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  2. Tris - Wikipedia

    en.wikipedia.org/wiki/Tris

    The useful buffer range for tris (pH 7–9) coincides with the physiological pH typical of most living organisms. This, and its low cost, make tris one of the most common buffers in the biology/biochemistry laboratory. Tris is also used as a primary standard to standardize acid solutions for chemical analysis.

  3. Tris-buffered saline - Wikipedia

    en.wikipedia.org/wiki/Tris-Buffered_Saline

    Tris-buffered saline (TBS) is a buffer used in some biochemical techniques to maintain the pH within a relatively narrow range. Tris (with HCl) has a slightly alkaline buffering capacity in the 7–9.2 range. The conjugate acid of Tris has a pK a of 8.07 at 25 °C.

  4. Alkaline lysis - Wikipedia

    en.wikipedia.org/wiki/Alkaline_lysis

    Tris Hydrochloride (HCl) is a buffer solution used to stabilize the pH and protect the integrity of the DNA. [ 3 ] Tris-HCl is necessary due to the high pH environment that is established in order to lyse open the cells.

  5. Good's buffers - Wikipedia

    en.wikipedia.org/wiki/Good's_buffers

    The following table presents pK a values at 20 °C. Values change by about 0.01 per degree of temperature. [1] [3] Good's original 1966 paper had two older buffers (marked with italics) for comparison.

  6. TBST - Wikipedia

    en.wikipedia.org/wiki/TBST

    The following is a sample recipe for TBST: 20 mM Tris; 150 mM NaCl; 0.1% Tween 20; Adjust pH with HCl to pH 7.4–7.6 The simplest way to prepare a TBS-Tween solution is to use TBS-T tablets.

  7. TAE buffer - Wikipedia

    en.wikipedia.org/wiki/TAE_buffer

    TAE buffer is commonly prepared as a 50× stock solution for laboratory use. A 50× stock solution can be prepared by dissolving 242 g Tris base in water, adding 57.1 ml glacial acetic acid, and 100 ml of 500 mM EDTA (pH 8.0) solution, and bringing the final volume up to 1 litre.