10.4: The Genetic Code (2024)

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    We have blithely described the purpose of the DNA chromosomes as carrying the information for building the proteins of the cell, and the RNA as the intermediary for doing so. Exactly how is it, though, that a molecule made up of just four different nucleotides joined together (albeit thousands and even thousands of thousands of them), can tell the cell which of twenty-odd amino acids to string together to form a functional protein? The obvious solution was that since there are not enough individual unique nucleotides to code for each amino acid, there must be combinations of nucleotides that designate particular amino acids. A doublet code, would allow for only 16 different combinations (4 possible nucleotides in the first position x 4 possible nucleotides in the second position = 16 combinations) and would not be enough to encode the 20 amino acids. However, a triplet code would yield 64 combinations, easily enough to encode 20 amino acids. So would a quadruplet or quintuplet code, for that matter, but those would be wasteful of resources, and thus less likely. Further investigation proved the existence of a triplet code as described in the table below.

    With so many combinations and only 20 amino acids, what does the cell do with the other possibilities? The genetic code is a degenerate code, which means that there is redundancy so that most amino acids are encoded by more than one triplet combination (codon). Although it is a redundant code, it is not an ambiguous code: under normal circ*mstances, a given codon encodes one and only one amino acid. In addition to the 20 amino acids, there are also three “stop codons” dedicated to ending translation. The three stop codons also have colloquial names: UAA (ochre), UAG (amber), UGA (opal), with UAA being the most common in prokaryotic genes.

    The colloquial names were started when the discoverers of UAG decided to name the codon after a friend whose last name translated into “amber”. Opal and ochre were named to continue the idea of giving stop codons color names.

    The stop codons are sometimes also used to encode what are now considered the 21st and 22nd amino acids, selenocysteine (UGA) and pyrrolysine (UAG). These amino acids have been discovered to be consistently encoded in some species of prokarya and archaea.

    Note that there are no dedicated start codons: instead, AUG codes for both methionine and the start of translation, depending on the circ*mstance, as explained forthwith. The initial Met is a methionine, but in prokaryotes, it is a specially modified formyl-methionine (f-Met). The tRNA is also specialized and is different from the tRNA that carries methionine to the ribosome for addition to a growing polypeptide. Therefore, in referring to a loaded initiator tRNA, the usual nomenclature is fMet-tRNAi or fMet-tRNAf. There also seems to be a little more leeway in defining the start site in prokaryotes than in eukaryotes, as some bacteria use GUG or UUG. Though these codons normally encode valine and leucine, respectively, when they are used as start codons, the initiator tRNA brings in f-Met.

    Although the genetic code as described is nearly universal, there are some situations in which it has been modified, and the modifications retained in evolutionarily stable environments. The mitochondria in a broad range of organisms demonstrate stable changes to the genetic code including converting the AGA from encoding arginine into a stop codon and changing AAA from encoding lysine to encoding asparagine. Rarely, a change is found in translation of an organismic (nuclear) genome, but most of those rare alterations are conversions to or from stop codons.

    Other minor alterations to the genetic code exist as well, but the universality of the code in general remains. Some mitochondrial DNAs can use different start codons: human mitochondrial ribosomes can use AUA and AUU. In some yeast species, the CGA and CGC codons for arginine are unused. Many of these changes have been cataloged by the National Center for Biotechnology Information (NCBI) based on work by Jukes and Osawa at the University of California at Berkeley (USA) and the University of Nagoya (Japan), respectively.

    10.4: The Genetic Code (2024)

    FAQs

    What does my genetic code mean? ›

    The genetic code is a set of rules defining how the four-letter code of DNA is translated into the 20-letter code of amino acids, which are the building blocks of proteins.

    What are the 4 genetic codes? ›

    ​Genetic Code

    Each gene's code uses the four nucleotide bases of DNA: adenine (A), cytosine (C), guanine (G) and thymine (T) — in various ways to spell out three-letter “codons” that specify which amino acid is needed at each position within a protein.

    How do you find out your genetic code? ›

    DNA tests can give you lots of information about the genes that make up who you are. They can confirm if you have or don't have a specific disease. They can determine if you have a higher risk of developing certain conditions. And they can find out if you carry a specific mutated gene that you can pass to your child.

    What is the common genetic code? ›

    In all living organisms, the instructions for reproducing and operating the individual is encoded in a chemical language with four letters -- A, C, T, and G, the initials of four chemicals. Combinations of three of these letters specify each of the amino acids that the cell uses in building proteins.

    How do you interpret the genetic code? ›

    The genetic code can be read using a codon chart. To use this chart you first locate the first nucleotide in the codon, then the second, and then the third. The chart will then reveal which amino acid is coded for by which codon. The genetic code is degenerate, meaning that each amino acid has more than one codon.

    What do gene numbers mean? ›

    Gene Number refers to the variation in the number of protein-coding genes present in different organisms, ranging from a few hundred in bacteria to several thousand in eukaryotes like yeast, worms, flies, plants, and humans.

    What percent of your DNA comes from your mom? ›

    You receive 50% of your genes from each of your parents, but the percentages of DNA you received from ancestors at the grandparent level and further back are not necessarily neatly divided in two with each generation.

    How many genetic codes are in A human? ›

    The human genome contains somewhere between 19,000 and 20,000 protein-coding genes. These genes contain an average of 10 introns and the average size of an intron is about 6 kb (6,000 bp).

    Who carries the genetic code? ›

    DNA is the nucleic acid that contains the genetic information of an organism encoded within it.

    Can DNA tell your ethnicity? ›

    Ethnicity cannot be detected by DNA, but there is sometimes an overlap with a person's genetic ancestry. For example, people who share the same heritage will often live in the same places and marry people from similar backgrounds.

    Does everyone have their own genetic code? ›

    That sequence of A's, C's, G's, and T's is unique to each of us (unless we're an identical twin)—it's our personal DNA code. It's what makes everyone different from the other six and a half billion people on our planet.

    What determines your genetic code? ›

    Recent News. genetic code, the sequence of nucleotides in deoxyribonucleic acid (DNA) and ribonucleic acid (RNA) that determines the amino acid sequence of proteins. Though the linear sequence of nucleotides in DNA contains the information for protein sequences, proteins are not made directly from DNA.

    How much genetic code does each parent have? ›

    The egg and sperm each have one half of a set of chromosomes. The egg and sperm together give the baby the full set of chromosomes. So, half the baby's DNA comes from the mother and half comes from the father.

    Do all humans have the same genetic code? ›

    The human genome comprises about 3 × 109 base pairs of DNA, and the extent of human genetic variation is such that no two humans, save identical twins, ever have been or will be genetically identical. Between any two humans, the amount of genetic variation—biochemical individuality—is about . 1 percent.

    What determines your genetic code and your traits? ›

    Your chromosomes contain the blueprint for your body – your genes. Almost every cell in the human body contains a copy of this blueprint, mostly stored inside a special sac within the cell called the nucleus. Chromosomes are long strands of a chemical substance called deoxyribonucleic acid (DNA).

    What is the significance of the genetic code? ›

    The genetic code is the set of instructions stored in the Deoxyribonucleic acid (DNA) of every living organism that dictates the traits and characteristics of that organism. It is often referred to as the blueprint of life, as it contains all the information necessary to create and maintain life.

    What does the genetic code chart show? ›

    This type of chart displays all the possible codons — essential components of DNA and RNA molecules — and the amino acids they represent. By using a codon table, you can translate genetic information into specific proteins. Let's take a closer look at how it all works.

    How do you translate genetic code? ›

    The genetic code is translated by means of two adaptors that act one after another. The first adaptor is the aminoacyl-tRNA synthetase, which couples a particular amino acid to its corresponding tRNA; the second adaptor is the tRNA molecule itself, whose (more...)

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