x-l type environmental scanning electron microscope (sem (Philips Healthcare)
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Philips Healthcare
x-l type environmental scanning electron microscope (sem
X L Type Environmental Scanning Electron Microscope (Sem, supplied by Philips Healthcare, 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/x-l+type+environmental+scanning+electron+microscope+sem/scanning+electron+microscope+philips+xl30/pm31761154-40-16-23
Average 90 stars, based on 1 article reviews
X L Type Environmental Scanning Electron Microscope (Sem, supplied by Philips Healthcare, 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/x-l+type+environmental+scanning+electron+microscope+sem/scanning+electron+microscope+philips+xl30/pm31761154-40-16-23
Average 90 stars, based on 1 article reviews
x-l type environmental scanning electron microscope (sem - by Bioz Stars,
2026-09
90/100 stars
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Microscopy:Article Title: Protective Effects of Degraded Soybean Polysaccharides on Renal Epithelial Cells Exposed to Oxidative Damage. Article Snippet: Journal of Agricultural and Food Chemistry is published by the American Chemical Society.. 1155 Sixteenth Street N.W., Washington, DC 20036 Published by American Chemical Society.. Copyright © American Chemical Society. Article Title: Renal Epithelial Cell Injury Induced by Calcium Oxalate Monohydrate Depends on their Structural Features: Size, Surface, and Crystalline Structure. Article Snippet: Urinary crystals in normal and kidney stone patients often differ in crystal sizes and surface structures, but the effects of different crystal properties on renal tubular epithelial cells remain unclear.. This study aimed to compare the cytotoxicity of micron/nano-calcium oxalate monohydrate (COM) crystals with sizes of 50 nm, 200 nm, 1 m, 3 m, and 10 m to African green monkey renal epithelial (Vero) cells, to reveal the effect of crystal size and surface structure on cell injury, and to investigate the pathological mechanism of calcium oxalate kidney stones.. Cell viability, cellular biochemical parameters, and internalized crystal amount in Vero cells were closely associated with the size of COM crystals. Article Title: Shape-dependent cellular toxicity on renal epithelial cells and stone risk of calcium oxalate dihydrate crystals. Article Snippet: The apparatus included Article Title: Size-dependent toxicity and interactions of calcium oxalate dihydrate crystals on Vero renal epithelial cells. Article Snippet: Urinary crystals in normal and kidney stone patients often have varying sizes; the interaction between renal epithelial cells and COD crystals generated in the tubular fluid could play an initiating role in the pathophysiology of calcium oxalate nephrolithiasis.. This study aims to compare the cytotoxicity of micro/nano-calcium oxalate dihydrate (COD) crystals (50 nm, 100 nm, 600 nm, 3 mm, and 10 mm) toward African green monkey renal epithelial (Vero) cells to reveal the mechanism of kidney stone formation at the molecular and cellular levels.. Methods: Vero cells were exposed to COD crystals of varying sizes at a concentration of 200 mg mL 1 for 6 h. The effects of COD crystals on Vero cell viability, apoptosis rate, and cellular biochemical parameters [lactate dehydrogenase (LDH), superoxide dismutase (SOD), reactive oxygen species (ROS), hyaluronic acid (HA), osteopontin (OPN), and mitochondrial membrane potential (Djm)] were determined using biochemical and morphological analyses. Article Title: Mechanism of cytotoxicity of micron/nano calcium oxalate monohydrate and dihydrate crystals on renal epithelial cells Article Snippet: Urinary crystals in normal and kidney stone patients often contain a larger proportion of micron/nano calcium oxalate monohydrate (COM) and calcium oxalate dihydrate (COD) crystals.. However, the effect of their varying sizes and crystal phases in inducing the formation of kidney stones remains unclear.. This study aims to comparatively investigate the cytotoxicity and aggregation capabilities of micron/nano COM and COD in vitro to reveal the mechanism of kidney stone formation. Article Title: Effect of Crystal Shape and Aggregation of Calcium Oxalate Monohydrate on Cellular Toxicity in Renal Epithelial Cells. Article Snippet: The apparatus included an Fluorescence:Article Title: Protective Effects of Degraded Soybean Polysaccharides on Renal Epithelial Cells Exposed to Oxidative Damage. Article Snippet: Journal of Agricultural and Food Chemistry is published by the American Chemical Society.. 1155 Sixteenth Street N.W., Washington, DC 20036 Published by American Chemical Society.. Copyright © American Chemical Society. Article Title: Renal Epithelial Cell Injury Induced by Calcium Oxalate Monohydrate Depends on their Structural Features: Size, Surface, and Crystalline Structure. Article Snippet: Urinary crystals in normal and kidney stone patients often differ in crystal sizes and surface structures, but the effects of different crystal properties on renal tubular epithelial cells remain unclear.. This study aimed to compare the cytotoxicity of micron/nano-calcium oxalate monohydrate (COM) crystals with sizes of 50 nm, 200 nm, 1 m, 3 m, and 10 m to African green monkey renal epithelial (Vero) cells, to reveal the effect of crystal size and surface structure on cell injury, and to investigate the pathological mechanism of calcium oxalate kidney stones.. Cell viability, cellular biochemical parameters, and internalized crystal amount in Vero cells were closely associated with the size of COM crystals. Article Title: Shape-dependent cellular toxicity on renal epithelial cells and stone risk of calcium oxalate dihydrate crystals. Article Snippet: The apparatus included Article Title: Size-dependent toxicity and interactions of calcium oxalate dihydrate crystals on Vero renal epithelial cells. Article Snippet: Urinary crystals in normal and kidney stone patients often have varying sizes; the interaction between renal epithelial cells and COD crystals generated in the tubular fluid could play an initiating role in the pathophysiology of calcium oxalate nephrolithiasis.. This study aims to compare the cytotoxicity of micro/nano-calcium oxalate dihydrate (COD) crystals (50 nm, 100 nm, 600 nm, 3 mm, and 10 mm) toward African green monkey renal epithelial (Vero) cells to reveal the mechanism of kidney stone formation at the molecular and cellular levels.. Methods: Vero cells were exposed to COD crystals of varying sizes at a concentration of 200 mg mL 1 for 6 h. The effects of COD crystals on Vero cell viability, apoptosis rate, and cellular biochemical parameters [lactate dehydrogenase (LDH), superoxide dismutase (SOD), reactive oxygen species (ROS), hyaluronic acid (HA), osteopontin (OPN), and mitochondrial membrane potential (Djm)] were determined using biochemical and morphological analyses. Article Title: Mechanism of cytotoxicity of micron/nano calcium oxalate monohydrate and dihydrate crystals on renal epithelial cells Article Snippet: Urinary crystals in normal and kidney stone patients often contain a larger proportion of micron/nano calcium oxalate monohydrate (COM) and calcium oxalate dihydrate (COD) crystals.. However, the effect of their varying sizes and crystal phases in inducing the formation of kidney stones remains unclear.. This study aims to comparatively investigate the cytotoxicity and aggregation capabilities of micron/nano COM and COD in vitro to reveal the mechanism of kidney stone formation. Article Title: Effect of Crystal Shape and Aggregation of Calcium Oxalate Monohydrate on Cellular Toxicity in Renal Epithelial Cells. Article Snippet: The apparatus included an Flow Cytometry:Article Title: Protective Effects of Degraded Soybean Polysaccharides on Renal Epithelial Cells Exposed to Oxidative Damage. Article Snippet: Journal of Agricultural and Food Chemistry is published by the American Chemical Society.. 1155 Sixteenth Street N.W., Washington, DC 20036 Published by American Chemical Society.. Copyright © American Chemical Society. Article Title: Renal Epithelial Cell Injury Induced by Calcium Oxalate Monohydrate Depends on their Structural Features: Size, Surface, and Crystalline Structure. Article Snippet: Urinary crystals in normal and kidney stone patients often differ in crystal sizes and surface structures, but the effects of different crystal properties on renal tubular epithelial cells remain unclear.. This study aimed to compare the cytotoxicity of micron/nano-calcium oxalate monohydrate (COM) crystals with sizes of 50 nm, 200 nm, 1 m, 3 m, and 10 m to African green monkey renal epithelial (Vero) cells, to reveal the effect of crystal size and surface structure on cell injury, and to investigate the pathological mechanism of calcium oxalate kidney stones.. Cell viability, cellular biochemical parameters, and internalized crystal amount in Vero cells were closely associated with the size of COM crystals. Article Title: Shape-dependent cellular toxicity on renal epithelial cells and stone risk of calcium oxalate dihydrate crystals. Article Snippet: The apparatus included Article Title: Size-dependent toxicity and interactions of calcium oxalate dihydrate crystals on Vero renal epithelial cells. Article Snippet: Urinary crystals in normal and kidney stone patients often have varying sizes; the interaction between renal epithelial cells and COD crystals generated in the tubular fluid could play an initiating role in the pathophysiology of calcium oxalate nephrolithiasis.. This study aims to compare the cytotoxicity of micro/nano-calcium oxalate dihydrate (COD) crystals (50 nm, 100 nm, 600 nm, 3 mm, and 10 mm) toward African green monkey renal epithelial (Vero) cells to reveal the mechanism of kidney stone formation at the molecular and cellular levels.. Methods: Vero cells were exposed to COD crystals of varying sizes at a concentration of 200 mg mL 1 for 6 h. The effects of COD crystals on Vero cell viability, apoptosis rate, and cellular biochemical parameters [lactate dehydrogenase (LDH), superoxide dismutase (SOD), reactive oxygen species (ROS), hyaluronic acid (HA), osteopontin (OPN), and mitochondrial membrane potential (Djm)] were determined using biochemical and morphological analyses. Article Title: Mechanism of cytotoxicity of micron/nano calcium oxalate monohydrate and dihydrate crystals on renal epithelial cells Article Snippet: Urinary crystals in normal and kidney stone patients often contain a larger proportion of micron/nano calcium oxalate monohydrate (COM) and calcium oxalate dihydrate (COD) crystals.. However, the effect of their varying sizes and crystal phases in inducing the formation of kidney stones remains unclear.. This study aims to comparatively investigate the cytotoxicity and aggregation capabilities of micron/nano COM and COD in vitro to reveal the mechanism of kidney stone formation. Article Title: Effect of Crystal Shape and Aggregation of Calcium Oxalate Monohydrate on Cellular Toxicity in Renal Epithelial Cells. Article Snippet: The apparatus included an FACS:Article Title: Protective Effects of Degraded Soybean Polysaccharides on Renal Epithelial Cells Exposed to Oxidative Damage. Article Snippet: Journal of Agricultural and Food Chemistry is published by the American Chemical Society.. 1155 Sixteenth Street N.W., Washington, DC 20036 Published by American Chemical Society.. Copyright © American Chemical Society. Article Title: Renal Epithelial Cell Injury Induced by Calcium Oxalate Monohydrate Depends on their Structural Features: Size, Surface, and Crystalline Structure. Article Snippet: Urinary crystals in normal and kidney stone patients often differ in crystal sizes and surface structures, but the effects of different crystal properties on renal tubular epithelial cells remain unclear.. This study aimed to compare the cytotoxicity of micron/nano-calcium oxalate monohydrate (COM) crystals with sizes of 50 nm, 200 nm, 1 m, 3 m, and 10 m to African green monkey renal epithelial (Vero) cells, to reveal the effect of crystal size and surface structure on cell injury, and to investigate the pathological mechanism of calcium oxalate kidney stones.. Cell viability, cellular biochemical parameters, and internalized crystal amount in Vero cells were closely associated with the size of COM crystals. Article Title: Shape-dependent cellular toxicity on renal epithelial cells and stone risk of calcium oxalate dihydrate crystals. Article Snippet: The apparatus included Article Title: Size-dependent toxicity and interactions of calcium oxalate dihydrate crystals on Vero renal epithelial cells. Article Snippet: Urinary crystals in normal and kidney stone patients often have varying sizes; the interaction between renal epithelial cells and COD crystals generated in the tubular fluid could play an initiating role in the pathophysiology of calcium oxalate nephrolithiasis.. This study aims to compare the cytotoxicity of micro/nano-calcium oxalate dihydrate (COD) crystals (50 nm, 100 nm, 600 nm, 3 mm, and 10 mm) toward African green monkey renal epithelial (Vero) cells to reveal the mechanism of kidney stone formation at the molecular and cellular levels.. Methods: Vero cells were exposed to COD crystals of varying sizes at a concentration of 200 mg mL 1 for 6 h. The effects of COD crystals on Vero cell viability, apoptosis rate, and cellular biochemical parameters [lactate dehydrogenase (LDH), superoxide dismutase (SOD), reactive oxygen species (ROS), hyaluronic acid (HA), osteopontin (OPN), and mitochondrial membrane potential (Djm)] were determined using biochemical and morphological analyses. Article Title: Mechanism of cytotoxicity of micron/nano calcium oxalate monohydrate and dihydrate crystals on renal epithelial cells Article Snippet: Urinary crystals in normal and kidney stone patients often contain a larger proportion of micron/nano calcium oxalate monohydrate (COM) and calcium oxalate dihydrate (COD) crystals.. However, the effect of their varying sizes and crystal phases in inducing the formation of kidney stones remains unclear.. This study aims to comparatively investigate the cytotoxicity and aggregation capabilities of micron/nano COM and COD in vitro to reveal the mechanism of kidney stone formation. Article Title: Effect of Crystal Shape and Aggregation of Calcium Oxalate Monohydrate on Cellular Toxicity in Renal Epithelial Cells. Article Snippet: The apparatus included an Clinical Proteomics:Article Title: Protective Effects of Degraded Soybean Polysaccharides on Renal Epithelial Cells Exposed to Oxidative Damage. Article Snippet: Journal of Agricultural and Food Chemistry is published by the American Chemical Society.. 1155 Sixteenth Street N.W., Washington, DC 20036 Published by American Chemical Society.. Copyright © American Chemical Society. Article Title: Renal Epithelial Cell Injury Induced by Calcium Oxalate Monohydrate Depends on their Structural Features: Size, Surface, and Crystalline Structure. Article Snippet: Urinary crystals in normal and kidney stone patients often differ in crystal sizes and surface structures, but the effects of different crystal properties on renal tubular epithelial cells remain unclear.. This study aimed to compare the cytotoxicity of micron/nano-calcium oxalate monohydrate (COM) crystals with sizes of 50 nm, 200 nm, 1 m, 3 m, and 10 m to African green monkey renal epithelial (Vero) cells, to reveal the effect of crystal size and surface structure on cell injury, and to investigate the pathological mechanism of calcium oxalate kidney stones.. Cell viability, cellular biochemical parameters, and internalized crystal amount in Vero cells were closely associated with the size of COM crystals. Article Title: Shape-dependent cellular toxicity on renal epithelial cells and stone risk of calcium oxalate dihydrate crystals. Article Snippet: The apparatus included Article Title: Size-dependent toxicity and interactions of calcium oxalate dihydrate crystals on Vero renal epithelial cells. Article Snippet: Urinary crystals in normal and kidney stone patients often have varying sizes; the interaction between renal epithelial cells and COD crystals generated in the tubular fluid could play an initiating role in the pathophysiology of calcium oxalate nephrolithiasis.. This study aims to compare the cytotoxicity of micro/nano-calcium oxalate dihydrate (COD) crystals (50 nm, 100 nm, 600 nm, 3 mm, and 10 mm) toward African green monkey renal epithelial (Vero) cells to reveal the mechanism of kidney stone formation at the molecular and cellular levels.. Methods: Vero cells were exposed to COD crystals of varying sizes at a concentration of 200 mg mL 1 for 6 h. The effects of COD crystals on Vero cell viability, apoptosis rate, and cellular biochemical parameters [lactate dehydrogenase (LDH), superoxide dismutase (SOD), reactive oxygen species (ROS), hyaluronic acid (HA), osteopontin (OPN), and mitochondrial membrane potential (Djm)] were determined using biochemical and morphological analyses. Article Title: Mechanism of cytotoxicity of micron/nano calcium oxalate monohydrate and dihydrate crystals on renal epithelial cells Article Snippet: Urinary crystals in normal and kidney stone patients often contain a larger proportion of micron/nano calcium oxalate monohydrate (COM) and calcium oxalate dihydrate (COD) crystals.. However, the effect of their varying sizes and crystal phases in inducing the formation of kidney stones remains unclear.. This study aims to comparatively investigate the cytotoxicity and aggregation capabilities of micron/nano COM and COD in vitro to reveal the mechanism of kidney stone formation. Article Title: Effect of Crystal Shape and Aggregation of Calcium Oxalate Monohydrate on Cellular Toxicity in Renal Epithelial Cells. Article Snippet: The apparatus included an Cytometry:Article Title: Protective Effects of Degraded Soybean Polysaccharides on Renal Epithelial Cells Exposed to Oxidative Damage. Article Snippet: Journal of Agricultural and Food Chemistry is published by the American Chemical Society.. 1155 Sixteenth Street N.W., Washington, DC 20036 Published by American Chemical Society.. Copyright © American Chemical Society. Article Title: Renal Epithelial Cell Injury Induced by Calcium Oxalate Monohydrate Depends on their Structural Features: Size, Surface, and Crystalline Structure. Article Snippet: Urinary crystals in normal and kidney stone patients often differ in crystal sizes and surface structures, but the effects of different crystal properties on renal tubular epithelial cells remain unclear.. This study aimed to compare the cytotoxicity of micron/nano-calcium oxalate monohydrate (COM) crystals with sizes of 50 nm, 200 nm, 1 m, 3 m, and 10 m to African green monkey renal epithelial (Vero) cells, to reveal the effect of crystal size and surface structure on cell injury, and to investigate the pathological mechanism of calcium oxalate kidney stones.. Cell viability, cellular biochemical parameters, and internalized crystal amount in Vero cells were closely associated with the size of COM crystals. Article Title: Shape-dependent cellular toxicity on renal epithelial cells and stone risk of calcium oxalate dihydrate crystals. Article Snippet: The apparatus included Article Title: Size-dependent toxicity and interactions of calcium oxalate dihydrate crystals on Vero renal epithelial cells. Article Snippet: Urinary crystals in normal and kidney stone patients often have varying sizes; the interaction between renal epithelial cells and COD crystals generated in the tubular fluid could play an initiating role in the pathophysiology of calcium oxalate nephrolithiasis.. This study aims to compare the cytotoxicity of micro/nano-calcium oxalate dihydrate (COD) crystals (50 nm, 100 nm, 600 nm, 3 mm, and 10 mm) toward African green monkey renal epithelial (Vero) cells to reveal the mechanism of kidney stone formation at the molecular and cellular levels.. Methods: Vero cells were exposed to COD crystals of varying sizes at a concentration of 200 mg mL 1 for 6 h. The effects of COD crystals on Vero cell viability, apoptosis rate, and cellular biochemical parameters [lactate dehydrogenase (LDH), superoxide dismutase (SOD), reactive oxygen species (ROS), hyaluronic acid (HA), osteopontin (OPN), and mitochondrial membrane potential (Djm)] were determined using biochemical and morphological analyses. Article Title: Mechanism of cytotoxicity of micron/nano calcium oxalate monohydrate and dihydrate crystals on renal epithelial cells Article Snippet: Urinary crystals in normal and kidney stone patients often contain a larger proportion of micron/nano calcium oxalate monohydrate (COM) and calcium oxalate dihydrate (COD) crystals.. However, the effect of their varying sizes and crystal phases in inducing the formation of kidney stones remains unclear.. This study aims to comparatively investigate the cytotoxicity and aggregation capabilities of micron/nano COM and COD in vitro to reveal the mechanism of kidney stone formation. Article Title: Effect of Crystal Shape and Aggregation of Calcium Oxalate Monohydrate on Cellular Toxicity in Renal Epithelial Cells. Article Snippet: The apparatus included an Zeta Potential Analyzer:Article Title: Protective Effects of Degraded Soybean Polysaccharides on Renal Epithelial Cells Exposed to Oxidative Damage. Article Snippet: Journal of Agricultural and Food Chemistry is published by the American Chemical Society.. 1155 Sixteenth Street N.W., Washington, DC 20036 Published by American Chemical Society.. Copyright © American Chemical Society. Article Title: Renal Epithelial Cell Injury Induced by Calcium Oxalate Monohydrate Depends on their Structural Features: Size, Surface, and Crystalline Structure. Article Snippet: Urinary crystals in normal and kidney stone patients often differ in crystal sizes and surface structures, but the effects of different crystal properties on renal tubular epithelial cells remain unclear.. This study aimed to compare the cytotoxicity of micron/nano-calcium oxalate monohydrate (COM) crystals with sizes of 50 nm, 200 nm, 1 m, 3 m, and 10 m to African green monkey renal epithelial (Vero) cells, to reveal the effect of crystal size and surface structure on cell injury, and to investigate the pathological mechanism of calcium oxalate kidney stones.. Cell viability, cellular biochemical parameters, and internalized crystal amount in Vero cells were closely associated with the size of COM crystals. Article Title: Shape-dependent cellular toxicity on renal epithelial cells and stone risk of calcium oxalate dihydrate crystals. Article Snippet: The apparatus included Article Title: Size-dependent toxicity and interactions of calcium oxalate dihydrate crystals on Vero renal epithelial cells. Article Snippet: Urinary crystals in normal and kidney stone patients often have varying sizes; the interaction between renal epithelial cells and COD crystals generated in the tubular fluid could play an initiating role in the pathophysiology of calcium oxalate nephrolithiasis.. This study aims to compare the cytotoxicity of micro/nano-calcium oxalate dihydrate (COD) crystals (50 nm, 100 nm, 600 nm, 3 mm, and 10 mm) toward African green monkey renal epithelial (Vero) cells to reveal the mechanism of kidney stone formation at the molecular and cellular levels.. Methods: Vero cells were exposed to COD crystals of varying sizes at a concentration of 200 mg mL 1 for 6 h. The effects of COD crystals on Vero cell viability, apoptosis rate, and cellular biochemical parameters [lactate dehydrogenase (LDH), superoxide dismutase (SOD), reactive oxygen species (ROS), hyaluronic acid (HA), osteopontin (OPN), and mitochondrial membrane potential (Djm)] were determined using biochemical and morphological analyses. Article Title: Mechanism of cytotoxicity of micron/nano calcium oxalate monohydrate and dihydrate crystals on renal epithelial cells Article Snippet: Urinary crystals in normal and kidney stone patients often contain a larger proportion of micron/nano calcium oxalate monohydrate (COM) and calcium oxalate dihydrate (COD) crystals.. However, the effect of their varying sizes and crystal phases in inducing the formation of kidney stones remains unclear.. This study aims to comparatively investigate the cytotoxicity and aggregation capabilities of micron/nano COM and COD in vitro to reveal the mechanism of kidney stone formation. Article Title: Effect of Crystal Shape and Aggregation of Calcium Oxalate Monohydrate on Cellular Toxicity in Renal Epithelial Cells. Article Snippet: The apparatus included an |