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dhs  (Gerstel GmbH)


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  • 99

    Structured Review

    Gerstel GmbH dhs
    Dhs, supplied by Gerstel GmbH, used in various techniques. Bioz Stars score: 99/100, based on 266 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/dynamic/DHS/custom%40dhs%4042540329
    Average 99 stars, based on 266 article reviews
    dhs - by Bioz Stars, 2026-10
    99/100 stars

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    Related Articles

    Food & Beverages:

    Article Title: Upcycling of poultry protein hydrolysates using membrane filtration technology – Effects on sensory properties and chemical composition
    Article Snippet: use libraries and the Chenomx NMR Suite (Chenomx, Edmonton, Canada). Volatile organic compounds were analyzed using an automated dynamic headspace purge and trap system with a thermal desorption unit (Gerstel DHS-TDU-MPS, Gerstel GmbH & Co. KG, Mühlheim, Germany) interfaced with a gas chromatograph (Agilent 6890, Palo Alto, CA, USA) coupled with a mass spectrometer (Agilent 2977B) (HS-GC/MS system)

    Gas Chromatography:

    Article Title: Upcycling of poultry protein hydrolysates using membrane filtration technology – Effects on sensory properties and chemical composition
    Article Snippet: use libraries and the Chenomx NMR Suite (Chenomx, Edmonton, Canada). Volatile organic compounds were analyzed using an automated dynamic headspace purge and trap system with a thermal desorption unit (Gerstel DHS-TDU-MPS, Gerstel GmbH & Co. KG, Mühlheim, Germany) interfaced with a gas chromatograph (Agilent 6890, Palo Alto, CA, USA) coupled with a mass spectrometer (Agilent 2977B) (HS-GC/MS system)

    Mass Spectrometry:

    Article Title: Upcycling of poultry protein hydrolysates using membrane filtration technology – Effects on sensory properties and chemical composition
    Article Snippet: use libraries and the Chenomx NMR Suite (Chenomx, Edmonton, Canada). Volatile organic compounds were analyzed using an automated dynamic headspace purge and trap system with a thermal desorption unit (Gerstel DHS-TDU-MPS, Gerstel GmbH & Co. KG, Mühlheim, Germany) interfaced with a gas chromatograph (Agilent 6890, Palo Alto, CA, USA) coupled with a mass spectrometer (Agilent 2977B) (HS-GC/MS system)

    Dynamic Headspace:

    Article Title: Upcycling of poultry protein hydrolysates using membrane filtration technology – Effects on sensory properties and chemical composition
    Article Snippet: use libraries and the Chenomx NMR Suite (Chenomx, Edmonton, Canada). Volatile organic compounds were analyzed using an automated dynamic headspace purge and trap system with a thermal desorption unit (Gerstel DHS-TDU-MPS, Gerstel GmbH & Co. KG, Mühlheim, Germany) interfaced with a gas chromatograph (Agilent 6890, Palo Alto, CA, USA) coupled with a mass spectrometer (Agilent 2977B) (HS-GC/MS system)

    Chromatography:

    Article Title: Upcycling of poultry protein hydrolysates using membrane filtration technology – Effects on sensory properties and chemical composition
    Article Snippet: use libraries and the Chenomx NMR Suite (Chenomx, Edmonton, Canada). Volatile organic compounds were analyzed using an automated dynamic headspace purge and trap system with a thermal desorption unit (Gerstel DHS-TDU-MPS, Gerstel GmbH & Co. KG, Mühlheim, Germany) interfaced with a gas chromatograph (Agilent 6890, Palo Alto, CA, USA) coupled with a mass spectrometer (Agilent 2977B) (HS-GC/MS system)

    Pyrolysis Gas Chromatography:

    Article Title: Upcycling of poultry protein hydrolysates using membrane filtration technology – Effects on sensory properties and chemical composition
    Article Snippet: use libraries and the Chenomx NMR Suite (Chenomx, Edmonton, Canada). Volatile organic compounds were analyzed using an automated dynamic headspace purge and trap system with a thermal desorption unit (Gerstel DHS-TDU-MPS, Gerstel GmbH & Co. KG, Mühlheim, Germany) interfaced with a gas chromatograph (Agilent 6890, Palo Alto, CA, USA) coupled with a mass spectrometer (Agilent 2977B) (HS-GC/MS system)

    Gas Chromatography-Mass Spectrometry:

    Article Title: Upcycling of poultry protein hydrolysates using membrane filtration technology – Effects on sensory properties and chemical composition
    Article Snippet: use libraries and the Chenomx NMR Suite (Chenomx, Edmonton, Canada). Volatile organic compounds were analyzed using an automated dynamic headspace purge and trap system with a thermal desorption unit (Gerstel DHS-TDU-MPS, Gerstel GmbH & Co. KG, Mühlheim, Germany) interfaced with a gas chromatograph (Agilent 6890, Palo Alto, CA, USA) coupled with a mass spectrometer (Agilent 2977B) (HS-GC/MS system)

    Thermal Desorption:

    Article Title: Upcycling of poultry protein hydrolysates using membrane filtration technology – Effects on sensory properties and chemical composition
    Article Snippet: use libraries and the Chenomx NMR Suite (Chenomx, Edmonton, Canada). Volatile organic compounds were analyzed using an automated dynamic headspace purge and trap system with a thermal desorption unit (Gerstel DHS-TDU-MPS, Gerstel GmbH & Co. KG, Mühlheim, Germany) interfaced with a gas chromatograph (Agilent 6890, Palo Alto, CA, USA) coupled with a mass spectrometer (Agilent 2977B) (HS-GC/MS system)

    Nuclear Magnetic Resonance:

    Article Title: Upcycling of poultry protein hydrolysates using membrane filtration technology – Effects on sensory properties and chemical composition
    Article Snippet: use libraries and the Chenomx NMR Suite (Chenomx, Edmonton, Canada). Volatile organic compounds were analyzed using an automated dynamic headspace purge and trap system with a thermal desorption unit (Gerstel DHS-TDU-MPS, Gerstel GmbH & Co. KG, Mühlheim, Germany) interfaced with a gas chromatograph (Agilent 6890, Palo Alto, CA, USA) coupled with a mass spectrometer (Agilent 2977B) (HS-GC/MS system)

    Transformation Assay:

    Article Title: Upcycling of poultry protein hydrolysates using membrane filtration technology – Effects on sensory properties and chemical composition
    Article Snippet: use libraries and the Chenomx NMR Suite (Chenomx, Edmonton, Canada). Volatile organic compounds were analyzed using an automated dynamic headspace purge and trap system with a thermal desorption unit (Gerstel DHS-TDU-MPS, Gerstel GmbH & Co. KG, Mühlheim, Germany) interfaced with a gas chromatograph (Agilent 6890, Palo Alto, CA, USA) coupled with a mass spectrometer (Agilent 2977B) (HS-GC/MS system)

    Extraction:

    Article Title: Upcycling of poultry protein hydrolysates using membrane filtration technology – Effects on sensory properties and chemical composition
    Article Snippet: use libraries and the Chenomx NMR Suite (Chenomx, Edmonton, Canada). Volatile organic compounds were analyzed using an automated dynamic headspace purge and trap system with a thermal desorption unit (Gerstel DHS-TDU-MPS, Gerstel GmbH & Co. KG, Mühlheim, Germany) interfaced with a gas chromatograph (Agilent 6890, Palo Alto, CA, USA) coupled with a mass spectrometer (Agilent 2977B) (HS-GC/MS system)

    Incubation:

    Article Title: Upcycling of poultry protein hydrolysates using membrane filtration technology – Effects on sensory properties and chemical composition
    Article Snippet: use libraries and the Chenomx NMR Suite (Chenomx, Edmonton, Canada). Volatile organic compounds were analyzed using an automated dynamic headspace purge and trap system with a thermal desorption unit (Gerstel DHS-TDU-MPS, Gerstel GmbH & Co. KG, Mühlheim, Germany) interfaced with a gas chromatograph (Agilent 6890, Palo Alto, CA, USA) coupled with a mass spectrometer (Agilent 2977B) (HS-GC/MS system)

    Sampling:

    Article Title: Upcycling of poultry protein hydrolysates using membrane filtration technology – Effects on sensory properties and chemical composition
    Article Snippet: use libraries and the Chenomx NMR Suite (Chenomx, Edmonton, Canada). Volatile organic compounds were analyzed using an automated dynamic headspace purge and trap system with a thermal desorption unit (Gerstel DHS-TDU-MPS, Gerstel GmbH & Co. KG, Mühlheim, Germany) interfaced with a gas chromatograph (Agilent 6890, Palo Alto, CA, USA) coupled with a mass spectrometer (Agilent 2977B) (HS-GC/MS system)

    Emulsion:

    Article Title: Upcycling of poultry protein hydrolysates using membrane filtration technology – Effects on sensory properties and chemical composition
    Article Snippet: use libraries and the Chenomx NMR Suite (Chenomx, Edmonton, Canada). Volatile organic compounds were analyzed using an automated dynamic headspace purge and trap system with a thermal desorption unit (Gerstel DHS-TDU-MPS, Gerstel GmbH & Co. KG, Mühlheim, Germany) interfaced with a gas chromatograph (Agilent 6890, Palo Alto, CA, USA) coupled with a mass spectrometer (Agilent 2977B) (HS-GC/MS system)

    Comparison:

    Article Title: Upcycling of poultry protein hydrolysates using membrane filtration technology – Effects on sensory properties and chemical composition
    Article Snippet: use libraries and the Chenomx NMR Suite (Chenomx, Edmonton, Canada). Volatile organic compounds were analyzed using an automated dynamic headspace purge and trap system with a thermal desorption unit (Gerstel DHS-TDU-MPS, Gerstel GmbH & Co. KG, Mühlheim, Germany) interfaced with a gas chromatograph (Agilent 6890, Palo Alto, CA, USA) coupled with a mass spectrometer (Agilent 2977B) (HS-GC/MS system)

    Quantitation Assay:

    Article Title: Upcycling of poultry protein hydrolysates using membrane filtration technology – Effects on sensory properties and chemical composition
    Article Snippet: use libraries and the Chenomx NMR Suite (Chenomx, Edmonton, Canada). Volatile organic compounds were analyzed using an automated dynamic headspace purge and trap system with a thermal desorption unit (Gerstel DHS-TDU-MPS, Gerstel GmbH & Co. KG, Mühlheim, Germany) interfaced with a gas chromatograph (Agilent 6890, Palo Alto, CA, USA) coupled with a mass spectrometer (Agilent 2977B) (HS-GC/MS system)



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    Image Search Results


    Spatiotemporally controlled tumor cell ablation in vitro. (A) Design of adenoviral vector for all‐in‐one delivery of PyroRACS. Expression cassettes for RACS and GSDMD NT were incorporated into a single adenoviral vector. ITR, inverted terminal repeat; pCMV, cytomegalovirus promoter; pCBH, CBH promoter; IRES, internal ribosome entry site. (B) Titer determination of the adenovirus encoding PyroRACS. Data are presented as mean ± SD; unpaired t ‐test, n = 3 independent replicates. PFU, plaque‐forming units. (C,D) Pyroptosis induction in bladder cancer cells. Bladder cancer cells 5637 and BIU87 were transduced with adenovirus at specified multiplicity of infection (MOI). Pyroptotic cells were stained with Annexin V‐FITC/PI 24 h post‐illumination (660 nm, 1 mW/cm 2 , 30 s). Cell death was quantified by flow cytometry. Representative fluorescence images of pyroptotic 5637 and BIU87 cells (C), scale bar: 20 µm. Flow cytometry quantification of pyroptotic cells (D); data are presented as mean ± SD, unpaired t ‐test, n = 4 biological replicates. (E,F) DAMPs release kinetics during pyroptosis. ATP (E) and LDH (F) levels in culture supernatants were quantified at indicated time points post‐illumination, with non‐illuminated cells serving as negative controls. Data are presented as mean ± SD (F); unpaired t ‐test, n = 4 biological replicates. RLU, relative luminescence units; LDH, lactate dehydrogenase. (G,H) Assessment of cytotoxicity under non‐induced conditions. Following adenoviral transduction, 5637 or BIU87 cells were cultured in the dark for 48 h. The levels of ATP (G) and LDH (H) in the culture supernatant were quantified, with non‐transduced cells (UT) as negative controls. Data: mean ± SD, n = 3 (5637) or 4 (BIU87) biological replicates. (I) Spatio‐specific pyroptosis induction. 5637 cells transduced with adenovirus at a MOI of 50. At 48 h post‐transduction, cells were illuminated through a custom‐designed striped photomask to induce localized cell death, followed by SYTOX Green staining 24 h post‐illumination (660 nm, 50 µW/cm 2 , 3 min). The upper panel shows the custom‐designed striped photomask used for patterned illumination. Scale bar: 1 mm; n = 2 independent experiments. (J) Light dose‐dependent pyroptosis induction. 5637 cells transduced with adenovirus at a MOI of 100. At 48 h post‐transduction, cells were illuminated (660 nm, 1 mW/cm 2 ) for the indicated durations. Cell death was quantified by flow cytometry 24 h after illumination. Data: mean ± SD; unpaired t ‐test, n = 3 biological replicates; * p < 0.05, ** p < 0.01, **** p < 0.0001.

    Journal: Advanced Science

    Article Title: Engineering a 660 nm‐Responsive Optogenetic Inducer of Pyroptosis for Precision Cancer Therapy

    doi: 10.1002/advs.76768

    Figure Lengend Snippet: Spatiotemporally controlled tumor cell ablation in vitro. (A) Design of adenoviral vector for all‐in‐one delivery of PyroRACS. Expression cassettes for RACS and GSDMD NT were incorporated into a single adenoviral vector. ITR, inverted terminal repeat; pCMV, cytomegalovirus promoter; pCBH, CBH promoter; IRES, internal ribosome entry site. (B) Titer determination of the adenovirus encoding PyroRACS. Data are presented as mean ± SD; unpaired t ‐test, n = 3 independent replicates. PFU, plaque‐forming units. (C,D) Pyroptosis induction in bladder cancer cells. Bladder cancer cells 5637 and BIU87 were transduced with adenovirus at specified multiplicity of infection (MOI). Pyroptotic cells were stained with Annexin V‐FITC/PI 24 h post‐illumination (660 nm, 1 mW/cm 2 , 30 s). Cell death was quantified by flow cytometry. Representative fluorescence images of pyroptotic 5637 and BIU87 cells (C), scale bar: 20 µm. Flow cytometry quantification of pyroptotic cells (D); data are presented as mean ± SD, unpaired t ‐test, n = 4 biological replicates. (E,F) DAMPs release kinetics during pyroptosis. ATP (E) and LDH (F) levels in culture supernatants were quantified at indicated time points post‐illumination, with non‐illuminated cells serving as negative controls. Data are presented as mean ± SD (F); unpaired t ‐test, n = 4 biological replicates. RLU, relative luminescence units; LDH, lactate dehydrogenase. (G,H) Assessment of cytotoxicity under non‐induced conditions. Following adenoviral transduction, 5637 or BIU87 cells were cultured in the dark for 48 h. The levels of ATP (G) and LDH (H) in the culture supernatant were quantified, with non‐transduced cells (UT) as negative controls. Data: mean ± SD, n = 3 (5637) or 4 (BIU87) biological replicates. (I) Spatio‐specific pyroptosis induction. 5637 cells transduced with adenovirus at a MOI of 50. At 48 h post‐transduction, cells were illuminated through a custom‐designed striped photomask to induce localized cell death, followed by SYTOX Green staining 24 h post‐illumination (660 nm, 50 µW/cm 2 , 3 min). The upper panel shows the custom‐designed striped photomask used for patterned illumination. Scale bar: 1 mm; n = 2 independent experiments. (J) Light dose‐dependent pyroptosis induction. 5637 cells transduced with adenovirus at a MOI of 100. At 48 h post‐transduction, cells were illuminated (660 nm, 1 mW/cm 2 ) for the indicated durations. Cell death was quantified by flow cytometry 24 h after illumination. Data: mean ± SD; unpaired t ‐test, n = 3 biological replicates; * p < 0.05, ** p < 0.01, **** p < 0.0001.

    Article Snippet: Cytotoxic lactate dehydrogenase (LDH) release dynamics were quantified using a commercial LDH assay kit (MCE, Cat. HY‐K1090) according to the manufacturer's instructions.

    Techniques: In Vitro, Plasmid Preparation, Expressing, Transduction, Infection, Staining, Flow Cytometry, Fluorescence, Cell Culture

    Molecular dynamics–based analyses of DPP4 and SGLT2: (a) root mean square fluctuation (RMSF), (b) dynamic cross-correlation matrix (DCCM), and (c) principal component analysis (PCA).

    Journal: Journal of Taibah University Medical Sciences

    Article Title: Computational discovery of fenugreek–paitan–turmeric (FPT) bioactive compounds targeting SGLT2 and DPP-4 for glucose homeostasis regulation

    doi: 10.1016/j.jtumed.2026.05.008

    Figure Lengend Snippet: Molecular dynamics–based analyses of DPP4 and SGLT2: (a) root mean square fluctuation (RMSF), (b) dynamic cross-correlation matrix (DCCM), and (c) principal component analysis (PCA).

    Article Snippet: Molecular dynamics–based analyses of DPP4 and SGLT2: (a) root mean square fluctuation (RMSF), (b) dynamic cross-correlation matrix (DCCM), and (c) principal component analysis (PCA).

    Techniques: