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    Structured Review

    MedChemExpress cat
    Cat, supplied by MedChemExpress, used in various techniques. Bioz Stars score: 99/100, based on 2041 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/magnetic+beads/Protein+A%2FG+Magnetic+Beads/pmc13392861-42-7-5
    Average 99 stars, based on 2041 article reviews
    cat - by Bioz Stars, 2026-09
    99/100 stars

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    Related Articles

    Magnetic Beads:

    Article Title: Numb attenuates LPS-induced neuroinflammation via autophagic regulation of Ifi204 in microglia.
    Article Snippet: The supernatant was pre-cleared using magnetic beads (MCE, HY-K0202) before undergoing immunoprecipitation at 4 ◦C for 8 h with either IgG or specific antibody-conjugated beads.

    Article Title: NAT10-mediated N4-acetylcytidine modification drives RNA splicing of PML to alleviate adipose-derived stem cell senescence and promote diabetic wound healing.
    Article Snippet: Ten percent of the supernatant was collected as the Input and stored at −80◦C, while the remaining supernatant was incubated overnight at 4◦C with protein A/G-conjugated magnetic beads (MCE) and the indicated antibodies (anti-NAT10, anti-ac4C, anti-SRSF1 or control IgG).

    Article Title: Cytoplasmic RNase III Drosha controls lipogenesis by noncanonical regulation of SREBP1.
    Article Snippet: Article Cytoplasmic RNase III Drosha controls lipogenesis by noncanonical regulation of SREBP1

    Article Title: ARF-like GTPase 8B orchestrates lipophagy and exocytosis to drive single-stranded RNA virus replication.
    Article Snippet: Antibodies were pre-incubated with magnetic beads (MCE) in binding/wash buffer (1:2000 dilution) overnight at 4 °C on a rotator.

    Article Title: Epigenetically silenced KAT2B suppresses de novo lipogenesis through destroying HDAC5/LSD1 complex assembly in renal cell carcinoma
    Article Snippet: Immunoprecipitation: after the cells were lysed, primary antibodies were used to bind the corresponding proteins overnight at 4 °C, followed by the addition of magnetic beads (MCE, HY-K0202, USA) to capture the antibodies at 4 °C for 3 h. After thermal elution, the protein solutions were obtained for western blotting experiments.

    Article Title: NUP62 promotes breast cancer progression and inhibits ferroptosis by stabilizing NRF2 in a KEAP1-dependent way
    Article Snippet: Magnetic beads (Protein A/G, HY–K0202, MCE) were added to capture antibody-antigen complexes.

    Article Title: ZDHHC11-mediated palmitoylation of viral envelope protein restricts dengue virus replication: implication for the development of universal anti-flavivirus therapeutic strategies.
    Article Snippet: A total of 40 μL of fully resuspended magnetic beads (MedChemExpress, HY-K0202-5, USA) were transferred to a 2 mL EP tube, washed three times with 400 μL of 0.5% PBST via magnetic separation and supernatant discarding, and then incubated with Flag antibody (diluted to 25 μg/mL in 0.5% PBST) on a rotating mixer at room temperature for 30 min.

    Article Title: Cyclovirobuxine D suppresses gastric cancer growth by targeting the V-ATPase complex and inducing excessive endo-lysophagy
    Article Snippet: Magnetic beads (HY-K0202; MedChemExpress) were added, and the mixture was incubated overnight at 4 °C on a rotary shaker.

    Binding Assay:

    Article Title: Numb attenuates LPS-induced neuroinflammation via autophagic regulation of Ifi204 in microglia.
    Article Snippet: The supernatant was pre-cleared using magnetic beads (MCE, HY-K0202) before undergoing immunoprecipitation at 4 ◦C for 8 h with either IgG or specific antibody-conjugated beads.

    Article Title: NAT10-mediated N4-acetylcytidine modification drives RNA splicing of PML to alleviate adipose-derived stem cell senescence and promote diabetic wound healing.
    Article Snippet: Ten percent of the supernatant was collected as the Input and stored at −80◦C, while the remaining supernatant was incubated overnight at 4◦C with protein A/G-conjugated magnetic beads (MCE) and the indicated antibodies (anti-NAT10, anti-ac4C, anti-SRSF1 or control IgG).

    Article Title: Cytoplasmic RNase III Drosha controls lipogenesis by noncanonical regulation of SREBP1.
    Article Snippet: Article Cytoplasmic RNase III Drosha controls lipogenesis by noncanonical regulation of SREBP1

    Article Title: ARF-like GTPase 8B orchestrates lipophagy and exocytosis to drive single-stranded RNA virus replication.
    Article Snippet: Antibodies were pre-incubated with magnetic beads (MCE) in binding/wash buffer (1:2000 dilution) overnight at 4 °C on a rotator.

    Article Title: Epigenetically silenced KAT2B suppresses de novo lipogenesis through destroying HDAC5/LSD1 complex assembly in renal cell carcinoma
    Article Snippet: Immunoprecipitation: after the cells were lysed, primary antibodies were used to bind the corresponding proteins overnight at 4 °C, followed by the addition of magnetic beads (MCE, HY-K0202, USA) to capture the antibodies at 4 °C for 3 h. After thermal elution, the protein solutions were obtained for western blotting experiments.

    Article Title: NUP62 promotes breast cancer progression and inhibits ferroptosis by stabilizing NRF2 in a KEAP1-dependent way
    Article Snippet: Magnetic beads (Protein A/G, HY–K0202, MCE) were added to capture antibody-antigen complexes.

    Article Title: ZDHHC11-mediated palmitoylation of viral envelope protein restricts dengue virus replication: implication for the development of universal anti-flavivirus therapeutic strategies.
    Article Snippet: A total of 40 μL of fully resuspended magnetic beads (MedChemExpress, HY-K0202-5, USA) were transferred to a 2 mL EP tube, washed three times with 400 μL of 0.5% PBST via magnetic separation and supernatant discarding, and then incubated with Flag antibody (diluted to 25 μg/mL in 0.5% PBST) on a rotating mixer at room temperature for 30 min.

    Article Title: Cyclovirobuxine D suppresses gastric cancer growth by targeting the V-ATPase complex and inducing excessive endo-lysophagy
    Article Snippet: Magnetic beads (HY-K0202; MedChemExpress) were added, and the mixture was incubated overnight at 4 °C on a rotary shaker.

    Incubation:

    Article Title: Numb attenuates LPS-induced neuroinflammation via autophagic regulation of Ifi204 in microglia.
    Article Snippet: The supernatant was pre-cleared using magnetic beads (MCE, HY-K0202) before undergoing immunoprecipitation at 4 ◦C for 8 h with either IgG or specific antibody-conjugated beads.

    Article Title: NAT10-mediated N4-acetylcytidine modification drives RNA splicing of PML to alleviate adipose-derived stem cell senescence and promote diabetic wound healing.
    Article Snippet: Ten percent of the supernatant was collected as the Input and stored at −80◦C, while the remaining supernatant was incubated overnight at 4◦C with protein A/G-conjugated magnetic beads (MCE) and the indicated antibodies (anti-NAT10, anti-ac4C, anti-SRSF1 or control IgG).

    Article Title: Cytoplasmic RNase III Drosha controls lipogenesis by noncanonical regulation of SREBP1.
    Article Snippet: Article Cytoplasmic RNase III Drosha controls lipogenesis by noncanonical regulation of SREBP1

    Article Title: ARF-like GTPase 8B orchestrates lipophagy and exocytosis to drive single-stranded RNA virus replication.
    Article Snippet: Antibodies were pre-incubated with magnetic beads (MCE) in binding/wash buffer (1:2000 dilution) overnight at 4 °C on a rotator.

    Article Title: Epigenetically silenced KAT2B suppresses de novo lipogenesis through destroying HDAC5/LSD1 complex assembly in renal cell carcinoma
    Article Snippet: Immunoprecipitation: after the cells were lysed, primary antibodies were used to bind the corresponding proteins overnight at 4 °C, followed by the addition of magnetic beads (MCE, HY-K0202, USA) to capture the antibodies at 4 °C for 3 h. After thermal elution, the protein solutions were obtained for western blotting experiments.

    Article Title: NUP62 promotes breast cancer progression and inhibits ferroptosis by stabilizing NRF2 in a KEAP1-dependent way
    Article Snippet: Magnetic beads (Protein A/G, HY–K0202, MCE) were added to capture antibody-antigen complexes.

    Article Title: ZDHHC11-mediated palmitoylation of viral envelope protein restricts dengue virus replication: implication for the development of universal anti-flavivirus therapeutic strategies.
    Article Snippet: A total of 40 μL of fully resuspended magnetic beads (MedChemExpress, HY-K0202-5, USA) were transferred to a 2 mL EP tube, washed three times with 400 μL of 0.5% PBST via magnetic separation and supernatant discarding, and then incubated with Flag antibody (diluted to 25 μg/mL in 0.5% PBST) on a rotating mixer at room temperature for 30 min.

    Article Title: Cyclovirobuxine D suppresses gastric cancer growth by targeting the V-ATPase complex and inducing excessive endo-lysophagy
    Article Snippet: Magnetic beads (HY-K0202; MedChemExpress) were added, and the mixture was incubated overnight at 4 °C on a rotary shaker.

    Control:

    Article Title: Numb attenuates LPS-induced neuroinflammation via autophagic regulation of Ifi204 in microglia.
    Article Snippet: The supernatant was pre-cleared using magnetic beads (MCE, HY-K0202) before undergoing immunoprecipitation at 4 ◦C for 8 h with either IgG or specific antibody-conjugated beads.

    Article Title: NAT10-mediated N4-acetylcytidine modification drives RNA splicing of PML to alleviate adipose-derived stem cell senescence and promote diabetic wound healing.
    Article Snippet: Ten percent of the supernatant was collected as the Input and stored at −80◦C, while the remaining supernatant was incubated overnight at 4◦C with protein A/G-conjugated magnetic beads (MCE) and the indicated antibodies (anti-NAT10, anti-ac4C, anti-SRSF1 or control IgG).

    Article Title: Cytoplasmic RNase III Drosha controls lipogenesis by noncanonical regulation of SREBP1.
    Article Snippet: Article Cytoplasmic RNase III Drosha controls lipogenesis by noncanonical regulation of SREBP1

    Article Title: ARF-like GTPase 8B orchestrates lipophagy and exocytosis to drive single-stranded RNA virus replication.
    Article Snippet: Antibodies were pre-incubated with magnetic beads (MCE) in binding/wash buffer (1:2000 dilution) overnight at 4 °C on a rotator.

    Article Title: Epigenetically silenced KAT2B suppresses de novo lipogenesis through destroying HDAC5/LSD1 complex assembly in renal cell carcinoma
    Article Snippet: Immunoprecipitation: after the cells were lysed, primary antibodies were used to bind the corresponding proteins overnight at 4 °C, followed by the addition of magnetic beads (MCE, HY-K0202, USA) to capture the antibodies at 4 °C for 3 h. After thermal elution, the protein solutions were obtained for western blotting experiments.

    Article Title: NUP62 promotes breast cancer progression and inhibits ferroptosis by stabilizing NRF2 in a KEAP1-dependent way
    Article Snippet: Magnetic beads (Protein A/G, HY–K0202, MCE) were added to capture antibody-antigen complexes.

    Article Title: ZDHHC11-mediated palmitoylation of viral envelope protein restricts dengue virus replication: implication for the development of universal anti-flavivirus therapeutic strategies.
    Article Snippet: A total of 40 μL of fully resuspended magnetic beads (MedChemExpress, HY-K0202-5, USA) were transferred to a 2 mL EP tube, washed three times with 400 μL of 0.5% PBST via magnetic separation and supernatant discarding, and then incubated with Flag antibody (diluted to 25 μg/mL in 0.5% PBST) on a rotating mixer at room temperature for 30 min.

    Article Title: Cyclovirobuxine D suppresses gastric cancer growth by targeting the V-ATPase complex and inducing excessive endo-lysophagy
    Article Snippet: Magnetic beads (HY-K0202; MedChemExpress) were added, and the mixture was incubated overnight at 4 °C on a rotary shaker.

    Immunoprecipitation:

    Article Title: Numb attenuates LPS-induced neuroinflammation via autophagic regulation of Ifi204 in microglia.
    Article Snippet: The supernatant was pre-cleared using magnetic beads (MCE, HY-K0202) before undergoing immunoprecipitation at 4 ◦C for 8 h with either IgG or specific antibody-conjugated beads.

    Article Title: NAT10-mediated N4-acetylcytidine modification drives RNA splicing of PML to alleviate adipose-derived stem cell senescence and promote diabetic wound healing.
    Article Snippet: Ten percent of the supernatant was collected as the Input and stored at −80◦C, while the remaining supernatant was incubated overnight at 4◦C with protein A/G-conjugated magnetic beads (MCE) and the indicated antibodies (anti-NAT10, anti-ac4C, anti-SRSF1 or control IgG).

    Article Title: Cytoplasmic RNase III Drosha controls lipogenesis by noncanonical regulation of SREBP1.
    Article Snippet: Article Cytoplasmic RNase III Drosha controls lipogenesis by noncanonical regulation of SREBP1

    Article Title: ARF-like GTPase 8B orchestrates lipophagy and exocytosis to drive single-stranded RNA virus replication.
    Article Snippet: Antibodies were pre-incubated with magnetic beads (MCE) in binding/wash buffer (1:2000 dilution) overnight at 4 °C on a rotator.

    Article Title: Epigenetically silenced KAT2B suppresses de novo lipogenesis through destroying HDAC5/LSD1 complex assembly in renal cell carcinoma
    Article Snippet: Immunoprecipitation: after the cells were lysed, primary antibodies were used to bind the corresponding proteins overnight at 4 °C, followed by the addition of magnetic beads (MCE, HY-K0202, USA) to capture the antibodies at 4 °C for 3 h. After thermal elution, the protein solutions were obtained for western blotting experiments.

    Article Title: NUP62 promotes breast cancer progression and inhibits ferroptosis by stabilizing NRF2 in a KEAP1-dependent way
    Article Snippet: Magnetic beads (Protein A/G, HY–K0202, MCE) were added to capture antibody-antigen complexes.

    Article Title: ZDHHC11-mediated palmitoylation of viral envelope protein restricts dengue virus replication: implication for the development of universal anti-flavivirus therapeutic strategies.
    Article Snippet: A total of 40 μL of fully resuspended magnetic beads (MedChemExpress, HY-K0202-5, USA) were transferred to a 2 mL EP tube, washed three times with 400 μL of 0.5% PBST via magnetic separation and supernatant discarding, and then incubated with Flag antibody (diluted to 25 μg/mL in 0.5% PBST) on a rotating mixer at room temperature for 30 min.

    Article Title: Cyclovirobuxine D suppresses gastric cancer growth by targeting the V-ATPase complex and inducing excessive endo-lysophagy
    Article Snippet: Magnetic beads (HY-K0202; MedChemExpress) were added, and the mixture was incubated overnight at 4 °C on a rotary shaker.

    Western Blot:

    Article Title: Numb attenuates LPS-induced neuroinflammation via autophagic regulation of Ifi204 in microglia.
    Article Snippet: The supernatant was pre-cleared using magnetic beads (MCE, HY-K0202) before undergoing immunoprecipitation at 4 ◦C for 8 h with either IgG or specific antibody-conjugated beads.

    Article Title: NAT10-mediated N4-acetylcytidine modification drives RNA splicing of PML to alleviate adipose-derived stem cell senescence and promote diabetic wound healing.
    Article Snippet: Ten percent of the supernatant was collected as the Input and stored at −80◦C, while the remaining supernatant was incubated overnight at 4◦C with protein A/G-conjugated magnetic beads (MCE) and the indicated antibodies (anti-NAT10, anti-ac4C, anti-SRSF1 or control IgG).

    Article Title: Cytoplasmic RNase III Drosha controls lipogenesis by noncanonical regulation of SREBP1.
    Article Snippet: Article Cytoplasmic RNase III Drosha controls lipogenesis by noncanonical regulation of SREBP1

    Article Title: ARF-like GTPase 8B orchestrates lipophagy and exocytosis to drive single-stranded RNA virus replication.
    Article Snippet: Antibodies were pre-incubated with magnetic beads (MCE) in binding/wash buffer (1:2000 dilution) overnight at 4 °C on a rotator.

    Article Title: Epigenetically silenced KAT2B suppresses de novo lipogenesis through destroying HDAC5/LSD1 complex assembly in renal cell carcinoma
    Article Snippet: Immunoprecipitation: after the cells were lysed, primary antibodies were used to bind the corresponding proteins overnight at 4 °C, followed by the addition of magnetic beads (MCE, HY-K0202, USA) to capture the antibodies at 4 °C for 3 h. After thermal elution, the protein solutions were obtained for western blotting experiments.

    Article Title: NUP62 promotes breast cancer progression and inhibits ferroptosis by stabilizing NRF2 in a KEAP1-dependent way
    Article Snippet: Magnetic beads (Protein A/G, HY–K0202, MCE) were added to capture antibody-antigen complexes.

    Article Title: ZDHHC11-mediated palmitoylation of viral envelope protein restricts dengue virus replication: implication for the development of universal anti-flavivirus therapeutic strategies.
    Article Snippet: A total of 40 μL of fully resuspended magnetic beads (MedChemExpress, HY-K0202-5, USA) were transferred to a 2 mL EP tube, washed three times with 400 μL of 0.5% PBST via magnetic separation and supernatant discarding, and then incubated with Flag antibody (diluted to 25 μg/mL in 0.5% PBST) on a rotating mixer at room temperature for 30 min.

    Article Title: Cyclovirobuxine D suppresses gastric cancer growth by targeting the V-ATPase complex and inducing excessive endo-lysophagy
    Article Snippet: Magnetic beads (HY-K0202; MedChemExpress) were added, and the mixture was incubated overnight at 4 °C on a rotary shaker.

    Lysis:

    Article Title: Numb attenuates LPS-induced neuroinflammation via autophagic regulation of Ifi204 in microglia.
    Article Snippet: The supernatant was pre-cleared using magnetic beads (MCE, HY-K0202) before undergoing immunoprecipitation at 4 ◦C for 8 h with either IgG or specific antibody-conjugated beads.

    Article Title: NAT10-mediated N4-acetylcytidine modification drives RNA splicing of PML to alleviate adipose-derived stem cell senescence and promote diabetic wound healing.
    Article Snippet: Ten percent of the supernatant was collected as the Input and stored at −80◦C, while the remaining supernatant was incubated overnight at 4◦C with protein A/G-conjugated magnetic beads (MCE) and the indicated antibodies (anti-NAT10, anti-ac4C, anti-SRSF1 or control IgG).

    Article Title: Cytoplasmic RNase III Drosha controls lipogenesis by noncanonical regulation of SREBP1.
    Article Snippet: Article Cytoplasmic RNase III Drosha controls lipogenesis by noncanonical regulation of SREBP1

    Article Title: ARF-like GTPase 8B orchestrates lipophagy and exocytosis to drive single-stranded RNA virus replication.
    Article Snippet: Antibodies were pre-incubated with magnetic beads (MCE) in binding/wash buffer (1:2000 dilution) overnight at 4 °C on a rotator.

    Article Title: Epigenetically silenced KAT2B suppresses de novo lipogenesis through destroying HDAC5/LSD1 complex assembly in renal cell carcinoma
    Article Snippet: Immunoprecipitation: after the cells were lysed, primary antibodies were used to bind the corresponding proteins overnight at 4 °C, followed by the addition of magnetic beads (MCE, HY-K0202, USA) to capture the antibodies at 4 °C for 3 h. After thermal elution, the protein solutions were obtained for western blotting experiments.

    Article Title: NUP62 promotes breast cancer progression and inhibits ferroptosis by stabilizing NRF2 in a KEAP1-dependent way
    Article Snippet: Magnetic beads (Protein A/G, HY–K0202, MCE) were added to capture antibody-antigen complexes.

    Article Title: ZDHHC11-mediated palmitoylation of viral envelope protein restricts dengue virus replication: implication for the development of universal anti-flavivirus therapeutic strategies.
    Article Snippet: A total of 40 μL of fully resuspended magnetic beads (MedChemExpress, HY-K0202-5, USA) were transferred to a 2 mL EP tube, washed three times with 400 μL of 0.5% PBST via magnetic separation and supernatant discarding, and then incubated with Flag antibody (diluted to 25 μg/mL in 0.5% PBST) on a rotating mixer at room temperature for 30 min.

    Article Title: Cyclovirobuxine D suppresses gastric cancer growth by targeting the V-ATPase complex and inducing excessive endo-lysophagy
    Article Snippet: Magnetic beads (HY-K0202; MedChemExpress) were added, and the mixture was incubated overnight at 4 °C on a rotary shaker.



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    Anti Flag, supplied by MedChemExpress, used in various techniques. Bioz Stars score: 98/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/magnetic+beads/Anti+(DYKDDDDK)+Flag+Magnetic+Beads/pmc13486727-72-11-13
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    NSUN2 acted as a cofactor of GATA3 and promoted the expression of SUCLG1/SUCLG2 and chemokines. (A) Schematic representation of the critical regulatory proteins associated with succinate metabolism. (B) Heatmap showing the differential expression of succinate-related metabolic genes in sorted mCherry + CD45 − tumor cells isolated from subcutaneous tumors of the EV and Nsun2 MUT groups (data from Fig. A). (C) RT-qPCR analysis of the expression levels of the succinate-related genes in sg Ctrl , sg Nsun2 , and sg Nsun2 + Nsun2 MUT -reconstituted MC38 cells; n = 3 samples for each group. (D) Schematic representation <t>of</t> <t>anti-Flag</t> antibody-mediated IP and MS analysis of Flag- NSUN2 MUT and EV group samples. (E) Heatmap depicting differentially abundant proteins identified through MS analysis in HEK293T cells expressing Flag- NSUN2 MUT compared with control EV groups ( n = 2 per group). (F) WB analysis of whole-cell lysate and IP from HEK293T cells transfected with Flag- NSUN2 MUT , HA-GATA3, or both in combination. IP was performed with anti-HA or anti-Flag antibodies, followed by WB with the indicated antibodies to detect the physical interaction between NSUN2 MUT and GATA3. (G) Representative IF staining images of NSUN2 and GATA3 in MC38 cells. (H) Predicted GATA3-binding sites on SUCLG1 and SUCLG2 promoters. (I) ChIP–qPCR analysis of GATA3 binding to the promoters of SUCLG1 , SUCLG2 , CCL2 , CCL5 , and CCL7 promoters in HEK293T cells; n = 3 samples for each group. (J) Schematic representation of truncated forms of NSUN2 and GATA3. WB analysis of WCL and anti-Flag or anti-HA IP from HEK293T cells transfected with the MTD, TA, and ZNF constructs. (K) Luciferase reporter analysis of the transcriptional activation of SUCLG1 and SUCLG2 mediated by NSUN2 , its ΔMTD variants, NSUN2 MUT , or the corresponding ΔMTD variants. (L) Indirect IF of p65, p50, and DAPI in MC38 cells treated with succinate or DMSO. Results are presented as mean ± SD. * P < 0.05; ** P < 0.01; *** P < 0.001; ns, not significant through an unpaired t test. Abbreviations: ChIP–qPCR, chromatin immunoprecipitation–quantitative polymerase chain reaction; DAPI, 4′,6-diamidino-2-phenylindole; DMSO, dimethyl sulfoxide; EV, empty vector; GATA3, GATA-binding protein 3; IF, immunofluorescence; IP, immunoprecipitation; MS, mass spectrometry; MTD, methyltransferase domain; MUT, mutant; NSUN2, NOP2/Sun RNA methyltransferase 2; RT-qPCR, reverse transcription quantitative polymerase chain reaction; SD, standard deviation; sg Ctrl , single-guide RNA control; SUCLG1, succinate-CoA ligase GDP/ADP-forming subunit α; SUCLG2, succinate-CoA ligase GDP/ADP-forming subunit β; TA, transactivation domain; WB, western blotting; ZNF, zinc finger domain.
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    NSUN2 acted as a cofactor of GATA3 and promoted the expression of SUCLG1/SUCLG2 and chemokines. (A) Schematic representation of the critical regulatory proteins associated with succinate metabolism. (B) Heatmap showing the differential expression of succinate-related metabolic genes in sorted mCherry + CD45 − tumor cells isolated from subcutaneous tumors of the EV and Nsun2 MUT groups (data from Fig. A). (C) RT-qPCR analysis of the expression levels of the succinate-related genes in sg Ctrl , sg Nsun2 , and sg Nsun2 + Nsun2 MUT -reconstituted MC38 cells; n = 3 samples for each group. (D) Schematic representation <t>of</t> <t>anti-Flag</t> antibody-mediated IP and MS analysis of Flag- NSUN2 MUT and EV group samples. (E) Heatmap depicting differentially abundant proteins identified through MS analysis in HEK293T cells expressing Flag- NSUN2 MUT compared with control EV groups ( n = 2 per group). (F) WB analysis of whole-cell lysate and IP from HEK293T cells transfected with Flag- NSUN2 MUT , HA-GATA3, or both in combination. IP was performed with anti-HA or anti-Flag antibodies, followed by WB with the indicated antibodies to detect the physical interaction between NSUN2 MUT and GATA3. (G) Representative IF staining images of NSUN2 and GATA3 in MC38 cells. (H) Predicted GATA3-binding sites on SUCLG1 and SUCLG2 promoters. (I) ChIP–qPCR analysis of GATA3 binding to the promoters of SUCLG1 , SUCLG2 , CCL2 , CCL5 , and CCL7 promoters in HEK293T cells; n = 3 samples for each group. (J) Schematic representation of truncated forms of NSUN2 and GATA3. WB analysis of WCL and anti-Flag or anti-HA IP from HEK293T cells transfected with the MTD, TA, and ZNF constructs. (K) Luciferase reporter analysis of the transcriptional activation of SUCLG1 and SUCLG2 mediated by NSUN2 , its ΔMTD variants, NSUN2 MUT , or the corresponding ΔMTD variants. (L) Indirect IF of p65, p50, and DAPI in MC38 cells treated with succinate or DMSO. Results are presented as mean ± SD. * P < 0.05; ** P < 0.01; *** P < 0.001; ns, not significant through an unpaired t test. Abbreviations: ChIP–qPCR, chromatin immunoprecipitation–quantitative polymerase chain reaction; DAPI, 4′,6-diamidino-2-phenylindole; DMSO, dimethyl sulfoxide; EV, empty vector; GATA3, GATA-binding protein 3; IF, immunofluorescence; IP, immunoprecipitation; MS, mass spectrometry; MTD, methyltransferase domain; MUT, mutant; NSUN2, NOP2/Sun RNA methyltransferase 2; RT-qPCR, reverse transcription quantitative polymerase chain reaction; SD, standard deviation; sg Ctrl , single-guide RNA control; SUCLG1, succinate-CoA ligase GDP/ADP-forming subunit α; SUCLG2, succinate-CoA ligase GDP/ADP-forming subunit β; TA, transactivation domain; WB, western blotting; ZNF, zinc finger domain.
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    NSUN2 acted as a cofactor of GATA3 and promoted the expression of SUCLG1/SUCLG2 and chemokines. (A) Schematic representation of the critical regulatory proteins associated with succinate metabolism. (B) Heatmap showing the differential expression of succinate-related metabolic genes in sorted mCherry + CD45 − tumor cells isolated from subcutaneous tumors of the EV and Nsun2 MUT groups (data from Fig. A). (C) RT-qPCR analysis of the expression levels of the succinate-related genes in sg Ctrl , sg Nsun2 , and sg Nsun2 + Nsun2 MUT -reconstituted MC38 cells; n = 3 samples for each group. (D) Schematic representation <t>of</t> <t>anti-Flag</t> antibody-mediated IP and MS analysis of Flag- NSUN2 MUT and EV group samples. (E) Heatmap depicting differentially abundant proteins identified through MS analysis in HEK293T cells expressing Flag- NSUN2 MUT compared with control EV groups ( n = 2 per group). (F) WB analysis of whole-cell lysate and IP from HEK293T cells transfected with Flag- NSUN2 MUT , HA-GATA3, or both in combination. IP was performed with anti-HA or anti-Flag antibodies, followed by WB with the indicated antibodies to detect the physical interaction between NSUN2 MUT and GATA3. (G) Representative IF staining images of NSUN2 and GATA3 in MC38 cells. (H) Predicted GATA3-binding sites on SUCLG1 and SUCLG2 promoters. (I) ChIP–qPCR analysis of GATA3 binding to the promoters of SUCLG1 , SUCLG2 , CCL2 , CCL5 , and CCL7 promoters in HEK293T cells; n = 3 samples for each group. (J) Schematic representation of truncated forms of NSUN2 and GATA3. WB analysis of WCL and anti-Flag or anti-HA IP from HEK293T cells transfected with the MTD, TA, and ZNF constructs. (K) Luciferase reporter analysis of the transcriptional activation of SUCLG1 and SUCLG2 mediated by NSUN2 , its ΔMTD variants, NSUN2 MUT , or the corresponding ΔMTD variants. (L) Indirect IF of p65, p50, and DAPI in MC38 cells treated with succinate or DMSO. Results are presented as mean ± SD. * P < 0.05; ** P < 0.01; *** P < 0.001; ns, not significant through an unpaired t test. Abbreviations: ChIP–qPCR, chromatin immunoprecipitation–quantitative polymerase chain reaction; DAPI, 4′,6-diamidino-2-phenylindole; DMSO, dimethyl sulfoxide; EV, empty vector; GATA3, GATA-binding protein 3; IF, immunofluorescence; IP, immunoprecipitation; MS, mass spectrometry; MTD, methyltransferase domain; MUT, mutant; NSUN2, NOP2/Sun RNA methyltransferase 2; RT-qPCR, reverse transcription quantitative polymerase chain reaction; SD, standard deviation; sg Ctrl , single-guide RNA control; SUCLG1, succinate-CoA ligase GDP/ADP-forming subunit α; SUCLG2, succinate-CoA ligase GDP/ADP-forming subunit β; TA, transactivation domain; WB, western blotting; ZNF, zinc finger domain.
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    KMT5A induces mono-methylation of lysine 193 on IRF3 (A) HEK293T cells were transfected with FLAG-IRF3 and/or HA-KMT5A plasmids. Whole-cell lysates were collected, followed by IP using anti-FLAG magnetic beads. Subsequent analysis was conducted via IB. (B) Whole-cell lysates were extracted from RKO cells with either control (shNC) or KMT5A shRNA (#1 and #2) silencing. IP was performed using anti-IRF3 antibodies, followed by WB analysis. (C) RKO cells were transfected with HA-KMT5A WT or HA-KMT5A D338A, IP was performed using anti-IRF3 antibodies, followed by WB analysis. (D) RKO cells were treated with either DMSO or UNC0379. IP was performed using anti-IRF3 antibodies, followed by IB analysis. (E) RKO cells were treated with either DMSO or varying concentrations of UNC0379. IP was conducted using anti-IRF3 antibodies, followed by IB analysis. (F) The levels of IFN-β in RKO cells from experiment (E) were quantified using ELISA. Data were analyzed using one-way ANOVA with Tukey’s post-hoc test, presented as mean ± SD. Statistical significance was defined as ∗∗∗ p < 0.001 and ∗∗∗∗ p < 0.0001. (G) In vitro methylation assays were conducted by incubating purified His-IRF3 with KMT5A in the presence of S-adenosyl-L-methionine, followed by IB analysis. (H) Secondary mass spectrometry results of IRF3 K193 methylation were obtained. (I) HEK293T cells were transfected with FLAG-IRF3 wild-type or mutant plasmids, followed by transfection with either a vector or HA-KMT5A. Whole-cell lysates were collected, and IP was performed using anti-FLAG magnetic beads, followed by IB analysis. (J) Amino acid sequences at the K193 site of IRF3 were compared across different species. All immunoblotting experiments were conducted independently in triplicate, yielding consistent results.

    Journal: iScience

    Article Title: KMT5A-mediated methylation of IRF3 promotes tumor progression through immune suppression

    doi: 10.1016/j.isci.2026.116902

    Figure Lengend Snippet: KMT5A induces mono-methylation of lysine 193 on IRF3 (A) HEK293T cells were transfected with FLAG-IRF3 and/or HA-KMT5A plasmids. Whole-cell lysates were collected, followed by IP using anti-FLAG magnetic beads. Subsequent analysis was conducted via IB. (B) Whole-cell lysates were extracted from RKO cells with either control (shNC) or KMT5A shRNA (#1 and #2) silencing. IP was performed using anti-IRF3 antibodies, followed by WB analysis. (C) RKO cells were transfected with HA-KMT5A WT or HA-KMT5A D338A, IP was performed using anti-IRF3 antibodies, followed by WB analysis. (D) RKO cells were treated with either DMSO or UNC0379. IP was performed using anti-IRF3 antibodies, followed by IB analysis. (E) RKO cells were treated with either DMSO or varying concentrations of UNC0379. IP was conducted using anti-IRF3 antibodies, followed by IB analysis. (F) The levels of IFN-β in RKO cells from experiment (E) were quantified using ELISA. Data were analyzed using one-way ANOVA with Tukey’s post-hoc test, presented as mean ± SD. Statistical significance was defined as ∗∗∗ p < 0.001 and ∗∗∗∗ p < 0.0001. (G) In vitro methylation assays were conducted by incubating purified His-IRF3 with KMT5A in the presence of S-adenosyl-L-methionine, followed by IB analysis. (H) Secondary mass spectrometry results of IRF3 K193 methylation were obtained. (I) HEK293T cells were transfected with FLAG-IRF3 wild-type or mutant plasmids, followed by transfection with either a vector or HA-KMT5A. Whole-cell lysates were collected, and IP was performed using anti-FLAG magnetic beads, followed by IB analysis. (J) Amino acid sequences at the K193 site of IRF3 were compared across different species. All immunoblotting experiments were conducted independently in triplicate, yielding consistent results.

    Article Snippet: Anti-Flag magnetic beads , MedChemExpress , CAT#HY-K0207.

    Techniques: Methylation, Transfection, Magnetic Beads, Control, shRNA, Enzyme-linked Immunosorbent Assay, In Vitro, Purification, Mass Spectrometry, Mutagenesis, Plasmid Preparation, Western Blot

    KMT5A hindering production of IFN-β depends on IRF3 K193 methylation (A) HEK293T cells were transfected with vector, FLAG-IRF3 wild-type, or K193R mutant plasmids. Whole-cell lysates were collected, followed by IP using anti-FLAG magnetic beads, and subsequent analysis was performed via IB. (B) KMT5A-knockout RKO cells were transfected with FLAG-IRF3 wild-type or K193R mutant plasmids. The cells were treated with poly(I) or UNC0379, then whole-cell lysates were collected, and IP was conducted using anti-FLAG magnetic beads, followed by IB analysis. (C) RKO cells from experiment (B) were co-transfected with reporter plasmids IFN-β-Luc and pRL-TK. After 24 h, the cells were harvested, and luciferase activity was measured using a dual-luciferase reporter assay kit. (D) The relative mRNA levels of INF-β in RKO cells from experiment (B) were quantified using qPCR. (E) KMT5A knockout RKO cells were transfected with HA-KMT5A and FLAG-IRF3 wild-type or K193R mutant plasmids. Whole-cell lysates were collected, followed by IP using anti-FLAG magnetic beads, and subsequent IB analysis was performed. (F) Relative quantification of phosphorylated IRF3 (p-IRF3) protein was conducted in experiment (E). (G) The relative mRNA levels of INF-β in RKO cells from experiment F were quantified using qPCR. (C) and (D) were analyzed using one-way ANOVA with Tukey’s post-hoc test, with data presented as mean ± SD. (F) and (G) were analyzed using two-way ANOVA with Tukey’s post-hoc test. Statistical significance was defined as ∗∗∗ p < 0.001, ∗∗∗∗ p < 0.0001, while ns indicates no statistical difference. All immunoblotting experiments were performed independently in triplicate, yielding consistent results.

    Journal: iScience

    Article Title: KMT5A-mediated methylation of IRF3 promotes tumor progression through immune suppression

    doi: 10.1016/j.isci.2026.116902

    Figure Lengend Snippet: KMT5A hindering production of IFN-β depends on IRF3 K193 methylation (A) HEK293T cells were transfected with vector, FLAG-IRF3 wild-type, or K193R mutant plasmids. Whole-cell lysates were collected, followed by IP using anti-FLAG magnetic beads, and subsequent analysis was performed via IB. (B) KMT5A-knockout RKO cells were transfected with FLAG-IRF3 wild-type or K193R mutant plasmids. The cells were treated with poly(I) or UNC0379, then whole-cell lysates were collected, and IP was conducted using anti-FLAG magnetic beads, followed by IB analysis. (C) RKO cells from experiment (B) were co-transfected with reporter plasmids IFN-β-Luc and pRL-TK. After 24 h, the cells were harvested, and luciferase activity was measured using a dual-luciferase reporter assay kit. (D) The relative mRNA levels of INF-β in RKO cells from experiment (B) were quantified using qPCR. (E) KMT5A knockout RKO cells were transfected with HA-KMT5A and FLAG-IRF3 wild-type or K193R mutant plasmids. Whole-cell lysates were collected, followed by IP using anti-FLAG magnetic beads, and subsequent IB analysis was performed. (F) Relative quantification of phosphorylated IRF3 (p-IRF3) protein was conducted in experiment (E). (G) The relative mRNA levels of INF-β in RKO cells from experiment F were quantified using qPCR. (C) and (D) were analyzed using one-way ANOVA with Tukey’s post-hoc test, with data presented as mean ± SD. (F) and (G) were analyzed using two-way ANOVA with Tukey’s post-hoc test. Statistical significance was defined as ∗∗∗ p < 0.001, ∗∗∗∗ p < 0.0001, while ns indicates no statistical difference. All immunoblotting experiments were performed independently in triplicate, yielding consistent results.

    Article Snippet: Anti-Flag magnetic beads , MedChemExpress , CAT#HY-K0207.

    Techniques: Methylation, Transfection, Plasmid Preparation, Mutagenesis, Magnetic Beads, Knock-Out, Luciferase, Activity Assay, Reporter Assay, Quantitative Proteomics, Western Blot

    NSUN2 acted as a cofactor of GATA3 and promoted the expression of SUCLG1/SUCLG2 and chemokines. (A) Schematic representation of the critical regulatory proteins associated with succinate metabolism. (B) Heatmap showing the differential expression of succinate-related metabolic genes in sorted mCherry + CD45 − tumor cells isolated from subcutaneous tumors of the EV and Nsun2 MUT groups (data from Fig. A). (C) RT-qPCR analysis of the expression levels of the succinate-related genes in sg Ctrl , sg Nsun2 , and sg Nsun2 + Nsun2 MUT -reconstituted MC38 cells; n = 3 samples for each group. (D) Schematic representation of anti-Flag antibody-mediated IP and MS analysis of Flag- NSUN2 MUT and EV group samples. (E) Heatmap depicting differentially abundant proteins identified through MS analysis in HEK293T cells expressing Flag- NSUN2 MUT compared with control EV groups ( n = 2 per group). (F) WB analysis of whole-cell lysate and IP from HEK293T cells transfected with Flag- NSUN2 MUT , HA-GATA3, or both in combination. IP was performed with anti-HA or anti-Flag antibodies, followed by WB with the indicated antibodies to detect the physical interaction between NSUN2 MUT and GATA3. (G) Representative IF staining images of NSUN2 and GATA3 in MC38 cells. (H) Predicted GATA3-binding sites on SUCLG1 and SUCLG2 promoters. (I) ChIP–qPCR analysis of GATA3 binding to the promoters of SUCLG1 , SUCLG2 , CCL2 , CCL5 , and CCL7 promoters in HEK293T cells; n = 3 samples for each group. (J) Schematic representation of truncated forms of NSUN2 and GATA3. WB analysis of WCL and anti-Flag or anti-HA IP from HEK293T cells transfected with the MTD, TA, and ZNF constructs. (K) Luciferase reporter analysis of the transcriptional activation of SUCLG1 and SUCLG2 mediated by NSUN2 , its ΔMTD variants, NSUN2 MUT , or the corresponding ΔMTD variants. (L) Indirect IF of p65, p50, and DAPI in MC38 cells treated with succinate or DMSO. Results are presented as mean ± SD. * P < 0.05; ** P < 0.01; *** P < 0.001; ns, not significant through an unpaired t test. Abbreviations: ChIP–qPCR, chromatin immunoprecipitation–quantitative polymerase chain reaction; DAPI, 4′,6-diamidino-2-phenylindole; DMSO, dimethyl sulfoxide; EV, empty vector; GATA3, GATA-binding protein 3; IF, immunofluorescence; IP, immunoprecipitation; MS, mass spectrometry; MTD, methyltransferase domain; MUT, mutant; NSUN2, NOP2/Sun RNA methyltransferase 2; RT-qPCR, reverse transcription quantitative polymerase chain reaction; SD, standard deviation; sg Ctrl , single-guide RNA control; SUCLG1, succinate-CoA ligase GDP/ADP-forming subunit α; SUCLG2, succinate-CoA ligase GDP/ADP-forming subunit β; TA, transactivation domain; WB, western blotting; ZNF, zinc finger domain.

    Journal: Cancer Communications

    Article Title: NSUN2 Promotes Cancer Immune Evasion via Its Moonlighting Function Acting on Metabolic Reprogramming

    doi: 10.34133/cancomm.0042

    Figure Lengend Snippet: NSUN2 acted as a cofactor of GATA3 and promoted the expression of SUCLG1/SUCLG2 and chemokines. (A) Schematic representation of the critical regulatory proteins associated with succinate metabolism. (B) Heatmap showing the differential expression of succinate-related metabolic genes in sorted mCherry + CD45 − tumor cells isolated from subcutaneous tumors of the EV and Nsun2 MUT groups (data from Fig. A). (C) RT-qPCR analysis of the expression levels of the succinate-related genes in sg Ctrl , sg Nsun2 , and sg Nsun2 + Nsun2 MUT -reconstituted MC38 cells; n = 3 samples for each group. (D) Schematic representation of anti-Flag antibody-mediated IP and MS analysis of Flag- NSUN2 MUT and EV group samples. (E) Heatmap depicting differentially abundant proteins identified through MS analysis in HEK293T cells expressing Flag- NSUN2 MUT compared with control EV groups ( n = 2 per group). (F) WB analysis of whole-cell lysate and IP from HEK293T cells transfected with Flag- NSUN2 MUT , HA-GATA3, or both in combination. IP was performed with anti-HA or anti-Flag antibodies, followed by WB with the indicated antibodies to detect the physical interaction between NSUN2 MUT and GATA3. (G) Representative IF staining images of NSUN2 and GATA3 in MC38 cells. (H) Predicted GATA3-binding sites on SUCLG1 and SUCLG2 promoters. (I) ChIP–qPCR analysis of GATA3 binding to the promoters of SUCLG1 , SUCLG2 , CCL2 , CCL5 , and CCL7 promoters in HEK293T cells; n = 3 samples for each group. (J) Schematic representation of truncated forms of NSUN2 and GATA3. WB analysis of WCL and anti-Flag or anti-HA IP from HEK293T cells transfected with the MTD, TA, and ZNF constructs. (K) Luciferase reporter analysis of the transcriptional activation of SUCLG1 and SUCLG2 mediated by NSUN2 , its ΔMTD variants, NSUN2 MUT , or the corresponding ΔMTD variants. (L) Indirect IF of p65, p50, and DAPI in MC38 cells treated with succinate or DMSO. Results are presented as mean ± SD. * P < 0.05; ** P < 0.01; *** P < 0.001; ns, not significant through an unpaired t test. Abbreviations: ChIP–qPCR, chromatin immunoprecipitation–quantitative polymerase chain reaction; DAPI, 4′,6-diamidino-2-phenylindole; DMSO, dimethyl sulfoxide; EV, empty vector; GATA3, GATA-binding protein 3; IF, immunofluorescence; IP, immunoprecipitation; MS, mass spectrometry; MTD, methyltransferase domain; MUT, mutant; NSUN2, NOP2/Sun RNA methyltransferase 2; RT-qPCR, reverse transcription quantitative polymerase chain reaction; SD, standard deviation; sg Ctrl , single-guide RNA control; SUCLG1, succinate-CoA ligase GDP/ADP-forming subunit α; SUCLG2, succinate-CoA ligase GDP/ADP-forming subunit β; TA, transactivation domain; WB, western blotting; ZNF, zinc finger domain.

    Article Snippet: For IP, cell lysates were incubated overnight at 4 °C with anti-Flag (HY-K0207, MedChemExpress) or anti-HA (HY-K0201, MedChemExpress) magnetic beads, followed by 3 washes with tris-buffered saline with Tween-20 (TBST) buffer and resolution via sodium dodecyl sulfate–polyacrylamide gel electrophoresis (SDS-PAGE).

    Techniques: Expressing, Quantitative Proteomics, Isolation, Quantitative RT-PCR, Control, Transfection, Staining, Binding Assay, ChIP-qPCR, Construct, Luciferase, Activation Assay, Chromatin Immunoprecipitation, Real-time Polymerase Chain Reaction, Plasmid Preparation, Immunofluorescence, Immunoprecipitation, Mass Spectrometry, Mutagenesis, Reverse Transcription, Standard Deviation, Western Blot