Q.___________ is a neurotransmitter.
Concept understanding — Synapse And Synaptic Transmission
Synapse And Synaptic Transmission
Imagine you are in a long corridor, and you need to pass a message to the person at the far end. You cannot shout across the whole hall — the sound would get garbled. Instead, you whisper to the person next to you, who whispers to the next, and so on. Each person is a neuron, and the tiny gap between them where the whisper crosses is the synapse.
A neuron carries an electrical signal along its length, but it cannot simply "touch" the next neuron and keep the electricity flowing. The gap between them — the synaptic cleft — is a physical barrier. The signal must be converted into a chemical message, cross the gap, and then be converted back into electricity. That entire process is synaptic transmission.
The Two Kinds of Synapses
There are two ways this handover happens, and they differ in speed and mechanism.
1. Electrical Synapse — This is like two people holding hands. The gap is extremely narrow (about 2–4 nm), and the neurons are connected by protein channels called gap junctions. Ions flow directly from one cell to the next, so the electrical signal passes almost instantly. This is rare in the human nervous system but common in places that need split-second coordination, like the heart muscle or the escape reflexes of some animals.
2. Chemical Synapse — This is the standard type in your brain and spinal cord. The gap is wider (about 20–40 nm), and there is no direct connection. The signal must be carried across by a chemical messenger — a neurotransmitter. This takes a tiny fraction of a second longer, but it gives the nervous system enormous flexibility: it can amplify, dampen, or even block signals at each synapse.
In the human nervous system, chemical synapses are the dominant type. Electrical synapses are the exception, not the rule.
How a Chemical Synapse Works (Step by Step)
Let's trace the journey of a single impulse across a chemical synapse. The neuron that sends the signal is the presynaptic neuron; the one that receives it is the postsynaptic neuron.
Step 1: The electrical impulse arrives.
An action potential (the electrical signal) travels down the axon of the presynaptic neuron and reaches the synaptic knob — the swollen end of the axon.
Step 2: Calcium enters.
The arrival of the action potential opens voltage-gated calcium channels in the membrane of the synaptic knob. Calcium ions (Ca2+) rush into the knob from the extracellular fluid.
Step 3: Vesicles fuse and release neurotransmitter.
Inside the synaptic knob are tiny membrane sacs called synaptic vesicles, each packed with thousands of molecules of a neurotransmitter (for example, acetylcholine). The sudden rise in calcium causes these vesicles to move to the membrane, fuse with it, and release their contents into the synaptic cleft by exocytosis.
Step 4: Neurotransmitter binds to receptors.
The neurotransmitter molecules diffuse across the cleft and bind to specific receptor proteins on the membrane of the postsynaptic neuron. This is a lock-and-key fit — only the right neurotransmitter can activate a given receptor.
Step 5: Ion channels open, generating a new signal.
Binding of the neurotransmitter causes the receptor to open ion channels in the postsynaptic membrane. Depending on which ions flow in, the postsynaptic neuron may become:
- Depolarised (more likely to fire an action potential) — this is an excitatory synapse.
- Hyperpolarised (less likely to fire) — this is an inhibitory synapse.
Step 6: The neurotransmitter is removed.
If the neurotransmitter stayed in the cleft, the receptor would keep firing. So it must be cleared quickly. Acetylcholine, for example, is broken down by the enzyme acetylcholinesterase into acetate and choline, which are recycled back into the presynaptic knob.
The entire process — from arrival of the action potential to removal of the neurotransmitter — takes about 1–2 milliseconds. That is fast, but it is the main reason chemical synapses are slower than electrical ones.
Acetylcholine: The Classic Example
Acetylcholine (ACh) is the neurotransmitter used at the neuromuscular junction — where a motor neuron meets a muscle fibre. It is also widespread in the brain. When ACh binds to its receptor on a muscle cell, it opens sodium channels, causing depolarisation and muscle contraction. If acetylcholinesterase is blocked (by certain nerve gases or insecticides), the muscle cannot relax, leading to paralysis.
One-Way Traffic
A key feature of chemical synapses is that they transmit signals only in one direction — from presynaptic to postsynaptic. The neurotransmitter is released only from the presynaptic side, and receptors exist only on the postsynaptic side. This ensures that nerve impulses travel along a defined path and do not bounce backward.
To remember the direction: Pre releases, Post receives. The arrow always points forward.
Why This Matters
Synaptic transmission is not just a relay. It is where the nervous system does its real work. A single postsynaptic neuron may receive input from thousands of presynaptic neurons — some excitatory, some inhibitory. The neuron sums all these signals, and only if the net effect reaches a threshold does it fire its own action potential. This integration is the basis of every thought, movement, and memory you have.
Final answer: A synapse is the junction between two neurons where information is transmitted. In chemical synaptic transmission, an electrical impulse triggers the release of a neurotransmitter (e.g., acetylcholine) from the presynaptic neuron, which diffuses across the synaptic cleft and binds to receptors on the postsynaptic neuron, generating a new electrical signal. This process is slower than electrical transmission but allows for modulation, integration, and one-way signalling.
Synapse And Synaptic Transmission is a core NCERT/CBSE Class 11 Biology topic, and chemical synapses and neurotransmitter release is exactly the kind of detail that shows up in NEET Biology and state CET question papers. This page is aligned with common searches like "Synapse And Synaptic Transmission class 11 biology notes" and "Synapse And Synaptic Transmission important questions for NEET."
Acetylcholine is a genuine neurotransmitter released at chemical synapses and neuromuscular junctions.
(c) Acetyl choline
Acetylcholine is a genuine neurotransmitter released at chemical synapses and neuromuscular junctions.
A neurotransmitter is a chemical released from synaptic vesicles at the presynaptic terminal that crosses the synaptic cleft and binds receptors on the postsynaptic membrane, generating a new impulse.
Step 1. ADH is a hormone (secreted by the hypothalamus, released from the posterior pituitary), not a neurotransmitter.
Step 2. Acetyl CoA is a metabolic intermediate (in the citric acid cycle and fatty-acid metabolism), not a signalling molecule at synapses.
Step 3. Inositol is a component of the second messenger IP3, used inside a cell after a hormone binds, not something released into a synaptic cleft.
Step 4. Acetylcholine, released at cholinergic synapses (including parasympathetic postganglionic endings and neuromuscular junctions) and broken down afterward by cholinesterase, fits the definition precisely.
(c) Acetyl choline -- the option that is actually a neurotransmitter released across a synaptic cleft.
Match each option against the definition of a neurotransmitter: a chemical released at a synapse to carry a signal across the cleft.
- Confusing acetylcholine with the similarly-named but metabolically unrelated Acetyl CoA.
- Treating ADH (a circulating hormone) as if it were a local synaptic neurotransmitter.
- CBSE 2023Set ANN1 markQ.Name the fluid filled space that separate the membranes of pre and post synaptic neurons at a chemical synapse.
›Reveal solutionSolution
At a chemical synapse, the pre-synaptic and post-synaptic neuronal membranes are separated by a narrow, fluid-filled gap called the synaptic cleft.
This cleft (about 20 nm wide) means the two neurons are not in direct physical contact. Neurotransmitters are released from synaptic vesicles at the pre-synaptic membrane, diffuse across this fluid-filled cleft, and bind to receptors on the post-synaptic membrane, generating a new electrical signal in the receiving neuron.
✓Final answerSynaptic cleft
- CBSE 2020Set ANNUAL1 markMCQQ.Chemicals which are released at the synaptic junction are called as :(a) hormones(b) neurotransmitters(c) cerebrospinal fluid(d) lymph
›Reveal solutionSolution
Neurotransmitters (e.g. acetylcholine, noradrenaline) are chemicals released from synaptic vesicles at the pre-synaptic axon terminal into the synaptic cleft, where they bind receptors on the post-synaptic membrane to continue the nerve impulse.
At a chemical synapse, an arriving nerve impulse triggers Ca2+ influx into the axon terminal, causing synaptic vesicles to fuse with the pre-synaptic membrane and release neurotransmitter molecules into the synaptic cleft. These diffuse across and bind specific receptors on the post-synaptic neuron's membrane, generating a new electrical signal there -- this chemical relay is what allows a nerve impulse to cross the physical gap between two neurons.
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(a) Hormones are chemical messengers too, but are released into the blood for long-distance signalling, not at synapses.
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(c) Cerebrospinal fluid cushions/nourishes the CNS, not a synaptic messenger.
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(d) Lymph is the fluid of the lymphatic system, unrelated to synaptic transmission.
✓Final answer(b) Neurotransmitters.
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- CBSE 2019Set ANNUAL1 markQ.What is a synapse ?
›Reveal solutionSolution
A synapse is the specialised junction between two neurons (or a neuron and its target cell) where the nerve impulse is transmitted, typically by neurotransmitter chemicals crossing a small gap.
Neurons do not physically fuse with one another — a narrow gap called the synaptic cleft separates the axon terminal of the presynaptic (transmitting) neuron from the dendrite or cell body of the postsynaptic (receiving) neuron. This entire junction, including both membranes and the cleft, is called a synapse.
Types of synapses:
- Chemical synapse: the nerve impulse triggers release of a neurotransmitter (e.g., acetylcholine) from synaptic vesicles into the cleft; the neurotransmitter binds receptors on the postsynaptic membrane, generating a new impulse there. Transmission is one-directional and involves a brief delay.
- Electrical synapse: membranes of the two neurons are very close (gap junctions), allowing direct, near-instantaneous current flow with no chemical involved.
Synapses allow the nervous system to relay, integrate, amplify or inhibit signals as impulses pass from one neuron to the next.
✓Final answerA synapse is the junction between two neurons where a nerve impulse is transmitted from the axon terminal of one neuron to the dendrite/body of the next, mostly through the release of chemical neurotransmitters.
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