Q.Which of the following hormones is a steroid, unlike the other three which are peptide/protein hormones?
Concept understanding — Mechanism Of Hormone Action
Mechanism of Hormone Action
Imagine a locked door. The key that opens it has to fit the lock exactly. Hormones work the same way — they are chemical messengers that only affect cells that have the right "lock" for them. That lock is called a receptor.
But here's the twist: some hormones can walk right into the cell, while others are stopped at the doorstep. This difference decides everything about how they work.
The Two Big Categories
Hormones are either water-soluble (like proteins, peptides, adrenaline) or fat-soluble (like steroid hormones, thyroid hormones). Water-soluble hormones cannot cross the cell membrane — it's made of fat. Fat-soluble hormones slip right through.
This gives us two entirely different mechanisms.
1. Membrane-Bound Receptors (The Second Messenger System)
Intuition: The hormone is a messenger that knocks on the front door but cannot enter. So it shouts through the door, and someone inside (a second messenger) runs to do the job.
How it works:
The hormone (first messenger) binds to a receptor on the cell surface. This receptor is usually linked to a G-protein inside the membrane. Binding activates the G-protein, which in turn activates an enzyme (like adenylyl cyclase) on the inner face of the membrane.
That enzyme converts ATP into cyclic AMP (cAMP) — the classic second messenger. cAMP then activates protein kinase A, which phosphorylates (adds a phosphate group to) other proteins inside the cell. This phosphorylation cascade changes enzyme activities, opens ion channels, or alters gene expression — producing the hormone's effect.
The key insight: the hormone itself never enters the cell. It just triggers a chain reaction. One hormone molecule can activate many cAMP molecules, which activate many kinases — this is signal amplification. A tiny amount of hormone produces a huge cellular response.
Examples: Adrenaline, glucagon, ADH, FSH, LH, TSH.
Speed: Fast — seconds to minutes. The response is already built into the cell's machinery; you just flip a switch.
2. Intracellular Receptors (The Gene Regulation System)
Intuition: The hormone carries a key that fits a lock inside the cell. It walks in, finds its receptor in the cytoplasm or nucleus, and the pair together go straight to the DNA to turn genes on or off.
How it works:
The fat-soluble hormone diffuses across the plasma membrane. Inside the cell, it binds to a receptor protein — either in the cytoplasm (steroid hormones) or already inside the nucleus (thyroid hormones). This binding changes the receptor's shape, activating it.
The hormone-receptor complex then moves to the nucleus (if it wasn't already there) and binds to specific DNA sequences called hormone response elements (HREs) . This binding either promotes or inhibits the transcription of nearby genes. New mRNA is made, leaves the nucleus, and gets translated into new proteins. Those proteins produce the hormone's effect.
This mechanism takes hours to days because you are building new proteins from scratch. The effect is slower but lasts much longer than the membrane-receptor pathway.
Examples: Estrogen, testosterone, cortisol, aldosterone, thyroxine (T3/T4).
Comparison at a Glance
| Feature | Membrane-bound receptor | Intracellular receptor |
|---|---|---|
| Hormone type | Water-soluble (peptides, amines) | Fat-soluble (steroids, thyroid) |
| Can hormone enter cell? | No | Yes |
| Receptor location | Cell membrane | Cytoplasm or nucleus |
| Second messenger? | Yes (cAMP, IP3, etc.) | No — hormone-receptor complex acts directly |
| Time to effect | Seconds to minutes | Hours to days |
| Mechanism | Enzyme activation / phosphorylation | Gene transcription → new proteins |
| Amplification | Yes (cascade) | Less direct amplification |
Why This Matters
The same hormone can have different effects on different tissues because of which receptors they express. Adrenaline makes heart cells beat faster but makes intestinal muscle relax — same hormone, different receptors, different second messenger pathways inside.
And the time delay is biologically meaningful. When you need to run from danger, you don't wait for new proteins to be made — you need adrenaline's fast pathway. When you need long-term changes like growth or sexual development, you use the slower gene-regulation route.
The core idea: Hormones don't create new functions in a cell. They simply turn existing machinery on or off — either by flipping a switch (second messenger) or by changing the instruction manual (gene regulation).
As part of the Chemical Coordination and Integration chapter in NCERT Class 11 Biology, Mechanism Of Hormone Action is a well-established fixture of the CBSE biology syllabus, and searches like "Mechanism Of Hormone Action class 11 important questions" or "Mechanism Of Hormone Action mechanism" reflect how often this endocrinology topic is tested in school and NEET exams.
[!TLDR]
Testosterone is a steroid hormone, built on the cholesterol-derived four-ring skeleton; insulin, glucagon and growth hormone are all peptide/protein hormones.
[!ANSWER]
(b) Testosterone
Hormones fall into two broad chemical classes with very different structures. Insulin, glucagon and growth hormone are all peptide/protein hormones -- chains of amino acids, water-soluble, and unable to cross the plasma membrane directly, so they act via a cell-surface receptor and a second messenger. Testosterone, by contrast, is a steroid hormone, built on the same cholesterol-derived four-ring carbon skeleton shared by estrogen, progesterone, cortisol and aldosterone; being lipid-soluble, it diffuses directly across the plasma membrane and acts via an intracellular receptor that regulates gene transcription.
[!ANSWER]
(b) Testosterone
Sort the four options by chemical class: insulin, glucagon and GH are all peptide/protein hormones (amino-acid chains); testosterone alone is a steroid (cholesterol-derived).
Assuming any hormone secreted by an endocrine gland must be chemically similar to the others named -- chemical class (protein vs steroid) is independent of which gland secretes a hormone.
- CBSE 2026Set ANNUAL1 markMCQQ.In the mechanism of Action of a Protein Hormone, one of the second messenger is :(a) Cyclic AMP(b) Insulin(c) Gastrin(d) Melatonin
›Reveal solutionSolution
Protein/peptide hormones act via cell-surface receptors and generate intracellular second messengers such as cyclic AMP to relay their signal.
Protein hormones (e.g., insulin, glucagon, many pituitary hormones) are usually large, water-soluble molecules that cannot cross the target cell's plasma membrane. Instead, they bind to a specific receptor protein on the outer surface of the target cell membrane. This hormone-receptor binding activates an enzyme (e.g., adenylate cyclase) inside the cell membrane, which converts ATP into a small intracellular signalling molecule — a 'second messenger' — the most common example being cyclic AMP (cAMP). The second messenger then triggers a cascade of biochemical reactions inside the cell (activating enzymes, altering gene expression, etc.) that bring about the hormone's physiological effect, without the hormone itself ever entering the cell.
Insulin, gastrin, and melatonin are themselves hormones, not second messengers, so options (b), (c) and (d) are incorrect.
✓Final answerThe correct option is (a) Cyclic AMP — it is a key second messenger in the mechanism of action of protein hormones.
- CBSE 2019Set ANNUAL1 markMCQQ.Membrane bound receptors and hormones produce second messengers like ______.(a) Renin(b) IP3(c) ANF(d) GHRF
›Reveal solutionSolution
(b) IP3 — inositol trisphosphate is a classic intracellular second messenger generated when a membrane-bound hormone receptor is activated.
IP3 is a second messenger produced downstream of membrane hormone receptors.
Many peptide/protein hormones cannot cross the target cell's plasma membrane, so they bind to specific membrane-bound receptors on the cell surface. This receptor-hormone binding activates intracellular enzyme cascades that generate small diffusible molecules called second messengers, which relay and amplify the hormonal signal inside the cell. Inositol trisphosphate (IP3), generated (along with diacylglycerol) by the enzyme phospholipase C, is one such classic second messenger, triggering release of calcium ions from intracellular stores. Renin is an enzyme (not a second messenger), ANF (atrial natriuretic factor) and GHRF (growth hormone-releasing factor) are themselves hormones, not intracellular second messengers.
✓Final answer(b) IP3.
🎓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.