The nucleotide sequence of one gene can differ significantly from that of an entirely different gene due to variations in the order of the nucleotides. These differences in sequence are the basis for the diversity of genetic information that allows for functional specialization of genes and the expression of different traits. Genes that code for different proteins or perform distinct functions will have distinct nucleotide sequences.
The sugar in a DNA nucleotide contains one less oxygen atom.
The sugar in a DNA nucleotide contains one less oxygen atom.
The DNA of yellow perch does not differ from human DNA except in the sequences of the bases.
The amino acid sequences of hemoglobin in humans and frogs are different due to evolutionary divergence. While both hemoglobins are composed of similar building blocks (amino acids), the specific sequence of amino acids varies between species. This divergence in sequence reflects the adaptation of these proteins to meet the specific oxygen-carrying needs of each species.
The nucleotide sequence of one gene can differ significantly from that of an entirely different gene due to variations in the order of the nucleotides. These differences in sequence are the basis for the diversity of genetic information that allows for functional specialization of genes and the expression of different traits. Genes that code for different proteins or perform distinct functions will have distinct nucleotide sequences.
The sequences of sedimentary rocks in cratons are typically thin and are relatively undeformed or gently warped. The sequences in mountain belts, meanwhile, are thick and extensively folded and faulted.
The sugar in a DNA nucleotide contains one less oxygen atom.
The sugar in a DNA nucleotide contains one less oxygen atom.
The sugar in a DNA nucleotide contains one less oxygen atom.
they differ about .1% of their bases
The sugar in a DNA nucleotide contains one less oxygen atom.
The sugar in a DNA nucleotide contains one less oxygen atom.
If the protein has a single chain of amino acids (known as a polypeptide chain), e.g. human growth hormone, then the term would be gene. A gene can be defined as a segment of DNA that codes for a polypeptide chain (or for a molecule of RNA, such as a molecule of transfer RNA or ribosomal RNA).If the protein has more than one chain, and the chains have different sequences of amino acids, then the code is carried in more than one gene: "one gene, one polypeptide".The nucleotide sequence that codes for just one of the amino acids in a chain is called a codon, and it consists of three adjacent nucleotides, often written just as the bases, because these are the only parts that differ between nucleotides. An example of a codon is CCA.
The nitrogenous base can differ from one nucleotide to another. It can be adenine, guanine, cytosine, or thymine (in DNA) or uracil (in RNA). The sugar and phosphate components remain the same in all nucleotides.
The DNA of yellow perch does not differ from human DNA except in the sequences of the bases.
The amino acid sequences of hemoglobin in humans and frogs are different due to evolutionary divergence. While both hemoglobins are composed of similar building blocks (amino acids), the specific sequence of amino acids varies between species. This divergence in sequence reflects the adaptation of these proteins to meet the specific oxygen-carrying needs of each species.