Skip to main content
Indietro

Microbial Metabolism, Growth, Control, and Antimicrobial Drugs – Study Guide

Guida di studio - Note intelligenti

Appunti personalizzati basati sui tuoi materiali, ampliati con definizioni chiave, esempi e contesto.

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.

Pearson Logo

Study Prep