Enzymes MCQs with Answers
Which of the following is a primary distinguishing characteristic of enzymes?
They are consumed during the reaction.
They increase the activation energy of a reaction.
They are highly specific in their action.
They are always simple proteins.
Explanation:Enzymes are biological catalysts known for their high specificity, meaning each enzyme typically acts on a particular substrate or a group of structurally similar substrates. They are not consumed, they lower activation energy, and while most are proteins, some are RNA molecules (ribozymes).
Ribozymes are a unique class of enzymes primarily composed of:
Lipids
Carbohydrates
RNA
DNA
Explanation:While most enzymes are proteins, ribozymes are catalytic RNA molecules. A well-known example is the peptidyl transferase activity of ribosomal RNA, which catalyzes peptide bond formation during protein synthesis.
Enzymes accelerate biochemical reactions by:
Increasing the kinetic energy of reactants.
Shifting the equilibrium of the reaction.
Lowering the activation energy.
Increasing the concentration of products.
Explanation:Enzymes function by providing an alternative reaction pathway with a lower activation energy. This allows a greater proportion of reactant molecules to possess sufficient energy to undergo the reaction, thereby increasing the reaction rate without affecting the overall equilibrium or the final product concentration.
Which statement best describes the quantity of enzymes required for a biochemical reaction?
Large quantities are needed as they are consumed in the reaction.
They are required in very small quantities and are reusable.
The quantity needed is equal to the quantity of substrate.
They are only needed in vitro, not in vivo.
Explanation:Enzymes are biological catalysts, and like all catalysts, they are not consumed during the reaction. They are regenerated after each catalytic cycle, meaning only very small quantities are sufficient to convert large amounts of substrate into product.
Enzymes primarily function by:
Increasing the activation energy of the reaction.
Decreasing the stability of the products.
Providing an alternative reaction pathway with lower activation energy.
Increasing the temperature of the reaction system.
Explanation:The fundamental mechanism of enzyme action involves lowering the activation energy, which is the minimum energy required for a chemical reaction to occur. By doing so, enzymes increase the rate of reaction without being used up in the process.
Most enzymes are categorized as which type of macromolecule?
Carbohydrates
Lipids
Nucleic acids
Proteins
Explanation:The vast majority of enzymes are globular proteins. Their specific three-dimensional structures are crucial for their catalytic activity. Ribozymes (RNA enzymes) are a notable exception.
The specific region on an enzyme where the substrate binds and catalysis occurs is known as the:
Allosteric site
Regulatory site
Active site
Inhibitor site
Explanation:The active site is a unique three-dimensional cleft or pocket on the enzyme molecule where the substrate specifically binds. This binding facilitates the chemical transformation of the substrate into product.
Enzymes are highly sensitive to changes in environmental conditions, particularly:
Light intensity and atmospheric pressure.
Temperature and pH.
Humidity and gravitational force.
Substrate concentration and product concentration.
Explanation:Enzymes are proteins, and their intricate three-dimensional structures, including the active site, are highly sensitive to changes in temperature and pH. Deviations from optimal conditions can lead to denaturation and loss of activity.
Which of the following statements about enzyme activity is INCORRECT?
Enzymes can catalyze reactions both inside and outside living cells.
Enzymes change the equilibrium constant of a reaction.
Enzymes are highly specific for their substrates.
Some enzymes require non-protein components for their activity.
Explanation:Enzymes accelerate the rate at which equilibrium is reached, but they do not change the position of the equilibrium itself. The equilibrium constant remains unchanged whether an enzyme is present or not. Enzymes can work in vivo and in vitro, are highly specific, and often require cofactors.
Which of the following is true regarding enzyme action and activation energy?
Enzymes increase the energy required for a reaction to start.
Enzymes do not affect the activation energy.
Enzymes provide an alternative reaction pathway with a lower activation energy.
Enzymes convert all the activation energy into heat.
Explanation:Enzymes catalyze reactions by lowering the activation energy, which is the energy barrier that must be overcome for reactants to be converted into products. They achieve this by stabilizing the transition state, making the reaction more favorable.
The tertiary or quaternary structures of enzymes are crucial because they:
Allow for their easy transportation across membranes.
Determine their solubility in water.
Form the specific active site necessary for catalysis.
Are responsible for their color.
Explanation:The specific three-dimensional folding of the polypeptide chain(s) (tertiary and quaternary structures) creates the unique shape of the active site. This precise geometry is essential for the specific binding of the substrate and the subsequent catalytic event.
An enzyme's ability to catalyze a specific reaction efficiently is largely due to its:
Large molecular weight.
Globular shape.
Unique active site structure.
Presence of disulfide bonds only.
Explanation:The high specificity and catalytic efficiency of an enzyme are primarily attributed to the unique three-dimensional conformation of its active site. This site is precisely shaped to bind only specific substrate molecules, enabling specific chemical transformations.
The active site of an enzyme is best described as a:
Linear chain of amino acids.
Flat surface where any molecule can bind.
Three-dimensional, charge-bearing cavity.
Storage region for excess substrate molecules.
Explanation:The active site is a precisely shaped, three-dimensional region on the enzyme molecule. Its specific spatial arrangement and charge distribution allow it to bind selectively with its complementary substrate, forming the enzyme-substrate complex.
According to the Lock and Key Model of enzyme action:
The active site is flexible and changes shape upon substrate binding.
The enzyme's active site has a rigid, pre-formed shape complementary to the substrate.
Multiple enzymes can bind to a single substrate.
Substrates induce a conformational change in the enzyme's active site.
Explanation:Proposed by Emil Fischer, the Lock and Key Model suggests that the active site of an enzyme is rigid and has a fixed shape that perfectly matches the shape of its specific substrate, much like a key fits into a lock.
The Induced Fit Model suggests that:
The enzyme's active site is permanently rigid.
The substrate's shape changes to fit the enzyme.
The active site undergoes a conformational change upon substrate binding.
Enzymes are non-regulatory and have absolute specificity.
Explanation:Developed by Koshland, the Induced Fit Model proposes that the active site is not rigid but flexible. When the substrate binds, it induces a slight conformational change in the enzyme, molding the active site into a more precise fit for catalysis.
Cofactors are often required for enzyme activity. They are typically:
Large protein molecules that assist in denaturation.
Non-protein components that aid in catalysis.
Products of the enzymatic reaction.
Inhibitors that block the active site.
Explanation:Cofactors are non-protein chemical components (like inorganic ions or coenzymes) that are essential for the activity of many enzymes. They may participate directly in the catalytic mechanism or help in substrate binding.
What is formed immediately after the substrate binds to the active site of an enzyme?
Enzyme-product complex
Free enzyme and product
Enzyme-substrate complex
Denatured enzyme
Explanation:The first step in an enzyme-catalyzed reaction is the reversible binding of the substrate(s) to the active site, leading to the formation of the enzyme-substrate (ES) complex.
The energy required to initiate a biochemical reaction, even with the presence of an enzyme, is known as:
Potential energy
Kinetic energy
Activation energy
Free energy
Explanation:Activation energy is the minimum energy that reactant molecules must possess to undergo a chemical reaction. Enzymes lower this energy barrier, thus accelerating the reaction rate without changing the overall energy difference between reactants and products.
Within the active site, the amino acids responsible for chemically transforming the substrate are part of the:
Binding site
Catalytic site
Allosteric site
Regulatory site
Explanation:The active site can often be divided into two main parts: the binding site, which holds the substrate in place, and the catalytic site, which contains the amino acid residues directly involved in the chemical conversion of the substrate into product.
Which statement correctly describes the effect of an enzyme on a biochemical reaction?
It increases the equilibrium constant.
It makes an unfavorable reaction favorable.
It changes the overall Gibb's free energy (ΔG) of the reaction.
It increases the rate at which the reaction reaches equilibrium.
Explanation:Enzymes accelerate the rate of reaction by lowering the activation energy, thereby allowing the system to reach chemical equilibrium more quickly. However, they do not alter the position of the equilibrium or the overall free energy change of the reaction (ΔG).
A holoenzyme is formed when an apoenzyme combines with a:
Substrate
Product
Cofactor
Inhibitor
Explanation:An apoenzyme is the protein component of an enzyme that is inactive on its own. It becomes active, forming a holoenzyme, when it binds to its specific non-protein cofactor (which can be an inorganic ion or a coenzyme).
Which model of enzyme action is better suited for explaining the action of regulatory enzymes that can bind to more than one related substrate?
Lock and Key Model
Induced Fit Model
Allosteric Model
Competitive Inhibition Model
Explanation:The Induced Fit Model, with its flexible active site, can better explain the broader specificity of some enzymes that can act on a range of structurally similar substrates, as well as the regulatory mechanisms where substrate binding induces conformational changes.
When an enzyme catalyzes a reaction, it achieves this by:
Directly increasing the temperature of the reactants.
Forcing reactants to collide more frequently.
Providing a microenvironment that facilitates bond breaking and formation.
Consuming the reactants to form an intermediate.
Explanation:The active site of an enzyme creates a unique microenvironment (e.g., localized pH, charge distribution, desolvation) that precisely positions substrates and stresses specific bonds, thereby facilitating their conversion to products.
Which of the following is NOT a step in the general mechanism of enzyme action?
Formation of an enzyme-substrate complex.
Conversion of substrate to product.
Release of enzyme from the product.
Permanent alteration of the enzyme's active site.
Explanation:Enzymes are biological catalysts that are reused repeatedly. Their active site regains its original conformation after the reaction, ready to bind to another substrate molecule. A permanent alteration would imply the enzyme is consumed or denatured.
The term "transition state" in an enzyme-catalyzed reaction refers to:
The initial state of the reactants.
The final state of the products.
A high-energy, unstable intermediate formed during the reaction.
The state where the enzyme is denatured.
Explanation:The transition state is a transient, high-energy, unstable intermediate structure formed during the conversion of reactants to products. Enzymes stabilize this transition state, thereby lowering the activation energy required to reach it.
If an enzyme has an optimum pH of 2.0, it is likely to be found in which part of the human body?
Small intestine
Blood
Stomach
Muscle cells
Explanation:An enzyme with an optimum pH of 2.0, such as pepsin, is adapted to function in highly acidic environments. The human stomach contains strong hydrochloric acid, providing the necessary acidic conditions for such enzymes.
Which of the following best describes the role of enzymes in metabolic pathways?
They provide the energy needed for the reactions.
They direct the pathway towards the formation of specific products.
They act as structural components of the pathway.
They primarily store genetic information for the pathway.
Explanation:Enzymes are highly specific and catalyze particular reactions in a sequential manner within metabolic pathways. This specificity ensures that the correct products are formed efficiently, directing the flow of metabolites through the pathway.
A characteristic common to both the Lock and Key and Induced Fit models of enzyme action is:
The active site remains rigid throughout the reaction.
Substrate binding occurs at a specific active site.
The enzyme undergoes denaturation during catalysis.
The enzyme is consumed in the reaction.
Explanation:Both models agree that the substrate binds to a specific region on the enzyme called the active site. The main difference lies in whether this active site is rigid (Lock and Key) or undergoes conformational changes (Induced Fit) upon substrate binding.
At what approximate temperature do most human enzymes exhibit their maximum activity?
Explanation:Most human enzymes are optimally active at temperatures close to normal human body temperature, which is approximately 37-38°C. Temperatures significantly above or below this range can reduce or abolish their activity.
Increasing the temperature of an enzyme-catalyzed reaction typically doubles the reaction rate for every 10°C rise, up to a certain point. This is due to:
Enzyme denaturation.
Increased kinetic energy and collision frequency between enzyme and substrate.
Decrease in activation energy.
Formation of stronger enzyme-substrate complexes.
Explanation:Within the physiological range, an increase in temperature boosts the kinetic energy of both enzyme and substrate molecules. This leads to more frequent and energetic collisions, thus increasing the probability of enzyme-substrate complex formation and subsequent product formation.
What happens to an enzyme's activity when the temperature rises significantly above its optimum?
The enzyme becomes more efficient.
The enzyme's tertiary structure is maintained.
Denaturation occurs, leading to a loss of catalytic activity.
The enzyme forms stronger bonds with the substrate.
Explanation:High temperatures disrupt the weak bonds that maintain an enzyme's precise three-dimensional structure. This irreversible change in shape, known as denaturation, destroys the active site and abolishes catalytic activity.
When an enzyme is exposed to temperatures significantly below its optimum (e.g., near freezing), its activity usually:
Increases rapidly.
Becomes permanently denatured.
Is temporarily inactivated but can regain activity upon warming.
Shifts its optimum pH.
Explanation:Low temperatures reduce kinetic energy, slowing molecular motion and enzyme activity. However, enzymes generally retain their structure and regain activity when the temperature returns to optimal.
The pH at which an enzyme exhibits its maximum activity is called its:
Isoelectric point
Neutral point
Optimum pH
Saturation pH
Explanation:Each enzyme has a specific pH range at which it functions most efficiently, and the point of peak activity is its optimum pH.
Pepsin, an enzyme found in the stomach, has an optimum pH of approximately 2.0. This indicates that:
It functions best in a neutral environment.
It is inactivated in acidic conditions.
Its active site is adapted to highly acidic environments.
It only functions in the presence of high salt concentrations.
Explanation:Pepsin is adapted to the highly acidic conditions of the stomach, with optimal activity at pH ~2.
Extreme changes in pH can lead to irreversible loss of enzyme activity primarily by:
Increasing the enzyme's affinity for its substrate.
Altering the enzyme's primary amino acid sequence.
Disrupting the ionic and hydrogen bonds that maintain the enzyme's tertiary structure.
Reducing the kinetic energy of the enzyme molecules.
Explanation:Extreme pH values disrupt key bonds that maintain the enzyme's structure, causing denaturation.
How does increasing enzyme concentration affect the rate of an enzyme-catalyzed reaction, assuming substrate is not limiting?
It decreases the reaction rate.
It has no effect on the reaction rate.
It directly increases the reaction rate.
It decreases the activation energy further.
Explanation:With excess substrate, more enzymes mean more active sites and a directly proportional increase in reaction rate.
In a reaction with a fixed amount of enzyme, as substrate concentration increases, the reaction rate will initially increase but eventually plateau. This plateau indicates:
The enzyme is denatured.
The reaction has reached its equilibrium.
All active sites of the enzyme are saturated with substrate.
The temperature is too high.
Explanation:At high substrate concentrations, all active sites are occupied. The enzyme is working at its maximum rate (Vmax).
The maximum velocity (Vmax) of an enzyme-catalyzed reaction occurs when:
The enzyme concentration is very low.
The substrate concentration is negligible.
The enzyme is saturated with substrate.
The pH is extremely acidic or basic.
Explanation:Vmax is reached when all enzyme molecules are bound to substrate and catalyzing at maximum efficiency.
If the graph of reaction rate versus temperature for a human enzyme shows a sharp decrease after the optimum, this is primarily due to:
Increased substrate inhibition.
Reversible inactivation.
Permanent denaturation of the enzyme.
Formation of precipitate.
Explanation:The sharp decrease is due to irreversible denaturation of the enzyme beyond its optimum temperature.
Which factor's effect on enzyme activity is often depicted by a bell-shaped curve?
Enzyme concentration
Substrate concentration
pH
Product concentration
Explanation:Enzyme activity vs. pH often shows a bell-shaped curve, with peak activity at the optimum pH and reduced activity on either side.
Consider an enzyme from thermophilic bacteria. Compared to a human enzyme, its optimum temperature would likely be:
Significantly lower.
The same.
Significantly higher.
Dependent on the substrate.
Explanation:Thermophilic enzymes are adapted to high temperatures, often 70°C or higher, unlike human enzymes (~37°C).
If the rate of an enzymatic reaction is plotted against enzyme concentration, assuming unlimited substrate, the graph would show a:
Bell-shaped curve.
Hyperbolic curve.
Linear increase.
Decrease followed by a plateau.
Explanation:With unlimited substrate, more enzyme means more active sites and a linear increase in reaction rate.
The effect of pH on enzyme activity is primarily related to its influence on the:
Molecular weight of the enzyme.
Covalent bonds within the enzyme.
Ionization state of amino acid residues in the active site.
Overall concentration of water in the reaction.
Explanation:pH affects the ionization of key amino acids, especially at the active site, altering the enzyme's structure and function.
Why does the rate of an enzyme-catalyzed reaction decrease at very high substrate concentrations in some?
The enzyme becomes denatured.
The active sites are all saturated.
Excess substrate might bind to an allosteric site and inhibit the enzyme.
The product starts inhibiting the enzyme.
Explanation:In substrate inhibition, excess substrate may bind to non-catalytic sites, distorting the enzyme and reducing activity.
The term "Q10 value" in relation to enzyme activity refers to the factor by which the rate of reaction increases for every:
1°C increase in temperature.
5°C increase in temperature.
10°C increase in temperature.
1 pH unit change.
Explanation:Q10 is the factor by which reaction rate increases with a 10°C rise in temperature, typically doubling within limits.
If an enzyme functions optimally at a pH of 8.0, it is likely to be active in:
The stomach
The lysosome
The small intestine
The vacuole
Explanation:Enzymes like trypsin, with optimal activity around pH 8.0, function best in the alkaline environment of the small intestine.
An enzyme's activity is significantly reduced at a non-optimal pH due to:
A change in the enzyme's primary structure.
Disruption of the enzyme's peptide bonds.
Alterations in the ionization state of amino acid residues.
Increased covalent bonding within the active site.
Explanation:Non-optimal pH affects ionizable side chains in the enzyme, particularly in the active site, reducing substrate binding and catalysis.
Which graph represents the effect of enzyme concentration on the rate of reaction when substrate is abundant?
A bell-shaped curve.
A curve that plateaus at Vmax.
A straight line increasing proportionally.
A curve showing initial increase then decrease.
Explanation:With abundant substrate, the rate of reaction increases linearly with enzyme concentration.
What happens to enzyme activity when the pH is slightly altered from the optimum, but not to an extreme level?
The enzyme irreversibly denatures.
The enzyme's primary structure changes.
The enzyme's activity is temporarily reduced due to ionization changes.
The enzyme becomes more active.
Explanation:Minor pH changes may affect ionization of active site residues, temporarily reducing activity, but it's usually reversible.
An enzyme from a psychrophilic organism would likely have an optimum temperature:
Much higher than human enzymes.
Similar to human enzymes.
Close to 0°C.
That is highly variable.
Explanation:Psychrophilic enzymes are adapted for cold environments and function optimally around 0°C.
Which statement about the effect of substrate concentration on enzyme activity is correct?
Increasing substrate concentration always increases the reaction rate linearly.
At very high substrate concentrations, the enzyme activity decreases rapidly.
The reaction rate reaches Vmax when the enzyme becomes saturated with substrate.
Substrate concentration primarily affects the enzyme's optimal temperature.
Explanation:Reaction rate increases with substrate concentration until saturation, at which point Vmax is reached.
A significant decrease in enzyme activity at very low temperatures is primarily due to:
Denaturation of the enzyme.
Formation of stronger enzyme-substrate bonds.
Reduced kinetic energy of molecules, leading to fewer effective collisions.
Competitive inhibition by water molecules.
Explanation:Low temperature slows molecular motion, reducing collision frequency between enzyme and substrate, thus lowering activity.
The effect of enzyme concentration on reaction rate can be understood as:
Each enzyme molecule can only catalyze one reaction.
More enzyme molecules.
Enzyme concentration affects the activation energy.
It is only relevant when substrate is limiting.
Explanation:More enzymes mean more active sites are available to bind and convert substrate, increasing reaction rate.
If a graph shows enzyme activity sharply declining below its optimum pH, it suggests that:
The enzyme is becoming more stable.
The active site is gaining more positive charges.
The enzyme is becoming saturated.
The enzyme is forming aggregates.
Explanation:Below optimum pH, increased protonation alters active site charge, impairing substrate interaction and catalysis.
Which pair of factors primarily influences the enzyme's three-dimensional structure and, consequently, its active site?
Substrate concentration and product concentration.
Light intensity and atmospheric pressure.
Temperature and pH.
Enzyme concentration and cofactor concentration.
Explanation:Temperature and pH impact the hydrogen, ionic, and hydrophobic bonds maintaining enzyme structure and active site integrity.
The initial rate of an enzyme-catalyzed reaction is often measured because:
Product inhibition becomes significant later.
The enzyme is most stable at the beginning.
Substrate concentration is highest at the start.
The temperature is constant only at the beginning.
Explanation:At the start, substrate concentration is highest, and product inhibition is negligible, so the initial rate reflects true enzyme activity.
A molecule that binds to an enzyme and decreases its activity is called an:
Activator
Cofactor
Inhibitor
Substrate
Explanation:An inhibitor is any substance that reduces the activity of an enzyme. Inhibition can be a normal regulatory mechanism or caused by foreign substances like drugs or poisons.
In competitive inhibition, the inhibitor typically binds to the:
Allosteric site
Catalytic site
Active site
Product binding site
Explanation:Competitive inhibitors compete with the substrate by binding to the enzyme's active site, preventing substrate binding.
Which characteristic distinguishes a competitive inhibitor from a non-competitive inhibitor?
Competitive inhibitors bind irreversibly.
Competitive inhibitors are structurally dissimilar to the substrate.
Competitive inhibition can often be overcome by increasing substrate concentration.
Competitive inhibitors bind to an allosteric site.
Explanation:Competitive inhibition can be overcome by increasing substrate concentration, allowing the substrate to outcompete the inhibitor.
Non-competitive inhibitors primarily affect enzyme activity by binding to the:
Active site.
Product.
Allosteric site.
Substrate itself.
Explanation:Non-competitive inhibitors bind to an allosteric site, inducing conformational changes that reduce catalytic efficiency.
Which of the following is an example of a competitive inhibitor mentioned in the provided text?
Cyanide
Heavy metal salts
Penicillin
Threonine
Explanation:Penicillin blocks the active site of bacterial enzymes involved in cell wall synthesis, making it a competitive inhibitor.
Irreversible non-competitive inhibitors typically cause permanent inactivation of an enzyme by:
Mimicking the substrate structure.
Forming strong covalent bonds with the enzyme.
Competing for active sites.
Increasing the optimal temperature of the enzyme.
Explanation:Irreversible non-competitive inhibitors form covalent bonds with the enzyme, leading to permanent structural changes.
Feedback inhibition is a regulatory mechanism where the activity of an enzyme in a metabolic pathway is inhibited by:
An activator molecule.
The end product of the pathway.
An intermediate product of the pathway.
A competitive substrate.
Explanation:In feedback inhibition, the final product of a pathway inhibits an earlier enzyme to regulate production.
In feedback inhibition, the end product typically binds to which site on the enzyme to exert its inhibitory effect?
Active site
Substrate binding site
Allosteric site
Catalytic site
Explanation:The end product binds to an allosteric site, causing a conformational change that reduces enzyme activity.
Cyanide is a potent poison because it acts as an irreversible non-competitive inhibitor of:
Amylase
Pepsin
Cytochrome oxidase
Trypsin
Explanation:Cyanide binds to cytochrome oxidase in the electron transport chain, blocking cellular respiration and energy production.
Which type of inhibition is often a normal mechanism for regulating metabolic pathways in living organisms?
Irreversible non-competitive inhibition
Competitive inhibition by drugs
Feedback inhibition
Heavy metal inhibition
Explanation:Feedback inhibition is a natural regulatory process used by cells to control enzyme activity and conserve resources.
Malonate is given as an example of an inhibitor of succinate dehydrogenase. It is chemically similar to succinate. What type of inhibition would malonate likely exhibit?
Non-competitive inhibition
Irreversible inhibition
Competitive inhibition
Allosteric inhibition
Explanation:Malonate resembles succinate and competes for the enzyme's active site, making it a competitive inhibitor.
If increasing the substrate concentration can completely reverse the effect of an inhibitor, that inhibitor is most likely:
A non-competitive inhibitor.
An irreversible inhibitor.
A competitive inhibitor.
An allosteric activator.
Explanation:Competitive inhibition can be overcome by increasing substrate concentration, outcompeting the inhibitor for the active site.
Heavy metal ions like Hg++ and Ag+ can act as non-competitive inhibitors by:
Binding to the active site.
Breaking disulfide bridges and causing enzyme denaturation.
Increasing the enzyme's optimal temperature.
Competing with the substrate for binding.
Explanation:Heavy metals disrupt enzyme structure by binding to sulfhydryl groups, breaking disulfide bonds and denaturing the enzyme.
An enzyme undergoing feedback inhibition typically has:
Only an active site.
Only an allosteric site.
Both an active site and an allosteric site.
No specific binding sites.
Explanation:Enzymes involved in feedback inhibition have both an active site for the substrate and an allosteric site for the product.
Sulfa drugs act as inhibitors of bacterial enzyme action by mimicking PABA (para-aminobenzoic acid), a substrate for folic acid synthesis. This mechanism classifies sulfa drugs as:
Non-competitive inhibitors.
Irreversible inhibitors.
Competitive inhibitors.
Allosteric regulators.
Explanation:Sulfa drugs mimic PABA and competitively inhibit the enzyme involved in folic acid synthesis in bacteria.
Which type of inhibition involves the inhibitor binding to the enzyme-substrate complex, but not to the free enzyme?
Competitive inhibition
Non-competitive inhibition
Uncompetitive inhibition
Feedback inhibition
Explanation:Uncompetitive inhibitors bind only to the enzyme-substrate complex, reducing both Vmax and Km of the reaction.
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