2026-08-17 11:43:30: Plasma Membrane

This commit is contained in:
2026-08-17 11:43:31 -04:00
parent 98dd4b781b
commit 768acff079
4 changed files with 54 additions and 7 deletions
+20 -7
View File
@@ -146,9 +146,23 @@
"icon": "lucide-file", "icon": "lucide-file",
"title": "Cell Size" "title": "Cell Size"
} }
},
{
"id": "06a39bf497ec6f5c",
"type": "leaf",
"state": {
"type": "markdown",
"state": {
"file": "biology/Cell Structure and Function/Plasma Membrane.md",
"mode": "source",
"source": false
},
"icon": "lucide-file",
"title": "Plasma Membrane"
}
} }
], ],
"currentTab": 9 "currentTab": 10
}, },
{ {
"id": "25da4f0a48a8e7cd", "id": "25da4f0a48a8e7cd",
@@ -332,12 +346,13 @@
"obsidian-excalidraw-plugin:New drawing": false "obsidian-excalidraw-plugin:New drawing": false
} }
}, },
"active": "713a2ea9096a5d46", "active": "06a39bf497ec6f5c",
"lastOpenFiles": [ "lastOpenFiles": [
"biology/Cell Structure and Function/Cell Structure and Function.md", "Assets/Pasted image 20260817102835.png",
"biology/Cell Structure and Function/Plasma Membrane.md",
"biology/Cell Structure and Function/Cell Size.md", "biology/Cell Structure and Function/Cell Size.md",
"Pasted image 20260817103921.png", "biology/Cell Structure and Function/Cell Structure and Function.md",
"Pasted image 20260817102835.png", "Assets/Pasted image 20260817103921.png",
"biology/Chemistry of Life/Macromolecules.md", "biology/Chemistry of Life/Macromolecules.md",
"biology/Chemistry of Life/Structure of Water and Hydrogen Bonding.md", "biology/Chemistry of Life/Structure of Water and Hydrogen Bonding.md",
"biology/Chemistry of Life/chemistry of life.md", "biology/Chemistry of Life/chemistry of life.md",
@@ -360,8 +375,6 @@
"physics/Force and Translational Dynamics/Newton's Third Law.md", "physics/Force and Translational Dynamics/Newton's Third Law.md",
"physics/Force and Translational Dynamics/Spring Force.md", "physics/Force and Translational Dynamics/Spring Force.md",
"physics/Force and Translational Dynamics/Forces and Freebody Diagrams.md", "physics/Force and Translational Dynamics/Forces and Freebody Diagrams.md",
"physics/dynamics.md",
"physics/Kinetic and Static Friction.md",
"Assets/Pasted image 20260816081041.png", "Assets/Pasted image 20260816081041.png",
"physics/Work Energy and Power", "physics/Work Energy and Power",
"Assets/Pasted image 20260816073410.png", "Assets/Pasted image 20260816073410.png",

Before

Width:  |  Height:  |  Size: 123 KiB

After

Width:  |  Height:  |  Size: 123 KiB

Before

Width:  |  Height:  |  Size: 326 KiB

After

Width:  |  Height:  |  Size: 326 KiB

@@ -0,0 +1,34 @@
[[Cell Structure and Function]]
# Summary
* Phospholipids are amphipathic (both hydrophobic and hydrophilic): hydrophilic phosphate heads point towards water hydrophobic fatty acid tails point away.
* Embedded proteins have hydrophilic regions facing the cytosol or extracellular fluid. Also have hydrophobic regions that contact the fatty acid tails in membrane interior.
* Cholesterol (in vertebrate animals) acts as a fluidity buffer, preventing the membrane from getting too loose or stiff in head or cold.
* Fluid mosaic model describes a membrane with phospholipids, proteins, cholesterol, glyco(proteins/lipids) can move around the surface.
* Fatty acid affects fluidity, unsaturated with kinks increases it, while saturated makes the phospholipids pack tightly together.
* Glycoprotein and glycolipid sit on the outside and help with cell recognition.
Plasma membrane defines the edge of every cell, it's not a wall and is flexible.
# Components of the Plasma Membrane
Phospholipids are main structural framework as a bilayer. Hydrophobic fatty acid tails point away from aqueous environment, hydrophilic phosphate heads point towards.
Steroids (cholesterol in vertebrates) restrain phospholipid movement at high temps and prevents them from packing tightly at low temps.
Gylco(proteins/lipids) are carbohydrates, attached to proteins and lipids, helps cells recognize each other.
# Fluid Mosaic Model
Describes the plasma membrane as structural framework of phospholipids embedded with proteins, steroids(cholesterol) and glyco(steroids/lipids). Describes them as being able to move freely.
Fluid nature, phospholipids can move laterally like they're in a sea of lipids. Allows components to shift and form regions for different jobs.
Variety of molecules creates a mosaic appearance, thus the name.
# Factors Affecting Membrane Fluidity
* Temp
* Fatty acid composition (look below)
* Cholesterol content (look above)
# How Structure Connects to Function
Hydrophobic interior blocks polar molecules while allowing small non-polar molecules pass more freely. Basis for selective permeability.
Embedded proteins allow for specific interactions. Receptor proteins bind to signaling molecules, transport proteins move them.