2026-08-17 14:29:08: Cell Compartmentalization

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[[biology]]
* In the exam, always connect an organelle to a specific function
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[[Cell Structure and Function]]
Cell compartmentalization is how eukaryotic cells use membranes to separate specific metabolic processes and enzymatic reactions.
# Summary
* Internal membranes help cells separate competing interactions and increase surface area where reactions occur
* Each organelle maintains its own conditions
* Folded membrane like mitochondrial cristae and chloroplast thylakoids pack more reaction surface into a small space
* Prokaryotes lack membrane bound organelles, so translation and transcription can occur in the same space
# Eukaryotic Organization: Separate Compartments for Separate Jobs
Eukaryotic cells have membranes, prokaryotic cells don't. Eukaryotic cells have organelles which are compartmentalized because they're surrounded by a membrane.
# Nucleus
* Houses DNA and cell control
* Surrounded by a double membrane with nuclear pores for transport
* Creates a protected environment for DNA storage and RNA production
* Separates transcription (making DNA from RNA) from translation (making proteins from RNA)
# Endoplasmic Reticulum
* Rough ER creates specialized area for protein folding and quality control. Connects directly to nuclear membrane for efficient RNA transport.
* Smooth ER no ribosomes, specializes in lipid production and detoxification. Separate environment for lipid synthesis enzymes, stores calcium ions in a controlled safe space.
# Golgi Apparatus
* Receives proteins from ER and modifies them
* Sorts and packages proteins into vesicles for delivery
* Works a sequential processing line with enzymes in different cisternae
* Different cisternae have different conditions for different processing steps
# Lysosomes
* Contains hydrolytic enzymes that work best in acidic environments
* Breaks down cellular waste, old organelles, and foreign material
* Keeps destructive enzymes safely contained
# Mitochondria
* Generates ATP from aerobic respiration
* Double membrane, outer is smooth and protective, inner is folded into a cristae to increase SA
* Contains own DNA and ribosomes (evidence they evolved from once free living prokaryotes)
# Peroxisomes
* Breaks down fatty acids and toxic molecules
* Enzymes that produce and break down hydrogen peroxide
* Safe contained place for these dangerous reactions
# Vacuoles
* Stores nutrients waste products and water
* Helps maintain turgor pressure in plant cells
* Isolated environment for materials that might hamper other processes
# Why Compartmentalization Improves Efficiency
* Creates specialized environments (e.g. enzymes like acidic environments, others don't)
* Increases surface area for reactions
* Separates competing reactions, some processes would interfere with others
* Allows proteins to go where they're needed as the membranes hold proteins
* Prokaryotic cells can do translation and transcription in the same region because they lack compartmentalization, limiting how complex they can become.
| Term | Definition |
| ------------------------------- | --------------------------------------------------------------------------------------------------------------------------------------------- |
| compartmentalization | The division of the eukaryotic cell into distinct membrane-bound regions that separate different metabolic processes and enzymatic reactions. |
| enzymatic reaction | Chemical reactions catalyzed by enzymes that occur within specific cellular compartments to facilitate metabolic processes. |
| eukaryotic cell | Cells that contain a membrane-bound nucleus and internal membrane-bound organelles, found in animals, plants, fungi, and protists. |
| internal membrane | Membranes within eukaryotic cells that divide the cell into compartments with specialized functions. |
| intracellular metabolic process | Chemical reactions and pathways that occur within the cell to build up or break down molecules for energy and biosynthesis. |
| membrane-bound organelle | Specialized structures within eukaryotic cells enclosed by a membrane that perform specific cellular functions. |
| membrane-bound structure | Organelles and compartments in eukaryotic cells that are enclosed by a lipid bilayer membrane, separating their contents from the cytoplasm. |
| organelle | Membrane-bound or non-membrane-bound structures within eukaryotic cells that perform specific cellular functions. |
| surface area | The total area of a membrane available for chemical reactions and cellular processes to occur. |
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Eukaryotic cells have membrane bound nucleus and other organelles, while prokaryotic lacks these and has DNA free in the cytoplasm. Eukaryotic cells have membrane bound nucleus and other organelles, while prokaryotic lacks these and has DNA free in the cytoplasm.
Prokaryotic properties: Prokaryotic properties:
* Nucleoid region - circular dna not wrapped in membranes * Nucleoid region - circular DNA not wrapped in membranes
* Ribosomes - protein making structures that are smaller than eukaryotic ribosomes * Ribosomes - protein making structures that are smaller than eukaryotic ribosomes
* Plasmids - small rings of extra dna separate from the main chromosome * Plasmids - small rings of extra DNA separate from the main chromosome
* Inclusion bodies - storage for nutrients * Inclusion bodies - storage for nutrients
* Thylakoid membrane - in photosynthetic bacteria, membranes that capture light * Thylakoid membrane - in photosynthetic bacteria, membranes that capture light
Eukaryotic properties: Eukaryotic properties:
* Nucleus - hold and protect dna * Nucleus - hold and protect DNA
* Mitochondria - site of aerobic cellular respiration * Mitochondria - site of aerobic cellular respiration
* Chloroplast - site of photosynthesis * Chloroplast - site of photosynthesis
* Endoplasmic reticulum - protein and lipid synthesis, as well as transportation * Endoplasmic reticulum - protein and lipid synthesis, as well as transportation
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## Evidence for Endosymbiosis ## Evidence for Endosymbiosis
Strongest evidence is that chloroplast and mitochondria look like the bacteria they came from. Strongest evidence is that chloroplast and mitochondria look like the bacteria they came from.
* mitochondria and chloroplast carry their own dna, and it's circular like the bacteria * mitochondria and chloroplast carry their own DNA, and it's circular like the bacteria
* both have double membranes, one from the original prokaryotic cells and another for when the plasma engulfed it. * both have double membranes, one from the original prokaryotic cells and another for when the plasma engulfed it.
* same size as bacteria and split seperately from rest of cell * same size as bacteria and split separately from rest of cell
* ribosomes are more like bacteria ribosomes than the host cell ribosomes * ribosomes are more like bacteria ribosomes than the host cell ribosomes
* some make their own proteins * some make their own proteins
![[Pasted image 20260816073410.png]] ![[Pasted image 20260816073410.png]]