automated patch-clamp system Search Results


90
Cytocentrics Bioscience GmbH cytopatch automated patchclamp platform
Cytopatch Automated Patchclamp Platform, supplied by Cytocentrics Bioscience GmbH, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/automated+patch-clamp+system/cytopatch+automated+patchclamp+platform/pm36654757-431-6-10
Average 90 stars, based on 1 article reviews
cytopatch automated patchclamp platform - by Bioz Stars, 2026-09
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90
Chantest Inc automated patch clamp platforms
Automated Patch Clamp Platforms, supplied by Chantest Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/automated+patch-clamp+system/automated+patch+clamp+system+qpatch/pm20095096-40-2-7
Average 90 stars, based on 1 article reviews
automated patch clamp platforms - by Bioz Stars, 2026-09
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SB Drug Discovery automated patch-clamp assays
Automated Patch Clamp Assays, supplied by SB Drug Discovery, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/automated+patch-clamp+system/automated+patch+clamp+assays/pm36343259-354-0-6
Average 90 stars, based on 1 article reviews
automated patch-clamp assays - by Bioz Stars, 2026-09
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Cytocentrics Bioscience GmbH fully automated patch clamp system cytopatchtm4
Fully Automated Patch Clamp System Cytopatchtm4, supplied by Cytocentrics Bioscience GmbH, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/automated+patch-clamp+system/fully+automated+patch+clamp+system+cytopatchtm4/us10399945-607-16-22
Average 90 stars, based on 1 article reviews
fully automated patch clamp system cytopatchtm4 - by Bioz Stars, 2026-09
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BioFocus DPI herg automated patch clamp assays
Herg Automated Patch Clamp Assays, supplied by BioFocus DPI, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/automated+patch-clamp+system/herg+automated+patch+clamp+assays/pm28414242-175-1-11
Average 90 stars, based on 1 article reviews
herg automated patch clamp assays - by Bioz Stars, 2026-09
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CytoBioScience Inc cytopatch-4 automated patch-clamp instrument
Cytopatch 4 Automated Patch Clamp Instrument, supplied by CytoBioScience Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/automated+patch-clamp+system/cytopatch+4+automated+patch+clamp+instrument/pmc05664515-394-1-15
Average 90 stars, based on 1 article reviews
cytopatch-4 automated patch-clamp instrument - by Bioz Stars, 2026-09
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Smartox Biotechnology automated patch-clamp ionworks quattro platform
Screening flowchart from crude venom fraction to isolated peptide identification. (a) The collection of 117 venoms was prepared into 7,548 fractions individually added to 384‐well plates (Columns 1 and 2 are 1 μM TTX full block and Columns 3 and 4 are maximal current obtained in extracellular buffer) for testing versus hNaV1.7 channels on the <t>Ionworks</t> <t>Quattro</t> (IWQ, Molecular Devices). The train protocol described as an insert was applied before and after 10‐min incubation of cells with the fraction containing the toxin of interest. Traces of pre‐ and post‐scan are shown in full (b). Also, tonic block obtained on hNaV1.7 channels has been enlarged (c). Source of the screened crude venom is shown in (d). Percentage of inhibition for all tested fractions was plotted. As shown in (e), a threshold was set at 50% block (red line). From the venom library tested, only 8% hits on the hNaV1.7 channels came from scorpion venom, 6% from snake while the majority (86%) was derived from spider venoms (f). (g) Hits were sub‐fractioned and tested against hNaV1.7 and hNaV1.5 channels to identify most promising hits to be further characterized using whole‐cell automated patch‐clamp assays (QPatch)
Automated Patch Clamp Ionworks Quattro Platform, supplied by Smartox Biotechnology, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/automated+patch-clamp+system/automated+patch+clamp+ionworks+quattro+platform/pmc06468265-308-24-17
Average 90 stars, based on 1 article reviews
automated patch-clamp ionworks quattro platform - by Bioz Stars, 2026-09
90/100 stars
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90
Flyion GmbH flyscreen 8500 automated patch clamp
Screening flowchart from crude venom fraction to isolated peptide identification. (a) The collection of 117 venoms was prepared into 7,548 fractions individually added to 384‐well plates (Columns 1 and 2 are 1 μM TTX full block and Columns 3 and 4 are maximal current obtained in extracellular buffer) for testing versus hNaV1.7 channels on the <t>Ionworks</t> <t>Quattro</t> (IWQ, Molecular Devices). The train protocol described as an insert was applied before and after 10‐min incubation of cells with the fraction containing the toxin of interest. Traces of pre‐ and post‐scan are shown in full (b). Also, tonic block obtained on hNaV1.7 channels has been enlarged (c). Source of the screened crude venom is shown in (d). Percentage of inhibition for all tested fractions was plotted. As shown in (e), a threshold was set at 50% block (red line). From the venom library tested, only 8% hits on the hNaV1.7 channels came from scorpion venom, 6% from snake while the majority (86%) was derived from spider venoms (f). (g) Hits were sub‐fractioned and tested against hNaV1.7 and hNaV1.5 channels to identify most promising hits to be further characterized using whole‐cell automated patch‐clamp assays (QPatch)
Flyscreen 8500 Automated Patch Clamp, supplied by Flyion GmbH, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/automated+patch-clamp+system/flyscreen+8500+automated+patch+clamp/pmc03946725-142-12-18
Average 90 stars, based on 1 article reviews
flyscreen 8500 automated patch clamp - by Bioz Stars, 2026-09
90/100 stars
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90
Biomol GmbH automated patch clamp
Screening flowchart from crude venom fraction to isolated peptide identification. (a) The collection of 117 venoms was prepared into 7,548 fractions individually added to 384‐well plates (Columns 1 and 2 are 1 μM TTX full block and Columns 3 and 4 are maximal current obtained in extracellular buffer) for testing versus hNaV1.7 channels on the <t>Ionworks</t> <t>Quattro</t> (IWQ, Molecular Devices). The train protocol described as an insert was applied before and after 10‐min incubation of cells with the fraction containing the toxin of interest. Traces of pre‐ and post‐scan are shown in full (b). Also, tonic block obtained on hNaV1.7 channels has been enlarged (c). Source of the screened crude venom is shown in (d). Percentage of inhibition for all tested fractions was plotted. As shown in (e), a threshold was set at 50% block (red line). From the venom library tested, only 8% hits on the hNaV1.7 channels came from scorpion venom, 6% from snake while the majority (86%) was derived from spider venoms (f). (g) Hits were sub‐fractioned and tested against hNaV1.7 and hNaV1.5 channels to identify most promising hits to be further characterized using whole‐cell automated patch‐clamp assays (QPatch)
Automated Patch Clamp, supplied by Biomol GmbH, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/automated+patch-clamp+system/automated+patch+clamp/pm21775699-1-44-27
Average 90 stars, based on 1 article reviews
automated patch clamp - by Bioz Stars, 2026-09
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90
SB Drug Discovery automated patch clamp electrophysiology
Screening flowchart from crude venom fraction to isolated peptide identification. (a) The collection of 117 venoms was prepared into 7,548 fractions individually added to 384‐well plates (Columns 1 and 2 are 1 μM TTX full block and Columns 3 and 4 are maximal current obtained in extracellular buffer) for testing versus hNaV1.7 channels on the <t>Ionworks</t> <t>Quattro</t> (IWQ, Molecular Devices). The train protocol described as an insert was applied before and after 10‐min incubation of cells with the fraction containing the toxin of interest. Traces of pre‐ and post‐scan are shown in full (b). Also, tonic block obtained on hNaV1.7 channels has been enlarged (c). Source of the screened crude venom is shown in (d). Percentage of inhibition for all tested fractions was plotted. As shown in (e), a threshold was set at 50% block (red line). From the venom library tested, only 8% hits on the hNaV1.7 channels came from scorpion venom, 6% from snake while the majority (86%) was derived from spider venoms (f). (g) Hits were sub‐fractioned and tested against hNaV1.7 and hNaV1.5 channels to identify most promising hits to be further characterized using whole‐cell automated patch‐clamp assays (QPatch)
Automated Patch Clamp Electrophysiology, supplied by SB Drug Discovery, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/automated+patch-clamp+system/automated+patch+clamp+electrophysiology/pm40532704-268-1-11
Average 90 stars, based on 1 article reviews
automated patch clamp electrophysiology - by Bioz Stars, 2026-09
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90
BioFocus DPI automated patch-clamp electrophysiological assay
Screening flowchart from crude venom fraction to isolated peptide identification. (a) The collection of 117 venoms was prepared into 7,548 fractions individually added to 384‐well plates (Columns 1 and 2 are 1 μM TTX full block and Columns 3 and 4 are maximal current obtained in extracellular buffer) for testing versus hNaV1.7 channels on the <t>Ionworks</t> <t>Quattro</t> (IWQ, Molecular Devices). The train protocol described as an insert was applied before and after 10‐min incubation of cells with the fraction containing the toxin of interest. Traces of pre‐ and post‐scan are shown in full (b). Also, tonic block obtained on hNaV1.7 channels has been enlarged (c). Source of the screened crude venom is shown in (d). Percentage of inhibition for all tested fractions was plotted. As shown in (e), a threshold was set at 50% block (red line). From the venom library tested, only 8% hits on the hNaV1.7 channels came from scorpion venom, 6% from snake while the majority (86%) was derived from spider venoms (f). (g) Hits were sub‐fractioned and tested against hNaV1.7 and hNaV1.5 channels to identify most promising hits to be further characterized using whole‐cell automated patch‐clamp assays (QPatch)
Automated Patch Clamp Electrophysiological Assay, supplied by BioFocus DPI, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/automated+patch-clamp+system/automated+patch+clamp+electrophysiological+assay/10__1096_slash_fj__201601305r-142-17-20
Average 90 stars, based on 1 article reviews
automated patch-clamp electrophysiological assay - by Bioz Stars, 2026-09
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ClinGen Resource high-throughput automated patch clamp assay
Screening flowchart from crude venom fraction to isolated peptide identification. (a) The collection of 117 venoms was prepared into 7,548 fractions individually added to 384‐well plates (Columns 1 and 2 are 1 μM TTX full block and Columns 3 and 4 are maximal current obtained in extracellular buffer) for testing versus hNaV1.7 channels on the <t>Ionworks</t> <t>Quattro</t> (IWQ, Molecular Devices). The train protocol described as an insert was applied before and after 10‐min incubation of cells with the fraction containing the toxin of interest. Traces of pre‐ and post‐scan are shown in full (b). Also, tonic block obtained on hNaV1.7 channels has been enlarged (c). Source of the screened crude venom is shown in (d). Percentage of inhibition for all tested fractions was plotted. As shown in (e), a threshold was set at 50% block (red line). From the venom library tested, only 8% hits on the hNaV1.7 channels came from scorpion venom, 6% from snake while the majority (86%) was derived from spider venoms (f). (g) Hits were sub‐fractioned and tested against hNaV1.7 and hNaV1.5 channels to identify most promising hits to be further characterized using whole‐cell automated patch‐clamp assays (QPatch)
High Throughput Automated Patch Clamp Assay, supplied by ClinGen Resource, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/automated+patch-clamp+system/high+throughput+automated+patch+clamp+assay/10__1161_slash_circgen__124__004569-289-4-15
Average 90 stars, based on 1 article reviews
high-throughput automated patch clamp assay - by Bioz Stars, 2026-09
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Image Search Results


Screening flowchart from crude venom fraction to isolated peptide identification. (a) The collection of 117 venoms was prepared into 7,548 fractions individually added to 384‐well plates (Columns 1 and 2 are 1 μM TTX full block and Columns 3 and 4 are maximal current obtained in extracellular buffer) for testing versus hNaV1.7 channels on the Ionworks Quattro (IWQ, Molecular Devices). The train protocol described as an insert was applied before and after 10‐min incubation of cells with the fraction containing the toxin of interest. Traces of pre‐ and post‐scan are shown in full (b). Also, tonic block obtained on hNaV1.7 channels has been enlarged (c). Source of the screened crude venom is shown in (d). Percentage of inhibition for all tested fractions was plotted. As shown in (e), a threshold was set at 50% block (red line). From the venom library tested, only 8% hits on the hNaV1.7 channels came from scorpion venom, 6% from snake while the majority (86%) was derived from spider venoms (f). (g) Hits were sub‐fractioned and tested against hNaV1.7 and hNaV1.5 channels to identify most promising hits to be further characterized using whole‐cell automated patch‐clamp assays (QPatch)

Journal: British Journal of Pharmacology

Article Title: From identification to functional characterization of cyriotoxin‐1a, an antinociceptive toxin from the spider Cyriopagopus schioedtei

doi: 10.1111/bph.14628

Figure Lengend Snippet: Screening flowchart from crude venom fraction to isolated peptide identification. (a) The collection of 117 venoms was prepared into 7,548 fractions individually added to 384‐well plates (Columns 1 and 2 are 1 μM TTX full block and Columns 3 and 4 are maximal current obtained in extracellular buffer) for testing versus hNaV1.7 channels on the Ionworks Quattro (IWQ, Molecular Devices). The train protocol described as an insert was applied before and after 10‐min incubation of cells with the fraction containing the toxin of interest. Traces of pre‐ and post‐scan are shown in full (b). Also, tonic block obtained on hNaV1.7 channels has been enlarged (c). Source of the screened crude venom is shown in (d). Percentage of inhibition for all tested fractions was plotted. As shown in (e), a threshold was set at 50% block (red line). From the venom library tested, only 8% hits on the hNaV1.7 channels came from scorpion venom, 6% from snake while the majority (86%) was derived from spider venoms (f). (g) Hits were sub‐fractioned and tested against hNaV1.7 and hNaV1.5 channels to identify most promising hits to be further characterized using whole‐cell automated patch‐clamp assays (QPatch)

Article Snippet: Isolation, purification, and de novo amino acid sequencing of CyrTx‐1a A primary high throughput screening of the Smartox venom collection was performed on automated patch‐clamp Ionworks Quattro platform using HEK‐293 cells overexpressing hNa V 1.7 channels (Figure a).

Techniques: Isolation, Blocking Assay, Incubation, Inhibition, Derivative Assay, Patch Clamp

Flowchart for hNaV1.7 channel hit peptide identification. (a) Percentage of inhibition of peak hNaV1.7 elicited current by application of 0.05 μg of each of the 64 fractions obtained from Cyriopagopus schioedtei spider venom. (b) Each fraction of interest was then separated again to isolate one peptide per well. Sub‐fractions were tested again in our automated patch‐clamp Quattro assay. At this stage, inhibition of hNaV1.7 and hNaV1.5 channels was investigated. (c) Fractionation of the crude venom from C. schioedtei by reversed‐phase chromatography and detection by UV at 214 nm. The fraction containing the peptide of interest is highlighted in green. (d) Cation exchange sub‐fractionation of the primary fraction highlighted in (c). The inset illustrates the MS of m/z 1193.8947 [M + 3H]3+

Journal: British Journal of Pharmacology

Article Title: From identification to functional characterization of cyriotoxin‐1a, an antinociceptive toxin from the spider Cyriopagopus schioedtei

doi: 10.1111/bph.14628

Figure Lengend Snippet: Flowchart for hNaV1.7 channel hit peptide identification. (a) Percentage of inhibition of peak hNaV1.7 elicited current by application of 0.05 μg of each of the 64 fractions obtained from Cyriopagopus schioedtei spider venom. (b) Each fraction of interest was then separated again to isolate one peptide per well. Sub‐fractions were tested again in our automated patch‐clamp Quattro assay. At this stage, inhibition of hNaV1.7 and hNaV1.5 channels was investigated. (c) Fractionation of the crude venom from C. schioedtei by reversed‐phase chromatography and detection by UV at 214 nm. The fraction containing the peptide of interest is highlighted in green. (d) Cation exchange sub‐fractionation of the primary fraction highlighted in (c). The inset illustrates the MS of m/z 1193.8947 [M + 3H]3+

Article Snippet: Isolation, purification, and de novo amino acid sequencing of CyrTx‐1a A primary high throughput screening of the Smartox venom collection was performed on automated patch‐clamp Ionworks Quattro platform using HEK‐293 cells overexpressing hNa V 1.7 channels (Figure a).

Techniques: Inhibition, Patch Clamp, Fractionation, Reversed-phase Chromatography