BackFunctional Anatomy of Prokaryotic and Eukaryotic Cells: Study Notes
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Functional Anatomy of Prokaryotic & Eukaryotic Cells
Overview
This chapter explores the structural and functional differences between prokaryotic and eukaryotic cells, focusing on their cellular components, shapes, arrangements, and specialized structures. Understanding these differences is fundamental to microbiology, as it underpins the classification, physiology, and pathogenicity of microorganisms.
Prokaryotic Cells
General Characteristics
Genetic Material: Usually contain one circular chromosome.
Nuclear Region: DNA is not enclosed in a membrane-bound nucleus.
Organelles: Lack membrane-bound organelles.
Cell Wall: Bacterial cell walls contain peptidoglycan.
Reproduction: Reproduce by binary fission (asexual division).
Examples: Escherichia coli, Staphylococcus aureus
Eukaryotic Cells
General Characteristics
Genetic Material: DNA enclosed within a nuclear membrane (nucleus).
Organelles: Contain membrane-bound organelles (e.g., mitochondria, endoplasmic reticulum).
Size: Larger and more complex than prokaryotes.
Division: Divide by mitosis (and sometimes meiosis).
Examples: Fungi, Protozoa, Plants, Animals
Bacterial Shapes and Arrangements
Shapes
Bacillus: Rod-shaped
Coccus: Spherical-shaped
Spiral Forms:
Vibrio: Comma-shaped
Spirillum: Rigid spiral
Spirochete: Flexible spiral
Arrangements
Pairs: Diplococci, Diplobacilli
Chains: Streptococci, Streptobacilli
Clusters: Staphylococci
Groups of Four: Tetrads
Glycocalyx
Structure and Types
Located outside the cell wall.
Composition: Polysaccharides and/or polypeptides.
Types:
Capsule: Firmly attached; helps prevent phagocytosis.
Slime Layer: Loose and unorganized; helps cells attach to surfaces.
Functions
Increases virulence (disease-causing ability).
Helps form biofilms.
Protects cells from drying out (desiccation).
Flagella
Structure and Function
Function: Provide bacterial motility.
Structure: Made of the protein flagellin.
Arrangement Types
Monotrichous: Single flagellum at one end.
Lophotrichous: Tuft of flagella at one end.
Amphitrichous: Flagella at both ends.
Peritrichous: Flagella distributed over the entire cell.
Types of Movement
Run: Movement in one direction.
Tumble: Random direction changes.
Chemotaxis: Movement toward or away from stimuli (e.g., chemicals).
Axial Filaments
Also called endoflagella.
Found in spirochete bacteria.
Cause corkscrew-like movement.
Fimbriae & Pili
Fimbriae
Help bacteria attach to surfaces.
Important in biofilm formation.
Pili
Functions:
DNA transfer during conjugation.
Twitching motility.
Cell Wall
Functions
Prevents osmotic lysis.
Protects the plasma membrane.
Helps determine cell shape.
Site of action for some antibiotics (e.g., penicillin).
Gram-Positive Cell Walls
Thick peptidoglycan layer.
Contain teichoic acids (lipoteichoic and wall teichoic acids).
Carry a negative charge.
Type | Location |
|---|---|
Lipoteichoic Acid | Links cell wall to plasma membrane |
Wall Teichoic Acid | Attached to peptidoglycan |
Gram-Negative Cell Walls
Thin peptidoglycan layer.
Contain an outer membrane.
Have a periplasmic space.
Outer membrane contains:
Lipopolysaccharide (LPS)
Proteins (e.g., porins)
Phospholipids
LPS Component | Function |
|---|---|
Polysaccharide | Functions as an antigen |
Lipid A | Functions as an endotoxin |
Porins | Protein channels through the membrane |
Atypical Cell Walls
Acid-Fast Bacteria: Contain waxy mycolic acid (e.g., Mycobacterium, Nocardia).
Mycoplasmas: Lack cell walls; contain sterols in plasma membrane.
Plasma Membrane
Structure
Made mainly of phospholipids and proteins (fluid mosaic model).
Function
Controls movement of materials into and out of the cell.
Membrane Transport
Passive Processes
Move substances from high concentration to low concentration (down the concentration gradient).
Simple Diffusion: No energy or transport proteins required.
Facilitated Diffusion: Requires membrane transport proteins.
Osmosis
Movement of water across a selectively permeable membrane.
Isotonic Solution: Water movement is at equilibrium.
Hypotonic Solution: Water moves into the cell (may cause lysis).
Hypertonic Solution: Water moves out of the cell (may cause plasmolysis).
Active Processes
Active Transport: Requires energy (ATP) and transport proteins; moves substances from low to high concentration (against the gradient).
Group Translocation: Requires transport proteins and energy; substance is chemically modified during transport.
Cytoplasm
Mostly made of water.
Contains DNA, ribosomes, and inclusions (storage granules).
Nucleoid
Contains the bacterial chromosome (genetic material).
Usually a single, circular DNA molecule.
Not enclosed by a nuclear membrane.
Plasmids
Small, circular DNA molecules.
May carry genes for antibiotic resistance or toxin production.
Ribosomes
Function: Site of protein synthesis.
Prokaryotic Ribosomes: 70S
Eukaryotic Ribosomes: 80S
Endospores
Produced when nutrients are depleted.
Functions: Survival mechanism; resistant to heat, chemicals, radiation, and desiccation.
Important Genera: Bacillus, Clostridium
Eukaryotic Organelles
Nucleus
Contains the cell’s genetic material (DNA).
DNA is combined with histone proteins.
Endoplasmic Reticulum (ER)
Rough ER: Contains attached ribosomes; function is protein synthesis and processing.
Smooth ER: Function is lipid synthesis and detoxification.
Golgi Complex
Modifies proteins.
Packages materials into vesicles for transport.
Lysosomes
Contain digestive enzymes for breaking down macromolecules.
Mitochondria
Site of ATP (energy) production.
Contain circular DNA and 70S ribosomes (similar to prokaryotes).
Peroxisomes
Function: Break down fatty acids and detoxify harmful substances (e.g., hydrogen peroxide).
Cytoskeleton
Maintains cell shape.
Helps with cell movement.
Assists movement of organelles within the cell.
Flagella & Cilia in Eukaryotes
Flagella: Long projections; few in number.
Cilia: Short projections; numerous.
Both contain microtubules arranged in a 9 + 2 pattern.
Additional info: Where the original notes had blanks, standard textbook knowledge was used to fill in missing terms and provide complete explanations. Tables were reconstructed for clarity. Examples of genera and cell types were inferred based on common textbook content.