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PROTOCOL- WESTERN BLOT [复制链接]

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楼主
发表于 2009-10-27 16:53 |只看该作者 |正序浏览 |打印
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本帖最后由 linxingxing 于 2009-10-27 16:54 编辑
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Western blot analysis can detect one protein in a mixture of any number of proteins while giving you information about the size of the protein. It does not matter whether the protein has been synthesized in vivo or in vitro. This method is, however, dependent on the use of a high-quality antibody directed against a desired protein. So you must be able to produce at least a small portion of the protein from a cloned DNA fragment. You will use this antibody as a probe to detect the protein of interest. : G+ B& S+ O1 _* u5 Q
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Western blotting tells you how much protein has accumulated in cells. If you are interested in the rate of synthesis of a protein, Radio-Immune Precipitation (RIP) may be the best assay for you. Also, if a protein is degraded quickly, Western blotting won't detect it well; you'll need to use (RIP). See the section on RIP for more information, as well as a helpful comparative chart that illustrates the differences between these two techniques. % `. O! m( ^) e& y" Q0 S, r( `( E
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Let's look at this technique in greater detail. 5 i$ o" ~* I3 f2 Q
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1. Separate the proteins using SDS-polyacrylamide gel electrophoresis (also known as SDS-PAGE). This separates the proteins by size. 1 ]+ d. X9 R! ^% f) r! T
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2. Place a nitrocellulose membrane on the gel and, using electrophoresis, drive the protein (polypeptide) bands onto the nitrocellulose membrane. You want the negative charge to be on the side of the gel and the positive charge to be on the side of the nitrocellulose membrane to drive the negatively charged proteins over to the positively charged nitrocellulose membrane. This gives you a nitrocellulose membrane that is imprinted with the same protein bands as the gel.
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5 a/ S! n; E) e- [One thing to be aware of is that proteins bind better to nitrocellulose at a low pH. You may need to go through some trial-and-error to find the optimal pH. You also need to be sure there are no air bubbles between the nitrocellulose and the gel or your proteins will not transfer.
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3. Incubate the nitrocellulose membrane with a primary antibody. Click here to find out more about how to make a primary antibody. The primary antibody, which is the specific antibody mentioned above, sticks to your protein and forms an antibody-protein complex with the protein of interest.  1 K+ O* z- H# r' o* d- N9 ]9 l
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4. Incubate the nitrocellulose membrane with a secondary antibody. This antibody should be an antibody-enzyme conjugate. The secondary antibody should be an antibody against the primary antibody. This means the secondary antibody will "stick" to the primary antibody, just like the primary antibody "stuck" to the protein. The conjugated enzyme is there to allow you to visualize all of this. It's kind of like a molecular flare stuck on the antibodies so you can visualize what s going on.
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5. To actually see your enzyme in action, you'll need to incubate it in a reaction mix that is specific for your enzyme. If everything worked properly, you will see bands wherever there is a protein-primary antibody-secondary antibody-enzyme complex, or, in other words, wherever your protein is.
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6. Put x-ray film on your gel to detect a flash of light, which is given off by the enzyme. The reaction usually runs out in about an hour.  
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" ?+ u( Q: T5 g1 t" L! k1 xMaking a primary antibody 6 j" ?6 h6 X$ A! R! B9 K

9 x, l" A2 P4 H' W2 ~This description assumes you have available purified protein. Run the protein on an SDS-PAGE gel. Stain the gel with KCl. The KCl forms a precipitate with the SDS. Since the area with the protein has a low concentration of SDS, the area with the protein will not show a precipitate. This will allow you to see the protein band as a clear band against a milky white precipitate on the rest of the gel. & H/ R$ c7 }; g1 I  Q) R) W9 J

% n9 ?) r, c1 J( n- }Carefully cut out the band and soak it in 1 mL PBS buffer. Crush it and make an emulsion with 1 mL Freund's Complete Adjuvant (which is an oily substance). The complete adjuvant contains microbacteria (an immune stimulant) to increase the immune response. Inject this subscapularly into a rabbit. This is your first inoculation. Only use the complete adjuvant for the first inoculation. NEVER inject a rabbit with complete adjuvant more than one time.
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( A1 O, `9 V# L1 W+ D: `Rest the rabbit for one month, then repeat the process using an incomplete adjuvant. You can expect to see good antibody titers about 10 days after the second booster. " f3 q4 g6 w2 q+ i- n9 o1 k' X

( w- D8 z) s0 h0 wBleed the rabbit. You can expect about 30 to 40 mL per bleeding, and about 50 percent of the volume is serum. Now you have rabbit antisera. 6 }: P) z" I0 L$ d

  O# ^* v  R& A0 h/ Q3 E+ l/ `To get your primary antibody, dilute the rabbit antisera in blotto (aka Carnation Nonfat Dry Instant Milk) and apply it to your nitrocellulose blot. Make sure you dilute 1:500 to 1:100 in blotto; less dilution will give you background binding and really muddy up your results. * r1 `, E% ?) F3 ~

  V4 `) j% Q/ ?Secondary antibody , o5 u* _. G' r0 G( Z& ~7 `" y

+ f/ A: h  f! _) H3 IThis is much easier than the procedure for the primary antibody. Grab a catalogue and look for a goat-anti-rabbit antibody conjugated to horseradish peroxidase (HRP). The goat-anti-rabbit is your secondary antibody (the one that "sticks" to the primary antibody) and the HRP is the conjugated enzyme that will allow you to visualize your protein.' T# L' D) c& u
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FROM:http://askabiologist.asu.edu/exp ... estern/western.html
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发表于 2010-1-20 08:37 |只看该作者
thanks

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发表于 2010-1-7 12:18 |只看该作者
学习学习

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发表于 2009-12-8 01:28 |只看该作者
thank you!

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发表于 2009-11-14 16:25 |只看该作者
thank you

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地板
发表于 2009-10-29 21:27 |只看该作者
thank you!

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发表于 2009-10-29 09:14 |只看该作者
谢谢版主
, F( ~' T$ o0 x1 ]8 A& L& U$ Z很不错呢!

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板凳
发表于 2009-10-27 17:12 |只看该作者
Western Blot Procedure
& j0 G2 P& N  M- J: X( v0 KThis is a brief overview of how a western blot (more formally called a protein immunoblot) is performed and what type of data you can obtain from one.
& T' q) M0 ]* l7 V8 A* YWestern blots allow investigators to determine the molecular weight of a protein and to measure relative amounts of the protein present in different samples.
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0 o% f+ g  A  d6 S1) Proteins are separated by gel electrophoresis, usually SDS-PAGE.4 O5 u( Q1 C" t  F
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2) The proteins are transfered to a sheet of special blotting paper called nitrocellulose, though other types of paper, or membranes, can be used. The proteins retain the same pattern of separation they had on the gel.
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3) The blot is incubated with a generic protein (such as milk proteins) to bind to any remaining sticky places on the nitrocellulose. An antibody is then added to the solution which is able to bind to its specific protein. The antibody has an enzyme (e.g. alkaline phosphatase or horseradish peroxidase) or dye attached to it which cannot be seen at this time.
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1 D& G& y0 j0 e" ^4) The location of the antibody is revealed by incubating it with a colorless substrate that the attached enzyme converts to a colored product that can be seen and photographed.
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from:http://www.bio.davidson.edu/COUR ... od/Westernblot.html
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发表于 2009-10-27 17:09 |只看该作者
Materials Required
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* {2 Z" Z% U- }2 x4 \SDS-Page- e' }/ }/ Z% n9 o6 ?! Z$ z

0 p7 d6 G$ K1 a2 U2 J: [Polyacrylamide gels (% depends upon target protein molecular weight) " |4 O3 _8 v. V+ K3 P$ {& D
Molecular Weight markers for visualization on gel: Precision Plus Protein Dual Color Standard – Biorad 161-0374
, ^! x# a! o* ?) W1 C: M: t# KMolecular weight markers for visualization on membrane: MagicMark XP Western Standard – Invitrogen LC5602 ' d0 {  D, w2 V
Sample Buffer (Loading Dye): NuPAGE LDS Sample Buffer (4X) – Invitrogen NP0007 ) l/ V7 ]( C: Z* ?# I' X
NuPAGE Sample Reducing Agent (10x) – Invitrogen NP0004
6 r( s& a& o3 E1 @- VNuPAGE Antioxidant – Invitrogen NP0005 6 o5 r- m" J6 n- ?: O7 y
SDS-Page Running Buffer: NuPage MES SDS Running Buffer (20X) - Invitrogen NP0002 9 W7 v' R) N0 }- y* w  W
Protein Transfer# S' s! u% t) \' }. b

4 @( `' Y8 D6 `* @# y( D  l1x Transfer Buffer: NuPage Transfer Buffer (20X) - Invitrogen NP0006-1 ! [) Y( h8 S. v& _0 V, w; `
PVDF Membrane Filter Paper 0.2 μm pore - Invitrogen LC2002   }: g' Y; r1 G' H1 b9 ]% W
Filter Paper
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, h  q. J7 ]  }) J$ PWestern Blot and Visualization/ B, q6 J, `6 K6 W0 h  f

1 b) Q  ^+ f2 @2 U+ FPrimary antibody: can be raised in rabbit, mouse, chicken, goat, sheep, etc.
8 U+ T8 A2 B4 Y' f; @HRP conjugated secondary antibody raised against the primary
2 |* X% }9 Q5 ?0 \" J9 S0 z( KMethanol
3 s+ H; }1 h; `$ f1 X TBS-Tween Buffer + H& a' n. l1 R5 Q
Tween-20 - Biorad # 170-6531 , _, ~! x) b! H" z/ D
Blocking solution: TBS + Tween-20 + BSA Fraction V (Sigma Chemical Co. # A-2153) + dH2O
& d/ m5 [* c. f5 u: b, BDetection Reagent: Western ECL detection: Pierce (Dura West)
# }7 [. o. k/ M' XPeroxide * u" o+ A6 f1 W( f% V
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Protein Separation by SDS-PAGE9 W; x. e# g: m2 N. [
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Solutions:  \: R$ h/ \4 g' }9 k, I5 T
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Running Buffer: Add 50 ml 20X concentrate to 850ml dH2O 9 w4 Q! M# p( l! [' b" }" u
Loading Samples: Add 8μl of sample (at concentration of 1mg/ml), 1μl Reducing Agent (10X), and 2.5μl LDS Sample Buffer. MAINTAIN THIS RATIO if loading a different amount " y( \* ?; Z* Q. I+ u  H8 v
Proceedure:
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- D- V4 {# z/ i! W4 j  O6 ?# c. YPlace gel into the core and put into tank. Wells should face the inside for loading.
7 g$ U; p3 Q* C) u$ IClose apparatus and use running buffer to make sure that there are no leaks.
. T2 _( [9 a) [# t/ d' kAdd Buffer to the tank and inside the core ! x  r4 X4 Z2 ^, _5 O  T
Add 500μl Antioxidant to the middle of the tank
, G( ?+ H/ ~; M' k8 PFill wells with loading samples. Leave space for the molecular weight markers. If you are running a western on the SDS-PAGE, leave a space in between sample groups 1 n/ ^9 p9 G& i8 v; r% }3 f
Run @ 100 volts (30 mA) until dye line runs off the gel.
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4 J# ~' b. |+ ^6 l' s6 FProtein Transfer to PVDF, Q$ E  Y7 [7 X1 l2 l# r$ K
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Solutions:2 J) ?' o  Q/ `  ]! |9 _8 o4 G/ v
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Dilute transfer buffer to 1x and add 100ml MeOH - store @ 4°C. For NuPAGE Novex Bis-Tris or Tris-Acetate Gels: 50ml NuPage Transfer Buffer (20x), 100ml methanol, 850ml dH2O ) @% I% Q3 b& Z7 a3 V/ x5 Y
Proceedure:# i7 x+ a( `  K* [  u' M
1 y( }! T! Y- W0 m5 l- D' \$ w7 @
Prepare a dish of MeOH and of transfer buffer for PVDF
8 \4 o7 N8 m* Q$ X: @; h( Y6 ESoak pads in cold transfer buffer - t6 }- t- b- b% O7 M
Dip both sides of the membrane in MeOH, water, and soak in cold transfer buffer $ J. O3 b4 y$ \7 R
Load transfer apparatus
. u9 b5 i7 E7 |% }& WDip filter paper in TB before putting on apparatus
1 S1 ~( M6 z# K# c4 O; |Put 2 pads/side. 4 O# T+ w; h- e3 w- ~7 r* {
Remove gel from its case. Add filter paper and gel to top of pads
" w5 s1 E  ~$ d. YAdd PVDF making sure there are no air bubbles and another piece of filter paper. Use a small glass test tube to gently roll out air bubbles. Complete the set up.
  z) w2 I! {6 ^9 CPlace inside transfer apparatus and fill with cold transfer buffer - make sure it does not leak and do not fill all the way to the top. Add COLD H2O or TB to outside
! c) x7 `$ }3 O$ L% p! p+ ASet up transfer apparatus on ice (or in cold room). For Bis-Tris gels, run @ 30 V volts for 1 hr. Expected current starts at 170mA and ends at 110mA.
; ]4 o6 t+ ?7 @# i& a1 n; \1 ZRemove membrane paper from transfer buffer apparatus. Wet in MeOH and dry on filter paper overnight
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3 z$ K8 T$ j/ W1 ]Detection
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$ ~# I" B- U2 v+ t* G6 n1 Z* }8 Y9 H0 }Solutions:! }- x3 |1 ?9 }; I" |3 @
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Wash Buffer: 1x TBS-T - Add 5ml of 10% Tween-20 per liter of TBS (final concentration ~0.05%)
% C1 i2 \7 J) f" Q! l' UBlocking buffer: Combine 100 ml TBS, 10 ml Tween-20, 10 g BSA fraction V, and 890 ml dH2O. AVOID using milk when using Avidin/biotin systems. - }' X) w* e4 O/ t' W9 j; ^- |
Primary Antibody: For SuperSignal West Dura Extended Duration Substrate, the concentration of primary antibody needs to be between 20ng/ml and 1μg/ml. Dilute in blocking buffer (1:1000 = 10 μl per 10 ml) - for a 1mg/ml antibody solution, dilutions should be in the range of 1:1,000 to 1:50,000. ( ?& B6 x2 s! s! i
Secondary antibody: For SuperSignal West Dura Extended Duration Substrate, the concentration of secondary antibody needs to be between 4-20ng/ml. Dilute in blocking buffer (1:50,000 = 1 μl per 50ml) - for a 1mg/ml antibody solution, dilutions should be in the range of 1:50,000 to 1:250,000. * b( q. \/ C% D: T' k8 p0 H
Detection regent: 10 ml enhancer solution + 10 ml peroxide (DO NOT MIX UNTIL READY; 1:1 ratio)
* l* L, Q6 |! Q% Y# V' ]; O& VProceedure:; B3 V+ l  m! r8 O, O) D" S$ n) z

  ]* K& l( N0 b; ZReactivate in MeOH
1 g( E9 y8 f$ YBlock: place membrane in blocking roughly 50 ml buffer for 1.5 hours at room temperature or overnight @ 4°C. Incubate on a rocker platform.   z1 |+ G$ A' C( w
Dilute primary antibody in blocking buffer and incubate according to manufacturer's instructions. Incubate on a rocker platform. Incubate 1st @ 4°C overnight
8 J: Q/ r( E, C& @/ {$ o4 lWash blot 4-6 X 5 minutes in Wash Buffer on a rocker platform
  e& ?& Z& g& q1 TPrepare secondary antibody in blocking buffer (12ml for one blot). Incubate on a rocker platform.
9 i* ?( G2 e1 l& i( ]- IPlace membrane in secondary antibody solution @ RT for 1 hr. 8 s3 N7 k+ E+ u4 p2 L
Additional blocking agents may be added if background staining is an issue.
8 ~% j, C% d# J3 ]! \Wash 4-6 X 5 min in Wash Buffer on a rocker platform 4 Y# x& a  e1 ~; U( Y% R& ~
Mix together detection reagent and soak membrane for 5 minutes
* b; O) C3 x# o0 ERock manually or on rocking platform and observe membrane while color development takes place. : h* H; r  X6 L3 ^( Y* `
Optional: Stop color development when bands are easily visualized or when background color development begins to be excessive, by decanting the development solution into a waste container, and adding approximately 50 ml of deionized water to the incubation tray.
* a- F9 O1 f9 T  Y9 qOptional: Return the tray to the rocking platform and check the color of the water after 5-10 minutes. Decant and replace with fresh water if there is a significant purple tinge to the water, or if band intensity has continued to increase. % T; R# |! Y/ O* G. ?% ~
Place blot on sheet protector and make sure the outside is clean and the inside is bubble free. Remove excess liquid/Keep in dark
& r5 s9 q8 |; |) f' IVisualize blot using x-ray film or chemiluminescent gel imager 5 T4 ~% v2 _! c

# Q8 J" P' X4 s+ `from:http://www.protocolmonkey.com/protocols/view_protocol.php?id=1

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沙发
发表于 2009-10-27 17:07 |只看该作者
The western blot (alternatively, protein immunoblot) is an analytical technique used to detect specific proteins in a given sample of tissue homogenate or extract. It uses gel electrophoresis to separate native or denatured proteins by the length of the polypeptide (denaturing conditions) or by the 3-D structure of the protein (native/ non-denaturing conditions). The proteins are then transferred to a membrane (typically nitrocellulose or PVDF), where they are probed (detected) using antibodies specific to the target protein.[2] [3]
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There are now many reagent companies that specialize in providing antibodies (both monoclonal and polyclonal antibodies) against tens of thousands of different proteins[4]. Commercial antibodies can be expensive, although the unbound antibody can be reused between experiments. This method is used in the fields of molecular biology, biochemistry, immunogenetics and other molecular biology disciplines.9 k8 p, ^; o$ K2 L. j

5 |1 S! E' E9 I# S( MOther related techniques include using antibodies to detect proteins in tissues and cells by immunostaining and enzyme-linked immunosorbent assay (ELISA).
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The method originated from the laboratory of George Stark at Stanford. The name western blot was given to the technique by W. Neal Burnette[5] and is a play on the name Southern blot, a technique for DNA detection developed earlier by Edwin Southern. Detection of RNA is termed northern blotting and the detection of post-translational modification of protein is termed Eastern blotting.: r  s: g! `/ J( e# l

; |/ P8 o  j4 E, uSteps in a western blot6 H6 Z# W# T. P4 @+ R
Tissue preparation
) V! |$ h9 |4 j# y* `$ E" _* S# @Samples may be taken from whole tissue or from cell culture. In most cases, solid tissues are first broken down mechanically using a blender (for larger sample volumes), using a homogenizer (smaller volumes), or by sonication. Cells may also be broken open by one of the above mechanical methods. However, it should be noted that bacteria, virus or environmental samples can be the source of protein and thus Western blotting is not restricted to cellular studies only.
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Assorted detergents, salts, and buffers may be employed to encourage lysis of cells and to solubilize proteins. Protease and phosphatase inhibitors are often added to prevent the digestion of the sample by its own enzymes. Tissue preparation is often done at cold temperatures to avoid protein denaturing.
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A combination of biochemical and mechanical techniques – including various types of filtration and centrifugation – can be used to separate different cell compartments and organelles.
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Gel electrophoresis' Y" s" c& `. P2 ~1 S
Main article: Gel electrophoresis& Q" z! q( c$ C" ^  k1 G4 G" C& ~9 A
The proteins of the sample are separated using gel electrophoresis. Separation of proteins may be by isoelectric point (pI), molecular weight, electric charge, or a combination of these factors. The nature of the separation depends on the treatment of the sample and the nature of the gel.& j/ R0 S  @/ U, z. E
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By far the most common type of gel electrophoresis employs polyacrylamide gels and buffers loaded with sodium dodecyl sulfate (SDS). SDS-PAGE (SDS polyacrylamide gel electrophoresis) maintains polypeptides in a denatured state once they have been treated with strong reducing agents to remove secondary and tertiary structure (e.g. disulfide bonds [S-S] to sulfhydryl groups [SH and SH]) and thus allows separation of proteins by their molecular weight. Sampled proteins become covered in the negatively charged SDS and move to the positively charged electrode through the acrylamide mesh of the gel. Smaller proteins migrate faster through this mesh and the proteins are thus separated according to size (usually measured in kilodaltons, kDa). The concentration of acrylamide determines the resolution of the gel - the greater the acrylamide concentration the better the resolution of lower molecular weight proteins. The lower the acrylamide concentration the better the resolution of higher molecular weight proteins. Proteins travel only in one dimension along the gel for most blots.
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2 v; W8 N8 n* q8 HSamples are loaded into wells in the gel. One lane is usually reserved for a marker or ladder, a commercially available mixture of proteins having defined molecular weights, typically stained so as to form visible, coloured bands. When voltage is applied along the gel, proteins migrate into it at different speeds. These different rates of advancement (different electrophoretic mobilities) separate into bands within each lane./ r' Y4 t* y, a6 Y, M. e
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0 e( `9 u3 h2 L1 IIt is also possible to use a two-dimensional (2-D) gel which spreads the proteins from a single sample out in two dimensions. Proteins are separated according to isoelectric point (pH at which they have neutral net charge) in the first dimension, and according to their molecular weight in the second dimension.. w( E# \* Y0 {8 _. j" B/ O8 U
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5 r) G" U# s& c) \Transfer. y+ ^2 g/ l' H6 m
In order to make the proteins accessible to antibody detection, they are moved from within the gel onto a membrane made of nitrocellulose or polyvinylidene difluoride (PVDF). The membrane is placed on top of the gel, and a stack of filter papers placed on top of that. The entire stack is placed in a buffer solution which moves up the paper by capillary action, bringing the proteins with it. Another method for transferring the proteins is called electroblotting and uses an electric current to pull proteins from the gel into the PVDF or nitrocellulose membrane. The proteins move from within the gel onto the membrane while maintaining the organization they had within the gel. As a result of this "blotting" process, the proteins are exposed on a thin surface layer for detection (see below). Both varieties of membrane are chosen for their non-specific protein binding properties (i.e. binds all proteins equally well). Protein binding is based upon hydrophobic interactions, as well as charged interactions between the membrane and protein. Nitrocellulose membranes are cheaper than PVDF, but are far more fragile and do not stand up well to repeated probings.! a3 h7 @$ j$ t3 @) O) r0 A
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The uniformity and overall effectiveness of transfer of protein from the gel to the membrane can be checked by staining the membrane with Coomassie or Ponceau S dyes. Ponceau S is the more common of the two, due to Ponceau S's higher sensitivity and its water solubility makes it easier to subsequently destain and probe the membrane as described below.[6]* k3 K$ @+ {8 B; b+ Q- |

" |5 w( r* T! _0 O( i9 B/ m[edit] Blocking8 B" P9 H1 X3 a" o$ m
Since the membrane has been chosen for its ability to bind protein, and both antibodies and the target are proteins, steps must be taken to prevent interactions between the membrane and the antibody used for detection of the target protein (since the antibody is a protein itself). Blocking of non-specific binding is achieved by placing the membrane in a dilute solution of protein - typically Bovine serum albumin (BSA) or non-fat dry milk (both are inexpensive), with a minute percentage of detergent such as Tween 20. The protein in the dilute solution attaches to the membrane in all places where the target proteins have not attached. Thus, when the antibody is added, there is no room on the membrane for it to attach other than on the binding sites of the specific target protein. This reduces "noise" in the final product of the Western blot, leading to clearer results, and eliminates false positives.
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! D- j5 Y; y+ c6 G[edit] Detection% \1 @: g6 A. I! v
During the detection process the membrane is "probed" for the protein of interest with a modified antibody which is linked to a reporter enzyme, which when exposed to an appropriate substrate drives a colourimetric reaction and produces a colour. For a variety of reasons, this traditionally takes place in a two-step process, although there are now one-step detection methods available for certain applications.6 {+ m5 c. S& f1 d5 P

& b3 H- ]7 Y( D' r/ z8 n# M3 k Two step
! m! `. W: _6 G/ R' f$ JPrimary antibody   {4 P* E7 l$ S. U5 }2 y8 [6 Q
Antibodies are generated when a host species or immune cell culture is exposed to the protein of interest (or a part thereof). Normally, this is part of the immune response, whereas here they are harvested and used as sensitive and specific detection tools that bind the protein directly.
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. ~8 O6 d7 Y7 q. }: A* E/ sAfter blocking, a dilute solution of primary antibody (generally between 0.5 and 5 micrograms/mL) is incubated with the membrane under gentle agitation. Typically, the solution is composed of buffered saline solution with a small percentage of detergent, and sometimes with powdered milk or BSA. The antibody solution and the membrane can be sealed and incubated together for anywhere from 30 minutes to overnight. It can also be incubated at different temperatures, with warmer temperatures being associated with more binding, both specific (to the target protein, the "signal") and non-specific ("noise").
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Secondary antibody
% a5 ~+ T/ v' e% HAfter rinsing the membrane to remove unbound primary antibody, the membrane is exposed to another antibody, directed at a species-specific portion of the primary antibody. This is known as a secondary antibody, and due to its targeting properties, tends to be referred to as "anti-mouse," "anti-goat," etc. Antibodies come from animal sources (or animal sourced hybridoma cultures); an anti-mouse secondary will bind to almost any mouse-sourced primary antibody. This allows some cost savings by allowing an entire lab to share a single source of mass-produced antibody, and provides far more consistent results. The secondary antibody is usually linked to biotin or to a reporter enzyme such as alkaline phosphatase or horseradish peroxidase. This means that several secondary antibodies will bind to one primary antibody and enhance the signal.
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Most commonly, a horseradish peroxidase-linked secondary is used to cleave a chemiluminescent agent, and the reaction product produces luminescence in proportion to the amount of protein. A sensitive sheet of photographic film is placed against the membrane, and exposure to the light from the reaction creates an image of the antibodies bound to the blot. A cheaper but less sensitive approach utilizes a 4-chloronaphthol stain with 1% hydrogen peroxide; reaction of peroxide radicals with 4-chloronaphthol produces a dark brown stain that can be photographed without using specialized photographic film./ `4 J% F" Q& q: k
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4 @$ Y0 r* t6 E1 PAs with the ELISPOT and ELISA procedures, the enzyme can be provided with a substrate molecule that will be converted by the enzyme to a colored reaction product that will be visible on the membrane (see the figure below with blue bands).4 o" N+ J8 I8 [- j

) Z" `/ N- d# t! D. KAnother method of secondary antibody detection utilizes a near-infrared (NIR) fluorophore-linked antibody. Light produced from the excitation of a fluorescent dye is static, making fluorescent detection a more precise and accurate measure of the difference in signal produced by labeled antibodies bound to proteins on a western blot. Proteins can be accurately quantified because the signal generated by the different amounts of proteins on the membranes is measured in a static state, as compared to chemiluminescence, in which light is measured in a dynamic state. [7]/ N% p" ?# F6 X, W9 Q# Q( P
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A third alternative is to use a radioactive label rather than an enzyme coupled to the secondary antibody, such as labeling an antibody-binding protein like Staphylococcus Protein A with a radioactive isotope of iodine. Since other methods are safer, quicker and cheaper this method is now rarely used.
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) D! t1 v. k$ X5 v; ]. J& K# e& HOne step4 T+ T* E* S% |& w0 v2 t
Historically, the probing process was performed in two steps because of the relative ease of producing primary and secondary antibodies in separate processes. This gives researchers and corporations huge advantages in terms of flexibility, and adds an amplification step to the detection process. Given the advent of high-throughput protein analysis and lower limits of detection, however, there has been interest in developing one-step probing systems that would allow the process to occur faster and with less consumables. This requires a probe antibody which both recognizes the protein of interest and contains a detectable label, probes which are often available for known protein tags. The primary probe is incubated with the membrane in a manner similar to that for the primary antibody in a two-step process, and then is ready for direct detection after a series of wash steps.+ V; [6 P) E5 N2 ?
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Analysis  U" R! c+ Z4 u  h: c/ e
After the unbound probes are washed away, the western blot is ready for detection of the probes that are labeled and bound to the protein of interest. In practical terms, not all westerns reveal protein only at one band in a membrane. Size approximations are taken by comparing the stained bands to that of the marker or ladder loaded during electrophoresis. The process is repeated for a structural protein, such as actin or tubulin, that should not change between samples. The amount of target protein is indexed to the structural protein to control between groups. This practice ensures correction for the amount of total protein on the membrane in case of errors or incomplete transfers.# w! J' z/ Z- M7 Q3 Z

+ u  c5 ]+ b2 t8 S/ ~. h" k  PColorimetric detection
5 P# w  Q* j8 A9 gThe colorimetric detection method depends on incubation of the western blot with a substrate that reacts with the reporter enzyme (such as peroxidase) that is bound to the secondary antibody. This converts the soluble dye into an insoluble form of a different color that precipitates next to the enzyme and thereby stains the membrane. Development of the blot is then stopped by washing away the soluble dye. Protein levels are evaluated through densitometry (how intense the stain is) or spectrophotometry.$ S$ N% z. |5 d2 q$ C( G" [

  @% ^' R& V5 B" M& {8 J! @Chemiluminescent detection1 q  P$ _0 m" x3 O) h+ U5 M# i+ h- I
Chemiluminescent detection methods depend on incubation of the western blot with a substrate that will luminesce when exposed to the reporter on the secondary antibody. The light is then detected by photographic film, and more recently by CCD cameras which captures a digital image of the western blot. The image is analysed by densitometry, which evaluates the relative amount of protein staining and quantifies the results in terms of optical density. Newer software allows further data analysis such as molecular weight analysis if appropriate standards are used.( ~8 |$ u* z: A$ Q9 Q( _
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Radioactive detection
% D6 X- X. t% o% x& [1 P" tRadioactive labels do not require enzyme substrates, but rather allow the placement of medical X-ray film directly against the western blot which develops as it is exposed to the label and creates dark regions which correspond to the protein bands of interest (see image to the right). The importance of radioactive detections methods is declining[citation needed], because it is very expensive, health and safety risks are high and ECL provides a useful alternative.
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* u+ G9 I4 ?. ?; S1 j+ G# s( @Fluorescent detection, ?- X( w% s6 ^+ e6 |/ f! Z
The fluorescently labeled probe is excited by light and the emission of the excitation is then detected by a photosensor such as CCD camera equipped with appropriate emission filters which captures a digital image of the western blot and allows further data analysis such as molecular weight analysis and a quantitative western blot analysis. Fluorescence is considered to be among the most sensitive detection methods for blotting analysis, {' X6 G. Y' j4 O: i
Secondary probing3 o2 R  Q% z7 x+ u: q- j$ w  @
One major difference between nitrocellulose and PVDF membranes relates to the ability of each to support "stripping" antibodies off and reusing the membrane for subsequent antibody probes. While there are well-established protocols available for stripping nitrocellulose membranes, the sturdier PVDF allows for easier stripping, and for more reuse before background noise limits experiments. Another difference is that, unlike nitrocellulose, PVDF must be soaked in 95% ethanol, isopropanol or methanol before use. PVDF membranes also tend to be thicker and more resistant to damage during use.
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9 y9 M2 a& `3 M/ y; X  i2-D Gel Electrophoresis* t( n: R8 M! z! F8 |
Main article: Two-dimensional gel electrophoresis
5 [6 h9 u2 {: v  N1 _: \: v1 x2-dimensional SDS-PAGE uses the principles and techniques outlined above. 2-D SDS-PAGE, as the name suggests, involves the migration of polypeptides in 2 dimensions. For example, in the first dimension polypeptides are separated according to isoelectric point, while in the second dimension polypeptides are separated according to their molecular weight. The isoelectric point of a given protein is determined by the relative number of positively (e.g. lysine and arginine) and negatively (e.g. glutamate and aspartate) charged amino acids, with negatively charged amino acids contributing to a high isoelectric point and positively charged amino acids contributing to a low isoelectric point. Samples could also be separated first under nonreducing conditions using SDS-PAGE and under reducing conditions in the second dimension, which breaks apart disulfide bonds that hold subunits together. SDS-PAGE might also be coupled with urea-PAGE for a 2-dimensional gel.( x: a) f% U8 y
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In principle, this method allows for the separation of all cellular proteins on a single large gel. A major advantage of this method is that it often distinguishes between different isoforms of a particular protein - e.g. a protein that has been phosphorylated (by addition of a negatively charged group). Proteins that have been separated can be cut out of the gel and then analysed by mass spectrometry, which identifies the protein.
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Please refer to reference articles for examples of the application of 2-D SDS PAGE.3 k5 b( e* K$ q; ?( y8 ?$ l
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Medical diagnostic applications
2 v1 T! E$ G+ e5 f4 K: {, ?2 sThe confirmatory HIV test employs a Western blot to detect anti-HIV antibody in a human serum sample. Proteins from known HIV-infected cells are separated and blotted on a membrane as above. Then, the serum to be tested is applied in the primary antibody incubation step; free antibody is washed away, and a secondary anti-human antibody linked to an enzyme signal is added. The stained bands then indicate the proteins to which the patient's serum contains antibody.
, F7 L% z. M% m) ?) t9 p: B( a& _A Western blot is also used as the definitive test for Bovine spongiform encephalopathy (BSE, commonly referred to as 'mad cow disease').
+ o" D9 R% ?$ i; ?; o7 aSome forms of Lyme disease testing employ Western blotting.
$ e( {) y3 I( P  B. jWestern blot can also be used as a confirmatory test for Hepatitis B infection.
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from:http://en.wikipedia.org/wiki/Western_blot
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