115:508 Proteins & Enzymes spring 2002

Kinetics: Product and Substrate Inhibition

Let us now consider inhibition in Cleland's language. Of course I here refer to reversible inhibitors binding in a noncovalent manner - covalently reacting, irreversible inhibitors will be discussed in a later lecture. Reversible inhibitors are of two basic kinds: dead-end inhibitors, molecules which bind to the enzyme but cannot undergo reaction, so that the E^.I complex can only dissociate inhibitors, not proceed in any other way, it is up a dead-end street; and product inhibitors, compounds which are normal products of the reaction, binding where they dissociate as products. In the experiment, one of the products of a multi-substrate, multi-product reaction is added to the assay and binds, backing up the reaction and causing the rate to decrease. It causes there to be an increased amount of all previous complexes to which its point of combination is reversibly connected, and a decrease in free E and in product complexes after its point of combination/dissociation.

In any kind of inhibition one looks to see whether the inhibitor affects only the slope of the Lineweaver-Burk plot ("competitive" inhibition), only the intercept ("uncompetitive"), or both ("noncompetitive". Many authors reserve the term noncompetitive for the special case where the L-B plots intersect on the x axis, indicating that the K_i is the same no matter what form of the enzyme the inhibitor combines with; when the intersection is elsewhere they call the inhibition "mixed noncompetitive" or just "mixed"

The effect of an inhibitor on slope and intercept of 1/v vs 1/[S] plots may be predicted by essentially the same rules we went over last time. Slope effects occur only when an inhibitor combines with an enzyme form reversibly connected with the form with which the varying substrate combines; an added requirement for dead-end inhibitors is that a slope effect is seen only when the inhibitor binds to an enzyme form before (or the same as) that with which the varying substrate combines, since a dead-end inhibitor, unlike a product inhibitor, cannot back up the reaction sequence; it merely decreases proportionally the amounts of all the other enzyme forms present by sequestering some of the enzyme as the E^.I complex. This gives a powerful method of determining whether a sequential mechanism is strictly ordered or random: add a dead-end inhibitor which is a good analog of the supposed second substrate to bind (it must be competitive vs that substrate). If the reaction is strictly ordered, so that substrate B and the inhibitor B' which is competitive with it can bind only to the EA complex, then B' will be an uncompetitive inhibitor vs substrate A. If the reaction is random, i.e. B and B' can also bind to free enzyme, then there will be at least some slope effect due to B' binding to free E, the same form with which A binds.

Intercept effects are seen only when the inhibitor combines with an enzyme form different from that to which the varying substrate binds - obviously if they combine with the same form, saturation with the varying substrate eliminates the inhibition. If an inhibitor gives competitive inhibition vs both substrates, it indicates that the inhibitor and both substrates combine with the same form of enzyme, presumably free enzyme, and therefore the reaction must be random, not ordered sequential; all product inhibitions being competitive is a typical sign of a rapid equilibrium random mechanism. However, this is rarely seen, because of additional dead-end complexes.

Non-competitive inhibition, i.e. both slope and intercept effects, results from application of both the above rules, i.e. the inhibitor combines with a form different from that with which the varying substrate combines, but reversibly connected to it. It follows that most product inhibition, especially in sequential mechanisms, is non-competitive, with the first substrate on and last product off being competitive vs each other because both bind to free enzyme.

A B P Q A and Q are competitive; Q is noncompetitive vs B, P is non-
Ø Ø ≠ ≠ competitive vs both A and B. There is a spe cial case of the

E —————————— E ordered sequential mechanism, called the Theorell-Chance mechanism, after Hugo Theorell and Britton Chance, who suggested it in 1951 for horse liver alcohol dehydrogenase. In it the interconversion of central complexes, EAB € EPQ, and the dissociation of B and P are so rapid that in presence of P the complexes EA and EQ are in rapid equilibrium with each other and B and P are competitive with each other, there are two competitive and two non-competitive product inhibitions. If in addition there is a fairly slow isomerization of free enzyme between the release of Q and binding of A, Q may be non-competitive vs A, so that the pattern typical of an ordered sequential mechanism, three non-competitive and one competitive product inhibition, is seen, but the points of binding of the substrates and products in the mechanism are misidentified. This is an example of when actual kinetic results can be confusing. Binding studies would indicate that only A and Q actually bind to free enzyme.

Question, in a Ter Ter ordered sequential mech- A B C P Q R anism, which inhibitions will not be noncompeti tive? Ø Ø Ø ≠ ≠ ≠

Answer: R competitive vs A; Q uncompetitive E ————————————— E
vs. all three substrates.

One may carry out further analysis by carrying out product inhibition studies at saturating levels of one substrate - best done by carrying out studies at several levels of one substrate and extrapolating to infinite levels of it. For instance, one could assay the enzyme at five levels of A, five levels of B and five levels of P - 125 assays; plot the results as 1/v vs 1/[B] for each combination of [A] and [P], and determine the y intercepts - 25 of them; then plot them vs 1/[A] along five lines corresponding to the five levels of P, i.e. P is the changing compound. Since the intercepts of 1/v vs 1/[B] plots were used, B is saturating, and an additional irreversible step is introduced. If the mechanism is simple ordered sequential, P will now be an uncompetitive inhibitor vs A. A slope effect would suggest that P can also bind to free E in competition with A. It cannot be binding to EA, because at saturating B any EA is immediately converted to EAB; and binding to EAB would still yield uncompetitive inhibition.

One can then plot slope and intercept values, whichever vary with inhibitor concentration, vs the inhibitor concentration, to see if this plot is linear. All dead-end inhibitions give linear replots, because dead-end inhibitors do not affect the relative amounts of other enzyme forms present (unless they create alternate pathways, as in the example I gave where the EIA complex could go ahead to EI + P). Product inhibitors may give linear plots, if they combine only at one point, or if the points of combination are not reversibly connected. However, if combination at two points has opposing effects - for instance, combination with free E decreases the amount of EQ complex with which P would normally bind - hyperbolic replots will be observed, i.e. a replot of slopes or intercepts vs [P] does not increase linearly, but levels off. If combination of product at one point increases the amount of complex to which it binds at another point, as can happen with P as product and dead-end inhibitor vs B, parabolic replots are seen, i.e. the slope or intercept increases more than linearly with P concentration. This will also be the case if any EP₂ complex is formed.

Linear product inhibition (a linear replot vs [P]) requires that 1) there is only one reaction sequence, 2) all products are different (normal except in a few reactions such as myokinase), 3) no dead-end inhibition by the product occurs. Observed linear product inhibition thus indicates that these conditions do hold (except for the minor case where irreversible steps intervene between the two points of combination).

Unfortunately, the greatest problem in the use of product inhibitors is that they may also act as dead-end inhibitors, binding at another point in the reaction sequence, and you may have to unscramble the effects of two or three different combinations with enzyme. In addition, high levels of substrates often cause inhibition. With single-susbtrate enzymes this can happen only by parts of two substrate molecules binding, neither able to undergo reaction, but more usually this occurs in multi-substrate reactions by binding where a product should bind. These so-called abortive ternary complexes are very common among dehydrogenases, either E^.NAD^+.carbonyl or E^.NADH^.alcohol. being formed, depending on which way the reaction is being run. The reaction is completely inhibited if coenzyme cannot dissociate from this complex, or slowed if it dissociates more slowly than from the binary complex; in some cases it actually dissociates faster than from the binary complex, and substrate activation is seen.

Substrate inhibition normally gives a L-B plot which is a sort of hyperbola, one asymptote being the straight line which would be the plot in absence of inhibition, and the other being the y axis. The plot diverges from the uninhibited line, passes through a minimum, and swings up along the y axis. To determine the normal kinetic constants, K_m and V_max, one needs the true asymptote, which is not quite the same as the apparently linear part of the plot. For simple linear substrate inhibition v = ; the minimum point of the curve is at [A] = , and a line connecting it to the y intercept of the asymptote has slope = 2K_a/V_max or double that of the asymptote; thus if the minimum of the plot is well defined, the y intercept of the asymptote can be determined by adjusting it until this relationship is fulfilled. But the best method is to fit the data to the equation by non-linear least squares to get the statistically most accurate values of K_m and K_i.

Cleland says the proper way to study substrate inhibition is to plot 1/v vs. 1/a non-inhibitory substrate at different inhibitory levels of the inhibiting substrate and determine whether the slopes increase - competitive substrate inhibition - or the intercepts increase – uncompetitive substrate inhibition - or both - non-competitive. Competitive substrate inhibition is typical of ping-pong mechanisms - due to substrate B combining with E, the form with which A combines, as well as F, the form with which B normally combines. Uncompetitive substrate inhibition is typical of sequential mechanisms where EBQ is formed and cannot dissociate Q. The intercepts go through a minimum and then rise again.

With simple substrate inhibition the replot of slopes or intercepts should eventually become linear with increasing substrate concentration - a plot of 1/v vs. [B] rather than 1/[B], but in some cases it is hyperbolic, approaching a maximum value. This is what happens with dehydrogenases which form EBQ complexes from which Q can dissociate, but at a slower rate than from the EQ complex; 1/v approaches a maximum value, v a minimum, corresponding to the limiting rate of Q dissociation from the EBQ complex.

Segal goes on to discuss various further types of inhibition. For instance, the inhibitor may only reduce the binding of substrate to enzyme - increase K_s by some factor a greater than 1, without affecting V_max. This causes the slope of L-B plots to increase without affecting the intercept, so this is a competitive inhibition, but the slope, instead of increasing indefinitely as [I] increases, approaches a maximum= aK_s/V_max. A replot of the slopes vs [I] is a hyperbola, as is a Dixon plot of 1/v vs. [I]. The slope and the apparent K_m are increased over the uninhibited state by a factor ; as [I] becomes very large this approaches and a in the denominator of the denominator becomes a in the numerator, the slope approaches aK_s/V_max.

K_i and a can be determined from a manipulation of the slopes as follows: subtract the uninhibited slope from the inhibited slope . To see the reason for this, multiply the uninhibited slope by . Then you have - , or = . Multiply top and bottom of the bracketed expression by aK_i and put [I] outside at the top: . For convenience, call this ∆. Now invert this:
= = + . Thus a plot of 1/∆ vs. 1/[I] will have intercept , allowing a to be calculated since is known from the uninhibited case. The slope is , allowing K_i to be calculated once a is known.

An equivalent case for non-competitive inhibition is when [I] does not affect binding of substrate, but decreases the forward velocity by some factor b. As I increases V_m decreases, approacing a limiting value bV_max. The equation is equivalent, the intercept and slope both being multiplied by a factor . b and K_i are evaluated by plots of 1/∆_int vs 1/[I] as suggested for the previous case, ∆_int being (intercept in presence of inhibitor) - (intercept in absence of inhibitor). This type of inhibition looks like ordinary pure non-competitive inhibition except for the hyperbolic dependence of V_max on [I]; all L-B plots will intersect on the x axis.

The next simple case is that suggested earlier, where EIS does not yield product but S does change the dissociation constant for I, K_i' = aK_i (and K_s' = aK_s). In this case the slope is increased by the factor 1 + [I]/K_i and the intercept by the factor 1 + [I]/aK_i. If a is greater than 1, the plots will intersect above the x axis; I and S mutually increase each other's dissociation constant. It is perfectly possible for I and S to decrease each other's dissociation constant, a<1; then the L-B plots will intersect below the x axis. The x coordinate of the intersection point is -1/aK_s, and the y coordinate is . The x intercepts of replots of slope or intercept vs [I] are -K_i and -aK_i respectively. The Dixon plot looks like that of competitive inhibition - intersection above the x axis - but the intersection is below 1/V_max.

Haldanes

One other thing which can be done with K_mand V_max values derived from variation of v in each direction with each substrate and product concentration: one can determine whether the Haldane relationships come out right. Haldane relationships are expressions of the equilibrium constant in terms of V_ms and K_ms. For a one-substrate, one product reaction the Haldane is simply K_eq = ; note that any one term can vary without constraint from the equilibrium constant, allowing catalysis to be to some extent unidirectional (if K_p is above the steady state concentration of P), but the overall relationship must be preserved.

For multisubstrate situations different mechanisms give different Haldane relationships and consequently they can be used as tests of the mechanism supposed to exist; for instance, sequential 2-substrate mechanisms have the Haldane relationship K_eq = ø_pq/ø_ab, where ø_pq, ø_ab are the coefficients of the terms in the reciprocal equation which are sensitive to both substrates or products - the slope of a replot of the slopes of primary plots. In a ping-pong mechanism K_eq = , the ø_pq, ø_ab terms being lacking. In 3-substrate mechanisms there are several Haldane relationships, using both the K_ms and the inhibition constants K_ia, K_ib, ….

Similar but more powerful relationships were derived by Dalziel; they concern the relationship of the maximum rate (V_max with both substrates saturating) to the ø parameters. In the general sequential model ø_ab[E]_t is greater than V_r times ø_aø_b, while for the extreme cases, the rapid equilibrium random and Theorell-Chance mechanisms, ø_ab = , or to put it another way = 1. A value of 1 is considered by Dalziel to indicate an essentially Theorell-Chance mechanism, coenzyme dissociation (off rate of product Q) being rate limiting, while a value less than 1 indicates that other steps play a role in determining V_max, i.e. the mechanism is ordered but not Theorell-Chance, and a value greater than 1 indicates that something else kinetically significant is going on, such as isomerization of free enzyme.

Failure of experimental results to accord with a predicted Haldane relationship is usually a signal that some kinetically important step not influenced by substrate, such as isomerization of a stable enzyme form or a transitory complex, has been left out of the expression. I won't try to give an example, but you can read about this in Cleland's Biochim. Biophys. Acta papers, or in a paper from Dr. Pietruszko's lab on an isozyme of alcohol dehydrogenase.