Study Guide

Membrane Structure (Core: Cells)

IB Biology HLΒ· Theme C: Interaction and Interdependence, Unit 3: Core CellsΒ· 6 min read

1. The Phospholipid Bilayer Foundationβ˜…β˜…β˜†β˜†β˜†β± 15 min

πŸ“˜ Definition

Phospholipid Bilayer

A double layer of amphipathic phospholipids that forms the core of all biological membranes. Hydrophilic heads face the aqueous environment, while hydrophobic tails face inward to avoid water contact.

Example:

Forms the permeability barrier of all cell and organelle membranes

Phospholipids spontaneously arrange into a bilayer in aqueous environments due to their amphipathic nature. This arrangement gives membranes self-sealing properties, allowing them to repair small breaks and fuse with other membranes. The bilayer is ~7-10 nm thick, too small to resolve with a light microscope.

πŸ“ Worked Example

Predict the arrangement of phospholipids mixed with pure oil (non-polar) and explain why this arrangement forms.

  1. 1

    First, recall that phospholipid heads are hydrophilic (attracted to polar water) and tails are hydrophobic (attracted to non-polar molecules like oil).

  2. 2

    In a non-polar oil environment, the hydrophobic tails will face outward to interact with the oil, while hydrophilic heads face inward away from the oil.

  3. 3

    This forms an inverse bilayer, driven by the amphipathic nature of phospholipids that maximizes favorable intermolecular interactions.

2. The Fluid Mosaic Modelβ˜…β˜…β˜…β˜†β˜†β± 20 min

πŸ“˜ Definition

Fluid Mosaic Model

The current model of cell membrane structure, describing membranes as a mosaic of embedded protein molecules within a flexible, fluid phospholipid bilayer.

Example:

Proposed by Singer and Nicolson (1972), replacing the older Davson-Danielli sandwich model

The term 'fluid' refers to the ability of most phospholipids and proteins to move laterally within the plane of the membrane. Flip-flop movement of phospholipids from one side of the bilayer to the other is very rare. The term 'mosaic' refers to the mix of different lipids, proteins and carbohydrates distributed throughout the membrane. Membrane fluidity is affected by temperature, fatty acid saturation, and cholesterol content.

πŸ“ Worked Example

Explain why unsaturated fatty acids increase membrane fluidity compared to saturated fatty acids.

  1. 1

    Unsaturated fatty acids have double bonds in their hydrocarbon tails, which create rigid kinks in the chain structure.

  2. 2

    These kinks prevent adjacent unsaturated fatty acid tails from packing tightly together in the bilayer core.

  3. 3

    Looser packing reduces weak hydrophobic interactions between tails, allowing more movement of membrane components and increasing overall fluidity.

Exam tip:

When asked to describe the fluid mosaic model, you must mention both the fluid property (lateral movement of components) and the mosaic property (mixed embedded components) to earn full marks.

3. Membrane Components and Their Functionsβ˜…β˜…β˜…β˜†β˜†HL only⏱ 20 min

  • Cholesterol: Modulates membrane fluidity in animal cells: reduces fluidity at moderate temperatures by restricting movement, prevents stiffening at low temperatures by blocking tight packing of tails.

  • Integral proteins: Permanently embedded in the bilayer, most span the full membrane (transmembrane), have hydrophobic regions that interact with the bilayer core.

  • Peripheral proteins: Temporarily attached to the membrane surface or integral proteins, hydrophilic, do not enter the hydrophobic core.

  • Glycolipids/Glycoproteins: Carbohydrate chains attached to lipids/proteins on the outer membrane surface, function in cell recognition, signaling and immune compatibility.

Different cell types and organelles have distinct membrane component ratios matching their function. For example, the inner mitochondrial membrane has a very high protein content to support oxidative phosphorylation, while plasma membranes have a high proportion of glycolipids for cell recognition.

πŸ“ Worked Example

Distinguish between integral and peripheral membrane proteins by structure, location and function.

  1. 1

    Structure and location: Integral proteins are permanently embedded in the phospholipid bilayer, with hydrophobic regions that interact with the hydrophobic core. Transmembrane integral proteins span the entire bilayer, with domains exposed on both sides.

  2. 2

    Peripheral proteins are loosely bound to the membrane surface (either phospholipid heads or exposed regions of integral proteins) and do not enter the hydrophobic core.

  3. 3

    Function: Common integral protein roles include transport of charged molecules across membranes, enzymatic catalysis, and hormone receptor binding. Common peripheral roles include cytoskeleton anchoring, signal transduction, and enzyme activity regulation.

4. Experimental Evidence for the Fluid Mosaic Modelβ˜…β˜…β˜…β˜…β˜†β± 15 min

The classic Frye and Edidin cell fusion experiment provided direct evidence for the lateral movement of membrane proteins, supporting the fluid property of the model.

πŸ“ Worked Example

Explain how the Frye and Edidin experiment supported the fluid nature of cell membranes.

  1. 1

    Mouse and human cells were fused to form a single hybrid cell. Membrane proteins from each species were labeled with different colored fluorescent markers.

  2. 2

    Immediately after fusion, mouse proteins were restricted to one half of the hybrid membrane, and human proteins to the other half.

  3. 3

    After 40 minutes of incubation at 37Β°C, the two sets of proteins were fully mixed across the entire membrane.

  4. 4

    If membranes were rigid (as older models proposed), proteins would remain separated. The observed mixing confirmed lateral movement, supporting the fluid model.

5. Common Pitfalls

Wrong move:

Confusing the fluid mosaic model with the older Davson-Danielli sandwich model

Why:

Students often mix up the location of proteins, forgetting the sandwich model proposed continuous protein layers on both sides of the bilayer

Correct move:

Remember the fluid mosaic model has proteins embedded throughout the bilayer, not just as outer continuous layers

Wrong move:

Claiming cholesterol always decreases membrane fluidity

Why:

Students only memorize that cholesterol restricts movement, ignoring its temperature-dependent dual role

Correct move:

Cholesterol modulates fluidity: reduces it at high/moderate temperatures, increases it at low temperatures by preventing tight packing

Wrong move:

Stating all membrane proteins move freely within the bilayer

Why:

Students overgeneralize the fluid property, forgetting that some proteins are anchored for structural roles

Correct move:

Most membrane components can move laterally, but some proteins are anchored to the cytoskeleton and cannot move

Wrong move:

Confusing glycolipids and glycoproteins, forgetting their function

Why:

Students mix up what the carbohydrate chain is attached to, and omit their key role in exams

Correct move:

Glycolipids = carbohydrate bound to lipid; glycoproteins = carbohydrate bound to protein; both function in cell recognition

6. Quick Reference Cheatsheet

Component

Location

Key Function

Phospholipid

Bilayer core

Forms permeability barrier, provides fluidity

Cholesterol

Between phospholipid tails (animal cells)

Modulates membrane fluidity

Integral protein

Embedded in bilayer

Transport, signaling, catalysis

Peripheral protein

Membrane surface

Anchoring, signaling regulation

Glycolipid/Glycoprotein

Outer membrane surface

Cell recognition, immune compatibility

When this came up on past exams

AI-estimated based on syllabus patterns β€” cross-check with official past papers for accuracy. Use only as revision-focus signals.

  • 2025 Β· 1

    Identify membrane components from diagram

  • 2023 Β· 2

    Describe the fluid mosaic model

  • 2022 Β· 1

    Compare integral vs peripheral proteins

Going deeper

What's Next

Understanding membrane structure is the foundation for studying how molecules cross membranes, which is the next core subtopic in this unit. This knowledge also underpins almost all subsequent cell biology topics in IB Biology HL, including cell signaling, immune response, bulk transport, and energy processing. You will apply your understanding of embedded membrane proteins to topics like the electron transport chain in respiration and photosynthesis, where membrane structure is critical for ATP production. Mastering the fluid mosaic model and component roles is essential for success in both Paper 1 multiple choice and Paper 2 extended response questions.