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Products - Microarray Substrates & Slides - SuperEpoxy and SuperEpoxy 2 DNA
Table of Contents
Introduction Quality Control Product Description Users will appreciate the following features of SuperEpoxy Substrates (SME):
Technical Note The table below summarizes the substrate noise (actually intrinsic fluorescence + reflection + instrument noise) observed with our substrates. Substrate noise readings were taken at very high sensitivity (90% laser and 90% photomultiplier tube or PMT), settings that are well beyond those used for biological experiments. Typical instrument settings for biological experiments with the ScanArray Express are 20-40% laser power and 80% PMT. The ScanArray Express has 20- to 30-fold greater sensitivity than the ScanArray 3000, and correspondingly the substrate noise readings are up to 30-fold higher on the Express compared to the 3000. Unmodified glass substrates (i.e. SuperClean) produce the lowest substrate noise readings, followed SuperEpoxy, SuperAmine, and SuperAldehyde. Organic treatments (e.g. epoxy, amine and aldehyde) increase substrate noise compared to naked glass because organic molecules formed during derivation fluoresce at an extremely low but detectable level. For nearly all applications and assays, the non-sample contributions to background noise (intrinsic fluorescence, reflection, and instrument noise) are much less than the background noise contributed when the substrate or microarray is reacted with a fluorescent sample. In these cases, substrate noise (though it exists) is irrelevant to the use of our products, because it does not contribute in any measurable way to the background reading of the reacted chip. In rare cases involving extremely low background samples or gene expression measurements of rare transcripts, substrate noise may approach sample noise in magnitude. In these cases, it may be desirable to use a substrate that has a lower intrinsic fluorescence and reflection, such as SuperAmine instead of SuperAldehyde. For best results, please test our products in the context of REAL EXPERIMENTS rather than simply taking note of the fact that our Substrates manifest substrate noise that is greater than plain glass. ALL SUBSTRATES that contain an organic treatment or coating will produce some intrinsic fluorescence and reflection. Please also test our product “right out of the box” rather than waiting hours or days to measure the substrate noise. Fluorescent contaminants present in non-cleanroom air including cleaning agents, solvents used in marking pens, and hydrocarbon emissions from vacuum pumps, arrayers, centrifuges and other instruments can elevate the substrate noise reading considerably. Please also note that airborne particles including dust and other particulates greatly elevate the background reading because these particles are highly reflective in the presence of laser and white excitation light. Understanding the technical details of our products is important and we recommend that you commit these concepts to working memory as you proceed with your experiments. Table. Substrate noise
Technical Assistance
DNA Short Protocol (Steps 1-7) DNA Complete Protocol (Steps 1-7) 2. Print DNA samples onto SuperEpoxy Substrates. The SuperEpoxy surface couples cDNAs, oligonucleotides and RNAs extremely efficiently owing to the high reactivity of the epoxide groups. Coupling is efficient and use of amino linkers for oligonucleotides improvies results but is not required. For best coupling results store printed microarrays overnight at 30% humidity or less. Allowing printed spots to dry concentrates DNA to the spot and increases binding. If low binding is observed, baking can be implemented to increase binding. Bake at 80C for 1 hour. DNA target molecules retain their capacity to hybridize to fluorescent probe molecules. Printed microarrays should be stored unprocessed to protect coupled molecules. Micro Spotting Solution Plus contains components that stabilize printed DNA, but only has a slight denaturing effect. If printing BACs to this surface for CGH applications, use of a dentaturing printing buffer is recommended. Processing should be performed just prior to use for best performance. 3. Process the printed DNA microarrays. Once the printing process is complete, store microarrays printed and unprocessed. Prior to hybridization microarrays can be blocked using BlockIt blocking buffer for ultra low background results prior to any wash steps. Wash the printed microarrays to remove unbound DNA molecules, residual blocking buffer and printing buffer components from the substrate. DNA binding to the SuperEpoxy surface is extremely stable and microarrays can be washed and boiled without significant loss of coupled DNA. A good washing protocol for cDNAs and long oligonucleotides is the following: wash 2 min at room temperature in Wash Buffer A, wash 2 min at room temperature in Wash Buffer B, denature DNA if necessary for 2 min at 100°C in dH2O, cool 10 sec at room temperature, and fix by plunging for 2 min in ice cold 100% ethanol. The processed microarrays can be washed using a High Throughput Wash Station and dried using a Microarray High-Speed Centrifuge. 4. Hybridize the processed microarrays with fluorescent probe. Hybridization reactions can be performed under cover slips using a hybridization volume of 2 µl per cm2 of cover slip area. Preheating the substrate and hybridization buffer may reduce background fluorescence. ArrayIt® brand UniHyb Hybridization Solution and HybIt Hybridization Solution are excellent hybridization buffers. Hybridization times of 1-6 hours are usually sufficient to produce strong fluorescent signals. A Hybridization Cassette should be used to prevent sample evaporation during hybridization reactions. 5. Wash the microarrays to remove unhybridized fluorescent probe. Once the hybridization reaction between the bound target DNA and the fluorescent probe molecules is complete, wash the microarray to remove the unbound fluorescent molecules. For cDNA and long oligo microarrays, the following wash protocol works well: 5 min at room temperature with Wash Buffer A, 5 min at room temperature with Wash Buffer B , and 1 min at room temperature in Wash Buffer C. For short oligonucleotide microarrays, the following wash procedure works well: 5 min at room temperature with Wash Buffer 1, 5 min at room temperature with Wash Buffer 2, and 1 min at room temperature in Wash Buffer 3. Washes can be performed using a High Throughput Wash Station. After the wash procedure, dry by spinning in a Microarray High-Speed Centrifuge. 6. Scan the microarray to produce a fluorescent image. The fluorescent DNA microarray can be scanned or imaging using any of a number of high quality commercial detection instruments from ArrayIt®, Perkin Elmer (Boston, MA), Virtek (Ontario, Canada), Axon (Union City, CA), and many others. Instrument settings can be adjusted to optimize the imagine process. 7. Quantitate and model the fluorescent data. DNA microarray data from the fluorescent image can be quantified, mined and modeled using many different commercial software packages. Perkin Elmer (Boston, MA), Virtek (Ontario, Canada), Axon (Union City, CA), BioDiscovery (Marina del Ray, CA), and many others make excellent products Shelf Life Troubleshooting Tips
Poor protein coupling:
Weak fluorescent signals:
Scientific Publications Recommended Equipment and Reagents Ordering Information Product Description Pieces per box Catalog ID Price (US dollars)* SuperEpoxy 2 Most advanced epoxy microarray substrate slide on the market, polished atomically flat glass, highly-reactive epoxy surface chemistry, ultra-high covalent binding capacity and extremely low background fluorescence, 25 x 76 mm. 25 SME2 SuperEpoxy 2 Barcode Most advanced epoxy microarray substrate slide on the market, polished atomically flat glass, highly-reactive epoxy surface chemistry, ultra-high covalent binding capacity and extremely low background fluorescence, 25 x 76 mm and barcode. 25 SME2BC SuperEpoxy 2 (Box of 5) Most advanced epoxy microarray substrate slide on the market, polished atomically flat glass, highly-reactive epoxy surface chemistry, ultra-high covalent binding capacity and extremely low background fluorescence, 25 x 76 mm. 5 SME2F SuperEpoxy 2 Barcode (Box of 5) Most advanced epoxy microarray substrate slide on the market, polished atomically flat glass, highly-reactive epoxy surface chemistry, ultra-high covalent binding capacity and extremely low background fluorescence, 25 x 76 mm and barcode. 5 SME2FBC MirrorEpoxy 2 Most advanced epoxy microarray substrate slide on the market, polished atomically flat glass, highly-reactive epoxy surface chemistry, ultra-high covalent binding capacity, extremely low background fluorescence, reflective backside coating for 2-10X stronger signals, 25 x 76 mm. 25 MRE2 MirrorEpoxy 2 Barcode Most advanced epoxy microarray substrate slide on the market, polished atomically flat glass, highly-reactive epoxy surface chemistry, ultra-high covalent binding capacity, extremely low background fluorescence, reflective backside coating for 2-10X stronger signals, 25 x 76 mm and barcode. 25 MRE2BC MirrorEpoxy 2 (Box of 5) Most advanced epoxy microarray substrate slide on the market, polished atomically flat glass, highly-reactive epoxy surface chemistry, ultra-high covalent binding capacity, extremely low background fluorescence, reflective backside coating for 2-10X stronger signals, 25 x 76 mm. 5 MRE2F MirrorEpoxy 2 Barcode (Box of 5) Most advanced epoxy microarray substrate slide on the market, polished atomically flat glass, highly-reactive epoxy surface chemistry, ultra-high covalent binding capacity, extremely low background fluorescence, reflective backside coating for 2-10X stronger signals, 25 x 76 mm and barcode. 5 MRE2FBC SuperEpoxy Advanced epoxy microarray substrate slide, polished atomically flat glass, reactive epoxy surface chemistry, high covalent binding capacity, low background fluorescence, 25 x 76 mm. 25 SME SuperEpoxy Barcode Advanced epoxy microarray substrate slide, polished atomically flat glass, reactive epoxy surface chemistry, high covalent binding capacity, low background fluorescence, 25 x 76 mm and barcode. 25 SMEBC SuperEpoxy (Box of 5) Advanced epoxy microarray substrate slide, polished atomically flat glass, reactive epoxy surface chemistry, high covalent binding capacity, low background fluorescence, 25 x 76 mm. 5 SME5 SuperEpoxy Barcode (Box of 5) Advanced epoxy microarray substrate slide, polished atomically flat glass, reactive epoxy surface chemistry, high covalent binding capacity, low background fluorescence, 25 x 76 mm and barcode. 5 SME5BC MirrorEpoxy Advanced epoxy microarray substrate slide, polished atomically flat glass, reactive epoxy surface chemistry, high covalent binding capacity, low background fluorescence, reflective backside coating for 2-10X stronger signals, 25 x 76 mm. 25 MRE MirrorEpoxy Barcode Advanced epoxy microarray substrate slide, polished atomically flat glass, reactive epoxy surface chemistry, high covalent binding capacity, low background fluorescence, reflective backside coating for 2-10X stronger signals, 25 x 76 mm and barcode. 25 MREBC MirrorEpoxy (Box of 5) Advanced epoxy microarray substrate slide, polished atomically flat glass, reactive epoxy surface chemistry, high covalent binding capacity, low background fluorescence, reflective backside coating for 2-10X stronger signals, 25 x 76 mm. 5 MRE5 MirrorEpoxy Barcode (Box of 5) Advanced epoxy microarray substrate slide, polished atomically flat glass, reactive epoxy surface chemistry, high covalent binding capacity, low background fluorescence, reflective backside coating for 2-10X stronger signals, 25 x 76 mm and barcode. 5 MREBC5 Substrates Discounts: |
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