Unit 4: Control of microorganisms - Subjective Questions
BTS510 — Microbiology • Practice Questions with Detailed Answers
20 questions
Define sterilization, disinfection, and antisepsis. Distinguish clearly between these three terms of microbial control.
These are fundamental terms in the control of microorganisms:
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Sterilization: The complete destruction or removal of all forms of microbial life, including bacterial endospores, viruses, and fungi, from an object or environment. It is an absolute term — an item is either sterile or not.
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Disinfection: The destruction or removal of vegetative pathogens (but not necessarily all microbes or spores) from inanimate objects/surfaces. Achieved by physical or chemical agents called disinfectants.
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Antisepsis: The destruction or inhibition of microorganisms on living tissue (skin, mucous membranes). The chemical agents used are called antiseptics, which are milder to avoid tissue damage.
Key distinctions:
| Term | Target | Extent | Applied to |
|---|---|---|---|
| Sterilization | All microbes + spores | Absolute | Any object |
| Disinfection | Vegetative pathogens | Partial | Inanimate objects |
| Antisepsis | Microbes | Partial | Living tissue |
Explain the various conditions/factors influencing the effectiveness of antimicrobial agents.
The efficacy of any antimicrobial agent depends on several factors:
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Population size: A larger number of microorganisms takes longer to kill than a smaller population.
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Population composition: Resistant forms such as endospores, mycobacteria, and cysts are far harder to destroy than vegetative cells.
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Concentration or intensity of the agent: Generally, higher concentrations (chemical) or greater intensity (physical) increase effectiveness, but this relationship is not always linear (e.g., 70% ethanol is more effective than 95%).
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Duration of exposure (contact time): Longer exposure results in greater killing of the microbial population.
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Temperature: An increase in temperature usually enhances the activity of a chemical agent by speeding up reactions.
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Local environment:
- pH affects agent activity.
- Presence of organic matter (blood, pus, feces) interferes with and reduces effectiveness.
- Biofilms protect embedded organisms.
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Nature of the microorganism: Cell wall structure (Gram-positive vs Gram-negative), presence of capsules, and lipid content affect susceptibility.
Describe the characteristics of an ideal antimicrobial (chemical) agent.
An ideal antimicrobial/disinfectant agent should possess the following properties:
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Broad-spectrum activity: Effective against a wide range of microorganisms (bacteria, fungi, viruses, spores).
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High potency: Active even at low concentrations.
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Rapid action: Kills microbes quickly.
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Solubility: Should be soluble in water or other suitable solvents.
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Stability: Chemically stable with a long shelf life; effective over storage time.
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Non-toxic and non-irritant: Harmless to humans and animals; non-corrosive to materials.
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Penetrating power: Able to penetrate surfaces, crevices, and organic matter.
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Effective in presence of organic matter: Should retain activity even with blood, pus, or tissue.
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Non-staining and deodorizing: Should not discolor surfaces; ideally removes odors.
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Economical: Inexpensive and readily available.
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Compatible: Should not react adversely with soaps or other chemicals.
No single agent meets all these criteria; selection depends on the specific application.
Explain the use of moist heat as a physical method for controlling microorganisms. Include autoclaving, pasteurization, and boiling.
Moist heat kills microorganisms primarily by denaturation and coagulation of proteins and enzymes, and by disrupting membranes. It is more effective than dry heat at a given temperature.
1. Autoclaving (Steam under pressure):
- Uses saturated steam under pressure.
- Standard conditions: 121°C at 15 psi for 15–20 minutes.
- Achieves complete sterilization, including destruction of endospores.
- Used for media, surgical instruments, glassware.
2. Pasteurization:
- Mild heating to reduce pathogens and spoilage organisms without sterilizing.
- Batch (LTLT): 63°C for 30 minutes.
- Flash (HTST): 72°C for 15 seconds.
- UHT: 140°C for a few seconds.
- Used for milk, juices, beverages.
3. Boiling:
- 100°C for 10–30 minutes.
- Kills vegetative cells and many viruses but not all endospores.
- A disinfection method, not sterilization.
4. Tyndallization (fractional sterilization):
- Intermittent heating at 100°C for 30 min on 3 successive days to kill spores that germinate between cycles.
Describe dry heat sterilization methods and their mechanism of action. How does it differ from moist heat?
Dry heat kills microorganisms through oxidation of cellular components and denaturation of proteins. It requires higher temperatures and longer times than moist heat because dry air is a poor conductor of heat.
Methods:
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Hot air oven: Sterilization at 160–180°C for 1.5–2 hours. Used for glassware, powders, oils, and metal instruments that would be corroded by moist heat.
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Incineration: Burning to ashes; used for inoculation loops (flaming) and disposal of contaminated/infectious waste.
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Flaming: Passing objects through a flame directly.
Difference from moist heat:
| Feature | Dry Heat | Moist Heat |
|---|---|---|
| Mechanism | Oxidation | Protein coagulation |
| Temperature | Higher (160–180°C) | Lower (121°C) |
| Time | Longer | Shorter |
| Penetration | Poor | Good |
| Suited for | Powders, oils, glass | Aqueous solutions, media |
Explain the different radiation methods used for microbial control, distinguishing between ionizing and non-ionizing radiation.
Radiation controls microbes by damaging cellular components, particularly DNA.
1. Non-ionizing radiation (UV light):
- Wavelength around 260 nm is most germicidal.
- Mechanism: Causes formation of thymine dimers in DNA, blocking replication and transcription.
- Limitations: Poor penetrating power — effective only on surfaces and air.
- Uses: Sterilizing air in operating rooms, safety cabinets, and water treatment.
2. Ionizing radiation (Gamma rays, X-rays, electron beams):
- High energy and short wavelength.
- Mechanism: Ejects electrons and produces free radicals (e.g., hydroxyl radicals) and reactive oxygen species that damage DNA and other molecules.
- High penetrating power.
- Uses: Cold sterilization of heat-sensitive items such as plastics, syringes, sutures, and food (radappertization).
Comparison:
| Feature | Non-ionizing (UV) | Ionizing (Gamma/X-ray) |
|---|---|---|
| Penetration | Low | High |
| Mechanism | Thymine dimers | Free radicals, DNA breaks |
| Application | Surfaces, air | Medical supplies, food |
Describe filtration as a method of microbial control. What are membrane filters and HEPA filters?
Filtration physically removes microorganisms from liquids or gases rather than killing them. It is the method of choice for heat-sensitive solutions such as antibiotics, vaccines, sera, enzymes, and vitamins.
Types of filters:
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Membrane filters: Thin porous membranes (usually cellulose acetate or nitrate) with defined pore sizes. A pore size of 0.22 µm removes bacteria; smaller pores (0.02 µm) can remove some viruses. Widely used for sterilizing liquids.
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Depth filters: Fibrous or granular materials (e.g., diatomaceous earth, sintered glass) that trap particles within a thick layer.
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HEPA filters (High Efficiency Particulate Air): Remove ≥99.97% of particles ≥0.3 µm from air. Used in laminar flow hoods, biosafety cabinets, and clean rooms.
Advantages:
- No heat, chemicals, or radiation — preserves labile substances.
- Removes microbes physically.
Limitation: Very small viruses and some mycoplasma may pass through standard filters.
Classify and explain the major groups of chemical agents used to control microorganisms with suitable examples.
Chemical agents (disinfectants and antiseptics) are grouped by chemical nature and mode of action:
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Phenols and phenolics: e.g., phenol, cresols, Lysol, hexachlorophene. Denature proteins and disrupt membranes; act even in presence of organic matter.
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Alcohols: e.g., ethanol (70%), isopropanol. Denature proteins and dissolve lipids. Effective as antiseptics/disinfectants but not sporicidal.
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Halogens:
- Iodine (tincture, iodophors like Betadine): oxidizes cell components.
- Chlorine (hypochlorite, chloramines): strong oxidizing agent, used in water treatment.
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Heavy metals: e.g., silver nitrate, mercuric chloride, copper sulfate. Act by oligodynamic action (bind sulfhydryl groups of proteins).
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Quaternary ammonium compounds (Quats): e.g., benzalkonium chloride. Cationic detergents that disrupt membranes.
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Aldehydes: e.g., formaldehyde, glutaraldehyde. Alkylating agents that cross-link proteins and nucleic acids; sporicidal.
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Gaseous agents: e.g., ethylene oxide (EtO), used for sterilizing heat-sensitive items; alkylates proteins.
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Oxidizing agents: e.g., hydrogen peroxide, ozone, peracetic acid; produce free radicals.
Explain the mode of action of chemical antimicrobial agents on microbial cells.
Chemical agents kill or inhibit microbes by targeting different cellular structures and processes:
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Damage to the cell membrane: Surfactants (quats), alcohols, and phenols disrupt the lipid bilayer, causing leakage of cellular contents and loss of membrane function.
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Denaturation of proteins: Acids, alkalis, alcohols, and heat unfold and coagulate proteins, inactivating enzymes essential for metabolism.
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Modification of proteins and nucleic acids (alkylation): Aldehydes (formaldehyde, glutaraldehyde) and ethylene oxide cross-link amino, carboxyl, and hydroxyl groups, disrupting structure and replication.
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Oxidation: Halogens, hydrogen peroxide, and ozone oxidize sulfhydryl groups of enzymes and generate free radicals that damage biomolecules.
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Reaction with sulfhydryl (–SH) groups: Heavy metals (mercury, silver) bind –SH groups, inactivating enzymes (oligodynamic action).
The overall result is disruption of metabolism, structural integrity, and reproduction, leading to microbial death or inhibition.
Distinguish between -cidal and -static agents. Explain terms like bactericidal, bacteriostatic, fungicidal, and virucidal.
Antimicrobial agents are classified by whether they kill or merely inhibit microorganisms:
- -cidal agents: Actively kill microorganisms. The effect is irreversible.
- -static agents: Inhibit growth and reproduction without killing. When the agent is removed, microbes may resume growth.
Specific terms:
| Term | Meaning |
|---|---|
| Bactericidal | Kills bacteria |
| Bacteriostatic | Inhibits bacterial growth |
| Fungicidal | Kills fungi |
| Fungistatic | Inhibits fungal growth |
| Virucidal | Inactivates viruses |
| Sporicidal | Destroys endospores |
| Germicide | General agent that kills microbes |
Clinical relevance: Static agents rely on the host immune system to clear inhibited organisms, so cidal agents are preferred in immunocompromised patients or serious infections.
Discuss the historical highlights in the development of antibiotics and chemotherapeutic agents.
The development of antimicrobial chemotherapy involved several landmark contributions:
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Paul Ehrlich (early 1900s): Proposed the concept of the "magic bullet" — a chemical that selectively kills the pathogen without harming the host. Developed Salvarsan (arsphenamine) in 1910 for syphilis, founding modern chemotherapy.
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Alexander Fleming (1928): Discovered penicillin from the mold Penicillium notatum, observing that it inhibited Staphylococcus growth.
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Gerhard Domagk (1935): Discovered Prontosil, the first sulfonamide drug, effective against streptococcal infections.
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Howard Florey and Ernst Chain (1940s): Purified and mass-produced penicillin, enabling clinical use during World War II. They shared the Nobel Prize with Fleming in 1945.
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Selman Waksman (1943): Discovered streptomycin from Streptomyces griseus, the first effective drug against tuberculosis. He coined the term "antibiotic."
These milestones ushered in the antibiotic era, dramatically reducing mortality from bacterial infections.
What is selective toxicity? Explain its importance in antimicrobial chemotherapy along with the concept of chemotherapeutic index.
Selective toxicity is the ability of an antimicrobial drug to harm the microorganism (target) without harming the host. It is the fundamental principle underlying effective chemotherapy.
Basis of selective toxicity:
- Drugs exploit structural or metabolic differences between microbial and host cells.
- Example: Penicillin targets the bacterial cell wall (peptidoglycan), which is absent in human cells — hence low host toxicity.
- Antifungal and antiviral drugs are harder to design because these pathogens share more features with human cells.
Therapeutic (Chemotherapeutic) Index:
- A high therapeutic index means the drug is effective at doses well below toxic levels — a safer, more desirable drug.
- A low index indicates a narrow margin of safety.
Selective toxicity ensures the drug is both effective and safe for the patient.
Describe the general characteristics of antimicrobial drugs and explain the terms narrow-spectrum, broad-spectrum, MIC, and MBC.
General characteristics of antimicrobial drugs:
- Exhibit selective toxicity toward the pathogen.
- Should be soluble in body fluids and reach the infection site.
- Should not readily provoke resistance.
- Should be non-allergenic and have minimal side effects.
- Should remain active in body fluids and tissues.
- Should have a reasonably long half-life.
Key terms:
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Narrow-spectrum drugs: Effective against a limited range of microbes (e.g., only Gram-positive bacteria). Example: penicillin G.
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Broad-spectrum drugs: Effective against a wide range of Gram-positive and Gram-negative bacteria. Example: tetracyclines. (Drawback: may disrupt normal flora, causing superinfections.)
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MIC (Minimum Inhibitory Concentration): The lowest concentration of a drug that inhibits visible growth of a microorganism.
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MBC (Minimum Bactericidal Concentration): The lowest concentration that kills the microorganism (99.9% reduction).
These values are used to assess drug potency and guide dosing.
Explain in detail the various mechanisms of action of antibiotics with suitable examples for each category.
Antibiotics act on microbes through five major mechanisms:
1. Inhibition of cell wall synthesis:
- Block peptidoglycan synthesis, causing cell lysis.
- Examples: penicillins, cephalosporins (inhibit transpeptidation), vancomycin, bacitracin.
2. Inhibition of protein synthesis:
- Target bacterial 70S ribosomes (30S or 50S subunits) selectively.
- Examples: aminoglycosides (streptomycin), tetracyclines (30S); chloramphenicol, erythromycin, macrolides (50S).
3. Inhibition of nucleic acid synthesis:
- Interfere with DNA replication or RNA transcription.
- Examples: quinolones/fluoroquinolones (inhibit DNA gyrase); rifampin (inhibits RNA polymerase).
4. Inhibition of metabolic pathways (antimetabolites):
- Competitively block essential metabolic reactions.
- Example: sulfonamides and trimethoprim inhibit folic acid synthesis.
5. Disruption of cell membrane function:
- Damage membrane integrity, causing leakage.
- Examples: polymyxins (bacterial membranes); amphotericin B, nystatin (fungal ergosterol).
Each mechanism exploits differences between microbial and host cells to achieve selective toxicity.
Discuss the development of drug resistance in microorganisms. Explain the mechanisms by which bacteria become resistant to antibiotics.
Drug resistance is the ability of microorganisms to withstand the effects of an antimicrobial agent to which they were previously sensitive. It is a major clinical problem, largely driven by overuse and misuse of antibiotics.
Origins of resistance:
- Chromosomal mutations in bacterial genes.
- Acquisition of resistance genes via horizontal gene transfer (plasmids/R-factors, transposons, transduction, transformation, conjugation).
Mechanisms of resistance:
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Enzymatic inactivation of the drug: Bacteria produce enzymes that destroy the antibiotic. Example: β-lactamases (penicillinases) hydrolyze penicillins.
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Alteration of the target site: Modification of the drug's target so it no longer binds. Example: altered penicillin-binding proteins in MRSA; ribosomal changes reducing aminoglycoside binding.
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Decreased permeability/uptake: Changes in membrane porins prevent the drug from entering the cell.
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Efflux pumps: Active pumping of the drug out of the cell before it acts (e.g., tetracycline resistance).
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Development of alternative metabolic pathways: Bypassing the reaction the drug blocks (e.g., sulfonamide resistance).
Prevention: Rational prescribing, completing full courses, using combination therapy, infection control, and developing new drugs.
Distinguish between antibiotics and synthetic chemotherapeutic agents. Give examples of each.
Both are used to treat infections, but they differ in origin:
Antibiotics:
- Substances produced naturally by microorganisms (bacteria, fungi) that inhibit or kill other microbes.
- May be modified chemically (semisynthetic antibiotics).
- Examples: penicillin (from Penicillium), streptomycin (from Streptomyces), erythromycin, tetracycline.
Synthetic chemotherapeutic agents:
- Antimicrobial compounds synthesized entirely in the laboratory by chemical means.
- Examples: sulfonamides, quinolones/fluoroquinolones (ciprofloxacin), isoniazid, trimethoprim.
Comparison:
| Feature | Antibiotics | Synthetic agents |
|---|---|---|
| Origin | Microbial (natural) | Chemically synthesized |
| Example | Penicillin, streptomycin | Sulfonamides, ciprofloxacin |
| Semisynthetic forms | Common (ampicillin) | N/A |
Note: The general term antimicrobial agent covers both categories.
Explain the concept of the Decimal Reduction Time (D-value) and Thermal Death Time (TDT) in evaluating the effectiveness of heat treatment.
These parameters quantify the killing of microorganisms by heat and follow the exponential (logarithmic) death pattern of microbial populations.
Logarithmic death: When exposed to a lethal agent, microbes die at a constant rate, so a plot of log(survivors) vs time is a straight line.
Decimal Reduction Time (D-value or ):
- The time required to kill 90% of the microbial population (i.e., reduce it by one log₁₀ cycle) at a specific temperature.
- A lower D-value means faster killing.
where = initial number, = surviving number, = time.
Thermal Death Time (TDT):
- The shortest time needed to kill all microbes in a suspension at a specified temperature.
Thermal Death Point (TDP):
- The lowest temperature required to kill all microbes in a suspension in a fixed time (usually 10 minutes).
Z-value: The temperature change needed to reduce the D-value by 90% (one log). These values are important in sterilization and food processing.
Compare and contrast disinfectants and antiseptics on the basis of definition, application, potency, and examples.
Both are chemical antimicrobial agents but differ in their target and strength:
Disinfectants:
- Chemical agents applied to inanimate/non-living objects and surfaces.
- Usually stronger and potentially toxic/irritating to living tissue.
- Kill vegetative pathogens.
- Examples: phenol, Lysol, sodium hypochlorite (bleach), glutaraldehyde.
Antiseptics:
- Chemical agents applied to living tissue (skin, wounds, mucous membranes).
- Milder and less toxic to avoid tissue damage.
- Inhibit or kill microbes on the body surface.
- Examples: 70% ethanol, iodine tincture, hydrogen peroxide, chlorhexidine.
Comparison table:
| Basis | Disinfectant | Antiseptic |
|---|---|---|
| Applied to | Non-living surfaces | Living tissue |
| Toxicity | Higher (harsher) | Lower (milder) |
| Purpose | Disinfect objects | Prevent tissue infection |
| Examples | Bleach, Lysol | Chlorhexidine, iodine |
Note: Some chemicals (e.g., alcohols, iodine) can act as both, depending on concentration and use.
Explain ethylene oxide sterilization. Why is it preferred for heat-sensitive materials, and what are its limitations?
Ethylene oxide (EtO) is a colorless gas used for gaseous (cold) sterilization of materials that would be damaged by heat or moisture.
Mechanism of action:
- EtO is a strong alkylating agent. It reacts with amino, carboxyl, hydroxyl, and sulfhydryl groups of proteins and nucleic acids.
- This alkylation denatures enzymes and prevents replication, killing all microbes including endospores.
Procedure:
- Carried out in a special EtO chamber with controlled temperature (~30–60°C), humidity, and gas concentration.
- Usually mixed with inert gas (CO₂) since pure EtO is explosive.
- Followed by prolonged aeration to remove toxic residues.
Why preferred for heat-sensitive items:
- Sterilizes at low temperature, so it is ideal for plastics, catheters, syringes, electronic equipment, prosthetics, and heat-labile instruments.
- Good penetrating power, reaching packaged items.
Limitations:
- Toxic, mutagenic, and carcinogenic — requires careful handling.
- Highly flammable and explosive in pure form.
- Slow process requiring long aeration times.
- Expensive equipment needed.
Describe the phenomenon of antibiotic misuse and outline strategies to prevent the emergence and spread of antibiotic resistance.
Antibiotic misuse is a major driver of resistance and includes:
- Prescribing antibiotics for viral infections (colds, flu) where they are useless.
- Using broad-spectrum drugs when narrow-spectrum would suffice.
- Incomplete courses — stopping when symptoms improve, allowing resistant survivors.
- Sub-therapeutic doses and self-medication.
- Extensive use of antibiotics in agriculture and animal feed.
Consequences: Selection of resistant strains, emergence of multidrug-resistant organisms (MRSA, MDR-TB), treatment failures, and increased mortality and cost.
Strategies to prevent resistance:
- Rational prescribing: Use antibiotics only when necessary and choose the correct drug, dose, and duration.
- Complete the full course as prescribed.
- Combination therapy for serious infections (e.g., TB) to reduce mutant selection.
- Use antibiotics in high enough concentrations to eliminate the organism.
- Infection control and hygiene to limit spread.
- Surveillance and antibiotic stewardship programs.
- Restricting agricultural use and developing new antimicrobial agents.
- Public education about proper antibiotic use.
These measures aim to preserve the effectiveness of existing antibiotics.
Define sterilization, disinfection, and antisepsis. Distinguish clearly between these three terms of microbial control.
These are fundamental terms in the control of microorganisms:
-
Sterilization: The complete destruction or removal of all forms of microbial life, including bacterial endospores, viruses, and fungi, from an object or environment. It is an absolute term — an item is either sterile or not.
-
Disinfection: The destruction or removal of vegetative pathogens (but not necessarily all microbes or spores) from inanimate objects/surfaces. Achieved by physical or chemical agents called disinfectants.
-
Antisepsis: The destruction or inhibition of microorganisms on living tissue (skin, mucous membranes). The chemical agents used are called antiseptics, which are milder to avoid tissue damage.
Key distinctions:
| Term | Target | Extent | Applied to |
|---|---|---|---|
| Sterilization | All microbes + spores | Absolute | Any object |
| Disinfection | Vegetative pathogens | Partial | Inanimate objects |
| Antisepsis | Microbes | Partial | Living tissue |
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