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Janssen peptide protx ii binding
Peptide Protx Ii Binding, supplied by Janssen, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/protx-ii/binding+ii+peptide+protx/pmc12377457-35-11-2
Average 86 stars, based on 1 article reviews
peptide protx ii binding - by Bioz Stars, 2026-09
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Related Articles

Analogues:

Article Title: Computational design of peptides to target Na V 1.7 channel with high potency and selectivity for the treatment of pain
Article Snippet: Janssen Biotech pursued resource-intensive optimization of ProTx-II, but without a structure to guide optimization.

Article Title: Computational design of peptides to target Na V 1.7 channel with high potency and selectivity for the treatment of pain
Article Snippet: Janssen’s study reported that 2 μg of ProTx-II in 10 μL was the maximum tolerated dose in rats ( ).

Article Title: Selective Targeting of Nav1.7 with Engineered Spider Venom-Based Peptides
Article Snippet: To date, the most comprehensive ProTX-II engineering effort was performed by scientists at Janssen R&D.

Article Title: Computational design of peptides to target Na V 1.7 channel with high potency and selectivity for the treatment of pain
Article Snippet: The most advanced reported preclinical development of Na V -selected peptides is from Janssen Biotech, which demonstrated that ProTx-II exerted a strong analgesic effect following intrathecal injection in rat models of thermal and chemical nociception.

Article Title: The Chemistry and Biology of the Tetrodotoxin Natural Product Family.
Article Snippet: Tetrodotoxin is a neurotoxic marine alkaloid, first isolated in 1909 from pufferfish and named after the biological order tetraodontiformes.. Since its structural elucidation in 1964, it has attracted the interest of synthetic organic chemists due to its exceptional polarity, complex architecture, and important biological activity.. This review highlights the diversity of the tetrodotoxin natural product family and discusses the origins of derivatives, biosynthetic hypotheses, and biological activities.

Binding Assay:

Article Title: Computational design of peptides to target Na V 1.7 channel with high potency and selectivity for the treatment of pain
Article Snippet: Janssen Biotech pursued resource-intensive optimization of ProTx-II, but without a structure to guide optimization.

Article Title: Computational design of peptides to target Na V 1.7 channel with high potency and selectivity for the treatment of pain
Article Snippet: Janssen’s study reported that 2 μg of ProTx-II in 10 μL was the maximum tolerated dose in rats ( ).

Article Title: Selective Targeting of Nav1.7 with Engineered Spider Venom-Based Peptides
Article Snippet: To date, the most comprehensive ProTX-II engineering effort was performed by scientists at Janssen R&D.

Article Title: Computational design of peptides to target Na V 1.7 channel with high potency and selectivity for the treatment of pain
Article Snippet: The most advanced reported preclinical development of Na V -selected peptides is from Janssen Biotech, which demonstrated that ProTx-II exerted a strong analgesic effect following intrathecal injection in rat models of thermal and chemical nociception.

Article Title: The Chemistry and Biology of the Tetrodotoxin Natural Product Family.
Article Snippet: Tetrodotoxin is a neurotoxic marine alkaloid, first isolated in 1909 from pufferfish and named after the biological order tetraodontiformes.. Since its structural elucidation in 1964, it has attracted the interest of synthetic organic chemists due to its exceptional polarity, complex architecture, and important biological activity.. This review highlights the diversity of the tetrodotoxin natural product family and discusses the origins of derivatives, biosynthetic hypotheses, and biological activities.

Injection:

Article Title: Computational design of peptides to target Na V 1.7 channel with high potency and selectivity for the treatment of pain
Article Snippet: Janssen Biotech pursued resource-intensive optimization of ProTx-II, but without a structure to guide optimization.

Article Title: Computational design of peptides to target Na V 1.7 channel with high potency and selectivity for the treatment of pain
Article Snippet: Janssen’s study reported that 2 μg of ProTx-II in 10 μL was the maximum tolerated dose in rats ( ).

Article Title: Selective Targeting of Nav1.7 with Engineered Spider Venom-Based Peptides
Article Snippet: To date, the most comprehensive ProTX-II engineering effort was performed by scientists at Janssen R&D.

Article Title: Computational design of peptides to target Na V 1.7 channel with high potency and selectivity for the treatment of pain
Article Snippet: The most advanced reported preclinical development of Na V -selected peptides is from Janssen Biotech, which demonstrated that ProTx-II exerted a strong analgesic effect following intrathecal injection in rat models of thermal and chemical nociception.

Article Title: The Chemistry and Biology of the Tetrodotoxin Natural Product Family.
Article Snippet: Tetrodotoxin is a neurotoxic marine alkaloid, first isolated in 1909 from pufferfish and named after the biological order tetraodontiformes.. Since its structural elucidation in 1964, it has attracted the interest of synthetic organic chemists due to its exceptional polarity, complex architecture, and important biological activity.. This review highlights the diversity of the tetrodotoxin natural product family and discusses the origins of derivatives, biosynthetic hypotheses, and biological activities.

Mutagenesis:

Article Title: Computational design of peptides to target Na V 1.7 channel with high potency and selectivity for the treatment of pain
Article Snippet: Janssen Biotech pursued resource-intensive optimization of ProTx-II, but without a structure to guide optimization.

Article Title: Computational design of peptides to target Na V 1.7 channel with high potency and selectivity for the treatment of pain
Article Snippet: Janssen’s study reported that 2 μg of ProTx-II in 10 μL was the maximum tolerated dose in rats ( ).

Article Title: Selective Targeting of Nav1.7 with Engineered Spider Venom-Based Peptides
Article Snippet: To date, the most comprehensive ProTX-II engineering effort was performed by scientists at Janssen R&D.

Article Title: Computational design of peptides to target Na V 1.7 channel with high potency and selectivity for the treatment of pain
Article Snippet: The most advanced reported preclinical development of Na V -selected peptides is from Janssen Biotech, which demonstrated that ProTx-II exerted a strong analgesic effect following intrathecal injection in rat models of thermal and chemical nociception.

Article Title: The Chemistry and Biology of the Tetrodotoxin Natural Product Family.
Article Snippet: Tetrodotoxin is a neurotoxic marine alkaloid, first isolated in 1909 from pufferfish and named after the biological order tetraodontiformes.. Since its structural elucidation in 1964, it has attracted the interest of synthetic organic chemists due to its exceptional polarity, complex architecture, and important biological activity.. This review highlights the diversity of the tetrodotoxin natural product family and discusses the origins of derivatives, biosynthetic hypotheses, and biological activities.



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Alomone Labs protoxin ii stp 100
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MedChemExpress protxii
BoNT/A reduces voltage-gated sodium currents in TG neurons predominantly through NaV1.7-associated components rather than NaV1.8-associated components. ( a, b ) Representative whole-cell voltage-clamp traces of total voltage-gated sodium (Na V ) currents recorded from primary cultured TG neurons in the absence ( a ) or presence ( b ) of BoNT/A (100 nM). Currents were evoked by step depolarizations from − 80 mV to + 40 mV. ( c ) Quantification of the maximum peak Na V current amplitude between Control and BoNT/A-treated neurons. ( d ) Current–voltage (I–V) relationships of peak Na V currents. ( e ) Normalized conductance–voltage (G/G_max) activation curves of Na V channels. ( f ) Representative Na v current traces from TG neurons treated with <t>ProTXII</t> (NaV1.7-selective inhibitor, 100 nM) and VX-548 (NaV1.8-selective inhibitor, 1 µM). ( g ) Quantification of peak Na V current amplitude, showing robust suppression by ProTXII and VX-548. ( h ) I–V relationships of peak Na V currents, demonstrating a depolarizing shift and reduced current density following ProTXII/VX-548 treatment. ( i ) G/G_max activation curves, revealing a slight depolarizing shift in the voltage dependence of Na V channel activation. ( j ) Pie chart illustrating the relative contributions of NaV1.7 (ProTXII-sensitive) and NaV1.8 (VX-548-sensitive) components to the total Na V current inhibition. ( k ) Representative Na V current traces from TG neurons pre-treated with BoNT/A followed by co-administration of ProTXII and VX-548. ( l ) Quantification of peak Na V current amplitude, showing that BoNT/A pre-treatment significantly augmented the inhibitory effect of ProTXII/VX-548. ( m ) I–V relationships of peak Na V currents under combined treatment. ( n ) G/G_max activation curves, showing a more pronounced hyperpolarizing shift indicative of further suppression of channel open probability. ( o ) Pie chart illustrating the relative contributions to the inhibitory effect under combined treatment: NaV1.7-associated, NaV1.8-associated, and other mechanisms. Data are presented as mean ± SEM. n = 5 neurons per group; one-way ANOVA followed by Tukey’s post hoc test
Protxii, supplied by MedChemExpress, used in various techniques. Bioz Stars score: 94/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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MedChemExpress protx ii
A Experimental workflow of TNF-α-induced OA model in ATDC5 cells (Created in BioRender. Q.Zhao (2026) https://BioRender.com/or5jts9 ); B RT-qPCR analysis of Scn9a gene expression in ATDC5 cells, Statistical analysis was performed using a two-tailed unpaired t-test (t = 9.26, df = 4, p < 0.001, 95% CI = 0.425–0.788); C WB analysis of Nav1.7 protein expression, Statistical analysis was performed using a two-tailed unpaired t-test (t = 168, df = 4, p < 0.001, 95% CI = 7.89 to 8.16); D Immunofluorescence staining of Nav1.7 protein localization in ATDC5 cells (scale bar: 25 μm); E WB analysis of Nav1.7 distribution in membrane and cytoplasmic fractions (Two-tailed unpaired t-test, t = 59.7, df = 4, p < 0.001, 95% CI = 2.85–3.13); F Patch-clamp recording of sodium current changes under varying voltage stimuli in ATDC5 cells; G Comparative analysis of sodium current responses across different groups; H Sodium current responses before and after <t>tetrodotoxin</t> <t>(TTX)</t> treatment; I Patch-clamp analysis comparing sodium current responses between TNF-α + TTX and TNF-α + <t>ProTx</t> II groups; J Superimposed current traces of TTX-Sensitive (TTX-S) (red) and ProTx II-sensitive (blue) components normalized by peak current amplitude; K Analysis of inactivation time constants and peak times of TTX-S and ProTx II-S sodium currents Statistical analysis was performed using a two-tailed unpaired t-test (Left panel [Time constant]: t = 0.655, df = 4, p = 0.548, 95% CI = −0.173–0.279; Right panel [Time to peak]: t = 1.46, df = 4, p = 0.217, 95% CI = −0.0718–0.232). Data are presented as mean ± standard deviation (SD) of n = 3 independent biological replicates. Individual data points represent biological replicates. Source data are provided as a file.
Protx Ii, supplied by MedChemExpress, used in various techniques. Bioz Stars score: 94/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/protx-ii/ProTx+II/pmc13194955-690-23-26
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Janssen peptide protx ii binding
A Experimental workflow of TNF-α-induced OA model in ATDC5 cells (Created in BioRender. Q.Zhao (2026) https://BioRender.com/or5jts9 ); B RT-qPCR analysis of Scn9a gene expression in ATDC5 cells, Statistical analysis was performed using a two-tailed unpaired t-test (t = 9.26, df = 4, p < 0.001, 95% CI = 0.425–0.788); C WB analysis of Nav1.7 protein expression, Statistical analysis was performed using a two-tailed unpaired t-test (t = 168, df = 4, p < 0.001, 95% CI = 7.89 to 8.16); D Immunofluorescence staining of Nav1.7 protein localization in ATDC5 cells (scale bar: 25 μm); E WB analysis of Nav1.7 distribution in membrane and cytoplasmic fractions (Two-tailed unpaired t-test, t = 59.7, df = 4, p < 0.001, 95% CI = 2.85–3.13); F Patch-clamp recording of sodium current changes under varying voltage stimuli in ATDC5 cells; G Comparative analysis of sodium current responses across different groups; H Sodium current responses before and after <t>tetrodotoxin</t> <t>(TTX)</t> treatment; I Patch-clamp analysis comparing sodium current responses between TNF-α + TTX and TNF-α + <t>ProTx</t> II groups; J Superimposed current traces of TTX-Sensitive (TTX-S) (red) and ProTx II-sensitive (blue) components normalized by peak current amplitude; K Analysis of inactivation time constants and peak times of TTX-S and ProTx II-S sodium currents Statistical analysis was performed using a two-tailed unpaired t-test (Left panel [Time constant]: t = 0.655, df = 4, p = 0.548, 95% CI = −0.173–0.279; Right panel [Time to peak]: t = 1.46, df = 4, p = 0.217, 95% CI = −0.0718–0.232). Data are presented as mean ± standard deviation (SD) of n = 3 independent biological replicates. Individual data points represent biological replicates. Source data are provided as a file.
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https://www.bioz.com/product/protx-ii/binding+ii+peptide+protx/pmc12377457-35-11-2
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Janssen protx-ii
A Experimental workflow of TNF-α-induced OA model in ATDC5 cells (Created in BioRender. Q.Zhao (2026) https://BioRender.com/or5jts9 ); B RT-qPCR analysis of Scn9a gene expression in ATDC5 cells, Statistical analysis was performed using a two-tailed unpaired t-test (t = 9.26, df = 4, p < 0.001, 95% CI = 0.425–0.788); C WB analysis of Nav1.7 protein expression, Statistical analysis was performed using a two-tailed unpaired t-test (t = 168, df = 4, p < 0.001, 95% CI = 7.89 to 8.16); D Immunofluorescence staining of Nav1.7 protein localization in ATDC5 cells (scale bar: 25 μm); E WB analysis of Nav1.7 distribution in membrane and cytoplasmic fractions (Two-tailed unpaired t-test, t = 59.7, df = 4, p < 0.001, 95% CI = 2.85–3.13); F Patch-clamp recording of sodium current changes under varying voltage stimuli in ATDC5 cells; G Comparative analysis of sodium current responses across different groups; H Sodium current responses before and after <t>tetrodotoxin</t> <t>(TTX)</t> treatment; I Patch-clamp analysis comparing sodium current responses between TNF-α + TTX and TNF-α + <t>ProTx</t> II groups; J Superimposed current traces of TTX-Sensitive (TTX-S) (red) and ProTx II-sensitive (blue) components normalized by peak current amplitude; K Analysis of inactivation time constants and peak times of TTX-S and ProTx II-S sodium currents Statistical analysis was performed using a two-tailed unpaired t-test (Left panel [Time constant]: t = 0.655, df = 4, p = 0.548, 95% CI = −0.173–0.279; Right panel [Time to peak]: t = 1.46, df = 4, p = 0.217, 95% CI = −0.0718–0.232). Data are presented as mean ± standard deviation (SD) of n = 3 independent biological replicates. Individual data points represent biological replicates. Source data are provided as a file.
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MedChemExpress protx ii tfa
A Experimental workflow of TNF-α-induced OA model in ATDC5 cells (Created in BioRender. Q.Zhao (2026) https://BioRender.com/or5jts9 ); B RT-qPCR analysis of Scn9a gene expression in ATDC5 cells, Statistical analysis was performed using a two-tailed unpaired t-test (t = 9.26, df = 4, p < 0.001, 95% CI = 0.425–0.788); C WB analysis of Nav1.7 protein expression, Statistical analysis was performed using a two-tailed unpaired t-test (t = 168, df = 4, p < 0.001, 95% CI = 7.89 to 8.16); D Immunofluorescence staining of Nav1.7 protein localization in ATDC5 cells (scale bar: 25 μm); E WB analysis of Nav1.7 distribution in membrane and cytoplasmic fractions (Two-tailed unpaired t-test, t = 59.7, df = 4, p < 0.001, 95% CI = 2.85–3.13); F Patch-clamp recording of sodium current changes under varying voltage stimuli in ATDC5 cells; G Comparative analysis of sodium current responses across different groups; H Sodium current responses before and after <t>tetrodotoxin</t> <t>(TTX)</t> treatment; I Patch-clamp analysis comparing sodium current responses between TNF-α + TTX and TNF-α + <t>ProTx</t> II groups; J Superimposed current traces of TTX-Sensitive (TTX-S) (red) and ProTx II-sensitive (blue) components normalized by peak current amplitude; K Analysis of inactivation time constants and peak times of TTX-S and ProTx II-S sodium currents Statistical analysis was performed using a two-tailed unpaired t-test (Left panel [Time constant]: t = 0.655, df = 4, p = 0.548, 95% CI = −0.173–0.279; Right panel [Time to peak]: t = 1.46, df = 4, p = 0.217, 95% CI = −0.0718–0.232). Data are presented as mean ± standard deviation (SD) of n = 3 independent biological replicates. Individual data points represent biological replicates. Source data are provided as a file.
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Tocris protx ii
A Experimental workflow of TNF-α-induced OA model in ATDC5 cells (Created in BioRender. Q.Zhao (2026) https://BioRender.com/or5jts9 ); B RT-qPCR analysis of Scn9a gene expression in ATDC5 cells, Statistical analysis was performed using a two-tailed unpaired t-test (t = 9.26, df = 4, p < 0.001, 95% CI = 0.425–0.788); C WB analysis of Nav1.7 protein expression, Statistical analysis was performed using a two-tailed unpaired t-test (t = 168, df = 4, p < 0.001, 95% CI = 7.89 to 8.16); D Immunofluorescence staining of Nav1.7 protein localization in ATDC5 cells (scale bar: 25 μm); E WB analysis of Nav1.7 distribution in membrane and cytoplasmic fractions (Two-tailed unpaired t-test, t = 59.7, df = 4, p < 0.001, 95% CI = 2.85–3.13); F Patch-clamp recording of sodium current changes under varying voltage stimuli in ATDC5 cells; G Comparative analysis of sodium current responses across different groups; H Sodium current responses before and after <t>tetrodotoxin</t> <t>(TTX)</t> treatment; I Patch-clamp analysis comparing sodium current responses between TNF-α + TTX and TNF-α + <t>ProTx</t> II groups; J Superimposed current traces of TTX-Sensitive (TTX-S) (red) and ProTx II-sensitive (blue) components normalized by peak current amplitude; K Analysis of inactivation time constants and peak times of TTX-S and ProTx II-S sodium currents Statistical analysis was performed using a two-tailed unpaired t-test (Left panel [Time constant]: t = 0.655, df = 4, p = 0.548, 95% CI = −0.173–0.279; Right panel [Time to peak]: t = 1.46, df = 4, p = 0.217, 95% CI = −0.0718–0.232). Data are presented as mean ± standard deviation (SD) of n = 3 independent biological replicates. Individual data points represent biological replicates. Source data are provided as a file.
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Image Search Results


BoNT/A reduces voltage-gated sodium currents in TG neurons predominantly through NaV1.7-associated components rather than NaV1.8-associated components. ( a, b ) Representative whole-cell voltage-clamp traces of total voltage-gated sodium (Na V ) currents recorded from primary cultured TG neurons in the absence ( a ) or presence ( b ) of BoNT/A (100 nM). Currents were evoked by step depolarizations from − 80 mV to + 40 mV. ( c ) Quantification of the maximum peak Na V current amplitude between Control and BoNT/A-treated neurons. ( d ) Current–voltage (I–V) relationships of peak Na V currents. ( e ) Normalized conductance–voltage (G/G_max) activation curves of Na V channels. ( f ) Representative Na v current traces from TG neurons treated with ProTXII (NaV1.7-selective inhibitor, 100 nM) and VX-548 (NaV1.8-selective inhibitor, 1 µM). ( g ) Quantification of peak Na V current amplitude, showing robust suppression by ProTXII and VX-548. ( h ) I–V relationships of peak Na V currents, demonstrating a depolarizing shift and reduced current density following ProTXII/VX-548 treatment. ( i ) G/G_max activation curves, revealing a slight depolarizing shift in the voltage dependence of Na V channel activation. ( j ) Pie chart illustrating the relative contributions of NaV1.7 (ProTXII-sensitive) and NaV1.8 (VX-548-sensitive) components to the total Na V current inhibition. ( k ) Representative Na V current traces from TG neurons pre-treated with BoNT/A followed by co-administration of ProTXII and VX-548. ( l ) Quantification of peak Na V current amplitude, showing that BoNT/A pre-treatment significantly augmented the inhibitory effect of ProTXII/VX-548. ( m ) I–V relationships of peak Na V currents under combined treatment. ( n ) G/G_max activation curves, showing a more pronounced hyperpolarizing shift indicative of further suppression of channel open probability. ( o ) Pie chart illustrating the relative contributions to the inhibitory effect under combined treatment: NaV1.7-associated, NaV1.8-associated, and other mechanisms. Data are presented as mean ± SEM. n = 5 neurons per group; one-way ANOVA followed by Tukey’s post hoc test

Journal: The Journal of Headache and Pain

Article Title: Botulinum toxin type A attenuates trigeminal neuralgia-like pain by suppressing CGRP release and modulating NaV1.7-associated signaling

doi: 10.1186/s10194-026-02454-4

Figure Lengend Snippet: BoNT/A reduces voltage-gated sodium currents in TG neurons predominantly through NaV1.7-associated components rather than NaV1.8-associated components. ( a, b ) Representative whole-cell voltage-clamp traces of total voltage-gated sodium (Na V ) currents recorded from primary cultured TG neurons in the absence ( a ) or presence ( b ) of BoNT/A (100 nM). Currents were evoked by step depolarizations from − 80 mV to + 40 mV. ( c ) Quantification of the maximum peak Na V current amplitude between Control and BoNT/A-treated neurons. ( d ) Current–voltage (I–V) relationships of peak Na V currents. ( e ) Normalized conductance–voltage (G/G_max) activation curves of Na V channels. ( f ) Representative Na v current traces from TG neurons treated with ProTXII (NaV1.7-selective inhibitor, 100 nM) and VX-548 (NaV1.8-selective inhibitor, 1 µM). ( g ) Quantification of peak Na V current amplitude, showing robust suppression by ProTXII and VX-548. ( h ) I–V relationships of peak Na V currents, demonstrating a depolarizing shift and reduced current density following ProTXII/VX-548 treatment. ( i ) G/G_max activation curves, revealing a slight depolarizing shift in the voltage dependence of Na V channel activation. ( j ) Pie chart illustrating the relative contributions of NaV1.7 (ProTXII-sensitive) and NaV1.8 (VX-548-sensitive) components to the total Na V current inhibition. ( k ) Representative Na V current traces from TG neurons pre-treated with BoNT/A followed by co-administration of ProTXII and VX-548. ( l ) Quantification of peak Na V current amplitude, showing that BoNT/A pre-treatment significantly augmented the inhibitory effect of ProTXII/VX-548. ( m ) I–V relationships of peak Na V currents under combined treatment. ( n ) G/G_max activation curves, showing a more pronounced hyperpolarizing shift indicative of further suppression of channel open probability. ( o ) Pie chart illustrating the relative contributions to the inhibitory effect under combined treatment: NaV1.7-associated, NaV1.8-associated, and other mechanisms. Data are presented as mean ± SEM. n = 5 neurons per group; one-way ANOVA followed by Tukey’s post hoc test

Article Snippet: The cells were cultured in the medium containing 1 μM OL (Sigma, ST9H9BC1D2C1, USA) or 10 μM PD98059 (Sigma, P215, USA) for 1 h, and then 100 nM ProTxII (MCE, HY-P1221, USA) or 1 μM VX-548 (MCE, HY-148800, USA) was added for another 1 h of culture.

Techniques: Cell Culture, Control, Activation Assay, Inhibition

NaV1.7 expression and function are regulated by CGRP signaling in TG neurons. ( a ) Representative fluorescence images of intracellular Ca 2+ (red) in primary cultured TG neurons from Control and olcegepant (OL, 1 µM)-treated groups, captured under baseline (0 s) and capsaicin (CAP, 1 µM) stimulation conditions. ( b ) Quantification of Ca 2+ fluorescence intensity changes (ΔF/F 0 ) in TG neurons. n = 50 neurons per group. ( c ) Representative immunofluorescence images of NaV1.7 (green) co-stained with DAPI (blue, nuclear counterstain) in TG neurons from Control and OL-treated groups. ( d ) Quantification of NaV1.7 relative fluorescence intensity. ( e ) Relative mRNA expression of Scn9a (encoding NaV1.7) in TG tissue, normalized to GAPDH. ( f ) Representative Western blot images of NaV1.7 in TG tissue, with GAPDH as the loading control. ( g ) Densitometric quantification of NaV1.7 protein levels, normalized to GAPDH. ( h ) Representative whole-cell voltage-clamp traces of Na V currents recorded from TG neurons in Control, OL, and OL + ProTXII (100 nM) groups. Currents were evoked by step depolarizations from − 80 mV to + 40 mV. ( i ) Current–voltage (I–V) relationships of peak Na V currents. ( j ) Normalized conductance–voltage (G/G_max) activation curves of Na v channels. ( k ) Quantification of the maximum peak Na V current amplitude. Data are presented as mean ± SEM. n = 3–5 neurons per group; one-way ANOVA followed by Tukey’s post hoc test

Journal: The Journal of Headache and Pain

Article Title: Botulinum toxin type A attenuates trigeminal neuralgia-like pain by suppressing CGRP release and modulating NaV1.7-associated signaling

doi: 10.1186/s10194-026-02454-4

Figure Lengend Snippet: NaV1.7 expression and function are regulated by CGRP signaling in TG neurons. ( a ) Representative fluorescence images of intracellular Ca 2+ (red) in primary cultured TG neurons from Control and olcegepant (OL, 1 µM)-treated groups, captured under baseline (0 s) and capsaicin (CAP, 1 µM) stimulation conditions. ( b ) Quantification of Ca 2+ fluorescence intensity changes (ΔF/F 0 ) in TG neurons. n = 50 neurons per group. ( c ) Representative immunofluorescence images of NaV1.7 (green) co-stained with DAPI (blue, nuclear counterstain) in TG neurons from Control and OL-treated groups. ( d ) Quantification of NaV1.7 relative fluorescence intensity. ( e ) Relative mRNA expression of Scn9a (encoding NaV1.7) in TG tissue, normalized to GAPDH. ( f ) Representative Western blot images of NaV1.7 in TG tissue, with GAPDH as the loading control. ( g ) Densitometric quantification of NaV1.7 protein levels, normalized to GAPDH. ( h ) Representative whole-cell voltage-clamp traces of Na V currents recorded from TG neurons in Control, OL, and OL + ProTXII (100 nM) groups. Currents were evoked by step depolarizations from − 80 mV to + 40 mV. ( i ) Current–voltage (I–V) relationships of peak Na V currents. ( j ) Normalized conductance–voltage (G/G_max) activation curves of Na v channels. ( k ) Quantification of the maximum peak Na V current amplitude. Data are presented as mean ± SEM. n = 3–5 neurons per group; one-way ANOVA followed by Tukey’s post hoc test

Article Snippet: The cells were cultured in the medium containing 1 μM OL (Sigma, ST9H9BC1D2C1, USA) or 10 μM PD98059 (Sigma, P215, USA) for 1 h, and then 100 nM ProTxII (MCE, HY-P1221, USA) or 1 μM VX-548 (MCE, HY-148800, USA) was added for another 1 h of culture.

Techniques: Expressing, Fluorescence, Cell Culture, Control, Immunofluorescence, Staining, Western Blot, Activation Assay

BoNT/A suppresses ERK phosphorylation to reduce NaV1.7 membrane trafficking and is associated with lysosome-dependent downregulation of NaV1.7 in TG neurons. ( a–c ) Relative mRNA expression of Mapk14 (encoding p38, A ), Mapk3 (encoding ERK1, b ), and Mapk1 (encoding ERK2, c ) in TG tissue, quantified by qPCR and normalized to β-actin. ( d ) Representative Western blot images of phosphorylated ERK1/2 (p-ERK1/2) and total ERK1/2 in TG tissue from the three groups, with β-actin as the loading control. ( e ) Densitometric quantification of the p-ERK1/2 / total ERK1/2 ratio. ( f ) Representative Western blot images of p-ERK1/2 and total ERK1/2 in primary cultured TG neurons before and after α-CGRP application, with GAPDH as the loading control. ( g ) Densitometric quantification of the p-ERK1/2 / total ERK1/2 ratio corresponding to ( f ). ( h ) Representative immunofluorescence images of NaV1.7 (green) in TG sections from Control and PD98059 (ERK1/2 inhibitor, 10 µM)-treated groups, with DAPI (blue) as the nuclear counterstain. ( i ) Quantification of NaV1.7 relative fluorescence intensity. ( j ) Representative immunofluorescence images showing colocalization of LAMP1 (red, lysosomal marker) and NaV1.7 (green) in TG neurons from Control, BoNT/A-treated, and BoNT/A + Bafilomycin A1-treated groups. DAPI (blue) labels nuclei. ( k–m ) Fluorescence intensity profiles along the white dashed lines in ( j ), illustrating the colocalization correlation between LAMP1 and NaV1.7 in Control ( K ), BoNT/A ( l ), and BoNT/A + Bafilomycin A1 ( m ) groups. ( n ) Representative whole-cell voltage-clamp traces of Na V currents recorded from TG neurons treated with vehicle (Control), PD98059 (10 µM), or PD98059 combined with ProTXII (100 nM). Currents were evoked by step depolarizations from − 80 mV to + 40 mV. ( o ) Current–voltage (I–V) relationships of peak Na V currents. ( p ) Quantification of the maximum peak Na V current amplitude. Data are presented as mean ± SEM. n = 3–10 neurons per group; one-way ANOVA followed by Tukey’s post hoc test

Journal: The Journal of Headache and Pain

Article Title: Botulinum toxin type A attenuates trigeminal neuralgia-like pain by suppressing CGRP release and modulating NaV1.7-associated signaling

doi: 10.1186/s10194-026-02454-4

Figure Lengend Snippet: BoNT/A suppresses ERK phosphorylation to reduce NaV1.7 membrane trafficking and is associated with lysosome-dependent downregulation of NaV1.7 in TG neurons. ( a–c ) Relative mRNA expression of Mapk14 (encoding p38, A ), Mapk3 (encoding ERK1, b ), and Mapk1 (encoding ERK2, c ) in TG tissue, quantified by qPCR and normalized to β-actin. ( d ) Representative Western blot images of phosphorylated ERK1/2 (p-ERK1/2) and total ERK1/2 in TG tissue from the three groups, with β-actin as the loading control. ( e ) Densitometric quantification of the p-ERK1/2 / total ERK1/2 ratio. ( f ) Representative Western blot images of p-ERK1/2 and total ERK1/2 in primary cultured TG neurons before and after α-CGRP application, with GAPDH as the loading control. ( g ) Densitometric quantification of the p-ERK1/2 / total ERK1/2 ratio corresponding to ( f ). ( h ) Representative immunofluorescence images of NaV1.7 (green) in TG sections from Control and PD98059 (ERK1/2 inhibitor, 10 µM)-treated groups, with DAPI (blue) as the nuclear counterstain. ( i ) Quantification of NaV1.7 relative fluorescence intensity. ( j ) Representative immunofluorescence images showing colocalization of LAMP1 (red, lysosomal marker) and NaV1.7 (green) in TG neurons from Control, BoNT/A-treated, and BoNT/A + Bafilomycin A1-treated groups. DAPI (blue) labels nuclei. ( k–m ) Fluorescence intensity profiles along the white dashed lines in ( j ), illustrating the colocalization correlation between LAMP1 and NaV1.7 in Control ( K ), BoNT/A ( l ), and BoNT/A + Bafilomycin A1 ( m ) groups. ( n ) Representative whole-cell voltage-clamp traces of Na V currents recorded from TG neurons treated with vehicle (Control), PD98059 (10 µM), or PD98059 combined with ProTXII (100 nM). Currents were evoked by step depolarizations from − 80 mV to + 40 mV. ( o ) Current–voltage (I–V) relationships of peak Na V currents. ( p ) Quantification of the maximum peak Na V current amplitude. Data are presented as mean ± SEM. n = 3–10 neurons per group; one-way ANOVA followed by Tukey’s post hoc test

Article Snippet: The cells were cultured in the medium containing 1 μM OL (Sigma, ST9H9BC1D2C1, USA) or 10 μM PD98059 (Sigma, P215, USA) for 1 h, and then 100 nM ProTxII (MCE, HY-P1221, USA) or 1 μM VX-548 (MCE, HY-148800, USA) was added for another 1 h of culture.

Techniques: Phospho-proteomics, Membrane, Expressing, Western Blot, Control, Cell Culture, Immunofluorescence, Fluorescence, Marker

A Experimental workflow of TNF-α-induced OA model in ATDC5 cells (Created in BioRender. Q.Zhao (2026) https://BioRender.com/or5jts9 ); B RT-qPCR analysis of Scn9a gene expression in ATDC5 cells, Statistical analysis was performed using a two-tailed unpaired t-test (t = 9.26, df = 4, p < 0.001, 95% CI = 0.425–0.788); C WB analysis of Nav1.7 protein expression, Statistical analysis was performed using a two-tailed unpaired t-test (t = 168, df = 4, p < 0.001, 95% CI = 7.89 to 8.16); D Immunofluorescence staining of Nav1.7 protein localization in ATDC5 cells (scale bar: 25 μm); E WB analysis of Nav1.7 distribution in membrane and cytoplasmic fractions (Two-tailed unpaired t-test, t = 59.7, df = 4, p < 0.001, 95% CI = 2.85–3.13); F Patch-clamp recording of sodium current changes under varying voltage stimuli in ATDC5 cells; G Comparative analysis of sodium current responses across different groups; H Sodium current responses before and after tetrodotoxin (TTX) treatment; I Patch-clamp analysis comparing sodium current responses between TNF-α + TTX and TNF-α + ProTx II groups; J Superimposed current traces of TTX-Sensitive (TTX-S) (red) and ProTx II-sensitive (blue) components normalized by peak current amplitude; K Analysis of inactivation time constants and peak times of TTX-S and ProTx II-S sodium currents Statistical analysis was performed using a two-tailed unpaired t-test (Left panel [Time constant]: t = 0.655, df = 4, p = 0.548, 95% CI = −0.173–0.279; Right panel [Time to peak]: t = 1.46, df = 4, p = 0.217, 95% CI = −0.0718–0.232). Data are presented as mean ± standard deviation (SD) of n = 3 independent biological replicates. Individual data points represent biological replicates. Source data are provided as a file.

Journal: Nature Communications

Article Title: Cartilage targeting hydrogel nanoplatform degrades BRD4 to alleviate osteoarthritis via Nav1.7 axis

doi: 10.1038/s41467-026-71246-w

Figure Lengend Snippet: A Experimental workflow of TNF-α-induced OA model in ATDC5 cells (Created in BioRender. Q.Zhao (2026) https://BioRender.com/or5jts9 ); B RT-qPCR analysis of Scn9a gene expression in ATDC5 cells, Statistical analysis was performed using a two-tailed unpaired t-test (t = 9.26, df = 4, p < 0.001, 95% CI = 0.425–0.788); C WB analysis of Nav1.7 protein expression, Statistical analysis was performed using a two-tailed unpaired t-test (t = 168, df = 4, p < 0.001, 95% CI = 7.89 to 8.16); D Immunofluorescence staining of Nav1.7 protein localization in ATDC5 cells (scale bar: 25 μm); E WB analysis of Nav1.7 distribution in membrane and cytoplasmic fractions (Two-tailed unpaired t-test, t = 59.7, df = 4, p < 0.001, 95% CI = 2.85–3.13); F Patch-clamp recording of sodium current changes under varying voltage stimuli in ATDC5 cells; G Comparative analysis of sodium current responses across different groups; H Sodium current responses before and after tetrodotoxin (TTX) treatment; I Patch-clamp analysis comparing sodium current responses between TNF-α + TTX and TNF-α + ProTx II groups; J Superimposed current traces of TTX-Sensitive (TTX-S) (red) and ProTx II-sensitive (blue) components normalized by peak current amplitude; K Analysis of inactivation time constants and peak times of TTX-S and ProTx II-S sodium currents Statistical analysis was performed using a two-tailed unpaired t-test (Left panel [Time constant]: t = 0.655, df = 4, p = 0.548, 95% CI = −0.173–0.279; Right panel [Time to peak]: t = 1.46, df = 4, p = 0.217, 95% CI = −0.0718–0.232). Data are presented as mean ± standard deviation (SD) of n = 3 independent biological replicates. Individual data points represent biological replicates. Source data are provided as a file.

Article Snippet: Nav1.7 channel functionality was verified by repeating the recording protocol following treatment with either 1 μM TTX (Tocris Bioscience, UK) or 25 nM ProTx II (HY-P1221, MCE, China).

Techniques: Quantitative RT-PCR, Gene Expression, Two Tailed Test, Expressing, Immunofluorescence, Staining, Membrane, Patch Clamp, Standard Deviation