4.8 KiB
4.8 KiB
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. |