Inhibitor Concentration given Apparent Initial Enzyme Concentration Solution

STEP 0: Pre-Calculation Summary
Formula Used
Inhibitor Concentration for CI = ((Initial Enzyme Concentration/Apparent Initial Enzyme Concentration)-1)*Enzyme Inhibitor Dissociation Constant
ICI = (([E0]/E0app)-1)*Ki
This formula uses 4 Variables
Variables Used
Inhibitor Concentration for CI - (Measured in Mole per Cubic Meter) - Inhibitor Concentration for CI is defined as the number of moles of inhibitor present per liter of solution of the system.
Initial Enzyme Concentration - (Measured in Mole per Cubic Meter) - The Initial Enzyme Concentration is defined as the concentration of enzyme at the start of the reaction.
Apparent Initial Enzyme Concentration - (Measured in Mole per Cubic Meter) - The Apparent Initial Enzyme Concentration is defined as the concentration of enzyme at the start of the reaction in the presence of a non-competitive inhibitor.
Enzyme Inhibitor Dissociation Constant - (Measured in Mole per Cubic Meter) - The Enzyme Inhibitor Dissociation Constant is measured by the method in which the inhibitor is titrated into a solution of enzyme and the heat released or absorbed is measured.
STEP 1: Convert Input(s) to Base Unit
Initial Enzyme Concentration: 100 Mole per Liter --> 100000 Mole per Cubic Meter (Check conversion ​here)
Apparent Initial Enzyme Concentration: 0.06 Mole per Liter --> 60 Mole per Cubic Meter (Check conversion ​here)
Enzyme Inhibitor Dissociation Constant: 19 Mole per Liter --> 19000 Mole per Cubic Meter (Check conversion ​here)
STEP 2: Evaluate Formula
Substituting Input Values in Formula
ICI = (([E0]/E0app)-1)*Ki --> ((100000/60)-1)*19000
Evaluating ... ...
ICI = 31647666.6666667
STEP 3: Convert Result to Output's Unit
31647666.6666667 Mole per Cubic Meter -->31647.6666666667 Mole per Liter (Check conversion ​here)
FINAL ANSWER
31647.6666666667 31647.67 Mole per Liter <-- Inhibitor Concentration for CI
(Calculation completed in 00.011 seconds)

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Initial Reaction Rate given Dissociation Rate Constant
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​ LaTeX ​ Go Enzyme Substrate Modifying Factor = 1+(Inhibitor Concentration/Enzyme Substrate Dissociation Constant)
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Inhibitor Concentration given Apparent Initial Enzyme Concentration Formula

​LaTeX ​Go
Inhibitor Concentration for CI = ((Initial Enzyme Concentration/Apparent Initial Enzyme Concentration)-1)*Enzyme Inhibitor Dissociation Constant
ICI = (([E0]/E0app)-1)*Ki

What is Non-competitive inhibition?

Non-competitive inhibition is a type of enzyme inhibition where the inhibitor reduces the activity of the enzyme and binds equally well to the enzyme whether or not it has already bound the substrate. In the presence of a non-competitive inhibitor, the apparent enzyme affinity is equivalent to the actual affinity because the inhibitor binds to both the enzyme and the enzyme-substrate complex equally so that the equilibrium is maintained. However, since some enzyme is always inhibited from converting the substrate to product, the effective enzyme concentration is lowered.

How to Calculate Inhibitor Concentration given Apparent Initial Enzyme Concentration?

Inhibitor Concentration given Apparent Initial Enzyme Concentration calculator uses Inhibitor Concentration for CI = ((Initial Enzyme Concentration/Apparent Initial Enzyme Concentration)-1)*Enzyme Inhibitor Dissociation Constant to calculate the Inhibitor Concentration for CI, The Inhibitor concentration given apparent initial enzyme concentration formula is defined as the relation with the initial enzyme concentration, apparent initial enzyme concentration, and with a dissociation constant. Inhibitor Concentration for CI is denoted by ICI symbol.

How to calculate Inhibitor Concentration given Apparent Initial Enzyme Concentration using this online calculator? To use this online calculator for Inhibitor Concentration given Apparent Initial Enzyme Concentration, enter Initial Enzyme Concentration ([E0]), Apparent Initial Enzyme Concentration (E0app) & Enzyme Inhibitor Dissociation Constant (Ki) and hit the calculate button. Here is how the Inhibitor Concentration given Apparent Initial Enzyme Concentration calculation can be explained with given input values -> 31.64767 = ((100000/60)-1)*19000.

FAQ

What is Inhibitor Concentration given Apparent Initial Enzyme Concentration?
The Inhibitor concentration given apparent initial enzyme concentration formula is defined as the relation with the initial enzyme concentration, apparent initial enzyme concentration, and with a dissociation constant and is represented as ICI = (([E0]/E0app)-1)*Ki or Inhibitor Concentration for CI = ((Initial Enzyme Concentration/Apparent Initial Enzyme Concentration)-1)*Enzyme Inhibitor Dissociation Constant. The Initial Enzyme Concentration is defined as the concentration of enzyme at the start of the reaction, The Apparent Initial Enzyme Concentration is defined as the concentration of enzyme at the start of the reaction in the presence of a non-competitive inhibitor & The Enzyme Inhibitor Dissociation Constant is measured by the method in which the inhibitor is titrated into a solution of enzyme and the heat released or absorbed is measured.
How to calculate Inhibitor Concentration given Apparent Initial Enzyme Concentration?
The Inhibitor concentration given apparent initial enzyme concentration formula is defined as the relation with the initial enzyme concentration, apparent initial enzyme concentration, and with a dissociation constant is calculated using Inhibitor Concentration for CI = ((Initial Enzyme Concentration/Apparent Initial Enzyme Concentration)-1)*Enzyme Inhibitor Dissociation Constant. To calculate Inhibitor Concentration given Apparent Initial Enzyme Concentration, you need Initial Enzyme Concentration ([E0]), Apparent Initial Enzyme Concentration (E0app) & Enzyme Inhibitor Dissociation Constant (Ki). With our tool, you need to enter the respective value for Initial Enzyme Concentration, Apparent Initial Enzyme Concentration & Enzyme Inhibitor Dissociation Constant and hit the calculate button. You can also select the units (if any) for Input(s) and the Output as well.
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