Q.Mention any three levels of regulation of gene expression in eukaryotes.
🔒You're viewing a preview — the full solution, concept, methods & PYQ mapping are locked.
🔒 Start your 14-day free trial to unlock the full solution →Concept understanding — Gene Expression Regulation
Imagine a library with thousands of books. Every cell in your body has the same library — the same complete set of genes in your DNA. But a skin cell does not need to read the book on "how to make stomach acid," and a stomach cell does not need the book on "how to make skin pigment." If every cell tried to read every book at once, the library would be chaos. Gene expression regulation is the system that decides which books are opened, which are kept closed, and when to put a book back on the shelf.
At its simplest, gene expression is the process by which information from a gene is used to make a functional product — usually a protein. Regulation means this process is not automatic; it is controlled. Cells turn genes on or off, or adjust how much product is made, depending on what the body needs at that moment.
Why does this matter? Without regulation, every cell would be identical and useless. Regulation is what makes a muscle cell different from a nerve cell, even though both contain the same DNA. It also allows your body to respond to changes — like producing more red blood cells when you move to high altitude, or repairing damage after a cut.
Think of gene regulation like a dimmer switch, not just an on/off button. Some genes are turned up high, some are turned down low, and many are in between. This fine-tuning is essential for health.
The NCERT textbook explains that regulation can happen at several stages. The most important stage in bacteria (like E. coli) is at the start of transcription — when the gene is first copied into RNA. In higher organisms, regulation is more complex and can occur at multiple points: before transcription, during RNA processing, during translation (making protein), and even after the protein is made.
Key points to remember:
- All cells have the same DNA, but different sets of genes are active in different cells.
- Regulation is dynamic — genes can be turned on and off in response to signals from inside or outside the cell.
- Mistakes in regulation can lead to diseases like cancer, where genes that should be off stay on, or genes that should be on stay off. …
In eukaryotes, gene expression is not simply switched on or off at one point — it is controlled at several successive stages between the gene and the finished protein. …
Eukaryotic gene expression is regulated at: (1) transcription (whether/how much RNA is made), (2) RNA processing/splicing & transport of the transcript, and (3) translation (and post-translational) level.
Concept
In eukaryotes the metabolic, physiological and environmental conditions decide the expression of genes, and this regulation can occur at multiple points along the path from DNA to protein — not just at a single step as in the simple bacterial lac operon.
Three (of the) levels of regulation
- Transcriptional level: the most important control — regulating whether a gene is transcribed and how much RNA (primary transcript) is made, by controlling RNA-polymerase binding and the action of regulatory proteins (activators/repressors, enhancers).
- Processing level (RNA processing / splicing) and transport: regulating the splicing, capping and tailing of the primary transcript (hnRNA), including alternative splicing, and controlling the transport of the mature mRNA from the nucleus to the cytoplasm.
- Translational level: controlling the rate at which mRNA is translated into protein (and its stability), followed by post-translational modifications of the protein. …
- CBSE 2025Set 57/6/11 markMCQQ.The process of splicing in eukaryotes represents the dominance of the : (A) DNA world (B) RNA world (C) Protein world (D) Lipid world
›Reveal solutionSolution
The process of splicing in eukaryotes reveals that RNA itself can act as an enzyme, providing strong evidence for the "RNA world" hypothesis — the idea that RNA was the first self-replicating molecule in early life.
To understand why splicing points to the RNA world, we need to step back and think about what splicing actually is. In eukaryotic cells, genes are split into coding sequences (exons) and non-coding sequences (introns). After transcription, the initial RNA transcript — called pre-mRNA — contains both exons and introns. Splicing is the process that removes the introns and joins the exons together to form a mature mRNA that can be translated into protein.
Now here is the remarkable part. For many years, biologists assumed that all biological reactions were catalysed by proteins (enzymes). But in the 1980s, Thomas Cech and Sidney Altman independently discovered that certain RNA molecules can act as catalysts. These are called ribozymes — RNA enzymes. The splicing of some introns, particularly self-splicing introns (like Group I introns), is carried out entirely by the RNA itself, without any protein help. The intron folds into a specific three-dimensional shape that brings the ends together and catalyses the cutting and rejoining reactions.
ImportantThe discovery of self-splicing RNA was a landmark because it shattered the dogma that only proteins could be enzymes. It showed that RNA can both store genetic information (like DNA) and catalyse chemical reactions (like proteins).
This dual ability — information storage and catalysis — is the core of the RNA world hypothesis. The idea is that before DNA and proteins evolved, early life may have used RNA as the primary molecule for both heredity and metabolism. DNA is chemically more stable and better for long-term storage, while proteins are more versatile catalysts. But RNA could have been the transitional molecule that made the leap from simple chemistry to the first living systems. …
- CBSE 2024Set 57/3/11 markMCQQ.For Questions number 13 to 16, two statements are given — one labelled as Assertion (A) and the other labelled as Reason (R). Select the correct answer to these questions from the codes (A), (B), (C) and (D) as given below. (A) Both Assertion (A) and Reason (R) are true and Reason (R) is the correct explanation of the Assertion (A). (B) Both Assertion (A) and Reason (R) are true, but Reason (R) is not the correct explanation of the Assertion (A). (C) Assertion (A) is true, but Reason (R) is false. (D) Assertion (A) is false, but Reason (R) is true. Assertion (A) : Primary transcripts in eukaryotes are subjected to splicing to remove the introns. Reason (R) : Primary transcripts contain both exons and introns and the introns are non-functional in eukaryotes.
›Reveal solutionSolution
The key idea is that eukaryotic primary transcripts (pre-mRNA) contain both exons and introns, and splicing removes the non-coding introns to produce functional mRNA. Both Assertion (A) and Reason (R) are true, and Reason (R) correctly explains why splicing is necessary. The correct option is (A).
Concept and Intuition
In eukaryotes, genes are split into coding sequences (exons) and non-coding intervening sequences (introns). When a gene is transcribed, the entire stretch — both exons and introns — is copied into a primary transcript (pre-mRNA). This pre-mRNA is not yet ready for translation because the introns would disrupt the protein-coding sequence. So, the cell performs splicing: a process that precisely cuts out the introns and joins the exons together. The reason splicing exists is exactly because introns are present in the primary transcript and are non-functional (they do not code for protein). Without splicing, the mRNA would contain useless or even harmful sequences.
Watch outA common mistake is to think that introns are "junk" that are never transcribed. In fact, introns are transcribed into the primary transcript — they just get removed later. Also, note that in prokaryotes, genes generally lack introns, so splicing is not needed.
Step-by-Step Reasoning
-
Understand the Assertion (A):
"Primary transcripts in eukaryotes are subjected to splicing to remove the introns."
This is a factual statement. In eukaryotic cells, the immediate product of transcription (pre-mRNA) contains both exons and introns. Splicing is the process that removes introns and joins exons, producing mature mRNA. So, Assertion (A) is true.
-
Understand the Reason (R):
"Primary transcripts contain both exons and introns and the introns are non-functional in eukaryotes." …
-
- CBSE 2023Set 57/1/11 markMCQQ.Identify the region 'X', the factor 'Y' and the enzyme 'Z' involved in the process of transcription in prokaryote as shown in the schematic representation given below. Region 'X' Factor 'Y' Enzyme 'Z'(a) Terminator Sigma (σ) RNA polymerase(b) Promoter Rho (ρ) RNA polymerase(c) Promoter Sigma (σ) RNA polymerase(d) Promoter Sigma (σ) DNA polymerase
›Reveal solutionSolution
Prokaryotic transcription begins at the promoter region (X), where the sigma (σ) factor (Y) guides RNA polymerase (Z) to bind and initiate RNA synthesis. The correct option is (c).
Transcription is the fundamental process where genetic information from a DNA template is copied into an RNA molecule. In prokaryotes, this process is carried out by a single type of RNA polymerase, but it requires specific signals and accessory factors to ensure accuracy and regulation. Understanding the roles of these components is key to grasping how genes are expressed.
Here's a step-by-step breakdown of the components involved:
-
Identifying Region 'X': The Promoter
- Transcription does not begin randomly on the DNA. It starts at a specific sequence called the promoter. The promoter acts as a recognition site for RNA polymerase, indicating where transcription should begin and which strand should be used as the template.
- In prokaryotes, common promoter sequences include the -35 region (e.g., TTGACA) and the -10 region (Pribnow box, e.g., TATAAT), located upstream from the transcription start site.
- Therefore, the region 'X' where transcription initiates is the promoter.
-
Identifying Factor 'Y': The Sigma (σ) Factor
- While RNA polymerase is the enzyme that synthesizes RNA, it cannot, on its own, efficiently recognize and bind to the promoter sequence. This is where accessory factors come into play.
- In prokaryotes, the sigma (σ) factor is a dissociable subunit of the RNA polymerase holoenzyme. Its primary role is to recognize and bind specifically to the promoter sequences (like the -35 and -10 regions). This binding guides the core RNA polymerase enzyme to the correct initiation site.
- Once transcription has initiated and a short RNA strand is synthesized, the sigma factor typically dissociates from the core enzyme, allowing the core enzyme to proceed with elongation.
- The Rho (ρ) factor, mentioned in option (b), is involved in termination of transcription in some cases, not initiation.
- Therefore, the factor 'Y' involved in initiating transcription by recognizing the promoter is the sigma (σ) factor.
RNA Polymerase Holoenzyme = Core Enzyme (α₂ββ'ω) + Sigma (σ) Factor
-
Identifying Enzyme 'Z': RNA Polymerase …
-
- CBSE 2023Set ANNUAL1 markMCQQ.At what level does the control of gene expression occur?(a) transcription(b) translation(c) DNA replication(d) both(a) and (b)
›Reveal solutionSolution
Gene expression is controlled at transcription and at translation, so both (a) and (b).
Regulation of gene expression is the control of the amount and timing of gene products. In prokaryotes it is chiefly at the level of transcription (e.g. the lac operon). In eukaryotes control can occur at transcription, RNA processing/splicing, transport of mRNA, and translati …
- CBSE 2020Set HE8241 markQ.Answer in one word/sentence: The name of the DNA segment which synthesized the polypeptide chain.
›Reveal solutionSolution
The DNA segment that codes for (is transcribed and translated into) one polypeptide chain is called a cistron, or structural gene.
A gene, in molecular terms, is a specific stretch/segment of DNA (a linear sequence of nucleotides) that contains the information needed to synthesise one functional polypeptide chain (per the classical 'one gene–one polypeptide' concept, refined from Beadle and Tatum's earlier 'one gene–one enzyme' hypothesis). Such a functional unit of DNA is termed a cistron …
- CBSE 2019Set ANNUAL1 markQ.Which chromosome of man has the least number of genes?
›Reveal solutionSolution
Among human chromosomes, the Y chromosome has the least number of genes.
Concept: One salient observation of the Human Genome Project was the very uneven distribution of genes across the 24 human chromosome types. Chromosome 1 carries the most genes (about 2968), whereas the Y chromosome — a small chromosome carrying mainly male sex-determining gen …
🎓Unlock everything free for 14 days
- ✓Full step-by-step solutions
- ✓Concept-first explanations
- ✓Methods, shortcuts & mistakes
- ✓PYQ mapping + timed mock tests
Full access for 14 days. No credit card required.