Your tiny cells have a code. 
Your cells use a special code. 
Living cells use a set of rules to build proteins. This set of rules is called the genetic code.
To read these instructions, cells use a part called a ribosome. The ribosome works with a helper called tRNA. This helper carries the right amino acid to the ribosome. 
Sometimes, mistakes happen when the code is read. These mistakes are called mutations. A mutation can change how a protein works. Some mutations can even lead to diseases.
The genetic code is a set of rules used by living cells. These rules help them turn information into proteins. Proteins are very important for all living things.
This work happens inside a part of the cell called a ribosome. The ribosome acts like a tiny factory. It reads the messenger RNA, or mRNA, one codon at a time. To do this, the cell uses a helper called tRNA. This tRNA molecule carries a specific amino acid to the ribosome. 
Scientists worked for many years to understand these rules. After DNA's structure was found in 1953, researchers began to look for links to proteins. Francis Crick and James Watson suggested that information flows from DNA. Later, George Gamow proposed that three bases must encode amino acids. He called this the "diamond code."
Many different scientists helped finish the map of the code. In 1961, Marshall Nirenberg and J. Heinrich Matthaei found that the codon UUU makes phenylalanine. They used a system without whole cells to see this happen. Other scientists like Severo Ochoa found codons for lysine and proline. Har Gobind Khorana later identified the rest of the code.
Sometimes, small mistakes happen when the cell copies its instructions. These mistakes are called mutations.
The genetic code is a fundamental set of rules used by living cells. It allows cells to translate information stored in genetic material into functional proteins. This information is encoded within the sequences of DNA or RNA. These sequences are made of nucleotide triplets known as codons.
Translation is a precise step-by-step mechanism that occurs within the cell. The process is carried out by a structure called a ribosome. The ribosome reads a messenger RNA, or mRNA, molecule to build a protein chain. To do this, the cell uses transfer RNA, or tRNA, molecules. These tRNA molecules act as adaptors. They carry specific amino acids to the ribosome.
There are specific types of codons that control the start and end of this process. A start codon, most commonly AUG, signals the beginning of translation. In some organisms, GUG or UUG can also act as start codons. To end the process, the ribosome reaches a stop codon. These are also called termination or nonsense codons. There are three specific stop codons: UAG, UGA, and UAA. 
Understanding this code was a major scientific journey that began after DNA's structure was discovered in 1953. Francis Crick and James Watson hypothesized that information flows from DNA to proteins. In the 1950s, physicist George Gamow proposed a workable scheme for this synthesis. He suggested that sets of three bases, or triplets, were needed to encode the 20 standard amino acids. Gamow called this the "diamond code." In 1954, he formed the RNA Tie Club to bring scientists together. This club had only 20 permanent members to represent the 20 amino acids. Francis Crick later presented a famous paper to this club in 1955. He proposed the adaptor hypothesis, suggesting that a molecule like tRNA carries the code to the amino acids.
Many researchers contributed to deciphering the full code through rigorous experimentation. In 1961, Marshall Nirenberg and J. Heinrich Matthaei discovered that the codon UUU specifies the amino acid phenylalanine. They used a cell-free system to observe this translation. Later, Severo Ochoa's lab showed that AAA codes for lysine and CCC codes for proline. Har Gobind Khorana eventually identified the remaining parts of the code. Robert W. Holley also determined the structure of the tRNA adaptor molecule. Because of these breakthroughs, Khorana, Holley, and Nirenberg shared the Nobel Prize in 1968. The stop codons were even given color-themed names: amber, ochre, and opal.
Errors in the genetic process can lead to significant biological changes. During DNA replication, mistakes called mutations can occur. These mutations can change the properties of an amino acid, such as its charge or polarity. For example, missense mutations can contribute to diseases like sickle-cell disease. Nonsense mutations create a premature stop codon.
Modern science is now exploring how to expand this natural system. This field is often called synthetic biology. Researchers have successfully added non-natural amino acids into proteins by creating unique codons. Since 2001, about 40 such amino acids have been used as tools to study protein function. In 2016, scientists created a stable semisynthetic bacterium with two synthetic bases, X and Y.
🖼️ Images & Media (7)
More to explore
✨ What else?
Related topics you might enjoy
🔬 Go deeper
More advanced topics to explore
🪜 Step back
Simpler topics to build understanding
What is Nepedia?
A free, ad-free encyclopedia for children. Every article is written at five reading levels, so the same page works for a five-year-old and a fifteen-year-old — use the level switcher above to see this one change. No account needed to read.