Q.What is the function of a polysome?
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🔒 Start your 14-day free trial to unlock the full solution →Concept understanding — Ribosome Function Translation
Imagine you are in a large library. The shelves are packed with books, but each book is written in a language you cannot read. To understand the book, you need a translator — someone who can read the original script and then explain it to you in plain, usable words.
In a living cell, the "library" is the nucleus, where DNA — the master blueprint — is stored. The "books" are genes, written in the language of nucleic acids. But the cell doesn't work directly with DNA. It needs to build proteins — the actual workers, tools, and building blocks of the body. So it first makes a working copy of a gene, called mRNA (messenger RNA). This mRNA is like a page torn from the book, still in the nucleic-acid language. Now the cell needs a "translator" to convert that message into the language of proteins. That translator is the ribosome.
What is a ribosome?
A ribosome is a tiny, complex molecular machine made of RNA and proteins. It is not a membrane-bound organelle — it floats freely in the cytoplasm or sits on the rough endoplasmic reticulum. Think of it as a workbench that clamps onto the mRNA and reads its sequence, three letters at a time. Each three-letter "word" on the mRNA is called a codon, and each codon specifies one amino acid — the building block of a protein.
The ribosome has two main parts, or subunits — a large one and a small one. The small subunit holds the mRNA in place, while the large subunit does the actual work of joining amino acids together.
The process of translation: from mRNA to protein
Translation happens in three stages, just like reading a sentence: you start, you read word by word, and you stop.
1. Initiation (the start)
The small ribosomal subunit finds a special "start" codon on the mRNA — usually AUG. A special tRNA (transfer RNA) molecule carrying the amino acid methionine binds to that start codon. Then the large subunit clicks into place. The ribosome is now assembled and ready to read.
2. Elongation (the reading and building)
The ribosome moves along the mRNA, one codon at a time. For each codon, a matching tRNA brings the correct amino acid. The ribosome's large subunit then forms a peptide bond between the new amino acid and the growing chain. The ribosome shifts forward, and the empty tRNA is released. This repeats — like a train moving along a track, adding one carriage at a time.
3. Termination (the stop)
When the ribosome reaches a "stop" codon (UAA, UAG, or UGA), no tRNA matches it. Instead, a release factor protein binds, causing the ribosome to let go of the completed protein chain. The two subunits separate, and the new protein is free to fold into its functional shape.
The word "translation" is exact: the cell is translating from the four-letter language of nucleic acids (A, U, G, C) into the twenty-letter language of amino acids. The ribosome is the translator, and tRNAs are the "dictionaries" that match each codon to its correct amino acid.
Why does this matter?
Without translation, the instructions in your DNA would remain useless. Every enzyme that digests your food, every antibody that fights infection, every muscle fibre that lets you move — all are built by ribosomes during translation. If translation stops, the cell dies.
In medicine, many antibiotics work by targeting bacterial ribosomes. For example, tetracycline blocks the binding of tRNA to the ribosome, stopping the bacteria from making proteins. Human ribosomes are slightly different, so the drug affects bacteria but not us — a beautiful example of how understanding this process saves lives.
Key points to remember (as per NCERT)
- Translation is the process of polymerising amino acids into a polypeptide chain, using the sequence of codons on mRNA as a template.
- The ribosome acts as the site of translation and also as a catalyst for forming peptide bonds (the large subunit has an enzymatic activity called peptidyl transferase). …
A polysome allows a cell to produce many copies of the same protein at once from a single mRNA molecule.
- Several ribosomes attach to and move along one strand of messenger RNA simultaneously, forming a chain called a polysome or polyribosome.
- Each ribosome in this chain independently reads the same mRNA and builds its own copy of the protein. …
A polysome is a group of ribosomes translating the same mRNA strand together, which speeds up protein production.
During active protein synthesis, it is common for more than one ribosome to attach to a single strand of messenger RNA at the same time. This chain of ribosomes, moving along the one mRNA molecule together, is called a polyribosome or polysome. …
Method: Reason From the Structure's Name to Its Functional Advantage
For a "what is the function of X" question where X's name itself hints at its structure ("poly-some" = many ribosomes), start by unpacking the name, since it often gives you the structural fact you need before you even get to the function.
Here, "polysome" (or polyribosome) tells you the structure is multiple ribosomes associated with something in common — in this case, a single strand of mRNA, with each ribosome attached at a different point along it and moving along independently. Stating this structural picture first sets up the function naturally, rather than leaving the reader to guess why several ribosomes would be involved at all. …
- Higher Secondary (+2 Stage) Examination 2025Set ANNUAL1 markMCQQ.The formation of a polypeptide from m-RNA is called -(a) Transcription(b) Translation(c) Replication(d) Reverse transcription
›Reveal solutionSolution
Translation is the process where the genetic information (codons) on an mRNA molecule is decoded by ribosomes and tRNAs to synthesise a polypeptide chain.
Gene expression proceeds as DNA to mRNA to protein. Transcription (option a) is the copying of genetic information from one strand of DNA into mRNA. Translation (option b) is the subsequent step in which the sequence of codons on the mature mRNA is 'read' by the ribosome, and transfer RNAs bring in the corresponding amino acids, which are linked by peptide bonds to form a polypeptide chain - this is literally the 'translation' of t …
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