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Q1: What is the role of activation energy in enzyme-catalyzed reactions?
Activation energy is the minimum amount of energy required for a reaction to proceed. Enzymes lower this activation energy by providing an alternate reaction pathway, enabling reactions to occur faster and using less energy. This catalytic function allows biological processes to happen efficiently at body temperature without requiring excessive heat or energy input.
Q2: How does an enzyme's active site determine which substrates it can bind?
Each enzyme's active site has a specific shape and chemical properties that match only certain substrates. When the correct substrate enters the active site, the enzyme changes shape to achieve higher affinity, facilitating the reaction. The enzyme then releases the products and returns to its original shape, ready to repeat the catalytic cycle with new substrate molecules.
Q3: What is the difference between catabolic and anabolic enzymes?
Catabolic enzymes break down larger molecules into multiple smaller products, such as lactase splitting lactose into glucose and galactose. Anabolic enzymes combine multiple substrates into a single larger product, like DNA polymerase joining nucleotides to synthesize DNA. These opposing functions allow organisms to both extract energy and build complex molecules.
Q4: How do pH and temperature affect enzyme activity?
Enzymes require specific pH and temperature ranges to function optimally. Deviations from optimal pH alter the charges in the active site, preventing substrate interaction. Similarly, temperature shifts alter the active site shape; returning to optimal temperature usually restores function, but excessive heat can permanently denature the enzyme. These properties are exploited in food preservation through pickling and cooking.
Q5: What are cofactors and coenzymes, and why do some enzymes need them?
Cofactors are inorganic substances like ions (Mg2+, Mn2+) required for enzymatic function, while coenzymes are organic biomolecules like B vitamins that participate in catalysis without being consumed. Some enzymes cannot catalyze reactions independently and require these helper molecules to function. For example, vitamin C is an essential coenzyme for collagen synthesis.
Q6: How is enzyme reaction rate measured and used as a reference in experiments?
Reaction rate is quantified by measuring the amount of product made per unit time, calculated during the linear phase when product concentration increases steadily until enzyme saturation. Once a baseline reaction rate is established under standard conditions, it serves as a control reference point for comparing how different treatments like temperature or pH variations affect enzyme efficiency.
Q7: What are enzyme inhibitors and how do they affect enzyme function?
Enzyme inhibitors are molecules that decrease enzymatic activity by binding to the active site or allosteric sites on the enzyme. Inhibitor binding can be reversible, allowing the enzyme to resume function once the inhibitor detaches, or irreversible, permanently damaging the enzyme. Inhibitors have practical applications as antibiotics to inhibit bacterial growth and as chemotherapeutics to prevent cancer cell division.