Detecting Antigen-Antibody Complexes Quiz
The question sheet
Reveal any answer as you study-
What are laboratory tests that detect antibodies and antigens outside the body called?
- In vivo assays
- Serum assays
- Live assays
- In vitro assays
Reveal answer
Answer: In vitro assays
Source evidence
PDF page 872: Laboratory tests to detect antibodies and antigens outside of the body (e.g., in a test tube) are called in vitro assays. When both antibodies and their corresponding antigens are present in a solution, we can often observe a precipitation reaction in which large complexes (lattices) form and settle out of solution. In the next several sections, we will discuss several common in vitro assays.
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A visible antigen-antibody complex is called a:
- Flocculant
- Precipitin
- Lattice
- Titer
Reveal answer
Answer: Precipitin
Source evidence
PDF page 872: A visible antigen-antibody complex is called a precipitin, and in vitro assays that produce a precipitin are called precipitin reactions. A precipitin reaction typically involves adding soluble antigens to a test tube containing a solution of antibodies. Each antibody has two arms, each of which can bind to an epitope. When an antibody binds to two antigens, the two antigens become bound together by the antibody. A lattice can form as antibodies bind more and more antigens together, resulting in a precipitin (Figure 20.5). Most precipitin tests use a polyclonal antiserum rather than monoclonal antibodies because polyclonal antibodies can bind to multiple epitopes, making lattice formation more likely. Although mAbs may bind some antigens, the binding will occur less often, making it much less likely that a visible precipitin will form.
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Why do most precipitin tests use polyclonal antiserum rather than monoclonal antibodies?
- They are more stable
- They are cheaper to make
- They bind multiple epitopes
- They bind a single epitope
Reveal answer
Answer: They bind multiple epitopes
Source evidence
PDF page 872: A visible antigen-antibody complex is called a precipitin, and in vitro assays that produce a precipitin are called precipitin reactions. A precipitin reaction typically involves adding soluble antigens to a test tube containing a solution of antibodies. Each antibody has two arms, each of which can bind to an epitope. When an antibody binds to two antigens, the two antigens become bound together by the antibody. A lattice can form as antibodies bind more and more antigens together, resulting in a precipitin (Figure 20.5). Most precipitin tests use a polyclonal antiserum rather than monoclonal antibodies because polyclonal antibodies can bind to multiple epitopes, making lattice formation more likely. Although mAbs may bind some antigens, the binding will occur less often, making it much less likely that a visible precipitin will form.
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How many arms does each antibody have for binding epitopes?
- Four
- One
- Two
- Three
Reveal answer
Answer: Two
Source evidence
PDF page 872: A visible antigen-antibody complex is called a precipitin, and in vitro assays that produce a precipitin are called precipitin reactions. A precipitin reaction typically involves adding soluble antigens to a test tube containing a solution of antibodies. Each antibody has two arms, each of which can bind to an epitope. When an antibody binds to two antigens, the two antigens become bound together by the antibody. A lattice can form as antibodies bind more and more antigens together, resulting in a precipitin (Figure 20.5). Most precipitin tests use a polyclonal antiserum rather than monoclonal antibodies because polyclonal antibodies can bind to multiple epitopes, making lattice formation more likely. Although mAbs may bind some antigens, the binding will occur less often, making it much less likely that a visible precipitin will form.
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Precipitation in a precipitin reaction is enhanced when antibodies have:
- Only one arm
- A 1:1 ratio
- Low affinity for antigen
- High affinity for antigen
Reveal answer
Answer: High affinity for antigen
Source evidence
PDF page 872: a visible precipitin. Monoclonal antibodies can only bind to a single epitope; therefore, less binding occurs and lattice formation generally does not occur. The amount of precipitation also depends on several other factors. For example, precipitation is enhanced when the antibodies have a high affinity for the antigen. While most antibodies bind antigen with high affinity, even highaffinity binding uses relatively weak noncovalent bonds, so that individual interactions will often break and new interactions will occur. In addition, for precipitin formation to be visible, there must be an optimal ratio of antibody to antigen. The optimal
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In which zone do optimal antigen-antibody interaction and maximal precipitation occur?
- Dilution zone
- Zone of antibody excess
- Zone of antigen excess
- Equivalence zone
Reveal answer
Answer: Equivalence zone
Source evidence
PDF page 873: optimal ratio, antigen is slowly added to a solution containing antibodies, and the amount of precipitin is determined qualitatively. Initially, there is not enough antigen to produce visible lattice formation; this is called the zone of antibody excess. As more antigen is added, the reaction enters the equivalence zone (or zone of equivalence), where both the optimal antigen-antibody interaction and maximal precipitation occur. If even more antigen were added, the amount of antigen would become excessive and actually cause the amount of precipitation to decline.
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What happens to precipitation if excessive antigen is added beyond the optimal ratio?
- It increases
- It doubles
- It stays constant
- It declines
Reveal answer
Answer: It declines
Source evidence
PDF page 873: optimal ratio, antigen is slowly added to a solution containing antibodies, and the amount of precipitin is determined qualitatively. Initially, there is not enough antigen to produce visible lattice formation; this is called the zone of antibody excess. As more antigen is added, the reaction enters the equivalence zone (or zone of equivalence), where both the optimal antigen-antibody interaction and maximal precipitation occur. If even more antigen were added, the amount of antigen would become excessive and actually cause the amount of precipitation to decline.
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In a precipitin ring test, what prevents mixing of antiserum and antigen solution?
- Glycerol
- Cardiolipin
- Agar
- Lecithin
Reveal answer
Answer: Glycerol
Source evidence
PDF page 873: Precipitin Ring Test A variety of techniques allow us to use precipitin formation to quantify either antigen concentration or the amount of antibody present in an antiserum. One such technique is the precipitin ring test (Figure 20.7), which is used to determine the relative amount of antigen-specific antibody in a sample of serum. To perform this test, a set of test tubes is prepared by adding an antigen solution to the bottom of each tube. Each tube receives the same volume of solution, and the concentration of antigens is constant (e.g., 1 mg/mL). Next, glycerol is added to the antigen solution in each test tube, followed by a serial dilution of the antiserum. The glycerol prevents mixing of the antiserum with the antigen solution, allowing antigen-antibody binding to take place only at the interface of the two solutions. The result is a visible ring of precipitin in the tubes that have an antigen-antibody ratio within the equivalence zone. This
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The titer is defined as the reciprocal of the highest dilution showing a positive result, expressed as a:
- Whole number
- Ratio
- Percentage
- Fraction
Reveal answer
Answer: Whole number
Source evidence
PDF page 874: highest dilution with a visible ring is used to determine the titer of the antibodies. The titer is the reciprocal of the highest dilution showing a positive result, expressed as a whole number. In Figure 20.7, the titer is 16. While a measurement of titer does not tell us in absolute terms how much antibody is present, it does give a measure of biological activity, which is often more important than absolute amount. In this example, it would not be useful to know what mass of IgG were present in the antiserum, because there are many different specificities of antibody present; but it is important for us to know how much of the antibody activity in a patient’s serum is directed against the antigen of interest (e.g., a particular pathogen or allergen).
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Who first described the Ouchterlony assay, and in what year?
- August von Wassermann in 1906
- Elvin Kabat in 1939
- Arne Tiselius in 1937
- Orjan Ouchterlony in 1948
Reveal answer
Answer: Orjan Ouchterlony in 1948
Source evidence
PDF page 874: is variously called double immunodiffusion or the Ouchterlony assay for Orjan Ouchterlony, who first described the technique in 1948. When agar is highly purified, it produces a clear, colorless gel. Holes are punched in the gel to form wells, and antigen and antisera are added to neighboring wells. Proteins are able to diffuse through the gel, and precipitin arcs form between the wells at the zone of equivalence. Because the precipitin lattice is too large to diffuse through the gel, the arcs are firmly locked in place and easy to see (Figure 20.8). Although there are now more sensitive and quantitative methods of detecting antibody-antigen interactions, the Ouchterlony test provides a rapid and qualitative way of determining whether an antiserum has antibodies against a particular antigen. The Ouchterlony test is particularly useful when looking for cross-reactivity. We can check an antiserum against a group of closely related antigens and see which combinations form precipitin arcs.
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The Ouchterlony test is particularly useful when looking for:
- Plaque reduction
- Cross-reactivity
- Complement fixation
- Antigen concentration
Reveal answer
Answer: Cross-reactivity
Source evidence
PDF page 874: is variously called double immunodiffusion or the Ouchterlony assay for Orjan Ouchterlony, who first described the technique in 1948. When agar is highly purified, it produces a clear, colorless gel. Holes are punched in the gel to form wells, and antigen and antisera are added to neighboring wells. Proteins are able to diffuse through the gel, and precipitin arcs form between the wells at the zone of equivalence. Because the precipitin lattice is too large to diffuse through the gel, the arcs are firmly locked in place and easy to see (Figure 20.8). Although there are now more sensitive and quantitative methods of detecting antibody-antigen interactions, the Ouchterlony test provides a rapid and qualitative way of determining whether an antiserum has antibodies against a particular antigen. The Ouchterlony test is particularly useful when looking for cross-reactivity. We can check an antiserum against a group of closely related antigens and see which combinations form precipitin arcs.
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Which assay is used to precisely quantify antigen concentration rather than compare antigens?
- Precipitin ring test
- VDRL test
- Radial immunodiffusion assay
- Ouchterlony assay
Reveal answer
Answer: Radial immunodiffusion assay
Source evidence
PDF page 875: Radial Immunodiffusion Assay The radial immunodiffusion (RID) assay is similar to the Ouchterlony assay but is used to precisely quantify antigen concentration rather than to compare different antigens. In this assay, the antiserum is added to tempered agar (liquid agar at slightly above 45 °C), which is poured into a small petri dish or onto a glass slide and allowed to cool. Wells are cut in the cooled agar, and antigen is then added to the wells and allowed to diffuse. As the antigen and antibody interact, they form a zone of precipitation. The square of the diameter of the zone of precipitation is directly proportional to the concentration of antigen. By measuring the zones of precipitation produced by samples of known concentration (see the outer ring of samples in Figure 20.9), we can prepare a standard curve for determining the concentration of an unknown solution. The RID assay is a also useful test for determining the concentration of many serum proteins such as the C3 and C4 complement proteins, among others.
Microbiology
Microbiology by OpenStax, used under CC BY 4.0. Changes made by Stratacademy.
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