What this deck covers
This deck focuses on Explain Dna Sequence Encoding, giving you a quick way to review the definitions, rules, and examples that matter most for Biology.
Study Explain Dna Sequence Encoding in Biology with focused flashcards that help you recognize the idea, recall the key rule, and apply it in practice-style prompts.
0% Complete
What is a nonsense mutation in a protein-coding DNA sequence?
Tap card or press Space to flip
A base change that creates a premature stop codon. Creates early termination, usually destroying protein function.
How well did you know it?
Card 1 / 101
Space to flip · ← / → to move · once flipped, → Got it · ← Still learning
This deck focuses on Explain Dna Sequence Encoding, giving you a quick way to review the definitions, rules, and examples that matter most for Biology.
Work through these flashcards in short sessions. Try to answer each prompt before flipping the card, then revisit any cards you miss until the explanation feels automatic.
Answer: A base change that creates a premature stop codon. Creates early termination, usually destroying protein function.
Answer: Three nucleotides. The triplet code allows 64 possible codon combinations.
Answer: It reads mRNA codons and catalyzes peptide bond formation. Ribosomes translate the mRNA code into protein sequences.
Answer: The grouping of mRNA nucleotides into consecutive, nonoverlapping codons. The reading frame determines which amino acids are produced.
Answer: A base change that substitutes one amino acid for another. Changes one amino acid, potentially affecting protein function.
Answer: A DNA site where a repressor binds to block transcription. Operators control gene expression in bacterial operons.
Answer: tRNA. tRNA molecules transport specific amino acids to ribosomes.
Answer: 3'-CGAT-5'. G pairs with C, T pairs with A in antiparallel strands.
Answer: 64 codons. 4³ = 64 possible three-base combinations.
Answer: UAA, UAG, and UGA. These codons signal the end of protein synthesis.
Answer: A sequence retained in mature mRNA after splicing. Exons contain the coding information for the final protein.
Answer: A DNA sequence that increases transcription when bound by activators. Enhancers boost gene expression when regulatory proteins bind.
Answer: A three-base sequence on tRNA that pairs with an mRNA codon. Anticodons ensure the correct amino acid is added.
Answer: It attaches the correct amino acid to its corresponding tRNA. This enzyme ensures accurate amino acid-codon matching.
Answer: A reading-frame shift caused by nucleotide insertion or deletion. Changes all downstream amino acids, severely affecting the protein.
Answer: A change in a single nucleotide base pair. The smallest possible DNA sequence change.
Answer: DNA rightarrow RNA rightarrow protein. This describes the flow of genetic information in living cells.
Answer: The nucleotide sequence translated into a polypeptide. This region contains the protein-coding information.
Answer: An alternative DNA sequence version of the same gene. Different alleles produce different versions of the same protein.
Answer: It attaches the correct amino acid to its corresponding tRNA. This enzyme ensures accurate amino acid-codon matching.
Answer: It is read in the 3' rightarrow 5' direction. RNA polymerase moves along the template in this direction.
Answer: A three-base sequence on tRNA that pairs with an mRNA codon. Anticodons ensure the correct amino acid is added.
Answer: A DNA site where a repressor binds to block transcription. Operators control gene expression in bacterial operons.
Answer: A DNA sequence that encodes a functional RNA or protein product. Genes are functional units that produce useful cellular products.
Answer: Methionine. AUG always codes for the first amino acid in proteins.
Answer: A three-nucleotide sequence in mRNA that specifies an amino acid or stop. Each triplet codes for one amino acid or termination signal.
Answer: A base change that substitutes one amino acid for another. Changes one amino acid, potentially affecting protein function.
Answer: mRNA (a transcript that can be translated). mRNA carries the genetic code to the ribosome for translation.
Answer: mRNA (a transcript that can be translated). mRNA carries the genetic code to the ribosome for translation.
Answer: Adenine, thymine, cytosine, and guanine. These four bases form all possible DNA sequences.
Answer: 5'-ATG-3'. The coding strand has the same sequence as mRNA (except T/U).
Answer: Synthesis of a polypeptide using an mRNA template. The mRNA sequence determines the amino acid sequence.
Answer: Most organisms use the same codon-to-amino-acid assignments. The genetic code is shared across nearly all life forms.
Answer: Most amino acids are specified by more than one codon. Multiple codons code for the same amino acid.
Answer: tRNA (charged by aminoacyl-tRNA synthetase). tRNA carries amino acids and recognizes specific codons.
Answer: 3'-TAGC-5'. A pairs with T, C pairs with G in antiparallel strands.
Answer: Three bases specify one amino acid, enabling many codon combinations. Triplets provide enough combinations to code for all amino acids.
Answer: Most organisms use the same codon-to-amino-acid assignments. The genetic code is shared across nearly all life forms.
Answer: Synthesis of a polypeptide using an mRNA template. The mRNA sequence determines the amino acid sequence.
Answer: AUG. This codon initiates protein synthesis in most genes.
Answer: A base change that does not alter the amino acid sequence. Code degeneracy protects against some mutations.
Answer: A sequence retained in mature mRNA after splicing. Exons contain the coding information for the final protein.
Answer: An organisms set of alleles (its DNA sequence variants). Genotype represents the genetic blueprint in DNA sequences.
Answer: An organisms set of alleles (its DNA sequence variants). Genotype represents the genetic blueprint in DNA sequences.
Answer: Frameshift mutation. Single nucleotide insertion shifts the reading frame.
Answer: It can change a codon, altering an amino acid or creating a stop signal. Base substitutions directly affect the codon sequence.
Answer: The grouping of mRNA nucleotides into consecutive, nonoverlapping codons. The reading frame determines which amino acids are produced.
Answer: 64 codons. 4³ = 64 possible three-base combinations.
Answer: tRNA (charged by aminoacyl-tRNA synthetase). tRNA carries amino acids and recognizes specific codons.
Answer: A base change that does not alter the amino acid sequence. Code degeneracy protects against some mutations.
Answer: Uracil. RNA uses uracil instead of thymine found in DNA.
Answer: Each codon specifies only one amino acid or a stop signal. No codon codes for multiple different amino acids.
Answer: A pairs with T; C pairs with G. Complementary pairing maintains the double helix structure.
Answer: 5'-ATG-3'. The coding strand has the same sequence as mRNA (except T/U).
Answer: Three nucleotides. The triplet code allows 64 possible codon combinations.
Answer: tRNA. tRNA molecules transport specific amino acids to ribosomes.
Answer: It synthesizes RNA in the 5' rightarrow 3' direction. RNA polymerase adds nucleotides to the growing 3' end.
Answer: A change in a single nucleotide base pair. The smallest possible DNA sequence change.
Answer: Each codon specifies only one amino acid or a stop signal. No codon codes for multiple different amino acids.
Answer: DNA rightarrow RNA rightarrow protein. This describes the flow of genetic information in living cells.
Answer: Missense mutation. One amino acid changes to another due to base substitution.
Answer: Hydrogen bonds. These weak bonds allow DNA strands to separate during replication.
Answer: A noncoding sequence removed from pre-mRNA during splicing. Introns are removed during mRNA processing.
Answer: 3'-TAGC-5'. A pairs with T, C pairs with G in antiparallel strands.
Answer: Coding matches mRNA (T for U); template is complementary to mRNA. Only the template strand serves as the transcription template.
Answer: A base change that creates a premature stop codon. Creates early termination, usually destroying protein function.
Answer: The nucleotide sequence translated into a polypeptide. This region contains the protein-coding information.
Answer: A noncoding sequence removed from pre-mRNA during splicing. Introns are removed during mRNA processing.
Answer: It can change a codon, altering an amino acid or creating a stop signal. Base substitutions directly affect the codon sequence.
Answer: Nonsense mutation. The mutation creates a premature stop codon.
Answer: A DNA sequence that encodes a functional RNA or protein product. Genes are functional units that produce useful cellular products.
Answer: UAA, UAG, and UGA. These codons signal the end of protein synthesis.
Answer: Synthesis of RNA from a DNA template. DNA serves as the template for making RNA copies.
Answer: Uracil. RNA uses uracil instead of thymine found in DNA.
Answer: A cluster of genes transcribed together under control of one promoter. Operons allow coordinated expression of related bacterial genes.
Answer: Different exon combinations produce different mRNAs from one gene. One gene can produce multiple protein variants through splicing.
Answer: A reading-frame shift caused by nucleotide insertion or deletion. Changes all downstream amino acids, severely affecting the protein.
Answer: Nonsense mutation. The mutation creates a premature stop codon.
Answer: Observable traits produced by gene expression and environment. Phenotype results from genotype expression plus environmental factors.
Answer: It synthesizes RNA in the 5′→3′ direction. RNA polymerase adds nucleotides to the growing 3' end.
Answer: 5'-CCG-3'. C pairs with G, G pairs with C during transcription.
Answer: Information is encoded by the order of A, T, C, and G along DNA. The specific sequence of bases determines what proteins are made.
Answer: A pairs with T; C pairs with G. Complementary pairing maintains the double helix structure.
Answer: A DNA region where RNA polymerase binds to start transcription. Promoters control where and when genes are transcribed.
Answer: Missense mutation. One amino acid changes to another due to base substitution.
Answer: A three-nucleotide sequence in mRNA that specifies an amino acid or stop. Each triplet codes for one amino acid or termination signal.
Answer: Hydrogen bonds. These weak bonds allow DNA strands to separate during replication.
Answer: A DNA region where RNA polymerase binds to start transcription. Promoters control where and when genes are transcribed.
Answer: AUG. This codon initiates protein synthesis in most genes.
Answer: Adenine, thymine, cytosine, and guanine. These four bases form all possible DNA sequences.
Answer: 5'-AUG-3'. A pairs with U, T pairs with A during transcription.
Answer: Synthesis of RNA from a DNA template. DNA serves as the template for making RNA copies.
Answer: A cluster of genes transcribed together under control of one promoter. Operons allow coordinated expression of related bacterial genes.
Answer: It is read in the 3' rightarrow 5' direction. RNA polymerase moves along the template in this direction.
Answer: It reads mRNA codons and catalyzes peptide bond formation. Ribosomes translate the mRNA code into protein sequences.
Answer: Information is encoded by the order of A, T, C, and G along DNA. The specific sequence of bases determines what proteins are made.
Answer: A DNA sequence that increases transcription when bound by activators. Enhancers boost gene expression when regulatory proteins bind.
Answer: Different exon combinations produce different mRNAs from one gene. One gene can produce multiple protein variants through splicing.
Answer: 3'-CGAT-5'. G pairs with C, T pairs with A in antiparallel strands.
Answer: An alternative DNA sequence version of the same gene. Different alleles produce different versions of the same protein.