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September 27, 1994Proceedings of the National Academy of Sciences417 citationsOpen Access

Construction and characterization of a normalized cDNA library.

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MSMarcelo B. SoaresMBMaria F. BonaldoPJP Jelene

Key Points

  • The study aims to create a normalized cDNA library to reduce variation in clone abundance.
  • Developed a procedure based on reassociation kinetics for cDNA library normalization.
  • Used human infant brain cDNAs cloned into a phagemid vector for easy conversion to single-stranded circles.
  • Applied controlled primer extension and hydroxyapatite column chromatography to recover unreassociated circles.
  • Achieved normalization of cDNA clones from an abundance range of 4 orders of magnitude to within 1 order of magnitude.
  • Resulted in a more consistent frequency of each clone in the normalized library.

Abstract

We have developed a simple procedure based on reassociation kinetics that can reduce effectively the high variation in abundance among the clones of a cDNA library that represent individual mRNA species. For this normalization, we used as a model system a library of human infant brain cDNAs that were cloned directionally into a phagemid vector and, thus, could be easily converted into single-stranded circles. After controlled primer extension to synthesize a short complementary strand on each circular template, melting and reannealing of the partial duplexes at relatively low C0t, and hydroxyapatite column chromatography, unreassociated circles were recovered from the flow through fraction and electroporated into bacteria, to propagate a normalized library without a requirement for subcloning steps. An evaluation of the extent of normalization has indicated that, from an extreme range of abundance of 4 orders of magnitude in the original library, the frequency of occurrence of any clone examined in the normalized library was brought within the narrow range of only 1 order of magnitude.

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Cite This Study

Soares et al. (1994) studied this question.

synapsesocial.com/papers/6a1748545c24d7ef898d7e05https://doi.org/10.1073/pnas.91.20.9228
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