IndietroMicrobial Metabolism, Growth, Control, and Antimicrobial Drugs – Study Guide
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Microbial Metabolism
Catabolism vs. Anabolism
Catabolism: The set of metabolic pathways that break down molecules into smaller units to release energy. Catabolic reactions are generally exergonic (energy-releasing).
Anabolism: The set of metabolic pathways that construct molecules from smaller units, requiring energy input. Anabolic reactions are endergonic (energy-consuming).
Example: Glycolysis is a catabolic pathway; protein synthesis is anabolic.
Types of Microbial Nutrition
Chemoheterotroph: Organisms that obtain both energy and carbon from organic compounds.
Chemoautotroph: Organisms that obtain energy from inorganic compounds and carbon from CO2.
Photoheterotroph: Organisms that use light for energy but require organic compounds as a carbon source.
Photoautotroph: Organisms that use light for energy and CO2 as a carbon source (e.g., cyanobacteria).
Enzymes: Properties and Function
Structure: Enzymes are biological catalysts, mostly proteins, with a specific three-dimensional structure including an active site where substrates bind.
Factors Influencing Enzyme Activity:
Temperature
pH
Substrate concentration
Presence of inhibitors or activators
Function: Enzymes speed up biochemical reactions by lowering the activation energy.
Types of Enzymatic Inhibition:
Competitive inhibition: Inhibitor binds to the active site, blocking substrate.
Noncompetitive inhibition: Inhibitor binds to an allosteric site, changing enzyme shape.
Cellular Respiration vs. Fermentation
Cellular Respiration: Involves glycolysis, Krebs cycle, and electron transport chain. The final electron acceptor is usually oxygen (aerobic) or another inorganic molecule (anaerobic).
Fermentation: Incomplete oxidation of glucose; the final electron acceptor is an organic molecule. Produces less ATP than respiration.
Key Difference: Type of final electron acceptor (inorganic for respiration, organic for fermentation).
Oxidase Test
Purpose: Detects the presence of cytochrome c oxidase enzyme in bacteria, which is part of the electron transport chain.
Application: Used to differentiate between bacterial species, especially Gram-negative rods.
Lipid and Protein Catabolism
Lipid Catabolism: Lipases break down lipids into fatty acids and glycerol. Fatty acids enter β-oxidation to generate acetyl-CoA for the Krebs cycle.
Protein Catabolism: Proteases break down proteins into amino acids, which are deaminated and enter central metabolic pathways.
Importance of Microbial Metabolism
Understanding microbial metabolism helps in identifying microbes, developing antibiotics, and controlling microbial growth in clinical and industrial settings.
Microbial Growth
Growth Curve Phases
Lag Phase: Cells adjust to new environment; little to no cell division.
Log (Exponential) Phase: Rapid cell division; population doubles at a constant rate.
Stationary Phase: Growth rate slows; nutrients deplete, waste accumulates; cell death equals cell division.
Death Phase: Cells die at an exponential rate due to lack of nutrients and accumulation of toxic products.
Clinical Importance: The log phase is when bacteria are most susceptible to antibiotics; stationary phase is important for survival and persistence.
Oxygen Requirements for Microbial Growth
Obligate Aerobes: Require oxygen for growth; use aerobic respiration.
Facultative Anaerobes: Grow with or without oxygen; use aerobic respiration, anaerobic respiration, or fermentation.
Obligate Anaerobes: Cannot tolerate oxygen; use anaerobic respiration or fermentation.
Aerotolerant Anaerobes: Do not use oxygen but tolerate its presence; use fermentation.
Microaerophiles: Require low levels of oxygen.
Protective Enzymes:
Superoxide dismutase (SOD): Converts superoxide radicals to hydrogen peroxide.
Catalase: Converts hydrogen peroxide to water and oxygen.
Peroxidase: Also breaks down hydrogen peroxide.
Usage: Obligate aerobes and facultative anaerobes possess these enzymes; obligate anaerobes typically lack them.
Temperature Requirements
Psychrophiles: Grow best at 0–15°C.
Mesophiles: Grow best at 20–45°C (includes most human pathogens).
Thermophiles: Grow best at 55–80°C.
Hyperthermophiles: Grow above 80°C.
pH Requirements
Acidophiles: Grow best at pH < 5.5.
Neutrophiles: Grow best at pH 5.5–8.0.
Alkaliphiles: Grow best at pH > 8.0.
Halophiles and Osmosis
Obligate Halophiles: Require high salt concentrations for growth.
Facultative Halophiles: Can tolerate high salt but do not require it.
Relation to Osmosis: High salt environments cause water to leave cells (osmosis); halophiles have adaptations to prevent dehydration.
Control of Microbial Growth
Terminology
Sterilization: Destruction of all microbial life, including spores.
Disinfection: Destruction of vegetative pathogens on inanimate objects.
Antisepsis: Destruction of pathogens on living tissue.
Sanitization: Lowering microbial counts to safe public health levels.
-cidal vs. -static Treatments
-cidal: Treatments that kill microbes (e.g., bactericidal).
-static: Treatments that inhibit microbial growth without killing (e.g., bacteriostatic).
Physical Control Methods
Heat: Moist heat (autoclaving, boiling) and dry heat (oven) denature proteins and kill microbes.
Filtration: Physically removes microbes from liquids or air using filters.
Chemical Control Methods
Alcohols: Denature proteins and disrupt membranes (e.g., ethanol, isopropanol).
Halogens: Oxidize cellular components (e.g., chlorine, iodine).
Antimicrobial Drugs
Bacteriostatic vs. Bactericidal
Bacteriostatic: Inhibit bacterial growth; rely on host immune system to eliminate bacteria.
Bactericidal: Kill bacteria directly.
Broad-Spectrum vs. Narrow-Spectrum Drugs
Broad-Spectrum: Effective against a wide range of bacteria (both Gram-positive and Gram-negative).
Narrow-Spectrum: Effective against specific groups of bacteria.
Superinfections
Definition: Secondary infections caused by the overgrowth of non-susceptible microbes after antibiotic treatment.
Significance: Broad-spectrum antibiotics can disrupt normal flora, leading to superinfections (e.g., Clostridioides difficile colitis).
Dosage and Route of Administration
Dosage: Must be sufficient to maintain effective drug levels without causing toxicity.
Route: Oral, intravenous, intramuscular, topical; affects drug absorption and effectiveness.
Drug Interactions
Positive Interactions (Synergism): Combined drugs have enhanced effect (e.g., penicillin and aminoglycosides).
Negative Interactions (Antagonism): One drug reduces the effectiveness of another.
Mechanisms of Action of Antibacterial Drugs
Inhibition of Cell Wall Biosynthesis: e.g., β-lactams (penicillins, cephalosporins).
Inhibition of Protein Synthesis: e.g., tetracyclines, macrolides.
Disruption of Membrane Function: e.g., polymyxins.
Inhibition of Nucleic Acid Synthesis: e.g., quinolones, rifamycins.
Inhibition of Metabolic Pathways: e.g., sulfonamides (folic acid synthesis inhibitors).
Modes of Action: Antifungal, Antiprotozoan, Antihelminthic, and Antiviral Drugs
Antifungal: Target ergosterol in fungal membranes (e.g., amphotericin B).
Antiprotozoan: Interfere with DNA replication or metabolic pathways (e.g., metronidazole).
Antihelminthic: Disrupt helminth metabolism or neuromuscular function (e.g., mebendazole).
Antiviral: Inhibit viral entry, replication, or release (e.g., acyclovir, oseltamivir).
Development and Acquisition of Drug Resistance
Mechanisms:
Enzymatic drug inactivation (e.g., β-lactamases)
Alteration of drug targets
Decreased permeability or increased efflux of drug
Bypass of metabolic pathways
Genetic Processes:
Transformation: Uptake of free DNA from the environment.
Transduction: Transfer of DNA by bacteriophages.
Conjugation: Direct transfer of DNA between bacteria via pili.
Summary Table: Mechanisms of Antimicrobial Drug Resistance
Mechanism | Description | Example |
|---|---|---|
Enzymatic Inactivation | Microbe produces enzymes that destroy or modify the drug | β-lactamase inactivating penicillins |
Altered Target | Drug target is modified so drug cannot bind effectively | MRSA with altered penicillin-binding proteins |
Efflux Pumps | Microbe pumps drug out of the cell | Tetracycline resistance |
Decreased Permeability | Changes in porin proteins reduce drug entry | Gram-negative bacteria resistance |
Metabolic Bypass | Microbe uses alternative metabolic pathways | Sulfonamide resistance |
Additional info: Academic context and examples have been added to expand on the brief points in the original study guide, ensuring the notes are self-contained and suitable for exam preparation.