorescence staining of brain sections was performed using DAPI (blue) and an anti-GFP antibody (green) specific to GFP in SARS-CoV-2 ΔN/GFP-HiBiT. k Immunofluorescence analysis was performed on brain sections from mock-infected mice, K18-hACE2 KI mice challenged with live SARS-CoV-2, and both SA-N-hACE2 and Sftpc-N-hACE2 mice exposed to SARS-CoV-2 ΔN/GFP-HiBiT. The sections were stained with anti-IBA1 (red) and anti-CD68 (green) antibodies. l Light-sheet imaging of cleared lung tissues from Sftpc-N-hACE2 mice at 7 dpi confirmed the distribution of SARS-CoV-2 N in lung epithelial cells and SARS-CoV-2 ΔN/GFP-HiBiT infection. Data are presented as means ± SD. Statistical significance was determined using one-way ANOVA with Dunnett’s multiple comparisons test ( h ). ns not significant; * p < 0.05; ** p < 0.01; *** p < 0.001; **** p < 0.0001. ND not detected

Article Snippet: The samples were first immunostained with an anti-GFP antibody (Sino Biological, 13105-R208, 1:500) followed by an Alexa Fluor 488-conjugated secondary antibody (Thermo Fisher Scientific, A-11008, 1:1000).

Techniques: Infection, Staining, Immunofluorescence, Imaging