---
title: "The Stretch Reflex and the Nerve Message"
book: "High School Biology"
subject: biology
language: en
chapter: 35
exercises: 15
source: https://one-course.com/books/biology/2/en/chapter/35-the-stretch-reflex-and-the-nerve-message
---

# Chapter 35 — The Stretch Reflex and the Nerve Message

A doctor taps the [tendon](https://one-course.com/books/biology/2/en/chapter/9-muscles-and-joints#def-g10-muscles-and-joints-muscle) just below your kneecap with a small rubber hammer, and your foot kicks forward before you have felt anything. Thirty milliseconds separate the tap from the kick: too little for the brain, too little even for a decision. The signal went from the muscle to the spinal cord and back — a circuit of two [neurons](#def-g12-stretch-reflex-neuron) and one connection between them — and the same circuit is what holds you upright, silently, every second you stand. This chapter uses it to introduce the [neuron](#def-g12-stretch-reflex-neuron), the electrical signal it carries, and the chemical junction where one [neuron](#def-g12-stretch-reflex-neuron) speaks to the next.

## 35.1 The reflex arc

**Definition 35.1 (Reflex).**

A *reflex* is an involuntary, rapid and stereotyped response of an effector (a muscle or a gland) to a stimulus, produced by a fixed circuit of [neurons](#def-g12-stretch-reflex-neuron), the *reflex arc*, that runs through the spinal cord or brainstem without requiring the brain. The *stretch reflex* is the simplest: the sudden stretching of a muscle makes that same muscle contract.

**Proposition 35.2 (The circuit of the stretch reflex).**

Five elements, in order:

1. the *receptor* : *muscle spindles* , small sensory organs lying among the [muscle fibres](https://one-course.com/books/biology/2/en/chapter/9-muscles-and-joints#def-g10-muscles-and-joints-muscle) , which are stretched when the muscle is and respond by firing signals;
2. the *sensory [neuron](#def-g12-stretch-reflex-neuron)* , whose fibre runs from the spindle to the spinal cord, entering by the dorsal root; its [cell](https://one-course.com/books/biology/2/en/chapter/2-cells-the-common-unit-of-life#def-g10-cells-common-unit-cell) body sits in a ganglion beside the cord;
3. the *integration centre* : the grey matter of the spinal cord, where the sensory fibre connects directly — through a single [synapse](#def-g12-stretch-reflex-synapse) — to the motor [neuron](#def-g12-stretch-reflex-neuron) of the same muscle, and, through an intermediate [neuron](#def-g12-stretch-reflex-neuron) , inhibits the motor [neurons](#def-g12-stretch-reflex-neuron) of the antagonist muscle;
4. the *motor [neuron](#def-g12-stretch-reflex-neuron)* , whose fibre leaves by the ventral root and runs to the muscle;
5. the *effector* : the [muscle fibres](https://one-course.com/books/biology/2/en/chapter/9-muscles-and-joints#def-g10-muscles-and-joints-muscle) , which contract.

A tap on the patellar [tendon](https://one-course.com/books/biology/2/en/chapter/9-muscles-and-joints#def-g10-muscles-and-joints-muscle) stretches the thigh muscle; its spindles fire; the motor [neurons](#def-g12-stretch-reflex-neuron) of that muscle fire; it contracts and the leg extends, while the hamstrings are told to relax.

**Evidence.** Cutting the dorsal root abolishes the [reflex](#def-g12-stretch-reflex-reflex) while the muscle can still be made to contract by stimulating the ventral root; cutting the ventral root abolishes it while the sensory fibres still carry signals when the muscle is stretched: the arc has a sensory entrance and a motor exit. The [reflex](#def-g12-stretch-reflex-reflex) persists in an animal whose spinal cord has been severed from the brain: the brain is not needed. Recording from single fibres shows the spindle’s signals starting within a millisecond of the stretch, and the motor [neuron](#def-g12-stretch-reflex-neuron) firing about one millisecond after the sensory signal arrives — the delay of one [synapse](#def-g12-stretch-reflex-synapse). ∎

![The stretch reflex arc, seen in a section of the spinal cord. The spindle’s sensory neuron (blue) enters by the dorsal root and connects, through one synapse (orange), to the motor neuron (red) of the same muscle, which leaves by the ventral root; an interneuron (green) inhibits the antagonist.](https://one-course.com/images/onecourse/chapters/biology-2/g12-stretch-reflex/fig-e70a6fc6ae52.svg)

*The [stretch reflex](#def-g12-stretch-reflex-reflex) arc, seen in a section of the spinal cord. The spindle’s sensory [neuron](#def-g12-stretch-reflex-neuron) (blue) enters by the dorsal root and connects, through one [synapse](#def-g12-stretch-reflex-synapse) (orange), to the motor [neuron](#def-g12-stretch-reflex-neuron) (red) of the same muscle, which leaves by the ventral root; an interneuron (green) inhibits the antagonist.*

![The knee-jerk test: a tap on the patellar tendon stretches the thigh muscle, and thirty milliseconds later the leg kicks. The reflex checks, in a second, the whole arc from spindle to muscle.](https://one-course.com/images/onecourse/chapters/biology-2/g12-stretch-reflex/img-8e7a990a2095.jpg)

*The knee-jerk test: a tap on the patellar [tendon](https://one-course.com/books/biology/2/en/chapter/9-muscles-and-joints#def-g10-muscles-and-joints-muscle) stretches the thigh muscle, and thirty milliseconds later the leg kicks. The [reflex](#def-g12-stretch-reflex-reflex) checks, in a second, the whole arc from spindle to muscle.*

**Example 35.3 (What the reflex is for).**

Standing, you sway; each sway stretches the muscles of one side of the ankle, whose spindles fire and whose [reflex](#def-g12-stretch-reflex-reflex) contraction pulls you back before you notice. Carrying a tray, a sudden extra weight stretches the arm muscles and the [reflex](#def-g12-stretch-reflex-reflex) stiffens them within $30\,\mathrm{ms}$, before the tray tips. The [stretch reflex](#def-g12-stretch-reflex-reflex) is a servomechanism: it opposes any change of a muscle’s length, and the brain adjusts its sensitivity to set the body’s tone — higher when you brace, lower when you sleep.

## 35.2 The neuron and its message

**Definition 35.4 (Neuron).**

A *neuron* is a [cell](https://one-course.com/books/biology/2/en/chapter/2-cells-the-common-unit-of-life#def-g10-cells-common-unit-cell) specialised for signalling: a [cell](https://one-course.com/books/biology/2/en/chapter/2-cells-the-common-unit-of-life#def-g10-cells-common-unit-cell) body with its [nucleus](https://one-course.com/books/biology/2/en/chapter/2-cells-the-common-unit-of-life#def-g10-cells-common-unit-organelle), branching *dendrites* that receive signals, and a single long fibre, the *axon*, that carries the neuron’s own signal to its endings — for a motor neuron of the leg, a metre away. Many axons are wrapped in a fatty sheath, *myelin*, laid down by companion [cells](https://one-course.com/books/biology/2/en/chapter/2-cells-the-common-unit-of-life#def-g10-cells-common-unit-cell), which speeds conduction. A nerve is a bundle of hundreds or thousands of axons.

![A motor neuron, stained: the cell body with its nucleus, the branching dendrites that receive signals, and the single axon leaving to carry the neuron’s own message to a muscle.](https://one-course.com/images/onecourse/chapters/biology-2/g12-stretch-reflex/img-de181ad87c88.jpg)

*A motor [neuron](#def-g12-stretch-reflex-neuron), stained: the [cell](https://one-course.com/books/biology/2/en/chapter/2-cells-the-common-unit-of-life#def-g10-cells-common-unit-cell) body with its [nucleus](https://one-course.com/books/biology/2/en/chapter/2-cells-the-common-unit-of-life#def-g10-cells-common-unit-organelle), the branching dendrites that receive signals, and the single axon leaving to carry the [neuron](#def-g12-stretch-reflex-neuron)’s own message to a muscle.*

**Proposition 35.5 (The action potential).**

A [neuron](#def-g12-stretch-reflex-neuron)’s membrane holds an electrical voltage: the inside is about $-70\,\mathrm{mV}$ relative to the outside at rest. The *nerve message* is a train of *action potentials*: brief reversals of that voltage, each rising to about $+30\,\mathrm{mV}$ and returning within a millisecond, that travel along the axon without weakening. An [action potential](#prop-g12-stretch-reflex-actionpotential) is *all or none*: a stimulus below a threshold produces nothing, any stimulus above it produces the same full-sized signal. The intensity of a stimulus is therefore coded not in the size of the signals but in their *frequency*: a stronger stretch makes the spindle fire more [action potentials](#prop-g12-stretch-reflex-actionpotential) per second.

**Evidence.** Microelectrodes inserted into an axon record the resting voltage and, when the [cell](https://one-course.com/books/biology/2/en/chapter/2-cells-the-common-unit-of-life#def-g10-cells-common-unit-cell) fires, identical spikes whose shape does not change with the stimulus or with the distance travelled. Recordings from a single spindle fibre during increasing stretches show spikes of constant size at rates rising from a few to several hundred per second. A stimulus just below threshold gives no spike at all; doubling a stimulus already above threshold changes the rate, never the height. ∎

![An action potential recorded inside an axon: from the resting -70\, mV, a rapid rise past the threshold to about +30\, mV, a return below rest, and recovery — all in about two milliseconds. Every action potential of a given neuron has this same shape.](https://one-course.com/images/onecourse/chapters/biology-2/g12-stretch-reflex/fig-e7e22ae92533.svg)

*An [action potential](#prop-g12-stretch-reflex-actionpotential) recorded inside an axon: from the resting $-70\,\mathrm{mV}$, a rapid rise past the threshold to about $+30\,\mathrm{mV}$, a return below rest, and recovery — all in about two milliseconds. Every [action potential](#prop-g12-stretch-reflex-actionpotential) of a given [neuron](#def-g12-stretch-reflex-neuron) has this same shape.*

![Frequency coding. The same spindle fibre recorded during three stretches: the spikes are identical, and only their rate changes — about 60, 120 and 240 per second here.](https://one-course.com/images/onecourse/chapters/biology-2/g12-stretch-reflex/fig-70935f3e2f6e.svg)

*Frequency coding. The same spindle fibre recorded during three stretches: the spikes are identical, and only their rate changes — about 60, 120 and 240 per second here.*

**Example 35.6 (Speed).**

[Action potentials](#prop-g12-stretch-reflex-actionpotential) travel at $1\,\mathrm{m}/\mathrm{s}$ in thin unmyelinated fibres and up to $100\,\mathrm{m}/\mathrm{s}$ in the thick myelinated fibres of the [stretch reflex](#def-g12-stretch-reflex-reflex). From the knee to the spinal cord and back is about $1.5\,\mathrm{m}$: some $15\,\mathrm{ms}$ of travel, to which the spindle’s response, one [synapse](#def-g12-stretch-reflex-synapse) and the muscle’s activation add another $15\,\mathrm{ms}$ — the $30\,\mathrm{ms}$ of the knee jerk. A message from a toe to the brain, $1.8\,\mathrm{m}$ away, takes about $20\,\mathrm{ms}$; the decision to move it, and its execution, some $150\,\mathrm{ms}$ more.

## 35.3 The synapse

**Definition 35.7 (Synapse and neurotransmitter).**

A *synapse* is the junction where the ending of one [neuron](#def-g12-stretch-reflex-neuron)’s axon meets the next [cell](https://one-course.com/books/biology/2/en/chapter/2-cells-the-common-unit-of-life#def-g10-cells-common-unit-cell) — a [neuron](#def-g12-stretch-reflex-neuron) or a muscle fibre — across a gap of some $20\,\mathrm{nm}$, the *synaptic cleft*. The signal does not jump the gap electrically: the arriving [action potentials](#prop-g12-stretch-reflex-actionpotential) make the ending release, from small vesicles, a chemical messenger, the *neurotransmitter*, into the cleft; it binds *receptors* on the receiving [cell](https://one-course.com/books/biology/2/en/chapter/2-cells-the-common-unit-of-life#def-g10-cells-common-unit-cell)’s membrane, which change that [cell](https://one-course.com/books/biology/2/en/chapter/2-cells-the-common-unit-of-life#def-g10-cells-common-unit-cell)’s voltage; it is then destroyed or taken back within milliseconds. The synapse converts an electrical message into a chemical one and back, and the amount of transmitter released — set by the frequency of the arriving [action potentials](#prop-g12-stretch-reflex-actionpotential) — codes the message’s intensity.

![A synapse. Action potentials reaching the ending make vesicles release the neurotransmitter into the cleft; it binds receptors on the receiving cell and changes its voltage; enzymes then destroy it. The message crosses as a chemical, in one direction only.](https://one-course.com/images/onecourse/chapters/biology-2/g12-stretch-reflex/fig-38dee8ec854b.svg)

*A [synapse](#def-g12-stretch-reflex-synapse). [Action potentials](#prop-g12-stretch-reflex-actionpotential) reaching the ending make vesicles release the [neurotransmitter](#def-g12-stretch-reflex-synapse) into the cleft; it binds receptors on the receiving [cell](https://one-course.com/books/biology/2/en/chapter/2-cells-the-common-unit-of-life#def-g10-cells-common-unit-cell) and changes its voltage; [enzymes](https://one-course.com/books/biology/2/en/chapter/15-enzymes-and-the-phenotype#def-g11-enzymes-and-phenotype-enzyme) then destroy it. The message crosses as a chemical, in one direction only.*

**Proposition 35.8 (Excitation, inhibition, and the muscle’s junction).**

Depending on the transmitter and its receptor, a [synapse](#def-g12-stretch-reflex-synapse) *excites* the receiving [neuron](#def-g12-stretch-reflex-neuron) (brings it towards its threshold) or *inhibits* it (drives it away). The [stretch reflex](#def-g12-stretch-reflex-reflex) uses both: excitation of the muscle’s own motor [neuron](#def-g12-stretch-reflex-neuron), inhibition of the antagonist’s through the interneuron. At the *neuromuscular junction*, the [synapse](#def-g12-stretch-reflex-synapse) between a motor [neuron](#def-g12-stretch-reflex-neuron) and a muscle fibre, the transmitter is *acetylcholine*: each [action potential](#prop-g12-stretch-reflex-actionpotential) of the motor [neuron](#def-g12-stretch-reflex-neuron) releases enough to fire the fibre, which contracts. A motor [neuron](#def-g12-stretch-reflex-neuron) and the fibres it commands form a *motor unit*; the force of a muscle is set by how many units fire and how fast.

**Evidence.** Acetylcholine applied to a muscle fibre makes it contract; *curare*, the arrow poison, binds the fibre’s acetylcholine receptors without activating them and paralyses every muscle while the nerves keep firing; the toxin of botulism blocks the release of the vesicles and paralyses likewise; an insecticide that blocks the [enzyme](https://one-course.com/books/biology/2/en/chapter/15-enzymes-and-the-phenotype#def-g11-enzymes-and-phenotype-enzyme) destroying acetylcholine makes the muscles contract uncontrollably. Strychnine blocks the inhibitory [synapses](#def-g12-stretch-reflex-synapse) of the spinal cord, so that every stretch triggers the contraction of both muscle and antagonist: convulsions. Each poison names a step of the junction by removing it. ∎

**Method 35.9 (Analysing a reflex or a poison).**

1. Trace the arc: receptor, sensory [neuron](#def-g12-stretch-reflex-neuron) , centre, motor [neuron](#def-g12-stretch-reflex-neuron) , effector; identify which element a lesion or a drug affects.
2. At each [neuron](#def-g12-stretch-reflex-neuron) , ask what is coded — the frequency of [action potentials](#prop-g12-stretch-reflex-actionpotential) — and at each [synapse](#def-g12-stretch-reflex-synapse) , what carries the message — the transmitter and its amount.
3. For a poison, find its step: release of the transmitter, the receptor, the destruction of the transmitter, or an inhibitory [synapse](#def-g12-stretch-reflex-synapse) ; predict paralysis (nothing gets through) or convulsion (nothing is stopped).
4. Time it: distance divided by conduction speed, plus about a millisecond per [synapse](#def-g12-stretch-reflex-synapse) .

**Remark 35.10 (A message made of the same spikes).**

Every message in the nervous system — the spindle’s stretch, the retina’s light, the brain’s command to move — is made of the same all-or-none [action potentials](#prop-g12-stretch-reflex-actionpotential), differing only in rate and in the wires that carry them; meaning lies in which [neuron](#def-g12-stretch-reflex-neuron) fires, not in what it fires. And at every [synapse](#def-g12-stretch-reflex-synapse) the message becomes a dose of a chemical, which is why a molecule — a transmitter, a poison, a drug — can enter the conversation at any point. The final chapter follows the same spikes and [synapses](#def-g12-stretch-reflex-synapse) up into the brain, and the command that comes back down.

## 35.4 Exercises

**Exercise 35.1 ★.**

List the five elements of the [stretch reflex](#def-g12-stretch-reflex-reflex) arc, in order.

**Solution of Exercise 35.1.**

Receptor (muscle spindle), sensory [neuron](#def-g12-stretch-reflex-neuron), integration centre (spinal cord grey matter, one [synapse](#def-g12-stretch-reflex-synapse)), motor [neuron](#def-g12-stretch-reflex-neuron), effector (the muscle).

**Exercise 35.2 ★.**

Describe a [neuron](#def-g12-stretch-reflex-neuron)’s parts and the direction in which its message travels.

**Solution of Exercise 35.2.**

A [cell](https://one-course.com/books/biology/2/en/chapter/2-cells-the-common-unit-of-life#def-g10-cells-common-unit-cell) body with the [nucleus](https://one-course.com/books/biology/2/en/chapter/2-cells-the-common-unit-of-life#def-g10-cells-common-unit-organelle), dendrites that receive signals, and one axon (often myelinated) that carries the [neuron](#def-g12-stretch-reflex-neuron)’s message to its endings. The message travels from dendrites and [cell](https://one-course.com/books/biology/2/en/chapter/2-cells-the-common-unit-of-life#def-g10-cells-common-unit-cell) body along the axon to the endings.

**Exercise 35.3 ★.**

What is an [action potential](#prop-g12-stretch-reflex-actionpotential)? What does "all or none" mean, and how is intensity coded?

**Solution of Exercise 35.3.**

A brief reversal of the membrane voltage, from $-70\,\mathrm{mV}$ to about $+30\,\mathrm{mV}$ and back within a millisecond, travelling along the axon unchanged. All or none: below threshold nothing, above it always the same full signal. Intensity is coded in the frequency of [action potentials](#prop-g12-stretch-reflex-actionpotential).

**Exercise 35.4 ★.**

Describe the events at a [synapse](#def-g12-stretch-reflex-synapse) from the arrival of [action potentials](#prop-g12-stretch-reflex-actionpotential) to the response of the receiving [cell](https://one-course.com/books/biology/2/en/chapter/2-cells-the-common-unit-of-life#def-g10-cells-common-unit-cell).

**Solution of Exercise 35.4.**

[Action potentials](#prop-g12-stretch-reflex-actionpotential) reach the ending; vesicles release the [neurotransmitter](#def-g12-stretch-reflex-synapse) into the cleft; it binds receptors on the receiving [cell](https://one-course.com/books/biology/2/en/chapter/2-cells-the-common-unit-of-life#def-g10-cells-common-unit-cell), changing its voltage (towards or away from threshold); it is then destroyed or taken back.

**Exercise 35.5 ★.**

Which transmitter acts at the neuromuscular junction, and what do curare and botulinum toxin each do to it?

**Solution of Exercise 35.5.**

Acetylcholine. Curare occupies its receptors on the muscle without activating them; botulinum toxin prevents its release from the vesicles. Both paralyse.

**Exercise 35.6 ★★.**

From the frequency-coding figure, count the spikes in $100\,\mathrm{ms}$ for each stretch and give the rates. What does not change between the rows?

**Solution of Exercise 35.6.**

6, 12 and 24 spikes in $100\,\mathrm{ms}$: 60, 120 and 240 per second. The size and shape of the spikes do not change.

**Exercise 35.7 ★★.**

The knee-jerk latency is $30\,\mathrm{ms}$ for a path of $1.5\,\mathrm{m}$. If the [synapse](#def-g12-stretch-reflex-synapse) and the muscle’s activation take $12\,\mathrm{ms}$ together, compute the conduction speed of the fibres.

**Solution of Exercise 35.7.**

Conduction time $30 - 12 = 18\,\mathrm{ms}$ for $1.5\,\mathrm{m}$: about $83\,\mathrm{m}/\mathrm{s}$.

**Exercise 35.8 ★★.**

Explain why cutting the dorsal root abolishes the [reflex](#def-g12-stretch-reflex-reflex) but not the muscle’s ability to contract, and cutting the ventral root abolishes both.

**Solution of Exercise 35.8.**

The dorsal root carries the sensory fibres: cut, the stretch message never reaches the cord, but the motor [neuron](#def-g12-stretch-reflex-neuron) and its fibre are intact and can still be stimulated to contract the muscle. The ventral root carries the motor fibres: cut, nothing can reach the muscle from the cord at all.

**Exercise 35.9 ★★.**

Why must the antagonist muscle be inhibited during the [reflex](#def-g12-stretch-reflex-reflex)? Which element of the arc does it, and through what kind of [synapse](#def-g12-stretch-reflex-synapse)?

**Solution of Exercise 35.9.**

If the antagonist contracted too, it would oppose the movement and stretch itself, triggering its own [reflex](#def-g12-stretch-reflex-reflex) — a tug of war. The interneuron of the cord does the inhibiting, through an inhibitory [synapse](#def-g12-stretch-reflex-synapse) on the antagonist’s motor [neurons](#def-g12-stretch-reflex-neuron).

**Exercise 35.10 ★★.**

A stimulus of 2 units is just at a [neuron](#def-g12-stretch-reflex-neuron)’s threshold and gives one [action potential](#prop-g12-stretch-reflex-actionpotential) of $100\,\mathrm{mV}$. Predict the signal for stimuli of 1, 4 and 8 units.

**Solution of Exercise 35.10.**

1 unit: nothing (below threshold). 4 and 8 units: [action potentials](#prop-g12-stretch-reflex-actionpotential) of the same $100\,\mathrm{mV}$, but at higher frequencies, higher for 8 than for 4.

**Exercise 35.11 ★★.**

Explain why the message crosses a [synapse](#def-g12-stretch-reflex-synapse) in one direction only, and why it is delayed there by about a millisecond.

**Solution of Exercise 35.11.**

Only the ending holds vesicles of transmitter and only the receiving membrane holds receptors, so the chemical can act one way. Releasing the transmitter, its diffusion across the cleft and the receptors’ response take about a millisecond.

**Exercise 35.12 ★★★.**

An insecticide blocks the [enzyme](https://one-course.com/books/biology/2/en/chapter/15-enzymes-and-the-phenotype#def-g11-enzymes-and-phenotype-enzyme) that destroys acetylcholine. Predict its effect at the neuromuscular junction, on breathing, and explain why a drug that blocks the acetylcholine receptors is used as an antidote at a carefully measured dose.

**Solution of Exercise 35.12.**

Acetylcholine accumulates in the junctions and keeps firing the fibres: twitching, then sustained contraction and exhaustion of the muscles, including those of breathing — death by asphyxia. A receptor blocker (an atropine-like drug) reduces the excess stimulation; too little leaves the poisoning, too much paralyses like curare, so the dose must match.

**Exercise 35.13 ★★★.**

Strychnine blocks inhibitory [synapses](#def-g12-stretch-reflex-synapse) in the spinal cord. Using the [reflex arc](#def-g12-stretch-reflex-reflex), explain why a light touch then triggers convulsions of the whole body.

**Solution of Exercise 35.13.**

Every sensory input excites its motor [neurons](#def-g12-stretch-reflex-neuron) and, normally, inhibits the antagonists’ through interneurons. With inhibition blocked, a touch excites both sides of every [joint](https://one-course.com/books/biology/2/en/chapter/9-muscles-and-joints#def-g10-muscles-and-joints-joint) and the excitation spreads unopposed through the cord: all muscles contract at once, and the spasm stretches other muscles whose [reflexes](#def-g12-stretch-reflex-reflex) add to it.

**Exercise 35.14 ★★★.**

A person with damaged myelin has a knee-jerk latency of $60\,\mathrm{ms}$ instead of 30. Compute the conduction speed implied (using the figures of exercise 7) and explain why myelin matters.

**Solution of Exercise 35.14.**

Conduction time $60 - 12 = 48\,\mathrm{ms}$ for $1.5\,\mathrm{m}$: about $31\,\mathrm{m}/\mathrm{s}$, a third of normal. Myelin lets the [action potential](#prop-g12-stretch-reflex-actionpotential) jump between gaps in the sheath instead of travelling continuously; without it the fibre conducts like a thin unmyelinated one.

**Exercise 35.15 ★★★.**

"The spinal cord is only a cable between brain and body." Rewrite correctly in a paragraph, using the [reflex](#def-g12-stretch-reflex-reflex), the interneuron, and the animal whose cord is cut from its brain.

**Solution of Exercise 35.15.**

The cord carries messages between brain and body, but it also processes them: its grey matter holds the [synapses](#def-g12-stretch-reflex-synapse) of the [reflex arcs](#def-g12-stretch-reflex-reflex), where a stretch is turned into a contraction and, through interneurons, into the inhibition of the antagonist, without any message reaching the brain. An animal whose cord is cut from its brain still withdraws a paw from a pinch and still shows the knee jerk: the cord is a centre, not only a cable.

## 35.5 Problem: Thirty Milliseconds

**Problem 35.1.**

Weekend problem — the knee jerk timed and taken apart: the spindle’s code, the fibres’ speed, the synapse’s delay, the junction’s chemistry, and the poisons that name each step

Electrodes record the electrical activity of a subject’s thigh muscle (an electromyogram) while the patellar [tendon](https://one-course.com/books/biology/2/en/chapter/9-muscles-and-joints#def-g10-muscles-and-joints-muscle) is tapped. The muscle’s signal begins $30\,\mathrm{ms}$ after the tap; the leg moves $20\,\mathrm{ms}$ later. The distance from the [tendon](https://one-course.com/books/biology/2/en/chapter/9-muscles-and-joints#def-g10-muscles-and-joints-muscle) to the spinal cord along the nerve is $75\,\mathrm{cm}$, the same back.

**Part I — The timing.**

1. Compute the total length of the nerve path of the [reflex](#def-g12-stretch-reflex-reflex) .
2. Take the spindle’s response and the muscle’s activation to need $4\,\mathrm{ms}$ each, and the [synapse](#def-g12-stretch-reflex-synapse) $1\,\mathrm{ms}$ . How much of the $30\,\mathrm{ms}$ is conduction, and what is the conduction speed?
3. In a subject $20\,\mathrm{cm}$ taller, with the same fibres, predict the latency.
4. Why does the leg move $20\,\mathrm{ms}$ after the muscle’s electrical signal begins?
5. A subject is told to expect the tap and to "think about" stopping the kick; the kick is unchanged. Explain with the timing of a message to and from the brain ( $1.2\,\mathrm{m}$ more of fibres, and several [synapses](#def-g12-stretch-reflex-synapse) ).

**Part II — The code.** The spindle fibre fires 20 [action potentials](#prop-g12-stretch-reflex-actionpotential) per second at rest, 200 during the tap.

6. How many [action potentials](#prop-g12-stretch-reflex-actionpotential) does the spindle send in the $10\,\mathrm{ms}$ following the tap? What changes between rest and tap, and what does not?
7. Each [action potential](#prop-g12-stretch-reflex-actionpotential) arriving at the [synapse](#def-g12-stretch-reflex-synapse) releases a fixed quantity of transmitter. By what factor does the transmitter released per second rise during the tap?
8. The motor [neuron](#def-g12-stretch-reflex-neuron) fires only if enough transmitter arrives within a few milliseconds. Explain why the resting rate does not make the muscle contract, and the tap rate does.
9. A gentler tap gives 100 per second. Predict the motor [neuron](#def-g12-stretch-reflex-neuron) ’s response and the strength of the kick, using motor units.
10. Explain why a spindle’s message could not be coded in the size of its [action potentials](#prop-g12-stretch-reflex-actionpotential) .

**Part III — The junction.**

11. Name the transmitter at the neuromuscular junction and describe its fate after acting.
12. Curare is injected: the electromyogram shows no signal after the tap, but the nerve still carries [action potentials](#prop-g12-stretch-reflex-actionpotential) . Which step is blocked?
13. Botulinum toxin, instead: same electromyogram, same nerve signal. Which step, and how would you tell the two apart in the laboratory?
14. An anaesthetic blocks [action potentials](#prop-g12-stretch-reflex-actionpotential) in the sensory fibres. Which recordings disappear, and which remain?
15. Explain why all three produce a limp leg but by three different mechanisms.

**Part IV — The centre.**

16. During the kick the hamstrings’ electromyogram is silent, and drops below its resting level. Explain with the interneuron.
17. A patient with a spinal cord severed above the level of the [reflex](#def-g12-stretch-reflex-reflex) still has a knee jerk — exaggerated. What does the presence of the [reflex](#def-g12-stretch-reflex-reflex) show, and what does its exaggeration suggest about the brain’s normal role?
18. In a patient whose [reflex](#def-g12-stretch-reflex-reflex) is absent on one side, list the elements of the arc that could be damaged, and one test to locate the damage.
19. Why do doctors test this [reflex](#def-g12-stretch-reflex-reflex) routinely, in a few seconds, on every patient?
20. State the result: the conduction speed of the [reflex](#def-g12-stretch-reflex-reflex) ’s fibres, the quantity that codes the strength of the stretch, and the one chemical step where curare acts.

**Solution of Problem 35.1.**

**1.** $0.75 + 0.75 = 1.5\,\mathrm{m}$.

**2.** $30 - 4 - 4 - 1 = 21\,\mathrm{ms}$ of conduction: $1.5/0.021
\approx 70\,\mathrm{m}/\mathrm{s}$.

**3.** About $10\,\mathrm{cm}$ more each way, $0.2\,\mathrm{m}$ in all: $0.2/70 \approx 3\,\mathrm{ms}$ more, some $33\,\mathrm{ms}$.

**4.** The electrical signal is the fibres’ activation; the contraction itself — the sliding of filaments and the pull on the [tendon](https://one-course.com/books/biology/2/en/chapter/9-muscles-and-joints#def-g10-muscles-and-joints-muscle) — takes some tens of milliseconds to develop enough force to move the leg.

**5.** A message from the cord to the brain and a command back travel $1.2\,\mathrm{m}$ at about $70\,\mathrm{m}/\mathrm{s}$ — $17\,\mathrm{ms}$ — plus several [synapses](#def-g12-stretch-reflex-synapse) and the brain’s own processing: at least $50\,\mathrm{ms}$, and a decision far longer. The kick is over before any brain signal can reach the motor [neurons](#def-g12-stretch-reflex-neuron).

**6.** At 200 per second, 2 [action potentials](#prop-g12-stretch-reflex-actionpotential) in $10\,\mathrm{ms}$ (0.2 at rest). The rate changes; the size and shape of each spike do not.

**7.** By a factor of 10.

**8.** At 20 per second the doses of transmitter are $50\,\mathrm{ms}$ apart and each fades before the next; the motor [neuron](#def-g12-stretch-reflex-neuron) never reaches threshold. At 200 per second they arrive $5\,\mathrm{ms}$ apart and add up: threshold is crossed and the motor [neuron](#def-g12-stretch-reflex-neuron) fires.

**9.** Fewer motor [neurons](#def-g12-stretch-reflex-neuron) reach threshold and each fires fewer [action potentials](#prop-g12-stretch-reflex-actionpotential): fewer motor units contract, at a lower rate, and the kick is weaker.

**10.** [Action potentials](#prop-g12-stretch-reflex-actionpotential) are all or none: their size is fixed by the [neuron](#def-g12-stretch-reflex-neuron), so it carries no information about the stimulus. Only the rate can vary.

**11.** Acetylcholine; after binding the receptors it is destroyed within milliseconds by an [enzyme](https://one-course.com/books/biology/2/en/chapter/15-enzymes-and-the-phenotype#def-g11-enzymes-and-phenotype-enzyme) in the cleft.

**12.** The receptors of the muscle fibre: acetylcholine is released but cannot act.

**13.** The release of acetylcholine from the vesicles. In the laboratory, acetylcholine applied directly to the muscle would make it contract under botulinum toxin (receptors free) but not under curare (receptors blocked).

**14.** The sensory fibre’s [action potentials](#prop-g12-stretch-reflex-actionpotential) and, since nothing reaches the cord, the motor [neuron](#def-g12-stretch-reflex-neuron)’s and the electromyogram; the muscle still contracts if its nerve is stimulated below the block.

**15.** Curare blocks reception, botulinum toxin blocks release, the anaesthetic blocks conduction: three steps, one silent muscle.

**16.** The sensory fibre also excites an interneuron that inhibits the hamstrings’ motor [neurons](#def-g12-stretch-reflex-neuron); their resting activity is suppressed, and the antagonist relaxes below its resting tone.

**17.** The [reflex](#def-g12-stretch-reflex-reflex) needs only the cord, which is intact at that level. Its exaggeration shows that the brain normally sends signals that damp the [reflex](#def-g12-stretch-reflex-reflex); without them the arc runs at full sensitivity.

**18.** The spindle, the sensory nerve or dorsal root, the cord’s grey matter at that level, the motor nerve or ventral root, the muscle itself. Stimulating the motor nerve directly and recording the muscle tells whether the motor side works; recording the sensory nerve during a stretch tells whether the sensory side does.

**19.** It tests, in one tap, the whole arc — sensory nerve, cord, motor nerve, muscle — and the brain’s damping of it: an absent, weak or exaggerated [reflex](#def-g12-stretch-reflex-reflex) points to a level of the nervous system before any other sign.

**20.** About $70\,\mathrm{m}/\mathrm{s}$; the frequency of the spindle’s [action potentials](#prop-g12-stretch-reflex-actionpotential); the binding of acetylcholine to the muscle’s receptors.
