Master’s-Level Cell Biology & Advanced Molecular Biology Notes
1. Introduction
Diffusion is the net movement of molecules from a region of higher chemical potential or concentration toward a region of lower chemical potential as a consequence of random molecular motion.
In biological membranes, diffusion is an important mechanism for movement of:
- Gases such as O₂ and CO₂
- Lipid-soluble molecules
- Water
- Small polar molecules
- Ions through membrane proteins
Two major forms are:
- Simple diffusion
- Facilitated diffusion
Both are passive transport mechanisms, meaning they do not directly require metabolic ATP hydrolysis.
2. The Fundamental Principle
The direction of passive transport is determined by the relevant electrochemical gradient.
For an uncharged solute:
[
\Delta \mu = RT\ln\left(\frac{C_2}{C_1}\right)
]
where:
- ( \Delta\mu ) = chemical potential difference
- (R) = gas constant
- (T) = absolute temperature
- (C_1,C_2) = concentrations
For ions, electrical potential must also be considered.
Thus:
Ion movement across a membrane is determined by the electrochemical gradient, not concentration gradient alone.
3. Simple Diffusion
Definition
Simple diffusion is the passive movement of molecules directly through the lipid bilayer from a region of higher concentration to a region of lower concentration, without the participation of specific transport proteins.
genui{“learning_viz”:{“type_id”:”DIFFUSION”,”locale_override”:”en-US”}}
HIGH CONCENTRATION
● ● ● ● ● ● ●
● ● ● ● ● ● ●
↓
══════════════════
lipid bilayer
══════════════════
↓
● ●
● ●
● ●
LOW CONCENTRATION
The process continues until net equilibrium is approached.
4. Which Molecules Undergo Simple Diffusion?
The lipid bilayer has a hydrophobic interior. Consequently, molecules that are small and nonpolar generally cross readily.
Readily permeable
- O₂
- CO₂
- N₂
- Steroid hormones
- Fat-soluble substances
- Some small uncharged molecules
Poorly permeable
- Na⁺
- K⁺
- Ca²⁺
- Cl⁻
- Glucose
- Amino acids
- Most large polar molecules
5. Why the Lipid Bilayer Is Selectively Permeable
The phospholipid bilayer contains:
Hydrophilic heads
○ ○ ○ ○ ○ ○ ○
│ │ │ │ │ │ │
│ hydrophobic │
│ core │
│ │ │ │ │ │ │
○ ○ ○ ○ ○ ○ ○
Hydrophilic heads
The hydrophobic core strongly restricts passage of charged and highly polar molecules.
Therefore, membrane permeability depends strongly on:
- Molecular size
- Charge
- Polarity
- Lipid solubility
- Membrane thickness
- Lipid composition
6. Facilitated Diffusion
Definition
Facilitated diffusion is the passive movement of a solute down its electrochemical gradient through a specific membrane transport protein.
Unlike simple diffusion, it requires a membrane protein.
Outside
● ● ● ●
↓
╭──────╮
│ │
│protein│
│ │
╰──────╯
↓
●
Inside
No direct ATP hydrolysis is required.
7. Two Major Types of Facilitated Diffusion
Facilitated diffusion occurs primarily through:
A. Channel proteins
Create hydrophilic pathways across the membrane.
B. Carrier proteins
Bind the transported solute and undergo conformational changes.
Facilitated diffusion
│
┌────┴────┐
↓ ↓
Channels Carriers
↓ ↓
Pore Binding
↓ ↓
Rapid Conformational
movement change
8. Channel-Mediated Diffusion
Channels form aqueous pathways through the membrane.
Examples:
- K⁺ channels
- Na⁺ channels
- Cl⁻ channels
- Ca²⁺ channels
- Aquaporins
Channels can provide very high transport rates.
9. Ion Channels
Ion channels are generally selective for particular ions.
For example:
K⁺ channel → preferential K⁺ permeability
Ca²⁺ channel → preferential Ca²⁺ permeability
Selectivity depends on:
- Pore diameter
- Charge distribution
- Amino-acid composition
- Coordination geometry
- Hydration/dehydration energetics
10. Aquaporins
Aquaporins are specialized membrane channels that facilitate rapid water movement.
They allow water to cross while excluding most ions.
This is important because unrestricted water movement through the hydrophobic membrane core would otherwise be relatively slow.
11. Carrier-Mediated Diffusion
Carrier proteins bind a substrate and undergo conformational changes.
General mechanism:
Solute outside
↓
┌───────────┐
│ Carrier │
└───────────┘
↓
Solute binds
↓
Conformational
change
↓
Solute released
↓
Inside
12. Example: GLUT Transporters
GLUT proteins facilitate glucose transport across the plasma membrane.
They operate through facilitated diffusion, not direct ATP hydrolysis.
A simplified mechanism:
GLUT outward-facing
↓
Glucose binds
↓
Conformational change
↓
GLUT inward-facing
↓
Glucose released
The direction depends on the glucose concentration gradient.
13. Alternating-Access Mechanism
Many carrier proteins operate through an:
Alternating-access mechanism
The binding site alternates between accessibility to the two sides of the membrane.
Outside-open
↓
Solute binding
↓
Occluded state
↓
Inside-open
↓
Solute release
This is fundamentally different from an open pore.
14. Simple vs Facilitated Diffusion
| Feature | Simple diffusion | Facilitated diffusion |
|---|---|---|
| Protein required | No | Yes |
| ATP directly required | No | No |
| Direction | Down gradient | Down electrochemical gradient |
| Specificity | Relatively low | High |
| Saturation | Generally no transporter saturation | Yes |
| Competition | Usually absent | Can occur |
| Examples | O₂, CO₂, steroid molecules | Glucose, ions, water |
15. Major Difference: Saturation
This is one of the most important Master’s-level distinctions.
Simple diffusion
Flux generally increases with increasing concentration gradient.
Facilitated diffusion
Transport proteins have a finite number of binding sites or channels.
Therefore, transport reaches a maximum.
[
J \rightarrow J_{\max}
]
16. Michaelis-Menten-Like Behavior
Carrier-mediated facilitated diffusion can show saturation kinetics.
A simplified relationship is:
[
J = \frac{J_{\max}[S]}{K_m+[S]}
]
where:
- (J) = transport flux
- (J_{\max}) = maximum transport capacity
- ([S]) = substrate concentration
- (K_m) = concentration producing half-maximal flux
This resembles enzyme kinetics because the carrier undergoes substrate binding and conformational cycling.
17. Why Facilitated Diffusion Is Saturable
Suppose a membrane contains a limited number of glucose transporters.
At low glucose:
Few transporters occupied
↓
Increasing glucose → increasing transport
At high glucose:
Most transporters occupied
↓
Transport approaches maximum
Adding more glucose cannot increase transport indefinitely.
18. Specificity
Facilitated diffusion is generally highly selective.
For example, a transporter may distinguish:
- Glucose
- Galactose
- Fructose
based on molecular structure.
This specificity arises from interactions between the substrate and amino acids lining the transporter.
19. Competition
Closely related molecules can compete for a carrier.
For example, structurally similar substrates may interact with the same transporter.
Therefore:
Facilitated diffusion can exhibit competitive inhibition.
This is another major distinction from simple diffusion.
20. Electrochemical Gradient
For ions, two forces act simultaneously:
Chemical force
Driven by concentration difference.
Electrical force
Driven by membrane potential.
Together:
[
\text{Electrochemical gradient}
\text{Chemical gradient}
+
\text{Electrical gradient}
]
21. Example: K⁺
Suppose:
- K⁺ concentration is high inside
- K⁺ concentration is low outside
The concentration gradient favors:
K⁺ → outside
But if the inside of the cell is electrically negative, the electrical gradient favors:
K⁺ → inside
The actual direction depends on the combined electrochemical gradient.
22. Nernst Equation
For an ion at equilibrium:
[
E_{ion} =
\frac{RT}{zF}
\ln
\left(
\frac{[ion]{out}}
{[ion]{in}}
\right)
]
At physiological conditions, a commonly used form is:
[
E_{ion}\approx
\frac{61.5}{z}
\log
\left(
\frac{[ion]{out}}
{[ion]{in}}
\right)
\text{ mV}
]
at approximately 37°C.
The equilibrium potential is the membrane potential at which the electrical and chemical driving forces balance.
23. Driving Force
Ion flux depends on the difference between:
[
V_m-E_{ion}
]
where:
- (V_m) = membrane potential
- (E_{ion}) = equilibrium potential
Thus, the presence of an ion channel does not automatically determine the direction of ion movement.
The electrochemical driving force determines it.
24. Channel vs Carrier
| Feature | Channel | Carrier |
|---|---|---|
| Pathway | Aqueous pore | Alternating-access pathway |
| Solute binding | Usually limited/selectivity filter | Specific binding site |
| Transport rate | Very high | Generally slower |
| Saturation | Functional limitation can occur | Strong saturation |
| Mechanism | Pore opening/closing | Conformational cycling |
| Examples | K⁺ channel, aquaporin | GLUT |
25. Channel Gating
Ion channels may open or close in response to specific stimuli.
Major types include:
Voltage-gated
Respond to membrane potential.
Ligand-gated
Respond to ligand binding.
Mechanically gated
Respond to mechanical force.
Temperature-sensitive
Respond to changes in temperature.
26. Voltage-Gated Channels
A voltage-gated channel changes conformation in response to membrane potential.
Example:
Voltage-gated Na⁺ channel
Important for action potentials.
Simplified:
Resting
↓
Depolarization
↓
Channel opens
↓
Na⁺ influx
↓
Further depolarization
27. Ligand-Gated Channels
A ligand binds directly to the channel and alters its conformation.
Example:
Nicotinic acetylcholine receptor
Acetylcholine binding opens the channel and permits cation movement.
28. Mechanically Gated Channels
Mechanical deformation of the membrane or associated structures can open the channel.
These channels contribute to:
- Touch sensation
- Hearing
- Osmosensation
- Mechanical stress responses
29. Osmosis
Osmosis is the net movement of water across a selectively permeable membrane driven by differences in water chemical potential.
Water may cross:
- Directly through the lipid bilayer, relatively slowly
- Through aquaporins, rapidly
Thus aquaporin-mediated water movement is a form of facilitated diffusion.
30. Tonicity
Tonicity describes the effect of a solution on cell volume.
Hypotonic
Water enters the cell.
Hypertonic
Water leaves the cell.
Isotonic
No sustained net water movement producing a change in cell volume.
Importantly, tonicity depends on effective osmoles, not simply total solute concentration.
31. Fick’s Law
For simple diffusion across a membrane, flux can be described conceptually by Fick’s law:
[
J=-D\frac{dC}{dx}
]
where:
- (J) = flux
- (D) = diffusion coefficient
- (dC/dx) = concentration gradient
For membrane transport, permeability and membrane thickness also influence the rate.
A useful form is:
[
J=P(C_1-C_2)
]
where (P) is the membrane permeability coefficient.
32. Factors Affecting Simple Diffusion
The rate increases with:
- Larger concentration gradient
- Greater membrane surface area
- Greater lipid solubility
- Higher temperature
- Smaller molecular size
The rate decreases with:
- Greater membrane thickness
- Increased molecular size
- Increased polarity
- Ionic charge
33. Factors Affecting Facilitated Diffusion
Transport depends on:
- Substrate concentration
- Number of transport proteins
- Transporter affinity
- Transporter turnover rate
- Membrane potential for ions
- Competition between substrates
- Regulation of transporter abundance
34. Passive Transport Does Not Mean “No Energy Is Involved”
An important conceptual distinction:
Passive transport does not require direct metabolic energy input to drive movement against a gradient.
Molecules possess chemical/electrochemical potential energy.
That stored gradient provides the thermodynamic driving force.
Thus passive transport can occur while the cell is metabolically active, but ATP hydrolysis is not directly coupled to the transport event.
35. Simple Diffusion and Facilitated Diffusion Are Both Passive
PASSIVE TRANSPORT
│
┌─────────┴─────────┐
↓ ↓
Simple Facilitated
diffusion diffusion
│ │
No protein Protein required
│ │
└─────────┬─────────┘
↓
Down gradient
36. Important Examples
Simple diffusion
- O₂
- CO₂
- Nitric oxide
- Steroid hormones
- Lipid-soluble molecules
Facilitated diffusion
- Glucose through GLUT
- Water through aquaporins
- K⁺ through K⁺ channels
- Na⁺ through ion channels
- Cl⁻ through chloride channels
37. Simple Diffusion vs Primary Active Transport
Do not confuse:
Simple diffusion
with:
Active transport
| Feature | Simple diffusion | Primary active transport |
|---|---|---|
| Protein | No | Yes |
| ATP hydrolysis | No | Usually yes |
| Direction | Down gradient | Can be against gradient |
| Example | O₂ | Na⁺/K⁺ ATPase |
38. Facilitated Diffusion vs Secondary Active Transport
This distinction is especially important.
Facilitated diffusion
All transported substances move down their electrochemical gradients.
Secondary active transport
At least one substrate is transported against its gradient, using energy stored in another ion gradient.
Example:
Na⁺-glucose cotransporter (SGLT)
Na⁺ gradient
↓
Na⁺ + glucose
↓
SGLT
↓
Glucose transported uphill
SGLT is therefore not facilitated diffusion.
39. Transporter Families
Important facilitated-diffusion transporter families include:
GLUT family
Glucose/fructose transport
Aquaporin family
Water transport
Ion-channel families
Na⁺, K⁺, Ca²⁺ and Cl⁻ transport
The diversity of transporter families enables cell-type-specific control of membrane permeability.
40. Regulation of Facilitated Diffusion
Cells can regulate transport by changing:
1. Transporter number
Insertion or removal from the plasma membrane.
2. Channel open probability
Changing gating.
3. Phosphorylation
Modifying transporter activity.
4. Substrate availability
Changing extracellular or intracellular concentration.
5. Protein expression
Changing the total number of transporters.
41. Example: GLUT4
GLUT4 provides a classic example of regulated facilitated diffusion.
In muscle and adipose cells:
Insulin → signaling pathway → GLUT4 translocation → increased glucose uptake
The glucose itself still moves down its concentration gradient through GLUT4.
Therefore:
Insulin regulates the availability of the transporter; it does not directly power glucose transport.
42. Experimental Measurement
Transport can be studied by measuring:
- Solute uptake
- Radiolabeled substrate movement
- Fluorescent substrate analogues
- Electrophysiological currents
- Membrane potential
- Patch-clamp recordings
- Transporter expression
- Kinetic parameters
43. Patch-Clamp Studies
Patch-clamp electrophysiology can measure ion-channel activity at very high temporal resolution.
It can reveal:
- Channel opening
- Channel closing
- Single-channel currents
- Conductance
- Voltage dependence
- Ligand dependence
44. Important Master’s-Level Concept: Permeability ≠ Conductance
These terms should not be treated as identical.
Permeability
Describes how readily a membrane allows a particular substance to cross.
Conductance
Describes the ease with which electrical current passes through an ion channel or membrane.
A membrane can have substantial permeability to an ion without simply being described by electrical conductance alone.
45. Important Master’s-Level Concept: Selectivity vs Specificity
Ion channels can be highly selective for ions while permitting enormous numbers of ions to pass rapidly.
Carriers tend to have highly specific substrate-binding sites and undergo conformational cycles.
Therefore:
Channels emphasize selective pore permeation; carriers emphasize selective binding and alternating access.
46. Comparison of the Four Major Transport Categories
| Feature | Simple diffusion | Facilitated diffusion | Primary active transport | Secondary active transport |
|---|---|---|---|---|
| Protein required | No | Yes | Yes | Yes |
| ATP directly used | No | No | Yes | No |
| Down gradient | Yes | Yes | Not necessarily | One substrate may move uphill |
| Saturable | No transporter saturation | Yes | Yes | Yes |
| Example | O₂ | GLUT | Na⁺/K⁺ ATPase | SGLT |
47. Examination Short Note
Simple and Facilitated Diffusion
Simple and facilitated diffusion are passive mechanisms of membrane transport. Simple diffusion involves direct movement of molecules through the lipid bilayer down their concentration gradient and is most important for small nonpolar and lipid-soluble molecules such as oxygen, carbon dioxide and steroid hormones. Facilitated diffusion requires specific membrane proteins, including channels and carriers, but does not directly consume ATP. Channels provide hydrophilic pathways for ions or water, whereas carriers bind substrates and undergo conformational changes, often through an alternating-access mechanism. Facilitated transport is characterized by specificity, competition and saturation because the number and turnover of transport proteins are finite. For ions, movement is determined by the electrochemical gradient, which combines concentration and electrical forces. Examples include GLUT-mediated glucose transport, aquaporin-mediated water transport and ion-channel-mediated movement of Na⁺, K⁺, Ca²⁺ and Cl⁻. Thus, both processes are passive but differ fundamentally in their dependence on transport proteins and their kinetic properties.
48. Viva Questions
Q1. Define simple diffusion.
Passive movement of a substance directly through the lipid bilayer down its concentration gradient.
Q2. Define facilitated diffusion.
Passive movement of a substance down its electrochemical gradient through a specific membrane transport protein.
Q3. Does facilitated diffusion require ATP?
No.
Q4. Why is facilitated diffusion saturable?
Because the number of functional transport proteins and their turnover rates are finite.
Q5. Give an example of a facilitated-diffusion carrier.
GLUT.
Q6. Give an example of a facilitated-diffusion channel.
A voltage-gated K⁺ channel.
Q7. What is the major driving force for ion movement?
The electrochemical gradient.
Q8. What is an alternating-access transporter?
A carrier whose binding site alternates between accessibility to the two sides of the membrane.
Q9. What is the function of aquaporins?
Rapid and selective water transport across membranes.
Q10. Is SGLT facilitated diffusion?
No. It is secondary active transport because Na⁺ movement down its electrochemical gradient drives glucose transport against its gradient.
Q11. Why can steroid hormones cross membranes readily?
They are relatively hydrophobic and lipid-soluble.
Q12. Why do Na⁺ and K⁺ require membrane proteins?
Their charged nature makes passage through the hydrophobic lipid core energetically unfavorable.
49. One-Minute Revision
DIFFUSION
│
┌─────────┴─────────┐
↓ ↓
SIMPLE FACILITATED
│ │
Lipid bilayer Membrane protein
│ │
No transporter Channel / Carrier
│ │
└─────────┬─────────┘
↓
PASSIVE TRANSPORT
↓
Down electrochemical
gradient
Remember
Simple diffusion:
No protein + no ATP + down gradient
Facilitated diffusion:
Protein + no ATP + down electrochemical gradient + specificity + saturation
Master’s-level key point:
For ions, always think in terms of the electrochemical gradient, not concentration gradient alone.
Simple and Facilitated Diffusion
Master’s-Level Cell Biology & Advanced Molecular Biology
1. Introduction
Diffusion is one of the fundamental mechanisms by which substances move across biological membranes. It does not require direct metabolic energy expenditure in the form of ATP hydrolysis.
Two major forms of passive membrane diffusion are:
- Simple diffusion
- Facilitated diffusion
2. Fundamental Principle of Diffusion
Molecules are in continuous random motion. When a concentration difference exists across a membrane, random molecular motion produces a net movement toward the region of lower concentration.
● ● ● ● ● ● ● ● ●
↓ ↓ ↓ ↓ ↓
↓ ↓ ↓ ↓ ↓
● ● ●
LOW CONCENTRATION
Diffusion continues until the system approaches equilibrium. Importantly, molecules continue to move at equilibrium; it is the net movement that becomes approximately zero.
3. Chemical Potential and Diffusion
For an uncharged solute, the chemical potential can be expressed in terms of concentration.
Where:
- Δμ = difference in chemical potential
- R = universal gas constant
- T = absolute temperature
- C1, C2 = concentrations
4. Simple Diffusion
Outside — HIGH CONCENTRATION
● ● ● ● ● ● ● ●
↓ ↓ ↓ ↓
● ● ●
Inside — LOW CONCENTRATION
5. Molecules That Undergo Simple Diffusion
Readily permeable substances
Small, nonpolar and lipid-soluble molecules generally cross the lipid bilayer relatively easily.
Poorly permeable substances
6. Why Is the Lipid Bilayer Selectively Permeable?
The interior of the phospholipid bilayer is hydrophobic. Charged and highly polar molecules encounter a significant energetic barrier when attempting to enter this hydrophobic region.
○ ○ ○ ○ ○ ○ ○ ○
Small nonpolar molecules can cross relatively easily.
○ ○ ○ ○ ○ ○ ○ ○
7. Factors Affecting Simple Diffusion
The rate of simple diffusion depends on:
- Magnitude of the concentration gradient
- Membrane surface area
- Membrane thickness
- Temperature
- Molecular size
- Lipid solubility
- Membrane lipid composition
- Degree of molecular polarity
8. Fick’s Law of Diffusion
The basic relationship between diffusion flux and a concentration gradient is described by Fick’s first law.
Where:
- J = diffusion flux
- D = diffusion coefficient
- dC/dx = concentration gradient
The negative sign indicates that diffusion occurs down the concentration gradient.
Membrane form
Where:
- P = permeability coefficient
- C1 − C2 = concentration difference
9. Facilitated Diffusion
Unlike simple diffusion, facilitated diffusion requires a membrane protein. However, the transport process itself does not directly consume ATP.
EXTRACELLULAR SIDE
● ● ● ● ●
PROTEIN
↓
INTRACELLULAR SIDE
10. Major Types of Facilitated Diffusion
Channel-Mediated
Membrane channels create hydrophilic pathways through which ions or water can move.
- K+ channels
- Na+ channels
- Ca2+ channels
- Cl− channels
- Aquaporins
Carrier-Mediated
Carrier proteins bind specific substrates and undergo conformational changes that expose the binding site alternately to opposite sides of the membrane.
- GLUT transporters
- Some amino-acid transport systems
11. Channel-Mediated Facilitated Diffusion
Channel proteins form aqueous pathways through the hydrophobic membrane. They are particularly important for rapid movement of ions.
Outside
Na+ K+ Ca2+
PORE
↓
Inside
12. Ion Selectivity
Ion channels are not simply holes in the membrane. They contain specialized structural regions that determine which ions can pass.
Selectivity may depend on:
- Pore diameter
- Charge distribution
- Amino-acid side chains
- Coordination geometry
- Hydration and dehydration energetics
13. Aquaporins
Aquaporins are membrane channel proteins that facilitate rapid and selective water movement across biological membranes.
They allow water molecules to pass efficiently while restricting the passage of most ions and protons.
14. Carrier-Mediated Facilitated Diffusion
Carrier proteins bind substrates and undergo conformational changes that transfer the substrate across the membrane.
1. OUTWARD-OPEN
Transporter exposed to extracellular space
↓2. SUBSTRATE BINDING
Glucose binds to transporter
↓3. CONFORMATIONAL CHANGE
Binding site becomes inaccessible from outside
↓4. INWARD-OPEN
Glucose is released into the cell
15. Alternating-Access Mechanism
↓
Substrate binding
↓
Occluded state
↓
Inside-open
↓
Substrate release
16. GLUT Transporters
GLUT proteins are facilitative glucose transporters. They transport glucose down its concentration gradient.
Extracellular glucose
● ● ● ● ●
↓● ●
Intracellular glucose
17. Saturation of Facilitated Diffusion
A fundamental characteristic of carrier-mediated transport is saturation.
Because cells contain a finite number of transporter molecules, transport cannot increase indefinitely as substrate concentration increases.
Low substrate concentration
Few transporters occupied → transport increases with substrate concentration
↓High substrate concentration
Most transporters occupied → transport approaches maximum
18. Michaelis-Menten-Like Transport Kinetics
Carrier-mediated facilitated diffusion can exhibit saturation kinetics similar to enzyme-substrate interactions.
Where:
- J = transport flux
- Jmax = maximum transport flux
- [S] = substrate concentration
- Km = substrate concentration producing approximately half-maximal transport
19. Specificity of Facilitated Diffusion
Transport proteins contain binding sites or selectivity filters that determine which molecules or ions can cross.
Specificity depends on:
- Molecular size
- Shape
- Charge
- Hydrogen-bonding interactions
- Hydrophobic interactions
- Amino-acid composition of the transporter
20. Competition Between Substrates
Structurally related molecules can compete for a carrier binding site. Therefore, facilitated diffusion can display competitive transport phenomena.
21. Electrochemical Gradient
For ions, movement depends on two forces:
- Chemical gradient — difference in ion concentration.
- Electrical gradient — difference in electrical potential across the membrane.
Therefore, an ion can move against its concentration gradient if the electrical component of the electrochemical gradient is sufficiently strong.
22. Nernst Equation
The equilibrium potential for an ion can be calculated using the Nernst equation.
Where:
- Eion = equilibrium potential for the ion
- R = gas constant
- T = absolute temperature
- z = ionic charge
- F = Faraday constant
Approximate physiological form
This approximate form applies at approximately 37°C.
23. Electrochemical Driving Force
Where:
- Vm = membrane potential
- Eion = equilibrium potential of the ion
24. Example: Potassium Movement
Suppose intracellular K+ concentration is much greater than extracellular K+ concentration.
The concentration gradient tends to drive K+ outward. However, the negatively charged intracellular environment tends to attract positively charged K+ inward.
Chemical force
K+ → OUT
+
Electrical force
K+ → IN
↓
Net movement depends on the electrochemical gradient.25. Channel Gating
Ion channels can switch between conducting and non-conducting states. This process is called gating.
Major types
- Voltage-gated channels
- Ligand-gated channels
- Mechanically gated channels
- Temperature-sensitive channels
26. Voltage-Gated Channels
Voltage-gated channels respond to changes in membrane potential.
Voltage-gated Na+ channels are particularly important in action potential generation.
27. Ligand-Gated Channels
Ligand-gated channels respond to binding of a chemical messenger.
Ligand + Receptor
↓Conformational change
↓Channel opening
↓Ion movement
The nicotinic acetylcholine receptor is a classical example.
28. Mechanically Gated Channels
Mechanical deformation of the membrane or associated structures can regulate channel opening.
They participate in:
- Touch sensation
- Hearing
- Osmosensation
- Mechanical stress responses
29. Osmosis
Water can cross biological membranes through the lipid bilayer and, in many cells, much more rapidly through aquaporins.
30. Tonicity
| Condition | Effect on Cell |
|---|---|
| Hypotonic | Water tends to enter the cell; cell volume increases. |
| Hypertonic | Water tends to leave the cell; cell volume decreases. |
| Isotonic | No sustained net water movement causing a change in cell volume. |
31. Does Passive Transport Require Energy?
However, passive transport is not independent of thermodynamics. The concentration or electrochemical gradient represents stored free energy that drives the movement.
Thus:
32. Simple Diffusion vs Facilitated Diffusion
| Feature | Simple Diffusion | Facilitated Diffusion |
|---|---|---|
| Transport protein | No | Yes |
| Direct ATP requirement | No | No |
| Direction | Down concentration gradient | Down electrochemical gradient |
| Specificity | Low | High |
| Saturation | No transporter saturation | Yes |
| Competition | Generally absent | Can occur |
| Examples | O2, CO2, steroids | GLUT, ion channels, aquaporins |
33. Channel vs Carrier
| Feature | Channel | Carrier |
|---|---|---|
| Basic structure | Aqueous pore | Binding site with conformational states |
| Mechanism | Solute passes through open pathway | Alternating-access conformational change |
| Transport speed | Generally very high | Generally slower |
| Substrate binding | Limited/selectivity filter | Specific binding site |
| Examples | K+ channel, aquaporin | GLUT transporter |
34. Regulation: GLUT4 Example
GLUT4 is an insulin-responsive glucose transporter found particularly in skeletal muscle and adipose tissue.
35. Facilitated Diffusion vs Active Transport
| Feature | Facilitated Diffusion | Primary Active Transport | Secondary Active Transport |
|---|---|---|---|
| Protein required | Yes | Yes | Yes |
| ATP directly used | No | Yes | No |
| Movement | Down gradient | Can be uphill | One solute may move uphill |
| Example | GLUT | Na+/K+ ATPase | SGLT |
36. Important Contrast: SGLT
The sodium-glucose cotransporter (SGLT) should not be classified as facilitated diffusion.
Na+ electrochemical gradient
↓Na+ moves downhill
↓SGLT couples Na+ movement to glucose uptake
↓Glucose can move against its concentration gradient
37. Permeability vs Conductance
| Property | Permeability | Conductance |
|---|---|---|
| Meaning | Ability of a membrane to allow a substance to cross | Ease with which electrical current passes |
| Common context | Membrane transport | Ion channels/electrophysiology |
38. Experimental Study of Diffusion
Membrane transport can be investigated using:
- Radiolabeled substrate uptake
- Fluorescent substrate analogues
- Patch-clamp electrophysiology
- Live-cell fluorescence microscopy
- Membrane potential measurements
- Transporter expression analysis
- Transport kinetics
- Mutational analysis
39. Patch-Clamp Electrophysiology
Patch-clamp recording allows direct measurement of electrical currents through ion channels.
It can provide information about:
- Channel opening and closing
- Single-channel currents
- Conductance
- Voltage dependence
- Ligand dependence
- Channel kinetics
40. Master’s-Level Integration
Concept 1 — Passive does not mean thermodynamically inactive
Passive transport exploits an existing chemical or electrochemical gradient. No direct ATP hydrolysis is coupled to the transport event.
Concept 2 — Ion transport requires electrochemical analysis
Concentration gradient and electrical gradient must be considered together.
Concept 3 — Carriers are saturable
Finite transporter number and finite turnover produce a maximum transport rate.
Concept 4 — Channels and carriers use fundamentally different mechanisms
Channels create aqueous pathways, whereas carriers undergo conformational cycles involving substrate binding.
Concept 5 — Transport regulation can occur without changing the basic mechanism
For example, insulin increases glucose uptake by increasing GLUT4 availability at the plasma membrane; glucose still moves through GLUT4 by facilitated diffusion.
41. High-Yield Examination Table
| Question | Answer |
|---|---|
| O2 crosses membrane by? | Simple diffusion |
| CO2 crosses membrane by? | Simple diffusion |
| Glucose through GLUT? | Facilitated diffusion |
| Water through aquaporin? | Facilitated diffusion |
| Na+ through an open ion channel? | Facilitated diffusion |
| Na+/K+ ATPase? | Primary active transport |
| SGLT? | Secondary active transport |
| Major determinant of ion movement? | Electrochemical gradient |
| Why are carriers saturable? | Finite number and turnover of transport proteins |
42. Viva Questions
Q1. What is simple diffusion?
Passive movement of a substance directly through the lipid bilayer down its concentration gradient.
Q2. What is facilitated diffusion?
Passive movement through a membrane protein down the electrochemical gradient.
Q3. Does facilitated diffusion require ATP?
No.
Q4. Why is facilitated diffusion saturable?
Because the number of transport proteins and their turnover rates are finite.
Q5. Give an example of a carrier.
GLUT.
Q6. Give an example of a channel.
Voltage-gated K+ channel.
Q7. What is the role of aquaporins?
They facilitate rapid and selective movement of water.
Q8. What determines the direction of ion movement?
The electrochemical gradient.
Q9. Is SGLT facilitated diffusion?
No. It is secondary active transport.
Q10. What is alternating access?
A mechanism in which a carrier’s binding site alternates between accessibility to the two sides of the membrane.
43. One-Minute Revision
Simple diffusion
No transporter → No direct ATP → Down concentration gradient
Facilitated diffusion
Transport protein → No direct ATP → Down electrochemical gradient
Channels
Hydrophilic pore → Very rapid ion/water movement
Carriers
Substrate binding → Conformational change → Alternating access
Facilitated transport
Specific + saturable + potentially competitive
Ions
Always consider the electrochemical gradient
GLUT
Facilitated diffusion
SGLT
Secondary active transport
Na+/K+ ATPase
Primary active transport
44. Final Take-Home Message
Simple and facilitated diffusion are passive mechanisms that allow substances to move down existing chemical or electrochemical gradients.
Simple diffusion occurs directly through the lipid bilayer and is particularly important for small nonpolar and lipid-soluble molecules.
Facilitated diffusion requires specific membrane proteins, either channels or carriers. It is characterized by selectivity and, particularly for carriers, saturation and competition.
For ions, the decisive concept is the electrochemical gradient, which integrates both concentration and electrical forces.
Understanding these mechanisms provides the foundation for interpreting membrane potential, neuronal signalling, epithelial transport, glucose homeostasis, osmoregulation and active transport.