IB Biology HL Chemical Signalling Paper 1 & 2 ~12 min read

Intracellular Receptors

Some hormones do not stop at the door. They walk through the membrane, through the nuclear envelope, and end up sitting on the DNA itself — changing which genes a cell chooses to use. It is a slower kind of message, and a much longer lasting one.

📚 What you need to know

Receptors that affect gene expression

A transcription factor is a protein that controls the transcription of genes by binding to a specific region of DNA. If a gene is transcribed and then translated, we say it is expressed in the cell or individual.

This is what makes intracellular receptors different from everything on the previous pages. A surface receptor usually changes what a cell is doing. An intracellular receptor changes what a cell is making.

Why steroids can do this and insulin cannot. Steroid hormones are small, hydrophobic and lipid-based. The middle of a membrane is also lipid, so a steroid dissolves straight through it, and then through a nuclear pore. A hydrophilic protein hormone is stopped at the first barrier and has to send a message instead.

The oestradiol stimulation pathway

Oestradiol (also known as oestrogen) helps control the female fertility cycle and also stimulates sperm production in males. Up to 100 different genes are controlled by it.

Oestradiol goes all the way to the DNA A hormone acting as part of a transcription factor nucleus 1 diffuses through the cell membrane 2 passes through a nuclear pore 3 binds the ER-alpha receptor 4 changes shape and detaches 5 binds the promoter, transcription startsNo second messenger, no cascade — the hormone itself reaches the gene.
The green block on the DNA is the promoter region. Once the activated receptor is sitting there, RNA polymerase can bind and start reading the gene.

🧩 The five steps in full

  1. Oestradiol diffuses through the cell surface membrane into the cytoplasm.
  2. It diffuses through a nuclear pore into the nucleus.
  3. In the nucleus it attaches to an ER-alpha oestradiol receptor that is held within a protein complex. This causes the receptor to undergo a conformational change.
  4. The new shape allows the receptor to detach from the protein complex and diffuse towards the gene to be expressed.
  5. The receptor binds to a cofactor, which enables it to bind to the promoter region of the gene. This stimulates RNA polymerase binding and gene transcription.
The examiner point here is that oestradiol is only an example. Progesterone and testosterone follow a similar path: bind to and activate an intracellular receptor, and the activated receptor then binds specific DNA sequences to stimulate transcription. If a question uses a steroid you have never met, describe this same route.

Oestradiol and progesterone

Oestradiol

What controls the hormone that controls the genes Oestradiol is regulated by the glands it eventually feeds back to HYPOTHALAMUS releases GnRH PITUITARY GLAND releases LH and FSH OVARIES release oestradiol oestradiol can inhibit or promote GnRH release So the same hormone can drive negative feedback or positive feedback.
Most hormones only ever damp themselves down. Oestradiol is unusual because at one point in the cycle it does the opposite and pushes its own release higher.

Progesterone

HormoneWhere it is madeMain role
Oestradiolovaries, placenta and testesregulates female sexual characteristics and the menstrual cycle; controls up to 100 genes
Progesteronecorpus luteum and placentamaintains the endometrial lining and prevents further ovulation during pregnancy
🔑

Surface or inside?

Ask one question: can it cross a membrane? If yes it is a steroid, it uses an intracellular receptor, and the response is a change in gene expression. If no, it uses a surface receptor, a second messenger and a cascade. That single question answers most of this topic.

Worked examples

WE 1

Describe the oestradiol pathway

Describe how oestradiol stimulates the transcription of a gene. (5 marks)

Step 1: getting in Oestradiol is hydrophobic, so it diffuses through the cell surface membrane into the cytoplasm. Step 2: into the nucleus It diffuses through a nuclear pore into the nucleus. Step 3: binding It attaches to an ER-alpha receptor held in a protein complex, causing a conformational change. Step 4: release The new shape lets the receptor detach from the protein complex and diffuse towards the gene to be expressed. Step 5: transcription It binds a cofactor, which lets it bind the promoter region, stimulating RNA polymerase binding and gene transcription. Diffuse in, bind, change shape, detach, bind promoter, transcribe “conformational change” and “promoter region” are both specific marking points — use the exact words
WE 2

Explain a difference in response time

Suggest why a response to a steroid hormone is usually slower to appear than a response to a neurotransmitter. (3 marks)

Point 1: what the steroid does A steroid hormone changes gene expression, so the response depends on transcription and translation of a new protein. Point 2: why that takes time Making mRNA and then a protein takes far longer than opening an ion channel that is already in the membrane. Point 3: the trade-off In exchange, the effect lasts much longer, because the protein remains in the cell after the hormone has gone. Building a protein is slow; opening a door is instant “suggest” questions want reasoning — finish with the trade-off to secure the third mark
WE 3

Explain the role of progesterone

Explain how progesterone maintains the endometrial lining of the uterus. (3 marks)

Point 1: entry and binding Progesterone is a steroid, so it enters the cytoplasm of a target cell and forms a ligand-receptor complex. Point 2: the effect on genes This leads to the expression of a range of genes, including one coding for a growth factor. Point 3: the outcome The growth factor promotes cell proliferation, continuously replenishing the endometrial cells and so maintaining the lining for implantation. Gene expression makes a growth factor, and the growth factor rebuilds the lining do not stop at “it maintains the lining” — the marks are in the mechanism

💡 Exam tips

⚠ Common mistakes

Up next: Regulating Cell Signalling. Every signal in this topic has needed an off switch. In the last page of the topic we look at the two systems that decide when a signal should be shut down — and when it should be made even stronger.

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