Unit 4: Electrical phenomena in the biological system - Practice Quiz

BTY269 — Biophysics 60 Questions
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1 The electrical potential difference that exists across the membrane of a resting cell is called the:

Electrical Phenomena in Excitable Cells Easy
A. Equilibrium constant
B. Threshold potential
C. Resting membrane potential
D. Action potential

2 The inside of a resting excitable cell is electrically ___ relative to the outside.

Electrical Phenomena in Excitable Cells Easy
A. Negative
B. Variable
C. Positive
D. Neutral

3 The typical resting membrane potential of a neuron is approximately:

Electrical Phenomena in Excitable Cells Easy
A. mV
B. mV
C. mV
D. mV

4 Which of the following is an example of an electrically excitable cell?

Electrically Excitable Cells Easy
A. Adipose cell
B. Nerve cell
C. Cartilage cell
D. Red blood cell

5 Excitable cells are defined by their ability to:

Electrically Excitable Cells Easy
A. Produce collagen
B. Divide rapidly
C. Store lipids
D. Generate action potentials

6 Besides neurons, which cell type is classically considered electrically excitable?

Electrically Excitable Cells Easy
A. Muscle cells
B. Skin cells
C. Fat cells
D. Bone cells

7 A rapid, transient reversal of membrane potential in a neuron is called a(n):

Electrical Signals of Nerve Cells Easy
A. Gravitational potential
B. Osmotic potential
C. Action potential
D. Resting potential

8 The rising phase of a neuronal action potential is mainly due to the influx of which ion?

Electrical Signals of Nerve Cells Easy
A.
B.
C.
D.

9 The process in which the membrane potential becomes less negative is called:

Electrical Signals of Nerve Cells Easy
A. Repolarization
B. Depolarization
C. Hyperpolarization
D. Insulation

10 The return of the membrane potential toward its resting value after depolarization is called:

Electrical Signals of Nerve Cells Easy
A. Conduction
B. Depolarization
C. Repolarization
D. Excitation

11 According to the all-or-none principle, an action potential fires only when the stimulus reaches the:

Electrical Signals of Nerve Cells Easy
A. Baseline
B. Midpoint
C. Threshold
D. Ceiling

12 The brief period after an action potential during which a new one cannot be initiated is the:

Electrical Signals of Nerve Cells Easy
A. Refractory period
B. Rest interval
C. Latent period
D. Recovery gap

13 The ionic hypothesis proposes that membrane potentials arise from the movement of:

The Ionic Hypothesis and Rules of Ionic Electricity Easy
A. Lipids along the membrane
B. Proteins into the nucleus
C. Water across the membrane
D. Ions across the membrane

14 The equilibrium potential for a single ion can be calculated using the:

The Ionic Hypothesis and Rules of Ionic Electricity Easy
A. Arrhenius equation
B. Bernoulli equation
C. Nernst equation
D. Henderson equation

15 In a resting neuron, the concentration of is higher:

The Ionic Hypothesis and Rules of Ionic Electricity Easy
A. Inside the cell
B. In the membrane
C. Outside the cell
D. Equal on both sides

16 The pump that maintains ionic gradients by moving out and into the cell is the:

The Ionic Hypothesis and Rules of Ionic Electricity Easy
A. Calcium channel
B. ATPase
C. Proton symporter
D. Chloride pump

17 The equilibrium potential of an ion depends primarily on its:

The Ionic Hypothesis and Rules of Ionic Electricity Easy
A. Melting point
B. Molecular weight
C. Color
D. Concentration gradient

18 Proteins that allow ions to pass through the cell membrane are called:

Membrane proteins Easy
A. Ribosomes
B. Antibodies
C. Enzymes only
D. Ion channels

19 Membrane proteins that open or close in response to changes in voltage are called:

Membrane proteins Easy
A. Aquaporins
B. Ligand-gated channels
C. Voltage-gated channels
D. Structural proteins

20 Which type of membrane protein uses energy to move ions against their concentration gradient?

Membrane proteins Easy
A. Passive channel
B. Aquaporin
C. Receptor only
D. Pump

21 A neuron has an intracellular concentration of and an extracellular concentration of at . Using the Nernst equation , what is the approximate equilibrium potential for ?

The Ionic Hypothesis and Rules of Ionic Electricity Medium
A.
B.
C.
D.

22 During the rising phase (depolarization) of an action potential in a nerve cell, the membrane potential moves toward which value?

Electrical Phenomena in Excitable Cells Medium
A. The equilibrium potential ()
B. The resting membrane potential ()
C. The equilibrium potential ()
D. The equilibrium potential ()

23 Which statement best explains why action potentials are described as 'all-or-none' events?

Electrical Signals of Nerve Cells Medium
A. Subthreshold stimuli always produce a full action potential
B. The action potential can only travel in one direction because of the axon shape
C. The amplitude increases in proportion to stimulus intensity above threshold
D. Once threshold is reached, the amplitude of the action potential is independent of stimulus strength

24 The -ATPase pump maintains ionic gradients across the neuronal membrane. For each ATP hydrolyzed, it transports:

Membrane proteins Medium
A. out and in
B. in and out
C. out and in
D. in and out

25 According to the ionic hypothesis of Hodgkin and Huxley, the resting membrane potential is closest to rather than mainly because:

The Ionic Hypothesis and Rules of Ionic Electricity Medium
A. has a higher charge than
B. channels are permanently open at rest
C. The concentration of inside equals that outside
D. At rest, the membrane is far more permeable to than to

26 Which of the following cell types is NOT classified as electrically excitable?

Electrically Excitable Cells Medium
A. Cardiac muscle cells
B. Skeletal muscle fibers
C. Mature red blood cells (erythrocytes)
D. Motor neurons

27 Which factor most increases the conduction velocity of an action potential along an axon?

Electrical Signals of Nerve Cells Medium
A. Higher extracellular only
B. Reduced number of nodes of Ranvier
C. Decreased axon diameter and no myelination
D. Increased axon diameter and myelination

28 During the absolute refractory period of a neuron, a second action potential cannot be generated because:

Electrical Phenomena in Excitable Cells Medium
A. Voltage-gated channels are in the inactivated state
B. ATP is entirely depleted
C. channels are completely closed
D. The membrane is hyperpolarized beyond

29 A voltage-gated channel differs from a ligand-gated channel primarily in that it opens in response to:

Membrane proteins Medium
A. Changes in transmembrane voltage
B. A rise in intracellular pH
C. Binding of a neurotransmitter
D. Mechanical stretch of the membrane

30 The Goldman-Hodgkin-Katz (GHK) equation improves on the Nernst equation for calculating membrane potential because it:

The Ionic Hypothesis and Rules of Ionic Electricity Medium
A. Applies only at absolute zero temperature
B. Considers only a single permeant ion
C. Accounts for the relative permeabilities of multiple ion species
D. Ignores concentration gradients entirely

31 A graded potential differs from an action potential in that a graded potential:

Electrical Signals of Nerve Cells Medium
A. Always maintains constant amplitude over distance
B. Is generated only by voltage-gated channels
C. Follows the all-or-none principle
D. Decreases in amplitude with distance from its origin

32 If the extracellular concentration is experimentally raised, the resting membrane potential of a neuron will:

Electrical Phenomena in Excitable Cells Medium
A. Jump immediately to
B. Remain exactly unchanged
C. Become less negative (depolarize)
D. Become more negative (hyperpolarize)

33 Aquaporins are membrane proteins that primarily facilitate the transport of:

Membrane proteins Medium
A. ATP into the cell
B. ions during the action potential
C. Large proteins by endocytosis
D. Water molecules across the membrane

34 In cardiac pacemaker cells, the slow spontaneous depolarization toward threshold (the 'funny current') is carried mainly by:

Electrically Excitable Cells Medium
A. efflux through leak channels
B. influx through HCN channels
C. influx through inward rectifiers
D. efflux through the exchanger

35 If a nerve cell's membrane became equally permeable to and , its membrane potential would settle:

The Ionic Hypothesis and Rules of Ionic Electricity Medium
A. Roughly midway between and
B. At regardless of gradients
C. Exactly at
D. Exactly at

36 The after-hyperpolarization (undershoot) that follows an action potential is caused by:

Electrical Phenomena in Excitable Cells Medium
A. Complete shutdown of the pump
B. Reopening of voltage-gated channels
C. Delayed closure of voltage-gated channels
D. Sudden influx of

37 Coding of a very strong sensory stimulus in a single sensory neuron is achieved mainly by:

Electrical Signals of Nerve Cells Medium
A. Increasing the amplitude of each action potential
B. Lengthening each action potential duration
C. Increasing the frequency of action potentials
D. Reversing the direction of propagation

38 The selectivity filter of a voltage-gated channel allows to pass while excluding the smaller ion because:

Membrane proteins Medium
A. It coordinates with carbonyl oxygens that mimic its hydration shell
B. It uses ATP to actively select
C. It carries a strong positive charge repelling
D. It is too narrow for but wide for

39 In skeletal muscle fibers, the action potential triggers contraction by causing release primarily from the:

Electrically Excitable Cells Medium
A. Nucleus
B. Extracellular fluid only
C. Mitochondrial matrix
D. Sarcoplasmic reticulum

40 According to the ionic rules governing membrane potential, an ion is in electrochemical equilibrium when:

The Ionic Hypothesis and Rules of Ionic Electricity Medium
A. The membrane is completely impermeable to it
B. The net membrane potential equals
C. Its concentration gradient force is balanced by the electrical gradient force
D. Its intracellular and extracellular concentrations are equal

41 A neuron has intracellular mM and extracellular mM at . Using the Nernst equation, the equilibrium potential for is approximately closest to which value?

The Ionic Hypothesis and Rules of Ionic Electricity Hard
A. mV
B. mV
C. mV
D. mV

42 Applying the Goldman-Hodgkin-Katz equation, if the membrane permeability to suddenly increases to greatly exceed that of and , the resting membrane potential will:

The Ionic Hypothesis and Rules of Ionic Electricity Hard
A. Approach , becoming more negative
B. Approach , becoming positive
C. Remain unchanged near mV
D. Approach at mV

43 During the falling (repolarization) phase of an action potential, the membrane briefly hyperpolarizes below the resting potential. This afterhyperpolarization is BEST explained by:

Electrical Signals of Nerve Cells Hard
A. Activation of the ATPase alone
B. Sudden increase in conductance
C. Delayed closure of voltage-gated channels keeping elevated
D. Persistent opening of voltage-gated channels

44 Two axons differ only in diameter, axon B being 4 times the diameter of axon A. Assuming conduction velocity in unmyelinated fibers scales with , the velocity of axon B relative to A is approximately:

Electrical Signals of Nerve Cells Hard
A. faster
B. faster
C. faster
D. faster

45 The absolute refractory period of an excitable membrane is primarily attributable to which molecular state?

Electrical Phenomena in Excitable Cells Hard
A. Full closure of channels
B. Saturation of the pump
C. Depletion of intracellular
D. Inactivation of voltage-gated channels

46 The ATPase is electrogenic because it:

Membrane proteins Hard
A. Exports 2 for every 3 imported
B. Transports only down its gradient
C. Exports 3 for every 2 imported per ATP
D. Moves equal charges bidirectionally

47 A cell is permeable to both ( mV) and ( mV). If , the resting potential predicted by the chord conductance equation is approximately:

The Ionic Hypothesis and Rules of Ionic Electricity Hard
A. mV
B. mV
C. mV
D. mV

48 Tetraethylammonium (TEA) applied intracellularly to a squid axon during voltage clamp would primarily:

Electrically Excitable Cells Hard
A. Block the delayed current, prolonging repolarization
B. Accelerate channel inactivation
C. Block the inward current
D. Enhance the leak conductance

49 In saltatory conduction, the action potential 'jumps' between nodes of Ranvier. The primary biophysical advantage provided by the myelin sheath is:

Electrical Signals of Nerve Cells Hard
A. Lowered axoplasmic resistance
B. Reduced membrane capacitance and increased membrane resistance internodally
C. Increased density of channels along the internode
D. Enhanced ionic leak across internodal membrane

50 A subthreshold depolarizing current pulse produces a passive membrane response that decays exponentially. The membrane time constant is defined as:

Electrical Phenomena in Excitable Cells Hard
A.
B.
C.
D.

51 Voltage-gated channels contain a positively charged S4 transmembrane segment. Its principal functional role is to:

Membrane proteins Hard
A. Constitute the inactivation gate
B. Act as the voltage sensor that moves outward upon depolarization
C. Form the ion-selectivity filter
D. Bind ATP to power gating

52 Hodgkin and Huxley's voltage-clamp experiments distinguished and currents mainly by:

The Ionic Hypothesis and Rules of Ionic Electricity Hard
A. Injecting to abolish current
B. Blocking both currents simultaneously with TTX
C. Raising temperature to slow kinetics
D. Substituting extracellular with choline to isolate current

53 Cardiac ventricular myocytes exhibit a prolonged plateau phase absent in neuronal action potentials. This plateau results primarily from:

Electrically Excitable Cells Hard
A. Activation of the pump
B. Complete closure of all channels
C. Sustained channel activation only
D. Balance between inward current and outward current

54 Spatial summation at a neuron's axon hillock depends on the length (space) constant . A dendrite with higher internal (axial) resistance will show:

Electrical Signals of Nerve Cells Hard
A. No change in signal decay
B. A shorter , so distant EPSPs decay more before reaching the hillock
C. Increased conduction velocity of local potentials
D. A longer , improving distant signal propagation

55 The 'all-or-none' law of action potentials implies that once threshold is reached, increasing stimulus strength further will:

Electrical Phenomena in Excitable Cells Hard
A. Not change action potential amplitude but may increase firing frequency
B. Decrease the refractory period to zero
C. Increase the amplitude proportionally
D. Reverse the direction of propagation

56 Ligand-gated ion channels (ionotropic receptors) differ from voltage-gated channels chiefly in that they:

Membrane proteins Hard
A. Are always highly selective for a single ion species
B. Possess an intrinsic S4 voltage sensor
C. Open in response to chemical binding rather than membrane potential change
D. Require ATP hydrolysis to open

57 The Donnan equilibrium arises when impermeant intracellular anions (e.g., proteins) are present. A key consequence for a cell that cannot pump is:

The Ionic Hypothesis and Rules of Ionic Electricity Hard
A. Osmotic swelling due to unequal distribution of permeant ions
B. Perfect osmotic balance across the membrane
C. Elimination of the membrane potential
D. Loss of all intracellular

58 In a voltage-clamp step depolarization, the current is transient (rises then falls) while the current is sustained. The transient nature of is due to:

Electrically Excitable Cells Hard
A. Slow activation and no inactivation
B. Depletion of extracellular
C. A single gate that closes upon repolarization only
D. A fast activation gate followed by a slower inactivation gate

59 A demyelinating disease reduces internodal membrane resistance and increases capacitance. The most likely functional consequence is:

Electrical Signals of Nerve Cells Hard
A. Slowed or blocked conduction due to current leak between nodes
B. Complete loss of resting membrane potential
C. Increased action potential amplitude
D. Faster saltatory conduction

60 The relative refractory period differs from the absolute refractory period because during it:

Electrical Phenomena in Excitable Cells Hard
A. Only channels are inactivated
B. A stronger-than-normal stimulus can elicit an action potential as channels partly recover
C. The membrane is fully depolarized and unresponsive
D. No stimulus of any strength can trigger a response