Document e1x5Q5J6DeRGg93Vy0p6B06M4
ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS Vol. 241, No. 1, August 15, pp. 88-94, 1985
Inhibition of Microsomal Lipid Peroxidation by Naphthoquinones: Structure-Activity Relationships and Possible Mechanisms of Action'
RONALD E. TALCOTT,* MARTYN T. SMITH,?' AND DONALD D. GIANNINIS
*Brain Turn& Research of Califwnia, San Berkeley,
Center, Departments of Laboratory Medicine and Neurological Surgery, University
Francisco, California 9U&Y; tSchoo1 of Public Health, University of Califoria,
California 94720; and $Department of Pharmaceutical
Chemistry,
University of California, San Francisco, California 9414.3
Received November 27, 1984, and in revised form April 30, 1985
Menadione (2-methyl-1,4-naphthoquinone)
is a remarkably potent inhibitor of
microsomal lipid peroxidation, effective at submicromolar concentrations. Its possible
mechanism of action and the relationship between naphthoquinone structure and
antioxidant activity were the topics of this investigation. In the microsomal lipid-
peroxidizing system dependent on NADPH and ferric pyrophosphate, menadione, at
concentrations of 50 PM or higher virtually eliminated the accumulation of malondi-
aldehyde and lipid hydroperoxides. In the NADPH-independent,
cumene hydroperoxide-
dependent system, menadione was also an effective antioxidant, but only in the
presence of reducing equivalents. These and other observations indicate that a reduced
form of menadione, either the hydroquinone or semiquinone, is the active antioxidant,
and suggest that it may trap hydroperoxy radicals, alkoxy radicals, or other free
radicals involved in propagating lipid peroxidation. Moreover, these results show that
electron diversion per se cannot account for the antioxidant effects of menadione. A
comparison of the antioxidant activities of eight 1,4-naphthoquinones indicated that
methyl substitution of C-2, lack of steric hindrance at C-3 or C-5, and (in the case of
weak acids) a relatively high pK, are favorable structural features associated with
strong antioxidant activity. o iSa5 Academic PEW k.
Microsomal lipid peroxidation, a process
that may contribute to the toxicity of
many xenobiotics (l), has been studied
extensively since its discovery two decades
ago (2). Much attention has been focused
on the role of the microsomal electron
transport system (3-5), chelated iron (6,
7), reduced oxygen (g-lo), and organic
hydroperoxides (7, 11) in the initiation
and propagation of the peroxidative re-
action. Present understanding
of the
events in the reaction sequence derives
principally from studies performed in two
`This paper is dedicated to the memory of Dr. R. E. Talcott who died tragically in an automobile accident in 1984.
`To whom correspondence should be addressed.
model systems. The first of these requires NADPH, NADPH cytochrome P-450 reductase, and chelated iron, and is activated by the reduction of the iron to an oxygenbinding species (6,7). The ferrous-oxygen complex rearranges to perferryl ion, which is believed to initiate lipid peroxidation by abstracting a methylene hydrogen from an unsaturated fatty acid, creating an alkyl radical that combines with oxygen to form a lipid hydroperoxide (6). The lipid hydroperoxide then serves as a source of other free radicals as the chain reaction is propagated by iron species such as ferric cytochrome P-450 (7). In the second model system, the requirements for reducing equivalents and non-heme iron are bypassed by initiating the reaction with
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88
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OF
NAPHTHOQUINONES
89
an organic hydroperoxide such as cumene
hydroperoxide (7, 11). In this system, ini-
tiation is accomplished when the unsatu-
rated fatty acid donates a hydrogen to
the microsomal peroxidase, ferric cyto-
chrome P-450 (11, 12).
In the presence of sufficient butylated
hydroxytoluene (13, 14), glutathione (14,
15), and other antioxidants (1, 15), micro-
somal lipid peroxidation does not occur
and the function of the microsomal elec-
tron transport system is preserved. Men-
adione (2-methyl-1,4-naphthoquinone)
is
an especially potent antioxidant, as it
confers complete protection at submi-
cromolar concentrations (16), but the
mechanism of its action is not well un-
derstood; this was addressed in a series
of experiments described in this paper.
MATERIALS
AND METHODS
Chemicals. NADPH, TRIZMA base, hydrogen per-
oxide, and thialbarbituric
acid were purchased from
Sigma Chemic.al Company (St. Louis, MO.); cumene
hydroperoxide,
menadione, and silver oxide were
purchased from Pfaltz and Bauer, Inc. (Stamford,
Conn.); methyl1 iodide, sodium peroxide, palmitoyl
chloride, and 5-hydroxy-2-methyl-1,4-naphthoquinone
were from Aldrich Chemical Company (Milwaukee,
Wise.); chromium trioxide and potassium iodide were
from Mallinckrodt,
Inc. (Paris, KY.); 2,3-dimethyl-
naphthalene
arnd 1,4-naphthoquinone
were from
Fluka Chemical Corporation
(Hauppauge,
N. Y.);
and ferric pyrophosphate
was obtained from K and
K Laboratories,
Inc. (Plainview, N. Y.) All organic
solvents were reagent grade, from Mallinckrodt.
Eight derivatives
of 1,4-naphthoquinone
were
tested as inhibitors of microsomal lipid peroxidation
and as stimulators of microsomal NADPH oxidation.
As noted above, menadione, 1,4-naphthoquinone,
and
5-hydroxymenadione
were from commercial sources;
the other five derivatives were synthesized as follows:
2,3-dimethyl-l,&naphthoquinone
was prepared by
chromic acid oxidation of 2,3-dimethylnaphthalene
(17), 3-hydroxymenadione
was prepared from men-
adione by H202/H2S04 treatment as described by
Fieser (18), 3-methoxy-
and 5-methoxymenadione
were prepared by silver oxide-catalyzed
methylation
of the corresponding
hydroxy compounds (19), and
pentadecylmenadione
was prepared from menadione
by dipalmitoyl peroxide alkylation (20). The dipal-
mitoyl peroxide was prepared from palmitoyl chloride
and sodium peroxide as described previously (20).
The synthetic yields ranged from 30 to 100% and
were similar to those previously reported. The re-
action products were confirmed mass spectroscopy.
by low-resolution
Assays of microsomal
lipid peroxidation
Micro-
somes were prepared from the livers of eight male
Sprague-Dawley
rats, 200-250 g. The rats were killed
by exsanguination
and the livers were excised im-
mediately, perfused with 1.15% KCl, and homogenized
with a Brinkman Polytron homogenizer. The micro-
somes were isolated by differential centrifugation (16), resuspended in 1.15% KC1 to a protein concen-
tration of 15 mg/ml, and stored in aliquots at -70C
prior to use. Under these storage conditions, the activity of the microsomal lipid peroxidation system
remained unchanged for at least 3 months.
The incubation mixture for the assays of NADPH-
dependent lipid peroxidation
consisted of liver mi-
crosomes (0.5 mg protein/ml)
suspended in 0.1 M
Tris-HCl buffer, pH `7.4, containing 12.5 FM ferric
pyrophosphate.
The reaction was initiated by the
addition of 25 ~1 of 50 mM NADPH to the 2.5 ml of incubation mixture preincubated for 1 min at 3'7C.
Aliquots (1.0 ml) were withdrawn at 0 and 20 min
after the NADPH was added; the malondialdehyde content of these samples was measured by the
thiobarbituric
acid method (16, 21). The extent of
lipid peroxidation was expressed as nanomoles malondialdehyde produced per 20 minutes per milligram
microsomal protein.
The measurements
of cumene hydroperoxide-de-
pendent lipid peroxidation were performed similarly
except that the ferric pyrophosphate
was omitted
and the reactions were initiated by the addition of
25 ~1 of 30 nIM eumene hydroperoxide
to the 2.5-ml
incubation mixtures.
Antioxidant
activity
measurements.
Acetone stock
solutions of each of the eight naphthoquinones
were
prepared and were diluted serially. A graded series
of at least six quinone concentrations were generated
by adding 25 ~1 of each dilution to a series of 2.5-ml lipid peroxidation incubation mixtures, pH `7.4, unless
otherwise indicated. The reactions were initiated by
NADPH additions and the malondialdehyde
accu-
mulating in 20 min was measured and plotted as a
function of quinone concentration.
These plots were
interpolated to obtain the ICsO values; i.e., the con-
centrations of quinone estimated to reduce the malondialdehyde accumulation by 50%.
Menadione was also tested as an antioxidant
in
the cumene hydroperoxide-stimulated
system. Two
series of incubation mixtures were prepared; in one
series NADPH (0.5 mM) was included and in the
other series it was omitted. Graded concentrations
of menadione (O-5 pM final concentration)
were added
to the flasks in each series and, after preincubating
at 37C for 1 min, the flasks received cumene hydro-
peroxide to initiate peroxidation.
Assays of naphthoquinone-dependent
NADPH ox-
idation. Each of the eight naphthoquinones
was
tested as a substrate for the microsomal menadione
90 TALCOTT, SMITH, AND GIANNINI
reductase by measuring the rate of NADPH oxidation
occurring in the presence of microsomes and the
quinone (22). In each case, graded concentrations
were chosen so that the Michaelis constants could
be estimated. A Kontron Model 800 uv-vis recording
spectrophotometer
equipped with an automatic sam-
ple changer was used to obtain these measurements.
The reference cuvette and the six sample cuvettes
contained 2.5 ml of 0.1 M Tris-HCl buffer, pH 7.4
(unless otherwise indicated), 0.25 mM NADPH, and
microsomes (0.5 mg protein/ml).
With the mono-
chromator set at 340 nm and the cuvettes warmed
to 37C NADPH oxidation in the sample cuvettes
was initiated by adding 25 pl of a series of naphtho-
quinone stock solutions (in acetone) to the six sample
cuvettes. The rates of NADPH oxidation were re-
corded for 5 min and the recordings were used to
calculate the initial velocities, in nanomoles NADPH
oxidized per minute per milligram microsomal pro-
tein. These data were used to estimate the apparent
Michaelis constants (K,, V,,,,,) by the method of
Wilkinson (23).
Other methods. To estimate the amount of lipid
hydroperoxide
that had accumulated in the micro-
somal membranes after 20 min of incubation with
NADPH, ferric pyrophosphate,
and a selected con-
centration of menadione, 4 ml of the incubation
mixture described above was extracted with an
equal volume of chloroform:methanol,
2:l (24). The
organic extract containing microsomal lipids was
concentrated to dryness with a stream of Nz and the
residue was redissolved in 1.0 ml of methanol. An
aliquot (100 pl) of the methanolic solution was added
to a sample cuvette containing 2.5 ml of freshly
prepared 1% KI in glacial acetic acid. The reference
cuvette contained only the KI-acetic acid reagent.
The increase in absorbance at 360 nm due to the
reaction of the hydroperoxide
with I- (25) was
recorded for 2 min; the hydroperoxide
concentration
TABLE I
EFFECT OF MENADIONE CATALYZED MICROSOMAL
ON NADPH
+ Fe*+-
LIPID PEROXIDATION
Menadione concentration
mf)
MDA accumulation (nmol 20 min-' mg protein-`)
Hydroperoxide accumulation (nmol 20 mini' mg protein')
0 84.6 25 65.4 50 0.76 100 0.62 150 0.65 200 0.70
Note. Results of a typical experiment
15.0 16.5 1.87 1.00 1.50 0.50
are shown.
TABLE II
INHIBITION OF CUMENE HYDROPEROXIDE-DEPENDENT
MICROSOMAL LIPID PEROXIDATION
BY MENADIONE
Menadione concentration
(PM)
Malondialdehyde accumulation
(nmol 20 min-' mg protein-`)
-NADPH
+NADPH
0 16.2 0.2 15.8 0.5 15.4 1.0 15.7 2.0 15.0 5.0 15.6
Note. Results of a typical experiment
9.2 5.8 2.5 1.6 1.0 1.5
are shown.
was calculated from a standard curve prepared with
graded concentrations
of cumene hydroperoxide.
The apparent pK,`s of the hydroxylated
menadione
derivatives were estimated by recording the absor-
bance of the ionized forms as a function of pH. The
anions of 3-hydroxymenadione
and 5-hydroxymena-
dione were found to absorb maximally at 500 and
510 nm, respectively; the unionized forms showed
negligible absorption at these wavelengths.
RESULTS
In a preliminary experiment, menadione
was found to inhibit NADPH-dependent
microsomal lipid peroxidation in a con-
centration-dependent
manner. The con-
centration dependence was independent
of incubation time for at least 20 min,
after which no further malondialdehyde
accumulation occurred. Table I shows that
menadione, at concentrations of 50 nM or
higher, effectively blocked NADPH-de-
pendent microsomal lipid peroxidation, as
measured either by the accumulation of
malondialdehyde or of lipid hydroperox-
ides. It was also of interest to assess the
antioxidant activity of menadione in a
system where lipid peroxidation does not
require NADPH. For this experiment, cu-
mene hydroperoxide was chosen as the
initiator of lipid peroxidation. The results
(Table II) indicate that menadione (0.2-
5.0 PM) is not an effective inhibitor of
cumene hydroperoxide-dependent lipid per-
oxidation unless NADPH is included in
the incubation mixture. These results also
ANTIOXIDANT
ACTIVITY
OF NAPHTHOQUINONES
91
STRUCTURE-ACTIVITY
TABLE RELATIONSHIPS
III AMONG 1,4-NAPHTHOQUINONES
Activity
Structure RI R3
Inhibition of lipid peroxidation
R3 [%I (PM)]
Stimulation
K (PM)
HH CH, H CHs CH:s CHz OH CHa OCH3 CHs G&l CH, H CH, H
H H H H H H OH OCHB
27 0.037 0.130 180 0.51 800 0.25 0.47
27.9 + 6.0 34.1 + 5.6 20.5 rt 5.8 57.0 + 8.7 24.2 f 9.5
7.3 +- 2.8 10.4 + 0.3 11.8 + 1.0
Note. R1 is at the 2 position; R2 at the 3 position; and R3 at the 5 position.
of NADPH oxidation
V max (nmol min-' mg-`)
9.1 f 1.3 13.6 f 1.3 10.8 f 2.1
0.8 + 0.1 10.5 31 1.8 0.9 f 0.01 12.9 f 1.4
8.4 f 0.3
show that, in the absence of menadione, NADPH produces a partial inhibition of the cumene h,ydroperoxide-dependent lipid peroxidation, in agreement with the results of previous workers (26).
The observations noted above (Table II) suggested that the antioxidant activity of a given naphthoquinone may bear a relation to its activity as a substrate for microsomal q.uinone reductase. This possibility was examined by comparing eight 1,4-naphthoquinones as antioxidants and as stimulators of microsomal NADPH oxidation. As antioxidants, the quinones varied over a. potency range of approximately 2 X 104. Although the two weakest antioxidants, 3-hydroxymenadione and 3pentadecylmenadione, were also the two weakest quintone reductase substrates, a close quantitative relationship between inhibition of lipid peroxidation and stimulation of NA.DPH oxidation was not apparent: 1,4-naphthoquinone, menadione, 3methylmenadione, 3-methoxymenadione, Shydroxymenadione, and 5-methoxymenadione were similar in activity as NADPH oxidase stimulators, but antioxidant activity among these compounds varied widely (Table III). Particularly striking was the difference in antioxidant potency between menadione (I& = 0.037 PM) and its desmethyl analog, 1,4-naphthoquinone
(ICM = 27 PM), despite being approximately equivalent in their ability to stimulate NADPH oxidation.
The structure-activity results revealed a striking difference in potency between the two hydroxylated compounds, 3-hydroxymenadione (I& = 180 PM) and 5hydroxymenadione (I&,, = 0.25 PM), which was not apparent between the two corresponding methoxy compounds (Table III). These observations suggested that the difference in potency between the hydroxylated compounds may be largely explained by differences in their acid-base properties. An experimental determination of the dissociation constants yielded pK, values of 9.1 and 5.1 for 5-hydroxy- and 3-hydroxymenadione, respectively, indicating that the latter compound is approximately 99.5% ionized at pH 7.4 (Fig. 1). This finding clearly suggested that the relative inactivity of 3-hydroxymenadione may have reflected its state of ionization at pH 7.4.
The antioxidant activity of 3-hydroxymenadione measured at pH 7.0 and 6.0 increased in proportion to the percentage increase in the undissociated form
(Table IV). Lowering the pH also improved the
ability of this compound to stimulate NADPH oxidation. These results suggest
92 TALCOTT, SMITH, AND GIANNINI
FIG. 1. pH titration (A) 5-hydroxymenadione;
PH
curves for the anionic forms: (B) 3-hydroxymenadione.
that the active antioxidant form of 3hydroxymenadione is the reducible, undissociated form. At pH 7.4, 7.0, and 6.0 the I&, value for this form appears to be nearly constant and approximately 0.9 PM, i.e., I&,,, = (apparent I&) X (fraction undissociated species). Attempts to measure the antioxidant activity of 5-hydroxymenadione at pH's approaching its pK, failed because at these pH's the microsomal lipid peroxidation system was inactivated.
DISCUSSION
that would otherwise catalyze lipid peroxidation. On the other hand, Wills (27) noted that menadione inhibited lipid peroxidation even when excess NADPH was present, and suggested that an antioxidant effect independent of electron diversion may contribute importantly to the inhibitory effect.
Several observations now indicate that electron diversion per se cannot account for the antioxidant activity of menadione. The menadione concentration required to inhibit microsomal NADPH-dependent lipid peroxidation is approximately three orders of magnitude below the concentration required to stimulate half-maximally the rate of NADPH oxidation. Moreover, 1,4-naphthoquinone and menadione are about equally effective in stimulating NADPH oxidation but menadione is about three orders of magnitude more potent as an antioxidant. The weakest antioxidant, 3-pentadecylmenadione, was ineffective at concentrations where a certain amount of stimulation of NADPH oxidation did occur. Finally, menadione, in the presence of NADPH, inhibited cumene hydroperoxide-dependent microsomal lipid peroxidation; in this model system NADPH inhibits rather than stimulates the reaction. Thus, it seems clear that the antioxidant action of menadione is unrelated to electron diversion, but is a result of a reaction
between either menadione itself or one of its reduced forms with chemical species that are critically involved in the catalysis of microsomal lipid peroxidation.
It seems likely that the active antioxidant form of menadione is either the
The results presented in this paper pro-
vide new information on the mechanism
and structure-activity
relationships un-
derlying the inhibition of microsomal lipid
peroxidation by 1,4-naphthoquinones.
In
an earlier paper, Wills (27) suggested that
menadione and related naphthoquinones
may inhibit microsomal lipid peroxidation
by more than one mechanism. Since re-
ducing equivalents are consumed by mi-
crosomal quinone reduction and by micro-
somal lipid peroxidation, Wills (27) sug-
gested that menadione may divert electrons
TABLE IV
EFFECT OF pH ON 3-OH MENADIONE
REDUCTION
AND ON ITS ANTIOXIDANT
ACTIVITY
Percentage undissociated PH 3-OH-MD
Apparent antioxidant
potency [Icso (PM)]
NADPH oxidase stimulation
( vmx~m
7.4 0.50 7.0 1.05 6.0 10.50
180 0.014 75 0.028 9 0.078
ANTIOXIDANT
ACTIVITY
OF NAPHTHOQUINONES
93
semiquinone or hydroquinone, because of
the demonstrated requirement for reduc-
ing equivalents (Table II). The antioxidant
effect could therefore result from reactions
between the hydroquinone and free radical
species involved in catalyzing the propa-
gation of lipid peroxidation. Studies with
quinones in chemical systems (28) indicate
that hydroperoxy radicals could be among
those trapped. In the cumene hydroper-
oxide stimulated reaction, there is evi-
dence from studies with reconstituted
systems (7, 11) and with microsomes (29)
that ferric cytochrome P-450 reacts with
cumene hydroperoxide to form cumoxy
radicals. Once again the hydroquinone
could trap these radicals thereby prevent-
ing the initiation of lipid peroxidation. It
is also possible that the semiquinone of
menadione may contribute to the antiox-
idant activity by pairing with hydroperoxy
or alkoxy raldicals. The free electron in
menadione semiquinone is delocalized so
the semiquinone may be viewed as a com-
posite of eighlt separate resonance forms.
The structure-activity
study presented
here demonstrates the importance of a
single methyl group on the quinone ring
(cf. antioxidant activity of menadione vs
that of 1,4-naphthoquinone), suggesting
that the inductive properties of the methyl
substituent may serve to stabilize forms
that are important for optimal antioxidant
activity (28). Also, the structure-activity
study demonstrates the importance of an
unhindered C-3 or C-5 site, suggesting
that these sites may be importantly in-
volved in the antioxidant reaction. Further
studies with naphthoquinones that are
substituted at other positions are needed
to assess the importance of other sites on
the naphthoquinone nucleus.
An interesting topic for future research
is the question of whether the pro-oxidant
and antioxidiant properties of naphtho-
quinones can be uncoupled. Central to this
question would be a comparison of the
structure-activity relationships governing
superoxide generation with those govern-
ing antioxidant activity. If different res-
onance forms are more important to one
pathway than to the other, different
structure-activity
relationships may be
expected. If this is the case, it should be possible to maximize or minimize one activity (pro-oxidant or antioxidant) in relation to the other by varying the positions of substitution or the nature of the substituents on the naphthoquinone nucleus. This capability could be important in the design of new pharmacologically active naphthoquinones.
ACKNOWLEDGMENTS
This study was supported in part by PHS Grant
CA13525 from the National Cancer Institute. M.T.S.
thanks the University of California Cancer Research
Coordinating Committee for support. The mass spec-
tra were obtained by the Bio-organic, Biomedical
Mass Spectrometry
Resource (A. L. Burlingame,
Director) supported by the NIH Division of Research
Resources Grant RR01614. We thank Albert Ketter-
man for expert technical assistance.
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