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physiological buffer solution fisher bioreagents bp661-50  (Fisher Bioreagents)

 
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    Fisher Bioreagents physiological buffer solution fisher bioreagents bp661-50
    Physiological Buffer Solution Fisher Bioreagents Bp661 50, supplied by Fisher Bioreagents, 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/physiological+buffer+solution/phosphate+buffered+saline/pm37549255-173-12-15
    Average 90 stars, based on 1 article reviews
    physiological buffer solution fisher bioreagents bp661-50 - by Bioz Stars, 2026-09
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    Article Title: Mortality of Musca domestica (Diptera: Muscidae) in response to exposure to a fungal entomopathogen in combination with eicosanoid biosynthesis inhibitors.
    Article Snippet: The injection and immersion survival experiment used 2 sets of solutions: a sterile 1× phosphate-buffered saline (PBS) (CAS 7647-14-5, Fisher BioReagents, Pittsburgh, PA, USA) solution for injection of the EBI, and a 0.2% tween80 solution (v/v) for the BotaniGard ES.

    Article Title: NMR studies of PEG chain dynamics on mesoporous silica nanoparticles for minimizing non-specific binding.
    Article Snippet: Phosphate-buffered saline (1× PBS solution, Fisher BioReagents), PierceTM BCA Protein Assay Kit was Nanoscale This journal is © The Royal Society of Chemistry 2025 O pe n A cc es s A rt ic le .

    Article Title: Heme-Mediated Selection of Encapsulated Streptococcus pneumoniae in the lungs by Oxidative Stress.
    Article Snippet: Briefly, an overnight BAP culture of the Spn strain was used to prepare a bacterial 28 suspension in sterile phosphate buffered saline [(PBS), pH=7.4] (Fisher BioReagents).

    Article Title: Facile Design of Label-Free Electrochemical Immunosensor Using AuNPs@ZIF-8@f-MWCNTs for CA-125 Detection in Ovarian Cancer
    Article Snippet: The early diagnosis of ovarian cancer (OC) is a critical factor in the effective treatment and improved patient outcomes.. This study presents a facile design label-free electrochemical immunosensor, a biomarker associated with OC, for high-sensitivity detection of CA-125.. Our approach, which involves an immobilization strategy utilizing nanocomposites of gold nanoparticles/zeolitic imidazolate framework-8/carboxylic acid-functionalized multi-walled carbon nanotubes (AuNPs@ZIF-8@f-MWCNTs), has significant potential for the early diagnosis of OC.

    Article Title: The origin of vertebrate teeth and evolution of sensory exoskeletons.
    Article Snippet: All animals were euthanized using 0.5% tricaine methanesulfonate (MS-222, Syndel) until the cessation of heartbeat and fixed in 4% paraformaldehyde (PFA; Acros Organics, item number EW-88353-82) overnight before transferring them to 1× phosphate-buffered saline (PBS; Fisher Bioreagents).

    Article Title: Orthodontic articles prepared using a polycarbonate diol, polymerizable compositions, and methods of making the articles
    Article Snippet: PBS Phosphate buffered saline (PBS, 1X), pH = 7.4, obtained from Fisher BioReagents, Pittsburgh, PA. PEG600DMA Polyethylene glycol 600 dimethacrylate, obtained from Sartomer.

    Neutralization:

    Article Title: Human mesofluidic intestinal model for studying transport of drug carriers and bacteria through a live mucosal barrier.
    Article Snippet: .. Preparation of cross-linked collagen gel wall A 2 mg ml−1 neutralized type I collagen (pH = 7.2–7.4) solution was prepared by diluting 5 mg ml−1 of rat tail type I collagen (Cultrex 3-D Culture Matrix, R&D SystemsTM 344702001) with neutralization buffer.20 The neutralization buffer is composed of HEPES (20 mM, GibcoTM 15630080), NaOH (9.4 mM), and NaHCO3 (53 mM, Sigma-Aldrich S5761) in phosphate buffered saline (PBS, Fisher BioReagents BP661-10). ..

    Saline:

    Article Title: Human mesofluidic intestinal model for studying transport of drug carriers and bacteria through a live mucosal barrier.
    Article Snippet: .. Preparation of cross-linked collagen gel wall A 2 mg ml−1 neutralized type I collagen (pH = 7.2–7.4) solution was prepared by diluting 5 mg ml−1 of rat tail type I collagen (Cultrex 3-D Culture Matrix, R&D SystemsTM 344702001) with neutralization buffer.20 The neutralization buffer is composed of HEPES (20 mM, GibcoTM 15630080), NaOH (9.4 mM), and NaHCO3 (53 mM, Sigma-Aldrich S5761) in phosphate buffered saline (PBS, Fisher BioReagents BP661-10). ..

    Article Title: Highly efficient transgene-free ErCas12a RNP-protoplast genome editing and single-cell regeneration in Nicotiana benthamiana for glyco-engineering.
    Article Snippet: .. ErCas12a RNPs were prepared by combining the endonuclease with the appropriate sgRNA (Table S2) at an equimolar ratio in 1x phosphate buffered saline (Fisher Bioreagents; 10388739). ..



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    Experimental set-up for irradiation and OCT-imaging of the murine Arteria saphena. A For irradiation in the X-ray device (1), anesthetized animals were positioned on their left side and secured on a Plexiglas holder. The bent right leg and lower abdomen were shielded with lead to protect them from radiation, ensuring that only the inner side of the left lower leg remained within the irradiation field. The exposure area beneath the irradiation window was defined by a collimator plate made of a bismuth-lead-tin alloy (MCP-96) with copper cutouts (2). Up to five animals were irradiated simultaneously on an underlying Plexiglas plate (3). The mesures are given in centimeters. B The OCT system for vascular imaging of the A. saphena operates using near-infrared light emitted by a diode (1), which is transmitted to the scanner head (2) via fiber optic cables (3). Within the scanner head the incoming light is collimated to a beam of 2.4 mm in diameter through a collimator (4) (focal length = 12 mm) and subsequently divided into a reference and probe beam of equal diameter with a beam splitter. To scan the arterial surface, the probe beam is diffracted via two galvanometric scanners (5) (Cambridge Technologies, Planegg) and focused through an achromatic lense (6) (focal length = 25.4 mm, diameter = 15 mm). The light reflected by the arterial surface and the reference beam that has been reflected by a mirror are then recombined by the beam splitter. Fiber optic cables lead the resulting interference signal through a collimator (focal length = 40 mm) and to a spectrometer to be spectrally analyzed with a diffraction grating (1200 lines/mm). The interference spectrum is then focused through an achromatic lense (focal length = 75 mm) and detected with a silicon detector (LIS-1024, pixel size: 7.8 μm × 125 μm × 1024 px, Photon Vision Systems Inc., Homer, USA). A Fast Fourier Transform of the interference signal provides depth-resolved information about the arterial tissue. C Representative recording of the A. saphena (white arrows) and Vena saphena medialis (grey arrows) of a C57BL/6 mouse aged 8 weeks, one day after irradiation with 2 Gy. The upper picture row in the foreground represents 2-D cross sectional OCT-images. The picture row below in the background are video-recordings to orientate on the tissue. Left: Vessel diameter at rest after application of <t>physiological</t> buffer solution. Middle: Arterial vasoconstriction (VC) after application of buffer solution with high potassium concentration (K+). Right: Arterial vasodilation (VD) induced by sodium nitroprusside (SNP). The diameter of the saphenous vein was unaffected. Below: Time course of inner diameter changes of A. saphena with fitted sigmoid function (black line). d0: initial diameter, dVC: minimal diameter during VC. dVD: maximal diameter during VD. t 1/2 : time of half VC or VD
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    Experimental set-up for irradiation and OCT-imaging of the murine Arteria saphena. A For irradiation in the X-ray device (1), anesthetized animals were positioned on their left side and secured on a Plexiglas holder. The bent right leg and lower abdomen were shielded with lead to protect them from radiation, ensuring that only the inner side of the left lower leg remained within the irradiation field. The exposure area beneath the irradiation window was defined by a collimator plate made of a bismuth-lead-tin alloy (MCP-96) with copper cutouts (2). Up to five animals were irradiated simultaneously on an underlying Plexiglas plate (3). The mesures are given in centimeters. B The OCT system for vascular imaging of the A. saphena operates using near-infrared light emitted by a diode (1), which is transmitted to the scanner head (2) via fiber optic cables (3). Within the scanner head the incoming light is collimated to a beam of 2.4 mm in diameter through a collimator (4) (focal length = 12 mm) and subsequently divided into a reference and probe beam of equal diameter with a beam splitter. To scan the arterial surface, the probe beam is diffracted via two galvanometric scanners (5) (Cambridge Technologies, Planegg) and focused through an achromatic lense (6) (focal length = 25.4 mm, diameter = 15 mm). The light reflected by the arterial surface and the reference beam that has been reflected by a mirror are then recombined by the beam splitter. Fiber optic cables lead the resulting interference signal through a collimator (focal length = 40 mm) and to a spectrometer to be spectrally analyzed with a diffraction grating (1200 lines/mm). The interference spectrum is then focused through an achromatic lense (focal length = 75 mm) and detected with a silicon detector (LIS-1024, pixel size: 7.8 μm × 125 μm × 1024 px, Photon Vision Systems Inc., Homer, USA). A Fast Fourier Transform of the interference signal provides depth-resolved information about the arterial tissue. C Representative recording of the A. saphena (white arrows) and Vena saphena medialis (grey arrows) of a C57BL/6 mouse aged 8 weeks, one day after irradiation with 2 Gy. The upper picture row in the foreground represents 2-D cross sectional OCT-images. The picture row below in the background are video-recordings to orientate on the tissue. Left: Vessel diameter at rest after application of <t>physiological</t> buffer solution. Middle: Arterial vasoconstriction (VC) after application of buffer solution with high potassium concentration (K+). Right: Arterial vasodilation (VD) induced by sodium nitroprusside (SNP). The diameter of the saphenous vein was unaffected. Below: Time course of inner diameter changes of A. saphena with fitted sigmoid function (black line). d0: initial diameter, dVC: minimal diameter during VC. dVD: maximal diameter during VD. t 1/2 : time of half VC or VD
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    Experimental set-up for irradiation and OCT-imaging of the murine Arteria saphena. A For irradiation in the X-ray device (1), anesthetized animals were positioned on their left side and secured on a Plexiglas holder. The bent right leg and lower abdomen were shielded with lead to protect them from radiation, ensuring that only the inner side of the left lower leg remained within the irradiation field. The exposure area beneath the irradiation window was defined by a collimator plate made of a bismuth-lead-tin alloy (MCP-96) with copper cutouts (2). Up to five animals were irradiated simultaneously on an underlying Plexiglas plate (3). The mesures are given in centimeters. B The OCT system for vascular imaging of the A. saphena operates using near-infrared light emitted by a diode (1), which is transmitted to the scanner head (2) via fiber optic cables (3). Within the scanner head the incoming light is collimated to a beam of 2.4 mm in diameter through a collimator (4) (focal length = 12 mm) and subsequently divided into a reference and probe beam of equal diameter with a beam splitter. To scan the arterial surface, the probe beam is diffracted via two galvanometric scanners (5) (Cambridge Technologies, Planegg) and focused through an achromatic lense (6) (focal length = 25.4 mm, diameter = 15 mm). The light reflected by the arterial surface and the reference beam that has been reflected by a mirror are then recombined by the beam splitter. Fiber optic cables lead the resulting interference signal through a collimator (focal length = 40 mm) and to a spectrometer to be spectrally analyzed with a diffraction grating (1200 lines/mm). The interference spectrum is then focused through an achromatic lense (focal length = 75 mm) and detected with a silicon detector (LIS-1024, pixel size: 7.8 μm × 125 μm × 1024 px, Photon Vision Systems Inc., Homer, USA). A Fast Fourier Transform of the interference signal provides depth-resolved information about the arterial tissue. C Representative recording of the A. saphena (white arrows) and Vena saphena medialis (grey arrows) of a C57BL/6 mouse aged 8 weeks, one day after irradiation with 2 Gy. The upper picture row in the foreground represents 2-D cross sectional OCT-images. The picture row below in the background are video-recordings to orientate on the tissue. Left: Vessel diameter at rest after application of <t>physiological</t> buffer solution. Middle: Arterial vasoconstriction (VC) after application of buffer solution with high potassium concentration (K+). Right: Arterial vasodilation (VD) induced by sodium nitroprusside (SNP). The diameter of the saphenous vein was unaffected. Below: Time course of inner diameter changes of A. saphena with fitted sigmoid function (black line). d0: initial diameter, dVC: minimal diameter during VC. dVD: maximal diameter during VD. t 1/2 : time of half VC or VD
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    Experimental set-up for irradiation and OCT-imaging of the murine Arteria saphena. A For irradiation in the X-ray device (1), anesthetized animals were positioned on their left side and secured on a Plexiglas holder. The bent right leg and lower abdomen were shielded with lead to protect them from radiation, ensuring that only the inner side of the left lower leg remained within the irradiation field. The exposure area beneath the irradiation window was defined by a collimator plate made of a bismuth-lead-tin alloy (MCP-96) with copper cutouts (2). Up to five animals were irradiated simultaneously on an underlying Plexiglas plate (3). The mesures are given in centimeters. B The OCT system for vascular imaging of the A. saphena operates using near-infrared light emitted by a diode (1), which is transmitted to the scanner head (2) via fiber optic cables (3). Within the scanner head the incoming light is collimated to a beam of 2.4 mm in diameter through a collimator (4) (focal length = 12 mm) and subsequently divided into a reference and probe beam of equal diameter with a beam splitter. To scan the arterial surface, the probe beam is diffracted via two galvanometric scanners (5) (Cambridge Technologies, Planegg) and focused through an achromatic lense (6) (focal length = 25.4 mm, diameter = 15 mm). The light reflected by the arterial surface and the reference beam that has been reflected by a mirror are then recombined by the beam splitter. Fiber optic cables lead the resulting interference signal through a collimator (focal length = 40 mm) and to a spectrometer to be spectrally analyzed with a diffraction grating (1200 lines/mm). The interference spectrum is then focused through an achromatic lense (focal length = 75 mm) and detected with a silicon detector (LIS-1024, pixel size: 7.8 μm × 125 μm × 1024 px, Photon Vision Systems Inc., Homer, USA). A Fast Fourier Transform of the interference signal provides depth-resolved information about the arterial tissue. C Representative recording of the A. saphena (white arrows) and Vena saphena medialis (grey arrows) of a C57BL/6 mouse aged 8 weeks, one day after irradiation with 2 Gy. The upper picture row in the foreground represents 2-D cross sectional OCT-images. The picture row below in the background are video-recordings to orientate on the tissue. Left: Vessel diameter at rest after application of <t>physiological</t> buffer solution. Middle: Arterial vasoconstriction (VC) after application of buffer solution with high potassium concentration (K+). Right: Arterial vasodilation (VD) induced by sodium nitroprusside (SNP). The diameter of the saphenous vein was unaffected. Below: Time course of inner diameter changes of A. saphena with fitted sigmoid function (black line). d0: initial diameter, dVC: minimal diameter during VC. dVD: maximal diameter during VD. t 1/2 : time of half VC or VD
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    Experimental set-up for irradiation and OCT-imaging of the murine Arteria saphena. A For irradiation in the X-ray device (1), anesthetized animals were positioned on their left side and secured on a Plexiglas holder. The bent right leg and lower abdomen were shielded with lead to protect them from radiation, ensuring that only the inner side of the left lower leg remained within the irradiation field. The exposure area beneath the irradiation window was defined by a collimator plate made of a bismuth-lead-tin alloy (MCP-96) with copper cutouts (2). Up to five animals were irradiated simultaneously on an underlying Plexiglas plate (3). The mesures are given in centimeters. B The OCT system for vascular imaging of the A. saphena operates using near-infrared light emitted by a diode (1), which is transmitted to the scanner head (2) via fiber optic cables (3). Within the scanner head the incoming light is collimated to a beam of 2.4 mm in diameter through a collimator (4) (focal length = 12 mm) and subsequently divided into a reference and probe beam of equal diameter with a beam splitter. To scan the arterial surface, the probe beam is diffracted via two galvanometric scanners (5) (Cambridge Technologies, Planegg) and focused through an achromatic lense (6) (focal length = 25.4 mm, diameter = 15 mm). The light reflected by the arterial surface and the reference beam that has been reflected by a mirror are then recombined by the beam splitter. Fiber optic cables lead the resulting interference signal through a collimator (focal length = 40 mm) and to a spectrometer to be spectrally analyzed with a diffraction grating (1200 lines/mm). The interference spectrum is then focused through an achromatic lense (focal length = 75 mm) and detected with a silicon detector (LIS-1024, pixel size: 7.8 μm × 125 μm × 1024 px, Photon Vision Systems Inc., Homer, USA). A Fast Fourier Transform of the interference signal provides depth-resolved information about the arterial tissue. C Representative recording of the A. saphena (white arrows) and Vena saphena medialis (grey arrows) of a C57BL/6 mouse aged 8 weeks, one day after irradiation with 2 Gy. The upper picture row in the foreground represents 2-D cross sectional OCT-images. The picture row below in the background are video-recordings to orientate on the tissue. Left: Vessel diameter at rest after application of <t>physiological</t> buffer solution. Middle: Arterial vasoconstriction (VC) after application of buffer solution with high potassium concentration (K+). Right: Arterial vasodilation (VD) induced by sodium nitroprusside (SNP). The diameter of the saphenous vein was unaffected. Below: Time course of inner diameter changes of A. saphena with fitted sigmoid function (black line). d0: initial diameter, dVC: minimal diameter during VC. dVD: maximal diameter during VD. t 1/2 : time of half VC or VD
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    Experimental set-up for irradiation and OCT-imaging of the murine Arteria saphena. A For irradiation in the X-ray device (1), anesthetized animals were positioned on their left side and secured on a Plexiglas holder. The bent right leg and lower abdomen were shielded with lead to protect them from radiation, ensuring that only the inner side of the left lower leg remained within the irradiation field. The exposure area beneath the irradiation window was defined by a collimator plate made of a bismuth-lead-tin alloy (MCP-96) with copper cutouts (2). Up to five animals were irradiated simultaneously on an underlying Plexiglas plate (3). The mesures are given in centimeters. B The OCT system for vascular imaging of the A. saphena operates using near-infrared light emitted by a diode (1), which is transmitted to the scanner head (2) via fiber optic cables (3). Within the scanner head the incoming light is collimated to a beam of 2.4 mm in diameter through a collimator (4) (focal length = 12 mm) and subsequently divided into a reference and probe beam of equal diameter with a beam splitter. To scan the arterial surface, the probe beam is diffracted via two galvanometric scanners (5) (Cambridge Technologies, Planegg) and focused through an achromatic lense (6) (focal length = 25.4 mm, diameter = 15 mm). The light reflected by the arterial surface and the reference beam that has been reflected by a mirror are then recombined by the beam splitter. Fiber optic cables lead the resulting interference signal through a collimator (focal length = 40 mm) and to a spectrometer to be spectrally analyzed with a diffraction grating (1200 lines/mm). The interference spectrum is then focused through an achromatic lense (focal length = 75 mm) and detected with a silicon detector (LIS-1024, pixel size: 7.8 μm × 125 μm × 1024 px, Photon Vision Systems Inc., Homer, USA). A Fast Fourier Transform of the interference signal provides depth-resolved information about the arterial tissue. C Representative recording of the A. saphena (white arrows) and Vena saphena medialis (grey arrows) of a C57BL/6 mouse aged 8 weeks, one day after irradiation with 2 Gy. The upper picture row in the foreground represents 2-D cross sectional OCT-images. The picture row below in the background are video-recordings to orientate on the tissue. Left: Vessel diameter at rest after application of <t>physiological</t> buffer solution. Middle: Arterial vasoconstriction (VC) after application of buffer solution with high potassium concentration (K+). Right: Arterial vasodilation (VD) induced by sodium nitroprusside (SNP). The diameter of the saphenous vein was unaffected. Below: Time course of inner diameter changes of A. saphena with fitted sigmoid function (black line). d0: initial diameter, dVC: minimal diameter during VC. dVD: maximal diameter during VD. t 1/2 : time of half VC or VD
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    Experimental set-up for irradiation and OCT-imaging of the murine Arteria saphena. A For irradiation in the X-ray device (1), anesthetized animals were positioned on their left side and secured on a Plexiglas holder. The bent right leg and lower abdomen were shielded with lead to protect them from radiation, ensuring that only the inner side of the left lower leg remained within the irradiation field. The exposure area beneath the irradiation window was defined by a collimator plate made of a bismuth-lead-tin alloy (MCP-96) with copper cutouts (2). Up to five animals were irradiated simultaneously on an underlying Plexiglas plate (3). The mesures are given in centimeters. B The OCT system for vascular imaging of the A. saphena operates using near-infrared light emitted by a diode (1), which is transmitted to the scanner head (2) via fiber optic cables (3). Within the scanner head the incoming light is collimated to a beam of 2.4 mm in diameter through a collimator (4) (focal length = 12 mm) and subsequently divided into a reference and probe beam of equal diameter with a beam splitter. To scan the arterial surface, the probe beam is diffracted via two galvanometric scanners (5) (Cambridge Technologies, Planegg) and focused through an achromatic lense (6) (focal length = 25.4 mm, diameter = 15 mm). The light reflected by the arterial surface and the reference beam that has been reflected by a mirror are then recombined by the beam splitter. Fiber optic cables lead the resulting interference signal through a collimator (focal length = 40 mm) and to a spectrometer to be spectrally analyzed with a diffraction grating (1200 lines/mm). The interference spectrum is then focused through an achromatic lense (focal length = 75 mm) and detected with a silicon detector (LIS-1024, pixel size: 7.8 μm × 125 μm × 1024 px, Photon Vision Systems Inc., Homer, USA). A Fast Fourier Transform of the interference signal provides depth-resolved information about the arterial tissue. C Representative recording of the A. saphena (white arrows) and Vena saphena medialis (grey arrows) of a C57BL/6 mouse aged 8 weeks, one day after irradiation with 2 Gy. The upper picture row in the foreground represents 2-D cross sectional OCT-images. The picture row below in the background are video-recordings to orientate on the tissue. Left: Vessel diameter at rest after application of <t>physiological</t> buffer solution. Middle: Arterial vasoconstriction (VC) after application of buffer solution with high potassium concentration (K+). Right: Arterial vasodilation (VD) induced by sodium nitroprusside (SNP). The diameter of the saphenous vein was unaffected. Below: Time course of inner diameter changes of A. saphena with fitted sigmoid function (black line). d0: initial diameter, dVC: minimal diameter during VC. dVD: maximal diameter during VD. t 1/2 : time of half VC or VD
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    Experimental set-up for irradiation and OCT-imaging of the murine Arteria saphena. A For irradiation in the X-ray device (1), anesthetized animals were positioned on their left side and secured on a Plexiglas holder. The bent right leg and lower abdomen were shielded with lead to protect them from radiation, ensuring that only the inner side of the left lower leg remained within the irradiation field. The exposure area beneath the irradiation window was defined by a collimator plate made of a bismuth-lead-tin alloy (MCP-96) with copper cutouts (2). Up to five animals were irradiated simultaneously on an underlying Plexiglas plate (3). The mesures are given in centimeters. B The OCT system for vascular imaging of the A. saphena operates using near-infrared light emitted by a diode (1), which is transmitted to the scanner head (2) via fiber optic cables (3). Within the scanner head the incoming light is collimated to a beam of 2.4 mm in diameter through a collimator (4) (focal length = 12 mm) and subsequently divided into a reference and probe beam of equal diameter with a beam splitter. To scan the arterial surface, the probe beam is diffracted via two galvanometric scanners (5) (Cambridge Technologies, Planegg) and focused through an achromatic lense (6) (focal length = 25.4 mm, diameter = 15 mm). The light reflected by the arterial surface and the reference beam that has been reflected by a mirror are then recombined by the beam splitter. Fiber optic cables lead the resulting interference signal through a collimator (focal length = 40 mm) and to a spectrometer to be spectrally analyzed with a diffraction grating (1200 lines/mm). The interference spectrum is then focused through an achromatic lense (focal length = 75 mm) and detected with a silicon detector (LIS-1024, pixel size: 7.8 μm × 125 μm × 1024 px, Photon Vision Systems Inc., Homer, USA). A Fast Fourier Transform of the interference signal provides depth-resolved information about the arterial tissue. C Representative recording of the A. saphena (white arrows) and Vena saphena medialis (grey arrows) of a C57BL/6 mouse aged 8 weeks, one day after irradiation with 2 Gy. The upper picture row in the foreground represents 2-D cross sectional OCT-images. The picture row below in the background are video-recordings to orientate on the tissue. Left: Vessel diameter at rest after application of <t>physiological</t> buffer solution. Middle: Arterial vasoconstriction (VC) after application of buffer solution with high potassium concentration (K+). Right: Arterial vasodilation (VD) induced by sodium nitroprusside (SNP). The diameter of the saphenous vein was unaffected. Below: Time course of inner diameter changes of A. saphena with fitted sigmoid function (black line). d0: initial diameter, dVC: minimal diameter during VC. dVD: maximal diameter during VD. t 1/2 : time of half VC or VD
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    Millipore a shield-on solution is a weak-base physiological buffer solution (ph∼9) to trigger epoxy-based-crosslinking of biomolecules
    Experimental set-up for irradiation and OCT-imaging of the murine Arteria saphena. A For irradiation in the X-ray device (1), anesthetized animals were positioned on their left side and secured on a Plexiglas holder. The bent right leg and lower abdomen were shielded with lead to protect them from radiation, ensuring that only the inner side of the left lower leg remained within the irradiation field. The exposure area beneath the irradiation window was defined by a collimator plate made of a bismuth-lead-tin alloy (MCP-96) with copper cutouts (2). Up to five animals were irradiated simultaneously on an underlying Plexiglas plate (3). The mesures are given in centimeters. B The OCT system for vascular imaging of the A. saphena operates using near-infrared light emitted by a diode (1), which is transmitted to the scanner head (2) via fiber optic cables (3). Within the scanner head the incoming light is collimated to a beam of 2.4 mm in diameter through a collimator (4) (focal length = 12 mm) and subsequently divided into a reference and probe beam of equal diameter with a beam splitter. To scan the arterial surface, the probe beam is diffracted via two galvanometric scanners (5) (Cambridge Technologies, Planegg) and focused through an achromatic lense (6) (focal length = 25.4 mm, diameter = 15 mm). The light reflected by the arterial surface and the reference beam that has been reflected by a mirror are then recombined by the beam splitter. Fiber optic cables lead the resulting interference signal through a collimator (focal length = 40 mm) and to a spectrometer to be spectrally analyzed with a diffraction grating (1200 lines/mm). The interference spectrum is then focused through an achromatic lense (focal length = 75 mm) and detected with a silicon detector (LIS-1024, pixel size: 7.8 μm × 125 μm × 1024 px, Photon Vision Systems Inc., Homer, USA). A Fast Fourier Transform of the interference signal provides depth-resolved information about the arterial tissue. C Representative recording of the A. saphena (white arrows) and Vena saphena medialis (grey arrows) of a C57BL/6 mouse aged 8 weeks, one day after irradiation with 2 Gy. The upper picture row in the foreground represents 2-D cross sectional OCT-images. The picture row below in the background are video-recordings to orientate on the tissue. Left: Vessel diameter at rest after application of <t>physiological</t> buffer solution. Middle: Arterial vasoconstriction (VC) after application of buffer solution with high potassium concentration (K+). Right: Arterial vasodilation (VD) induced by sodium nitroprusside (SNP). The diameter of the saphenous vein was unaffected. Below: Time course of inner diameter changes of A. saphena with fitted sigmoid function (black line). d0: initial diameter, dVC: minimal diameter during VC. dVD: maximal diameter during VD. t 1/2 : time of half VC or VD
    A Shield On Solution Is A Weak Base Physiological Buffer Solution (Ph∼9) To Trigger Epoxy Based Crosslinking Of Biomolecules, supplied by Millipore, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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    Experimental set-up for irradiation and OCT-imaging of the murine Arteria saphena. A For irradiation in the X-ray device (1), anesthetized animals were positioned on their left side and secured on a Plexiglas holder. The bent right leg and lower abdomen were shielded with lead to protect them from radiation, ensuring that only the inner side of the left lower leg remained within the irradiation field. The exposure area beneath the irradiation window was defined by a collimator plate made of a bismuth-lead-tin alloy (MCP-96) with copper cutouts (2). Up to five animals were irradiated simultaneously on an underlying Plexiglas plate (3). The mesures are given in centimeters. B The OCT system for vascular imaging of the A. saphena operates using near-infrared light emitted by a diode (1), which is transmitted to the scanner head (2) via fiber optic cables (3). Within the scanner head the incoming light is collimated to a beam of 2.4 mm in diameter through a collimator (4) (focal length = 12 mm) and subsequently divided into a reference and probe beam of equal diameter with a beam splitter. To scan the arterial surface, the probe beam is diffracted via two galvanometric scanners (5) (Cambridge Technologies, Planegg) and focused through an achromatic lense (6) (focal length = 25.4 mm, diameter = 15 mm). The light reflected by the arterial surface and the reference beam that has been reflected by a mirror are then recombined by the beam splitter. Fiber optic cables lead the resulting interference signal through a collimator (focal length = 40 mm) and to a spectrometer to be spectrally analyzed with a diffraction grating (1200 lines/mm). The interference spectrum is then focused through an achromatic lense (focal length = 75 mm) and detected with a silicon detector (LIS-1024, pixel size: 7.8 μm × 125 μm × 1024 px, Photon Vision Systems Inc., Homer, USA). A Fast Fourier Transform of the interference signal provides depth-resolved information about the arterial tissue. C Representative recording of the A. saphena (white arrows) and Vena saphena medialis (grey arrows) of a C57BL/6 mouse aged 8 weeks, one day after irradiation with 2 Gy. The upper picture row in the foreground represents 2-D cross sectional OCT-images. The picture row below in the background are video-recordings to orientate on the tissue. Left: Vessel diameter at rest after application of physiological buffer solution. Middle: Arterial vasoconstriction (VC) after application of buffer solution with high potassium concentration (K+). Right: Arterial vasodilation (VD) induced by sodium nitroprusside (SNP). The diameter of the saphenous vein was unaffected. Below: Time course of inner diameter changes of A. saphena with fitted sigmoid function (black line). d0: initial diameter, dVC: minimal diameter during VC. dVD: maximal diameter during VD. t 1/2 : time of half VC or VD

    Journal: Cardio-oncology

    Article Title: Radiation- and age-related vascular dysfunction as an early indicator of cardiovascular risk: a long-term study in the ApoE −/− mouse model of atherosclerosis

    doi: 10.1186/s40959-025-00395-6

    Figure Lengend Snippet: Experimental set-up for irradiation and OCT-imaging of the murine Arteria saphena. A For irradiation in the X-ray device (1), anesthetized animals were positioned on their left side and secured on a Plexiglas holder. The bent right leg and lower abdomen were shielded with lead to protect them from radiation, ensuring that only the inner side of the left lower leg remained within the irradiation field. The exposure area beneath the irradiation window was defined by a collimator plate made of a bismuth-lead-tin alloy (MCP-96) with copper cutouts (2). Up to five animals were irradiated simultaneously on an underlying Plexiglas plate (3). The mesures are given in centimeters. B The OCT system for vascular imaging of the A. saphena operates using near-infrared light emitted by a diode (1), which is transmitted to the scanner head (2) via fiber optic cables (3). Within the scanner head the incoming light is collimated to a beam of 2.4 mm in diameter through a collimator (4) (focal length = 12 mm) and subsequently divided into a reference and probe beam of equal diameter with a beam splitter. To scan the arterial surface, the probe beam is diffracted via two galvanometric scanners (5) (Cambridge Technologies, Planegg) and focused through an achromatic lense (6) (focal length = 25.4 mm, diameter = 15 mm). The light reflected by the arterial surface and the reference beam that has been reflected by a mirror are then recombined by the beam splitter. Fiber optic cables lead the resulting interference signal through a collimator (focal length = 40 mm) and to a spectrometer to be spectrally analyzed with a diffraction grating (1200 lines/mm). The interference spectrum is then focused through an achromatic lense (focal length = 75 mm) and detected with a silicon detector (LIS-1024, pixel size: 7.8 μm × 125 μm × 1024 px, Photon Vision Systems Inc., Homer, USA). A Fast Fourier Transform of the interference signal provides depth-resolved information about the arterial tissue. C Representative recording of the A. saphena (white arrows) and Vena saphena medialis (grey arrows) of a C57BL/6 mouse aged 8 weeks, one day after irradiation with 2 Gy. The upper picture row in the foreground represents 2-D cross sectional OCT-images. The picture row below in the background are video-recordings to orientate on the tissue. Left: Vessel diameter at rest after application of physiological buffer solution. Middle: Arterial vasoconstriction (VC) after application of buffer solution with high potassium concentration (K+). Right: Arterial vasodilation (VD) induced by sodium nitroprusside (SNP). The diameter of the saphenous vein was unaffected. Below: Time course of inner diameter changes of A. saphena with fitted sigmoid function (black line). d0: initial diameter, dVC: minimal diameter during VC. dVD: maximal diameter during VD. t 1/2 : time of half VC or VD

    Article Snippet: To assess the arterial diameter at baseline the exposed A. saphena was moistened with a physiological buffer solution (NaCl: 119 mmol/l, Merck, Darmstadt, Germany; KCl: 4.7 mmol/l, Merck; MgSO 4 : 1.17 mmol/l, Sigma-Aldrich, Taufkirchen, Germany; NaHCO 3 : 25 mmol/l, Merck; KH 2 PO 4 : 1.18 mmol/l, Merck; Glucose: 5.5 mmol/l, Merck; EDTA: 0.027 mmol/l, Prolabo, VWR International, Darmstadt) right before starting OCT. Acquisition of the baseline diameter stopped automatically after 30 initial B-scans (equivalent to a recording time of 7.5 s).

    Techniques: Irradiation, Imaging, Concentration Assay