The correct answer is (2) K₂.
Introduction
Mechanism-based (suicide) inhibitors are among the most potent and specific enzyme inhibitors in biochemistry and pharmacology. Penicillin serves as a classical example, irreversibly inactivating transpeptidase enzymes during bacterial cell wall synthesis. Understanding exactly which step of the catalytic pathway suicide inhibition targets is essential for students and professionals interpreting enzyme kinetics, designing drugs, and analyzing metabolic control.
Enzyme Catalytic Steps and Suicide Inhibition
The typical enzyme-catalyzed reaction follows these steps:
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Ef + S ⇌ [E.S] (K₁): Free enzyme binds substrate, forming enzyme-substrate complex.
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[E.S] ⇌ [E.P] (K₂): Substrate is chemically transformed within the enzyme’s active site to enzyme-product complex—the key chemistry step.
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[E.P] ⇌ Ef + P (K₃): Product is released, enzyme is regenerated for further catalysis.
What Is a Suicide (Mechanism-Based) Inhibitor?
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Suicide inhibitors are substrate analogs recognized and processed by the enzyme as if they were normal substrates.
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During the turnover (the ES→EP step), the enzyme is inactivated by covalent modification. The enzyme “commits suicide” in trying to catalyze the reaction with the inhibitor.
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This mechanism ensures highly specific and irreversible inhibition.
Why K₂ Is the Affected Step
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K₂ is the rate constant (or equilibrium constant) for the conversion of enzyme-substrate ([E.S]) to enzyme-product ([E.P]).
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Suicide inhibitors like penicillin covalently bind only after the initial ES complex forms and the chemistry step proceeds.
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Penicillin mimics substrate and, as the enzyme attempts to convert ES to EP, forms a stable, covalent complex that the enzyme cannot resolve, locking it in the EP form and stopping further catalysis.
Answer Choices Explained
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K₁: Substrate binding step – unaffected by suicide inhibitors, as they rely on the active site binding the substrate (or analog).
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K₂: The chemistry step where the suicide inhibitor irreversibly modifies the enzyme – correct answer.
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K₃: Product release – at this stage, the enzyme is already inactivated.
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K₄: Not shown or relevant in the given pathway (the standard model involves 3 key kinetic steps).
Biological and Clinical Relevance
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Penicillin and similar β-lactam antibiotics are successful because they exploit suicide inhibition, irreversibly blocking bacterial cell wall synthesis.
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Mechanism-based inhibitors are favored for drug design due to their high specificity and reduced side effects.
Summary Table
Step | Description | Effect of Suicide Inhibitor |
---|---|---|
K₁ (E + S ⇌ ES) | Substrate binding | Not directly affected |
K₂ (ES ⇌ EP) | Chemistry/transition state (substrate to product) | Irreversible inhibition occurs |
K₃ (EP ⇌ E + P) | Product release | Inactivated enzyme cannot release properly |
K₄ | Not shown |
Conclusion
Suicide inhibitors like penicillin act during the ES → EP (K₂) step, exploiting the enzyme’s normal catalytic function to irreversibly deactivate it. This mechanism ensures maximal specificity and lasting inhibition, making K₂ the critical target step.
33 Comments
Kirti Agarwal
September 12, 2025ES – EP modified the reaction and product is not formed
Khushi Vaishnav
September 12, 2025K2 because of Es – Ep (substrate to product)
Kanica Sunwalka
September 13, 2025At ES -> EP
enzyme becomes inactive due to covalent modification – enzyme commit suicide in trying to bind with inhibitor
option 2 is correct
Bharti yadav
September 13, 2025K2 is correct answer
Suicidal inhibitor irreversibly modifies the enzyme
yashika
September 13, 2025Suicide inhibitor act on es to ep means k2
Kajal
September 13, 2025Suicide inhibitor affect during k2 step or during ES to EP
Aakansha sharma Sharma
September 13, 2025Suicide inhibitor affect during k2 step or during ES to EP
Rishita
September 14, 2025K2 is the right answer
Pratibha Jain
September 14, 2025K2 is correct answer
Suicidal inhibitor irreversibly modifies the enzyme
Santosh Saini
September 14, 2025ES-EP modified the reaction , irreversible inhibition occur
Mohd juber Ali
September 14, 2025K2 ( E.S. ➡️ E+P ) irreversible inhibition occur sucide inhibitor like penciline
Dharmpal Swami
September 14, 2025K2 is a irreversible inhibition occur sucide inhibitor like penicilline
anjani sharma
September 14, 2025K2 would be the answer as it should form enzyme and product but instead here its forming enzyme product complex
Konika Naval
September 14, 2025K2
Pallavi Ghangas
September 14, 2025Suicide inhibitor inhibit step going from ES to EP and the inhibition is irr reversible
Aafreen Khan
September 14, 2025K2 [ ES – EP] sucidie like penicillin is irreversible inhibition occurs
Sakshi yadav
September 14, 2025K2 = ES–EP
Priya dhakad
September 14, 2025K2 because of Es – Ep .
Sakshi Kanwar
September 14, 2025Suicide inhibitors like penicillin irreversibily covalently bind only after the initial ES complex forms causing lasting inhibition
Soniya Shekhawat
September 15, 2025K₂: The chemistry step where the suicide inhibitor irreversibly modifies the enzyme. In which step of this ES to EP.
Vanshika Sharma
September 15, 2025K2
Bhawna Choudhary
September 15, 2025K2 is correct answer
Samiksha bajiya
September 15, 2025Suicide inhibitor like penicillin affect during K2 step or during Es to Ep
Nilofar Khan
September 16, 2025Correct answer is (2) K2
K2=ES-EP
Payal Gaur
September 16, 2025Option 2. K2
Tanvi Panwar
September 16, 2025Suicide inhibitors like penicillin act during the ES → EP (K₂) step, thus affecting the K2.The enzyme is modified .
Khushi Agarwal
September 17, 2025Intermediate step (k2)
Priya khandal
September 17, 2025K2is right
Avni
September 17, 2025Suicide inhibitors like penicillin act during the ES → EP (K₂) step
Minal Sethi
September 19, 2025K2 as it is the constant for ES to E + P
Muskan Yadav
September 19, 2025K2 is correct answer
Suicidal inhibitor irreversibly modifies the enzyme.
Palak Sharma
September 21, 2025At K2 step, the inhibitor inactivates the enzyme irreversibly thus causing suicide of enzyme and prevents further catalysis.
Kajal
September 25, 2025The correct answer is (2) K₂