Entrar

Rapid Amplification of cDNA Ends, or RACE, is one of the most effective methods to obtain a full-length cDNA from an mRNA sequence between a known internal region to the unknown sequence at the 5’ or 3’ end. The unknown region is cloned in the cDNA by a gene-specific primer that binds the known end, and a hybrid primer that attaches a predefined anchor sequence to the unknown end of the cDNA. The sequence in between is amplified by PCR with an anchor primer and a gene-specific primer.

Since the invention of RACE, the technique has continuously been modified to increase the specificity and yield, such as improvising the anchor sequences or optimizing the primer sequences, often tailored to the cDNA that requires amplification.

One alteration uses a degenerate primer instead of the gene-specific primer derived from the known cDNA sequence. A degenerate primer is designed as a possible sequence of the cDNA end, predicted from the amino acid sequence of the encoded protein. Because an amino acid can be coded by more than one mRNA codon, predicting the nucleotide sequence from a protein sequence is not always the most accurate. As a result, degenerate primers are known to lead to undesirable PCR products. The specificity of the reaction can be controlled by optimizing the GC composition of the primer or controlling the length of the cDNA ends.

Another approach has been to add a poly(C) tail to the 5’ end instead of a poly(A) tail. The template is then amplified using a hybrid primer with a poly(G) tail or a mixture of G's and inosine (GI tail). Such a specific hybrid primer increases the specificity of the PCR, reducing off-target amplification. The GI tail can anneal at temperatures normally used in PCR, as opposed to a G-rich primer that requires substantially higher annealing temperatures.

Tags
RACERapid Amplification Of CDNA EndsFull length CDNAMRNA Sequence5 End3 EndGene specific PrimerHybrid PrimerPCRAnchor PrimerDegenerate PrimerSpecificityYieldOptimizationAnchor SequencePrimer SequenceCDNA AmplificationPoly C Tail

Do Capítulo 15:

article

Now Playing

15.11 : RACE - Amplificação Rápida de Terminações de cDNA

Estudando DNA e RNA

6.2K Visualizações

article

15.1 : DNA Recombinante

Estudando DNA e RNA

16.4K Visualizações

article

15.2 : Isolamento de DNA

Estudando DNA e RNA

36.8K Visualizações

article

15.3 : Eletroforese em Gel de Agarose de DNA

Estudando DNA e RNA

91.4K Visualizações

article

15.4 : Marcação com Sondas de DNA

Estudando DNA e RNA

8.0K Visualizações

article

15.5 : Southern Blot

Estudando DNA e RNA

17.4K Visualizações

article

15.6 : Microarrays de DNA

Estudando DNA e RNA

16.9K Visualizações

article

15.7 : DNA Complementar

Estudando DNA e RNA

5.4K Visualizações

article

15.8 : FISH - Hibridização in situ Fluorescente

Estudando DNA e RNA

18.8K Visualizações

article

15.9 : PCR - Reação em Cadeia da Polimerase

Estudando DNA e RNA

80.2K Visualizações

article

15.10 : RT-PCR em tempo real

Estudando DNA e RNA

55.9K Visualizações

article

15.12 : Sequenciamento de Sanger

Estudando DNA e RNA

749.9K Visualizações

article

15.13 : Sequenciamento de Nova Geração

Estudando DNA e RNA

85.2K Visualizações

article

15.14 : RNA-Seq - Sequenciamento de RNA

Estudando DNA e RNA

9.5K Visualizações

article

15.15 : Anotação e Montagem do Genoma

Estudando DNA e RNA

18.6K Visualizações

See More

JoVE Logo

Privacidade

Termos de uso

Políticas

Pesquisa

Educação

SOBRE A JoVE

Copyright © 2025 MyJoVE Corporation. Todos os direitos reservados