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Published on: February 18, 2014
The effect of avidin-biotin interactions in detection systems for in situ hybridization
E J Speel1, B Schutte, F C Ramaekers
1Department of Molecular Cell Biology, University of Limburg, Maastricht, The Netherlands.
Insights
Avidin-biotin interactions in non-radioactive in situ hybridization (ISH) detection systems were studied. Avidin molecules create closed networks, limiting the efficiency of biotinylated molecule coupling and impacting ISH sensitivity.
Area of Science:
- Molecular Biology
- Biochemistry
Background:
- Non-radioactive in situ hybridization (ISH) relies on detection systems for visualizing nucleic acid targets.
- Avidin-biotin interactions are crucial for amplifying signals in many ISH detection methods.
- Understanding these interactions is key to optimizing ISH sensitivity.
Purpose of the Study:
- To investigate the role of avidin-biotin interactions in ISH detection systems.
- To elucidate the molecular mechanism of signal amplification in fluorescence ISH.
- To compare the sensitivity of various avidin-biotin-based detection systems.
Main Methods:
- Fluorescence in situ hybridization (FISH) was used to study avidin-biotin interactions in a model system.
- A transitional cell carcinoma line and a biotinylated DNA probe were employed.
- Peroxidase staining techniques were utilized to compare detection system sensitivity.
Main Results:
- Biotinylated goat anti-avidin antibodies bind via antigen-binding sites, not biotin moieties, to avidin.
- Avidin molecules form closed cytochemical networks, hindering the interconnection of multiple biotinylated layers.
- This network formation limits the efficiency of subsequent biotinylated molecule coupling in ISH.
Conclusions:
- Avidin-biotin interactions can lead to closed networks that restrict amplification efficiency in ISH.
- The study provides insights into the molecular basis of cytochemical network formation.
- This knowledge aids in selecting optimal procedures to enhance ISH detection sensitivity.
Abstract:
The effect of avidin-biotin interactions in several detection systems for the non-radioactive in situ hybridization (ISH) technique was studied in a model system using a transitional cell carcinoma line and a biotinylated DNA probe. We performed fluorescence ISH to unravel the individual steps in a sensitive and frequently used amplification method which makes use of the alternating cytochemical detection layers of fluorescein isothiocyanate-conjugated avidin (AvFITC) and biotinylated goat anti-avidin (BioGAA) antibodies to detect the hybridized and biotinylated probe. Our experiments revealed that BioGAA antibodies bind with their antigen binding sites and not with their biotin moieties to avidin molecules that have already interacted with the DNA probe. The probable working mechanism of this amplification method is presented in a model. Furthermore, we used a peroxidase staining technique to compare with each other the sensitivity of several other detection systems in which avidin-biotin interactions play an important role, e.g., the avidin-biotinylated peroxidase complex (ABC) system. The experiments show that avidin molecules can not be efficiently used to interconnect two biotinylated molecular layers, since their introduction leads to firmly closed cytochemical networks. Such a closed network is already formed between the hybridized and biotinylated DNA probe and a first detection layer of avidin molecules, as appears from the finding that biotinylated molecules could hardly be coupled to these avidin molecules in a following detection layer. Therefore, the results presented here provide us with new insight into the molecular basis of cytochemical network formation. This will enable us to choose the proper procedures for increasing the sensitivity of ISH detection systems.
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