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95 results for Cell Culture Plates | Avantor

Cell Culture Plates

Cell Culture Plates

Regardless of the biological cell type, cell culture plates create required conditions and environments ideal for optimum growth. Optically clear for maximum visual assaying capability, the dishes are available in round, flat, or v shaped bottom styles. Different treatment options support specific surface modifications for cell attachment or suspension. Lids securely protect samples placed in the multiple well plates during screening, experiments, and storage. Using any size cell culture plate yields consistent and reproducible results.

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Collagen I-coated plates, Corning® BioCoat®

Collagen I-coated plates, Corning® BioCoat®

Supplier: Corning

PS coated with rat tail collagen type I. Collagen is an integral part of the framework that holds cells and tissues together and has been recognised as a useful matrix for improving cell culture. In vitro use of collagen can exert effects on the adhesion, morphology, growth, migration, and differentiation of a variety of cell types. Applications include promotion of cell attachment and spreading, rapid expansion of cell populations, serum-free or reduced serum culture, studies of the effects of collagen I on cell behaviour, improving survival of primary cell lines in culture, and cell adhesion assays.

   Sustainable Options Available
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Amine and carboxyl microplates, Corning® PureCoat™

Amine and carboxyl microplates, Corning® PureCoat™

Supplier: Corning

Corning PureCoat Amine (positively charged) and Carboxyl (negatively charged) surfaces provide improved cell attachment, faster cell proliferation, and enhanced recovery post-thaw over standard TC surfaces. These surfaces function with a broad range of primary, transfected, transformed, and fastidious cell types, and have demonstrated utility in serum-reduced or serum-free conditions.

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HTS Caco-2 assay system, PET membrane, BioCoat™, Corning

HTS Caco-2 assay system, PET membrane, BioCoat™, Corning

Supplier: Corning

HTS insert plates are arrays of individual cell culture inserts connected by a rigid, robotics-friendly holder. This single-unit design makes insert plates ideal for running automated, high throughput drug transport (Caco-2 cells) cell toxicity studies or cell migration and invasion studies.

   Sustainable Options Available
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VWR® Single-Well Cell Culture Plates

VWR® Single-Well Cell Culture Plates

Supplier: VWR Collection

Single-well cell culture plates, made from clear PS, are available plasma-treated for consistent cell attachment and growth, or non-treated for use in applications where cell attachment is not desired.

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VWR®, Cell Culture Plates, 3D Scaffold

VWR®, Cell Culture Plates, 3D Scaffold

Supplier: VWR Collection

VWR® 3D scaffold cell culture plates, made of polystyrene (GPPS) with polystyrene polymer scaffold, are able to simulate the three-dimensional structure of cells in animals and the human body to maximum effect, providing an ideal environment for cell interaction, maximising culture area, and improving yield.

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VWR® Large Volume Cell Culture Plates

VWR® Large Volume Cell Culture Plates

Supplier: VWR Collection

6-well, round well plates for suspension cell culture.

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96- and 384-well cell culture microplates, Advanced TC™

96- and 384-well cell culture microplates, Advanced TC™

Supplier: Greiner Bio-One

Microplates with a modified culture surface to optimise cell characteristics and functions. The improved adherence and increased growth rate improve and accelerate cell proliferation. Additionally, the Advanced TC™ surface facilitates uniform and consistent cell adherence, increases throughput and reduces cell loss, for example during automated washing stages. Free of detectable DNase, RNase and human DNA.

   Sustainable Options Available
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Laminin cell culture plates, Corning® BioCoat™

Laminin cell culture plates, Corning® BioCoat™

Supplier: Corning

PS, coated with mouse laminin. Laminin, a major structural component of basement membranes, has many varied functions that are mediated by binding to various components of the basement membrane (for example, collagen IV) and to cell-surface receptors. Laminin-coated cell culture plates have a number of applications, including the promotion of cell adhesion, proliferation and differentiation of a variety of cell types, particularly neurons, epithelial cells, myocytes and myoblasts.

   Sustainable Options Available
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Poly-L-lysine-coated microplates, Corning® BioCoat®

Poly-L-lysine-coated microplates, Corning® BioCoat®

Supplier: Corning

Poly-D-Lysine (PDL) and Poly-L-Lysine (PLL) are synthetic compounds that enhance cell adhesion and protein absorption by altering surface charges on the culture substrate. In addition to promoting cell adhesion, poly-lysine surface treatments support neurite outgrowth and improve the survival of many central nervous system (CNS) primary cells in culture. As PDL and PLL are synthetic molecules, they do not stimulate biological activity in the cells cultured on them, and they do not introduce impurities carried by natural polymers.

   Sustainable Options Available
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Poly-D-lysine microplates, Corning® BioCoat®

Poly-D-lysine microplates, Corning® BioCoat®

Supplier: Corning

Poly-D-Lysine (PDL) and Poly-L-Lysine (PLL) are synthetic compounds that enhance cell adhesion and protein absorption by altering surface charges on the culture substrate. In addition to promoting cell adhesion, poly-lysine surface treatments support neurite outgrowth and improve the survival of many central nervous system (CNS) primary cells in culture. As PDL and PLL are synthetic molecules, they do not stimulate biological activity in the cells cultured on them, and they do not introduce impurities carried by natural polymers.

   Sustainable Options Available
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Cell culture plates, 96-well, CELLSTAR®

Cell culture plates, 96-well, CELLSTAR®

Supplier: Greiner Bio-One

PS, cell culture-treated, sterile. Cell culture treated plates are available with round (U), conical (V) or flat (F) bottom wells. All plates are certified free of RNase, DNase and human DNA, are non-pyrogenic and non-cytotoxic.

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Fibronectin-coated plates, Corning® BioCoat®

Fibronectin-coated plates, Corning® BioCoat®

Supplier: Corning

Human Fibronectin (HFN) is a widely distributed glycoprotein that is used as a substrate to promote attachment of cells through its central-binding domain RGD sequence. HFN is a product of most mesenchymal and epithelial cells and is present in both the ECM and plasma. The principal function of HFN appears to be in cellular migration during wound healing and development, regulation of cell growth and differentiation, and haemostasis/thrombosis.

   Sustainable Options Available
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Multiwell cell culture plates, CELLSTAR®

Supplier: Greiner Bio-One

These sterile, PS multiwell cell culture plates have a cell-repellent surface to effectively inhibit cell attachment. Achieved through a chemical polymer modification, the surface does not degrade or leach under common cell culture conditions, rendering an ideal substrate for native cell culture experiments.

   Sustainable Options Available
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Poly-L-lysine-coated plates, Corning® BioCoat®, Corning

Poly-L-lysine-coated plates, Corning® BioCoat®, Corning

Supplier: Corning

Poly-D-Lysine (PDL) and Poly-L-Lysine (PLL) are synthetic compounds that enhance cell adhesion and protein absorption by altering surface charges on the culture substrate. In addition to promoting cell adhesion, poly-lysine surface treatments support neurite outgrowth and improve the survival of many central nervous system (CNS) primary cells in culture. As PDL and PLL are synthetic molecules, they do not stimulate biological activity in the cells cultured on them, and they do not introduce impurities carried by natural polymers.

   Sustainable Options Available
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96-Well, Black Plates

96-Well, Black Plates

Supplier: Abcam

Non-pyrogenic, polystyrene microplates (black) with standard solid flat bottom.

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Cell culture microplates, cell-repellent surface, CELLSTAR®

Supplier: Greiner Bio-One

These sterile, PS multiwell cell culture plates have a cell-repellent surface to effectively inhibit cell attachment. Achieved through a chemical polymer modification, the surface does not degrade or leach under common cell culture conditions, rendering an ideal substrate for native cell culture experiments.

   Sustainable Options Available
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