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Ternary Copper(II) Complexes in Solution Formed With 8-Aza Derivatives of the Antiviral Nucleotide Analogue 9-[2-(Phosphonomethoxy)Ethyl]adenine (PMEA)

Abstract

The stability constants of the mixed-ligand complexes formed between Cu(Arm)2+, where Arm = 2,2′-bipyridine (Bpy) or 1,10-phenanthroline (Phen), and the dianions of 9-[2-(phosphonomethoxy)ethyl]-8-azaadenine (9,8aPMEA) and 8-[2-(phosphonomethoxy)ethyl]8-azaadenine (8,8aPMEA) (both also abbreviated as PA2-) were determined by potentiometric pH titrations in aqueous solution (25 °C; I = 0.1 M, NaNO3). All four ternary Cu(Arm)(PA) complexes are considerably more stable than corresponding Cu(Arm)(R-PO3) species, where R-PO3 2- represents a phosph(on)ate ligand with a group R that is unable to participate in any kind of interaction within the complexes. The increased stability is attributed to intramolecular stack formation in the Cu(Arm)(PA) complexes and also to the formation of 5-membered chelates involving the ether oxygen present in the -CH2-O-CH2-PO3 2- residue of the azaPMEAs. A quantitative analysis of the intramolecular equilibria involving three structurally different Cu(Arm)(PA) species is carried out. For example, about 5% of the Cu(Bpy)(8,8aPMEA) system exist with the metal ion solely coordinated to the phosphonate group, 14% as a 5-membered chelate involving the -CH2-O-CH-2-PO3 2- residue, and 81% with an intramolecular stack between the 8-azapurine moiety and the aromatic rings of Bpy. The results for the other systems are similar though with Phen a formation degree of about 90% for the intramolecular stack is reached. The existence of the stacked species is also proven by spectrophotometric measurements. In addition, the Cu(Arm)(PA) complexes may be protonated, leading to Cu(Arm)(H;PA)+ species for which it is concluded that the proton is located at the phosphonate group and that the complexes are mainly formed by a stacking adduct between Cu(Arm)2+ and H(PA)-. Conclusions regarding the biological properties of these azaPMEAs are shortly indicated.

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Ternary Copper(II) Complexes in Solution Formed With 8-Aza Derivatives of the Antiviral Nucleotide Analogue 9-[2-(Phosphonomethoxy)Ethyl]adenine (PMEA)

Author: Gómez Coca, Raquel Beatriz; Kapinos, Larisa E.; Holy, Antonín; Vilaplana Serrano, Rosario; González Vílchez, Francisco; Sigel, Helmut
Publisher: Hindawi Publishing Corporation
Year: 2000
DOI: 10.1155/MBD.2000.313
Source: https://idus.us.es/bitstreams/01faf5e6-4876-4e72-82c2-3bb84b1c3f07/download
Me al
Based
D ugs
Vol.
7,
N .
6,
2000
TERNARY
COPPER(II)
COMPLEXES
IN
SOLUTION
I21
FORMED
WITH
8-AZA
DERIVATIVES
OF
THE
ANTIVIRAL
NUCLEOTIDE
ANALOGUE
9-
[2-(PHOSPHONOMETHOXY)ETHYL]
ADENINE
(PMEA)
Raquel
B.
G6mez-Coca
,9-,
La isa
E.
Kapinos
,
An onin
Ho13
3,
Rosa io
A.
Vilaplana
,
F ancisco
Gonz ilez-Vilchez
and
Helmu
Sigel
*1
Ins i u e
o
Ino ganic
Chemis y,
Uni e si y
o
Basel,
Spi als asse
51,
CH-4056
Basel,
Swi ze land
<[email p o ec ed]>
2
Ino ganic
Chemis y
Depa men ,
Facul y
o
Chemis y,
Uni e si y
o
Se ille,
E-41071
Se ille,
Spain
Ins i u e
o
O ganic
Chemis y
and
Biochemis y,
Academy
o
Sciences,
CZ-
16610
P ague,
Czech
Republic
Dedica ed
o
he
memo y
o
P o esso
Ma c
Leng,
an
ou s anding
scien is
and
iend
Abs ac
The
s abili y
cons an s
o
he
mixed-ligand
complexes
o med
be ween
Cu(A m)
2+,
whe e
A m
2,2’-
bipy idine
(Bpy)
o
1,10-phenan h oline
(Phen),
and
he
dianions
o
9-[2-(phosphonome hoxy)e hyl]-8-aza-
adenine
(9,8aPMEA)
and
8-[2-(phosphonome hoxy)e hyl]-8-azaadenine
(8,8aPMEA)
(bo h
also
abb e ia ed
as
PA
2-)
we e
de e mined
by
po en iome ic
pH
i a ions
in
aqueous
solu ion
(25
C;
I
0.1
M,
NaNO3).
All
ou
e na y
Cu(A m)(PA)
complexes
a e
conside ably
mo e
s able
han
co esponding
Cu(A m)(R-PO3)
species,
whe e
R-PO-
ep esen s
a
phosph(on)a e
ligand
wi h
a
g oup
R
ha
is
unable
o
pa icipa e
in
any
kind
o
in e ac ion
wi hin
he
complexes.
The
inc eased
s abili y
is
a ibu ed
o
in amolecula
s ack
o ma ion
in
he
Cu(A m)(PA)
complexes
and
also
o
he
o ma ion
o
5-membe ed
chela es
in ol ing
he
e he
oxygen
p esen
in
he
-CH2-O-CH2-POZ3
esidue
o
he
azaPMEAs.
A
quan i a i e
analysis
o
he
in amolecula
equilib ia
in ol ing
h ee
s uc u ally
di e en
Cu(A m)(PA)
species
is
ca ied
ou .
Fo
example,
abou
5%
o
he
Cu(Bpy)(8,8aPMEA)
sys em
exis
wi h
he
me al
ion
solely
coo dina ed
o
he
phosphona e
g oup,
14%
as
a
5-membe ed
chela e
in ol ing
he
-CH2-O-CH2-PO3
z-
esidue,
and
81%
wi h
an
in amolecula
s ack
be ween
he
8-azapu ine
moie y
and
he
a oma ic
ings
o
Bpy.
The
esul s
o
he
o he
sys ems
a e
simila
hough
wi h
Phen
a
o ma ion
deg ee
o
abou
90%
o
he
in amolecula
s ack
is
eached.
The
exis ence
o
he
s acked
species
is
also
p o en
by
spec opho ome ic
measu emen s.
In
addi ion,
he
Cu(A m)(PA)
complexes
may
be
p o ona ed,
leading
o
Cu(A m)(H;PA)
+
species
o
which
i
is
concluded
ha
he
p o on
is
loca ed
a
he
phosphona e
g oup
and
ha
he
complexes
a e
mainly
o med
by
a
s acking
adduc
be ween
Cu(A m)
2+
and
H(PA)-.
Conclusions
ega ding
he
biological
p ope ies
o
hese
azaPMEAs
a e
sho ly
indica ed.
1.
INTRODUCTION
Nucleo ides
and
hei
me al
ion
complexes
play
a
key
ole
in
all
aspec s
o
me abolism
and
he e o e,
a emp s
o
exploi
nucleo ide
analogues
as
d ugs
a e
old
(e.g.[3l).4.Among
he
analogue,
s
wi h
biological
p ope ies
9-[2-(phosphonome hoxy)e hyl]adenine
(PMEA),
an
analogue
o
(2-
deoxy)-adenosiae
5’-monophosoha e
[(d)AMp2-],
is
a
mos
ema kable
one;
i
exhibi s
an i i al,
581
cy os a ic
[9,11
and
an ia h i ic
[ l]
e ec s.
Conside ing
he
b oad
biological
ac i i y
o
PMEA,
i
is
no
su p ising
ha
many
de i a i es
ha e
been
syn hesized
and
s udied,
[2]
and
i
is
now
clea
ha
in
o de
o
be
an i i ally
ac i e,
PMEA
and
i s
de i a i es
mus
be
phospho yla ed
in
he
cell
o
he
diphospha e
(PMEApp
4-)
and
his
is
hen
ecognized
by
DNA
polyme ases
as
a
subs a e
and
inco po a ed
in o
he
g owing
nucleic
acid
chain
which
is
e mina ed
he ea e .
[3’4]
Knowing
ha
polyme ases
depend
on
he
p esence
o
me al
ions
[15’16]
and
ha
he
nucleoside
5’- iphospha es
mus
be
p esen
as
complexes
(mos ly
Mg2+)
[7]
we
ha e
been
s udying
complexes
o
PMEA
[8"24]
and
a
mechanism
o
ac ion
has
been
p oposed
ecen ly
[25’261
in
which
he
co ec
loca ion
o
wo
me al
ions
a
he
iphospha e
chain
o
achie ing
a
desi ed
eac ion
is
emphasized.
[26]
In
o he
wo ds,
he
co ec
o ien a ion
o
he
nucleoside
5’- iphospha e
o
i s
analogue
in
he
ac i e-si e
ca i y
o
he
enzyme
is
c ucial.
[26]
One
o
he
ways
in
which
he
co ec
ancho ing
p ocess
o
a
subs a e
in
he
ac i e
si e
o
an
’z7]
enzyme
can
be
achie ed,
is
ia
s acking
in e ac ions
o
he
nucleobase
esidue,
e.g.
wi h
an
indole
moie y
o
a
yp ophan
uni .
[28]
Fo
his
eason
we
became
in e es ed
in
he
PMEA
ela i es,
9-[2-(phosphonome hoxy)e hyl]-8-azaadenine
(9,8aPMEA)
and
8-[2-(phosphonome hoxy)e hyl]-8-
azaadenine
(8,8aPMEA)
(see
Fig.
1),
and
he
ques ion
was:
Do
he
s acking
p ope ies
o
PMEA,
9,8aPMEA
and
8,8aPMEA
di e ?
To
his
end
we
measu ed
he
s abili ies
o
he
mixed
iigand
Cu(A m)(PA)
complexes
whe e
A m
2,2’-bipy idine
(Bpy)
o
1,10-phenan h oline
(Phen)
and
2
2
PA-
9,8aPMEA-
o
8,8aPMEA
2-.
These
Cu(A m)(PA)
complexes
can
old
such
ha
he
313
Helmu
Sigel
e
al.
Te na y
Coppe (II)
Complexes
in
Solu ion[I,2]
Fo med
wi h
8-Aza
De i a i es
o
he
An i i al
Nucleo ide
Analogue
9-[2-(Phosphonome hoxy)e hyl)Adenine(PMEA)
a oma ic
ings
o
Bpy
o
Phen
can
in e ac
wi h
he
8-azaadenine
esidues.
In
ac ,
Bpy
and
Phen
ha e
p o en
e y
help ul
as
indica o s
o
e alua ing
he
s acking
capabili ies
o
a oma ic
esidues
in
me al
ion
complexes.
[21
A
s acking
in e ac ion
o
he
indica ed
kind
should
be
e lec ed
in
an
enhanced
o e all
complex
s abili y.p,29,l
Indeed,
he
esul s
ob ained
p o e
such
enhanced
s abili ies
and
hese
a e
compa ed
now
wi h
hose
ob ained
ea lie
pI
o
he
co esponding
Cu(A m)(PMEA)
complexes.
NH2 NH2
1N
PMEA2-
9’8aPMEA2-
N I
8’8aPMEA2-
7#
9
-O -O
3
o
/CH2
o
/CH2
-0
-O--P--C
/
C"
-O--P--C
/
C"
|
c/Oc/CH2
H2
H2
H2
H2
-O--P--
0
0
II
H:,
0
Figu e
1.
Chemical
s uc u es
o
he
dianions
o
9-[2-(p.hosphonome hoxy)e hyl]adenine
(PMEA2-),
9-[2-(phosphonome hoxy)e hyl]-8-azaadenine
(9,8aPMEA
-)
and
8-[2-(phosphonome hoxy)e hyl]-8-
azaadenine
(8,8aPMEA2-).
The
h ee
nucleo ide
analogues
a e
also
abb e ia ed
as
PA
2-.
2.
MATERIALS
AND
METHODS
2.1.
Ma e ials
Two old
p o ona ed
9-[2-(phosphonome hoxy)e hyl]-8-azaadenine,
i.e.
H2(9,8aPMEA)
,
and
i s
8-
isome
8-[2-(phosphonome hoxy)e hyl]-8-azaadenine,
H2(8,8aPMEA)
,
we e
syn hesized
by
alkyla ion
o
8-
azaadenine
wi h
a
syn hon
ca ying
he
s uc u al
ea u es
o
he
equi ed
side
chain.
[32]
2,2’-Bipy idine,
1,10-
phenan h oline
monohyd a e,
and
he
ni a e
sal s
o
Na
+
and
Cu
2+
(all
p o
anal si)
we e
om
Me ck
AG,
Da ms ad ,
FRG.
All
he
o he
eagen s
we e
iden ical
wi h
hose
used
p e iously
pal
and
all
solu ions
o
he
po en iome ic
pH
i a ions
we e
p epa ed
wi h
ul apu e
CO2- ee
wa e
as
desc ibed,
phi
2.2.
Po en iome ic
pH
Ti a ions
The
appa a us
o
he
po en iome ic
pH
i a ions,
he
calib a ion
p ocedu e,
he
compu e s,
and
he
calcula io_n
me hods
used
now
a e
he_same
as
in
[24].
The
s abili y
cons an s
hm (H.9
8aP4ZA)
and
K (9
8aP4ZA),
whe e
M
e+
Cu.(Bpy)
2+
o
Cu(Phen)
2+,
we e
de e mined
by
i _ a ing
30
m_L
o
aq6ous
0.83
mM
[: O3,
0.4
2+
2+
mM
9,8aPMEA
-,
and
4.4
mM
o
2.2
mM
Cu
/A m
(i.e.,
Cu
:A m:PA
11:11:1
o
5.5:5.5:1)
unde
N2
(25
C;
I
0.1
M,
NaNO3)
wi h
mL
0.03
M
NaOH.
Each
i a ion
was
epea ed
in
he
absence
o
ligand
and
he
di e ences
in
NaOH
consump ion
be ween
such
a
pai
o
i a ions
we e
used
o
he
calcula ions.
The
condi ions
o
he
measu emen s
wi h
8,8aPMEA
we e
iden ical
wi h
hose
gi en
abo e
o
9,8aPMEA.
I
may
be
added
ha
he
acidi y
cons an s
K2(PA)
and
K IH(PA
o
H2(PA)
and
H(PA)-,
l
l
+
espec i ely,
and
he
s abili y
cons an s
/Cu(H.PA,
and/Cu,PA o
he
bina y
Cu(H;PA)
and
Cu(PA)
.......
I331
complexes
we e
de e mined
unde
he
co esponding
condi ions.
Fu he mo e,
he
abo e
condi ions
a e
simila
o
hose
desc ibed
in
[24].
Unde
he
gi en
expe imen al
condi ions
he
o ma ion
o
he
Cu(A m)
2+
complexes
is+
p ac ically
comple e
[341
(in
ag eemen
he ewi h,
i a ions
o
solu ions
wi h
HNO3
and
HNO3
plus
Cu
/A m
we e
iden ical
in
he
lowe
pH
ange)
and
he e o e,
he
e alua ion
o
he
i a ion
da a
o
he
e na y
complexes
could
be
done
in
he
way
desc ibed
p e iously
o
bina y
complexes.
[241
The
Cu(Bpy)+/9,8aPMEA
5.5:1
and
11:1
sys ems
we e
e alua ed
in
he
pH
ange
3.4-5.3,
eaching
o ma ion
deg ees
o
abou
4.5
and
8%
o
Cu(Bpy)(H;9,SaPMEA)
+
and
64
o
78%
o
Cu(Bpy)(9,SaPMEA),
espec i ely.
Fo
he
Cu(Phen)Z+/9,SaPMEA
5.5:1
and
l:l
sys ems
da a
we e
collec ed
in
he
pH
anges
3.4-5.0
and
3.4-4.8,
espec i ely,
eaching
o ma ion
deg ees
o
abou
8
and
14%
o
Cu(Phen)(H;9,SaPMEA)
+
and
abou
61
o
66%
o
Cu(Phen)(9,SaPMEA).
The
uppe
limi s
o
he
e alua ed
pH
anges
we e
always
de e mined
by
he
beginning
o
he
hyd olysis
o
he
Cu(A m)a
species.
Simila ly,
he
Cu(Bpy)2+/8,SaPMEA
5.5:1
and
11:1
sys ems
we e
e alua ed
be ween
p+H
3.6-5.3
and
3.5-5.3,
espec i ely,
wi h
o ma ion
deg ees
o
abou
7
and
12%
o
_Cu(Bpy)(H;8,SaPMEA)
and
abou
62
o
76%
o
Cu(Bpy)(8,SaPMEA),
espec i ely.
Fo
he
Cu(Phen)e+/8,SaPMEA
5.5:1
and
l:l
sys ems
da a
we e
collec ed
in
he
pH
anges
3.6-5.0
and
3.5-5.0,
espec i ely,
eaching
o ma ion
deg ees
o
abou
12
and
19%
o
Cu(Phen)(H;8,SaPMEA)
+
and
60
o
73%
o
Cu(Phen)(8,SaPMEA),
espec i ely.
The
calcula ed
s abili y
cons an s
showed
no
dependence
on
pH
o
on
he
excess
o
Cu-+/A m
employed.
The
inal
esul s
o
he
cons an s
a e
in
each
case
he
a e ages
o
he
e alua ions
o
i e
independen
pai s
o
i a ions.
Howe e ,
due
o
he
low
o ma ion
deg ees
eached
o
he
monop o ona ed
M(H;PA)
+/-
species,
he
s abili y
cons an s
gi en
o
hese
complexes
mus
be
conside ed
as
es ima es.
These
es ima es
we e
u he
subs an ia ed
by
compa isons
wi h
he
known
[181
alues
o
he
Cu(A m)(H;PMEA)
+
H
complexes
by
aking
he
di e en
acidi y
cons an s
(Kz(pA))
in o
accoun .
314
Me al
Based
D ugs
Vol.
7,
N .
6,
2000
2.3.
Spec opho ome ic
Measu emen s
The
UV-Vis
spec a
o
he
Cu2+/Phen/9,8aPMEA
o
8,8aPMEA
sys ems
we e
eco ded
in
aqueous
solu ion
and
1-cm
cells
wi h
a
Va ian
Ca y
3C
spec opho ome e
connec ed
o
an
IBM-compa ible
desk
compu e
(OS/2
sys em)
and
an
EPSON
s ylus
1500
p in e .
The
pH
o
he
solu ions
was
adjus ed
by
do ing
wi h
ela i ely
concen a ed
NaOH
and
measu ed
wi h
a
Me ohm
713
pH
me e
using
a
Me ohm
6.204.100
glass
elec ode.
Fu he
de ails
a e
gi en
in
he
legend
o
Figu e
4
in
Sec ion
3.5.
3.
RESULTS
AND
DISCUSSION
All
po en iome ic
pH
i a ions
(25
C;
I
0.1
M,
NaNO),
he
esul s
o
which
a e
summa-
ized
below,
we e
ca ied
ou
wi h
a
ligand
concen a ion
o
0.4
mM
and
a
CuZ+/A m
concen a-
ions
equal
o
o
below
4.4
mM.
Unde
hese
condi ions
sel -s acking
o
he
ligands
is
negligibly
small
as
has
been
shown
[81
o
PMEA;
he
same
applies
o
he
sel -associa ion
o
Cu(Phen) +.
[3]
This
means,
he
sel -associa ion
is
negligible
o
any
o
he
eac an s
unde
he
p esen
expe imen-
al
condi ions
and
he
esul s
gi en
below
ce ainly
e e
o
monome ic
species.
3.1.
De ini ion
o
he
Equilib ium
Cons an s
The
ligands
9,8aPMEA
2-
and
8,8aPMEA
2-,
abb e ia ed
as
PA
2-
(Fig.
1),
may
bind
wo
p o ons
a
he
phosphona e
g oup
and
one
a
N1
o
he
adenine
moie y.
F om
H(PMEA)
+
he
i s
p o on
is
eleased
om
he
-P(O)(OH)2
esidue
[]
wi h
pKa
1.2
and
he
same
may
be
su mised
o
he
o he
H(PA)
+
species.
Hence,
o
he
p esen
wo k
only
he
elease
o
he
p o on
om
he
+
(N
1)H
si e,
ollowed
by
he
one
om
he
-P(O)z(OH)-
g oup
need
o
be
conside ed:
H2(PA)
+/-
H(PA)-
+
H
+
(la)
/H2(PA)
[H(PA)-]
[H+]/[H2(PA)
+]
(1
b)
H(PA)-
PA
2-
+
H
+
(2a)
/H(PA)
PA2-]
[H+]/[H(PA)
-]
(2b)
Indeed,
he
expe imen al
da a
o
he
po en iome ic
pH
i a ions
o
he
M2+/pA
sys ems,
whe e
M
2+
Cu
2+,
Cu(Bpy)
2+
o
Cu(Phen)
2+,
can
be
ully
desc ibed
by
conside ing
he
acidi y
cons an s
o
Ha(PA)
+/-
(eqs
(1)
and
(2))
and
he
ollowing
equilib ia
(3)
and
(4),
M
2+
+
H(PA)-
,
M(H;PA)
+
(3a)
KM(H;PA)
[M(H;PA)+]/([M
2+]
[H(PA)-])
(3b)
M
2+
+
PA
2-
:
M(PA)
(4a)
/(PA)
[M(PA)]/([
M2+]
[pA2-])
(4b)
p o ided
he
e alua ion
o
he
da a
is
es ic ed
o
he
pH
ange
below
he
beginning
o
he
o ma-
ion
o
hyd oxo
complexes
which
was
e iden
om
he
i a ions
o
M
2+
wi hou
ligand.
I
should
be
no ed
ha
in
o mulas
like
M(H;PA)
+
he
H
+
and
he
PA
2-
a e
sepa a ed
by
a
semicolon
o
acili a e
eading,
ye
hey
appea
wi hin
he
same
pa en heses
o
indica e
ha
he
p o on
is
a
he
ligand
wi hou
de ining
i s
loca ion.
Equilib ia
(3a)
and
(4a)
a e
connec ed
ia
equilib ium
(5a),
and
he
co esponding
acidi y
cons an
(eq.
(5b))
may
be
calcula ed
wi h
equa ion
(6):
M(H;PA)
+
M(PA)
+
H
+
]-IM(H;PA
[M(PA)]
[H+]/[M(H;PA)
+1
(5a)
(5b)
P/M(H;PA)
P/H(PA)
+
log
KMMM(H;PA)-
log
KMMM(PA)
(6)
The
equilib ium
cons an s
acco ding
o
equa ions
(3),
(4),
and
(5)
a e
lis ed
in
columns
2,
3,
and
4
o
Table
1,
espec i ely.
The
acidi y
cons an s
o
he
ligands
(see
oo no e
"a"
in
Table
1)
and
he
s abili y
cons an s
o
he
bina y
Cu(H;PA)
+
and
Cu(PA)
complexes
will
be
discussed
in
a
di e en
con ex .
[33]
He e
we
concen a e
on
he
p ope ies
o
he
e na y
complexes.
315
Helmu
Sigel
e
al.
Te na y
Coppe (II)
Complexes
in
Solu ion[I,2]
Fo med
wi h
8-Aza
De i a i es
o
he
An i i al
Nucleo ide
Analogue
9-[2-(Phosphonome hoxy)e hyl)Adenine(PMEA)
Table
1.
Loga i hms
o
he
S abili y
Cons an s
o
he
Te na y
Cu(A m)(H;PA)
+
(eq.
(3))
and
Cu(A m)(PA)
(eq.
(4))
Complexes
as
De e mined
by
Po en iome ic
pH
Ti a ions
in
Aqueous
Solu ion,
Toge he
wi h
he
Nega i e
Loga i hms
o
he
Acidi y
Cons an s
(eqs
(5)
and
(6))
o
he
Cu(A m)(H;PA)
+
Species
a
25
C
and
I
0.1
M
(NaNO3)
a’b
M
/M(PA)
M(PA)
log
KM(H;PA
log
P/(H;PA)
A
log
KCu/A m/PA
d
Cu(9,8aPMEA)
[33]
0.95+
0.25
3.98
+
0.04
3.8
+
0.25
Cu(Bpy)(9,8aPMEA)
1.4
+
0.25
4.56
+
0.06
3.7
+
0.3
0.58
+
0.07
Cu(Phen)(9,8aPMEA)
1.7
+
0.25
4.81
+
0.06
3.7
+
0.3
0.83
+
0.07
Cu(8,8aPMEA)
[33]
1.3
+
0.25
3.68
+
0.06
4.4
+
0.25
Cu(Bpy)(8,8aPMEA)
1.7
+
0.25
4.49
+
0.05
4.0
+
0.3
0.81
+
0.08
Cu(Phen)(8,SaPMEA)
2.0
+
0.25
4.79
+
0.07
4.0
+
0.3
1.11
+
0.09
a
The
acidi y
cons an s
o H2(9,8aPMEA)
+/-
a e
pgHH2 9
8aPMEA
2.73
+
0.02
and
pKHH(9,8aPWWA
6.85
+
0.02;
hose
o
H2(8,8aPMEA)
+
a e
pKHH2(8
8aPMEA)-"
3.56’4’
0.02
ahd
pKHH(8
8aPMEA)-
6.79
+
0.Ol.
3"3],b
b
The
e o s
gi en
a e
h ee
imes’ he
s anda d
e o
o
he
me.n
alue
o
he
sum
o
he
p obable
sys ema ic
e o s,
whiche e
is
la ge .
The
e o
limi s
o
he
de i ed
da a
(columns
4
and
5)
we e
calcula ed
acco ding
o
he
e o
p opaga ion
a e
Gauss.
The
alues
in
his
column
a e
es ima es
(see
Sec ion
2.2)
d
S abili y
cons an
di e ences
calcula ed
acco ding
o
eq.’(9).
3.2.
On
he
S uc u e
o
he
Monop o ona ed
Te na y
Cu(A m)(H;PA)
+
Complexes
The
analysis
o
po en iome ic
pH
i a ions
only
yields
he
amoun
and
dis ibu ion
o
he
species
o
a
ne
cha ged
ype;
i.e.,
u he
in o ma ion
is
equi ed
o
loca e
he
binding
si es
o
he
p o on
and
he
me al
ion
in
Cu(A m)(H;PA)
+
species.
A
compa ison
o
he
acidi y
cons an s
o
H2(9,8aPMEA)
+,
P/H2(9,8aPMEA)
2.73
an.d
P/H(9,8aPMEA)=
6.85,
wi h
pKCu(A m)(H;9,8aPMEA)
3.7
(Table
1)
o
he
Cu(A m)(H;9,8aPMEA)*
complexes
e eals
ha
he
p o on
in
hese
complexes
mus
be
loca ed
a
he
phosphona e
g oup,
since
me al
ion
coo dina ion
mus
gi e
ise
o
an
acidi ica ion,
[36,371
which
amoun s
o
A
pK
a
pKIH(9,8aPMEA)-
pKCu(A m)(H;9,8a+PMEA)
(6.85
4-
0.02)
--(3.7
+
0.3)
3.15
+
0.3
in
he
p esen
case.
In
he
Cu(A m)(H;8,SaPMEA)
species
he
p o on
is
also
clea ly
bound
a
he
phosphona e
g oup
hough
he
acidi ica ion
due
o
he
me al
ion
migh
be
somewha
less
p onounced:
A
pK
a
PH(8,SaPMEA)-
P/Cu(A m)(H;8,8aPMEA)
(6.79
+/-
0.01)
(4.0
+-
0.3)=2.8+0.3.
Whe e
is
he
Cu(A m)
2+
uni
loca ed?
In
p inciple,
he e
a e
wo
possibili ies"
One,
whe e
Cu(A m)
2/
is
s acked
wi h
he
pu ine
sys em
o
H(PA)-,
designa ed
as
[Cu(A m)/(H;PA)]s,
and
ano he
one,
whe e
Cu(A m)
2+
is
coo dina ed
ei he
o
he
N1/N7
si es
o
he
adenine
esidue
(see
[24]),
[H;PA’Cu(A m)]a+de,
o
o
he
phosphona e
g oup
which
al eady_
ca ies
he
p o on.
Howe e ,
he
o ma ion
o
his
la e
species
wi h
bo h
he
p o on
and
Cu(A m)
+
a
he
phosphona e
g oup
is
unlikely,
in
ag eemen
wi h
p e ious
conclusions.
[241
Hence,
we
a e
le
wi h
he
species
[H;PA’Cu(A m)]a+de
and
[Cu(A m)/(H’PA)]
+,
s
and
we
ha e
o
conside
he
in amolecula
equilib ium
(7):
[H;
PA.Cu(A m)]a+de
[Cu(A m)/(H;PA)]s
(7)
An
e alua ion
ollowing
exac ly
he
ou e
desc ibed
in
[2]
leads
o
he
conclusion
ha
o
all
ou
Cu(A m)(H;PA)
+
sys ems
he
s acked
species
in
equilib ium
(7)
domina e
wi h
o ma ion
deg ees
o
mo e
han
70%,
mos
likely
being
be ween
80
and
95%.
As
one
migh
expec ,
he
o ma ion
deg ee
o
[Cu(Phen)/(H;PA)]s
is
abou
10%
la ge
han
he
one
o
[Cu(Bpy)/(H;PA)]s.
3.3.
P oo
o
an
Inc eased
S abili y
o
he
Mixed
Ligand
Cu(A m)(PA)
Complexes
[38391
The
s abili y
o
mixed-ligand
complexes
may
be
quan i ied
by
conside ing
equilib ium
(8a);
he
co esponding
equilib ium
cons an
is
calcula ed
wi h
equa ion
(9).
Cu(A m)
2+
+
Cu(PA)
....
Cu(A m)(PA)
+
Cu
2+
10
zx
log
KCu/A m/P
A
[Cu(A m)(PA)]
[Cu
2+]
[Cu(A m)
2+
[Cu(PA)]
(8a)
(8b)
A2u(A m)
--log/C(PA)
A
log
KCu/A m/P
A
log
"Cu(A m)(PA)
(9)
316
Me al
Based
D ugs
Vol.
7,
N .
6,
2000
Acco ding
o
he
gene al
ule
o
complex
s abili ies,
K
>
K?,
equilib ium
(8a)
is
expec ed
o
be
on
he
le
side
wi h
nega i e
alues
o
A
log
KCu/A m/P
A,
in
ag eemen
wi h
s a is ical
conside-
a ions,
[38’39]
i.e.,
A
log
Kcu/s a is
-0.5.
[39]
F om
e
alues
lis ed
in
column
5
o
Table
i
is
e iden
ha
equilib ium
(8)
is
signi ican ly
displaced
o
he
igh
side.
Mo e
impo an ,
howe e ,
is
a
compa ison
wi h
he
esul s
ob ained
o
he
dianion
o
phosphonome hoxye hane
(PME:-),
CH3CH2-O.CH2-PO-,
which
e lec s
he
p ope ies
o
he
side
chain
o 9,8aPMEA
2-
and
8,8aPMEA’--
(Fig.
1).
Indeed,
hese
esul s,
A
log
KCu/B ) /PME
0.13
+
0.04
and
A
log
Kcu/Phen/PM
E
0.17
+
0.05,[311a e
conside ably
smalle
han
he
alue s
o
A
log
KCu/A m/P
A
o
he
Cu(A m)(PA)
complexes,
which
means
ha
he
adenine
esidue
con ibu es
o
he
s abili y
o
he
Cu(A m)(PA)
species.
This
compa ison
hus
p o ides
he
i s
clea
hin
o
he
occu ence
o
an
in amolecula
s acking
in e ac ion
in
hese
la e
men ioned
complexes.
Ano he
way
o
e alua e
he
inc eased
s abili y
o
e na y
Cu
+
complexes,
independen ly
o
he
p ope ies
o
he
bina y
Cu(9,8aPMEA)
and
Cu(8,8aPMEA)
species,
es s
on
he
p e iously
es ablished
[2’311
s aigh -line
co ela ions
o
log
KUu( mm)
RPO
e sus
p/
po)
plo s
(eqs
(10)
c
)(
3)
and
(11)),
whe e
R-PO-
ep esen s
phospha e
monoes e
o
phosphona e
lgands
in
which
he
esidue
R
is
unable
o
in e ac
wi h
Cu(A m)Z/:
log
Ko
u(Bpy)
0.465
x
Cu(Bpy)(R-PO3)
P/H(R-PO3)
+
0.009
(10)
log
zCu(Phen)
"’Cu(Phen)(R-PO3)
0.465
x
PKH(R.PO3
+
0.018
(11)
The
e o
limi s
o
log
s abili y
cons an s
calcula ed
wi h
gi en
p/,,
alues
and
equa ions
H(R-PO3
(10)
and
(1
1)
a e
+0.07
and
+0.06
(3)
log
uni s,
espec i ely,
in
he
pH
ange
5-8.[
311
The
e e ence
lines
as
de ined
by
equa ions
(10)
and
(11)
a e
shown
in
Figu e
2,
whe e
he
s abili y
cons an s
log
Ko
u(A m)
e sus
he
acidi y
cons an s
pK
o
he
9,8aPMEA
and
Cu(
m)(P
8,8aPMEA
species
a e
also
pAl o e,
oge he
wi h
he
co esponding
da ’a
l]
o
he
Cu(A m)(PME)
sys ems.
All
hese
da a
poin s
a e
abo e
hei
e e ence
lines,
p o ing
an
inc eased
complex
s abili y
which
mus
mean
[41
ha
aside
om
2+
he
Cu(A m)
-phosphona e
coo dina ion
u he
in e ac ions
ake
place.
The
e ical
dis ances
in
Figu e
2
be ween
he
da a
poin s
due
o
Cu(A m)(9,8aPMEA),
Cu(A m)(8,8aPMEA)
and
Cu(A m)(PME)
and
he
e e ence
lines
a e
a
measu e
o
he
ex en
o
he
in amolecula
in e ac ions
in
hese
complexes
and
hey
can
be
de ined
acco ding
o
equa ion
(12)
(in
his
case,
PA
2-
also
ep esen s
PME2-)
log
ACu/A m/P
A
log
,.’Cu(A m)
log
,.’Cu(A m)
’Cu(A m)(PA)
a"Cu(A m)(PA)op
(12a)
k,-Cu(A m)
log
k,Cu(A m)
log
’"Cu(A m)(PA)exp l
"Cu(A m)(PA)calcd
(12b)
u(A m)
u(A m)
The
exp essions
log
(eq
(12b))
and
log
Kc
u
A m
PA
o
(eq
(12a))
a e
synonymous
/u(A m)(PA)calcd
p
because
he
calcula ed
alue
equals
he
s abili y
cons an
o
he
lopen’
isome ,
Cu(A m)(PA)o,,
n
2
2+
which
only
a
-PO3-/Cu(A m
)
in e ac ion
occu s.
The
i s
e m
on
he
igh
hand
side
in
equa ion
(12)
is
he
expe imen ally
de e mined
s abili y
cons an
(e .
(4)),
whe eas
a
alue
o
log
K(2 /!.
A m),
can
be
calcula ed
wi h
he
acidi y
cons an
P/’"PA’
and
he
s aigh -line
equa ions
(1--0u V(l]ai"As
indica ed
abo e,
such
a
calcula ed
alue
ha { i ies
he
s abili y
o
he
open
isome .
The
ligand
PME
2-
o e s
o
me al
ions
he
phosphona e
g oup
o
coo dina ion,
bu
an
in e -
ac ion
wi h
he
e he
oxygen
is
also
possible
as
has
epea edly
been
p o en.
[822’41’421
This
gi es
ise
o
5-membe ed
chela es
and
he e o e
equilib ium
(13a)
needs
o
be
conside ed"
H
O
ROCP,
0,,
%"M2+
R--
0,,,,
H
0
%M2"
(13a)
317

Helmu
Sigel
e
al.
Te na y
Coppe (II)
Complexes
in
Solu ion[I,2]
Fo med
wi h
8-Aza
De i a i es
o
he
An i i al
Nucleo ide
Analogue
9-[2-(Phosphonome hoxy)e hyl)Adenine(PMEA)
K
[Cu(A m)(PME)c]/[Cu(A m)(PME)op]
(13b)
The
dimensionless
equilib ium
cons an
K
(eq.
(13b))
is
calcula ed
acco ding
o
equa ion
(14),
K
10
lg
aCu/A m/PME
(14)
5,0-
4,8-
4.6-
’E
4.4-
OO
4.2
4.0-
3.8
3.6
O
3.4
E
z
m
2.8
2.6
2.4-
2.2
8,8aPMEA2-
O0
9,8aPMEA
2"
,
PME
2-
"’,Cu(Bpy)(R.PO3)
(Phen)(R-PO
3)
6.0
6.2
6.4 6.6 6.8
7.0
7.2
7.4
7.6
7.8 8.0 8.2
H
pKHH(R.PO3)
o
PKH(PA
Figu e
2.
E idence
o
an
enhanced
s abili y
o
he
e na y
Cu(A m)(9,8aPMEA)
Cu(A m)(8,SaPMEA)
((C),O),
and
Cu(A m)(PME)
(A,,)
complexes
based
on
he
ela ionship
be ween
log
/,,_
u(
Ann
u(Ann)( -PO3)
o
log
"Cu(Ann)(PA)and
PK(R-PO3)
o
pKIH(pA)
in
aqueous
solu ion
a
I
0.1
M
(NaNO
3)
and
25
C.
The
plo ed
da a
o
9,8aPMEA
and
8,8aPMEA
a e
om
Table
and
hose
o
PME
om
[31].
The
ASu(Ann)
wo
e e ence
lines
ep esen
he
log
Cu(Ann)( .po3) e sus
P/(-PO3)
ela ionship
o
e na y
Cu(A m)(R-PO3)
complexes
(eqs
(10)
and
(11));
R-PO-
symbolizes
phosphona es
o
phospha e
monoes e s
in
which
he
g oup
R
is
unable
o
unde go
any
kind
o
hyd ophobic,
s acking
o
o he
ype
o
in e ac ions,
i.e.
ligands
like
D- ibose
5-monophospha e,
me hanephosphona e
o
e hanephosphona e.
[31
The
b oken
line
holds
o
A m
Bpy
and
he
solid
line
o
A m
Phen.
Bo h
s aigh
lines
ep esen
he
si ua ion
o
e na y
complexes
wi hou
an
in amolecula
ligand-ligand
in e ac ion.
The
e ical
do ed
lines
emphasize
he
s abili y
di e ences
om
he
e e ence
lines;
hey
equal
log
ACu/A m/P
A
as
de ined
in
equa ion
(12).
and
now,
knowing
K,
he
pe cen age
o
he
closed
isome ,
Cu(A m)(PME)c,
in
equilib ium
(13a)
can
be
ob ained wi h
equa ion
(15)"
%
Cu(A m)(PME)c
100.
K/(I
+
KI)
(15)
318
Me al
Based
D ugs
Vol.
7,
N .
6,
2000
Table
2.
Quan i ica ion
o
he
S abili y
Inc ease
ia
loe
ZCu/A m/P
A
(eq.
(12))
o
he
Cu(A m)(PA)
Complexes,
whe e
PA
9,8aPMEA
2-,
8,8aPMEA
2-
o
PME
"-,
and
A m
Bpy
o
Phen,
Toge he
wi h
he
Ex en
o
he
In amolecula
Chela e
Fo ma ion
(eq.
(13))
in
he
Cu(A m)(PME)
Species
[311
in
Aqueous
Solu ion
a
25
C
and
I
0.1
M
(NaNO3)
a
log
1o
Cu(A m)(PA)
Cu(Ann)
b
Cu(Ann
Kia
Cu(Ann)(PA)exp l
Cu(Ann)(PA)calcd
log
ACu/Ann/P
A
%Cu(A m)(PME)cl
Cu(Bpy)(9,8aPMEA)
4.56
+
0.06
Cu(Phen)(9,8aPMEA)
4.81
+
0.06
3.19
+
0.07
1.37
+
0.09
3.20
+
0.06
1.61
+
0.08
Cu(Bpy)(8,8aPMEA)
4.49
+
0.05
3.17
+
0.07
1.32
+
0.09
Cu(Phen)(8,8aPMEA)
4.79
+
0.07
3.18
+
0.06
1.61
+
0.09
Cu(Bpy)(PME)
[31]
3.86
+
0.03
3.27
+
0.07
0.59
+
0.08
2.89
+
0.68
74
+
5
Cu(Phen)(PME)
31]
3.90
+
0.04
3.28
+
0.06
0.62
+
0.07
3.17
+
0.69
76
+
4
Fo
he
e o
limi s
see
oo no e
’b’
o
Table
1.
These
alues
a e
om
column
3
in
Table
1.
These
cons an s
we e
calcula ed
wi h
eqs
(10)o
(11)
and
he
H
pK(pA
alues
gi en
in
oo no e
’a’
o
Table
1.
See
eqs
(13b)
and
(14).
Calcula ed
acco ding
o
equa ion
(15).
F om
he
esul s
gi en
in
he
lowe
pa
o
Table
2
i
is
e iden
ha
he
closed
isome
o
Cu(A m)(PME)
is
an
impo an
species
wi h
a
o ma ion
deg ee
o
abou
75%.
Na u ally,
he
o -
ma ion
o
he
co esponding
isome
in ol ing
he
e he
oxygen
is
also
o
be
expec ed
(see
Fig.
1)
o
he
Cu(A m)(9,8aPMEA)
and
o
Cu(A m)(8,8aPMEA)
sys ems
and
we
designa e
i
as
Cu(A m)(PA) o.
Howe e ,
he
log
ACu/A m/P
A
alues
lis ed
in
column
4
o
Table
2
a e
by
abou
0.7
o
log
uni
la ge
o
he
la e
men ioned
complexes
han
o
he
Cu(A m)(PME)
species
and
his
mus
mean
ha
in
he
sys ems
wi h
9,8aPMEA
and
8,8aPMEA,
nex
o
Cu(A m)(PA)op
and
Cu(A m)(PA)l/o,
a
hi d
isome
mus
occu
which
in ol es
he
adenine
esidue.
The
ligands
9,8aPMEA
z-
and
8,8aPMEA
2-
o e
only
wo
such
possibili ies"
The
phosphona e-coo dina ed
Cu(A m)
2+
o ms
(i)
a
mac ochela e
wi h
one
o
he
ni ogens
o
he
adenine
esidue,
o
(ii)
an
in amolecula
s ack
be ween
he
a oma ic
ing
sys ems
o
Bpy/Phen
and
he
adenine
moie y.
Tha
he
i s
possibili y
is
no
o
ele ance
has
been
discussed
in
de ail
o
3’-deoxa-PMEA,
[21
and
he
same
a gumen s
also
apply
he e,
whe eas
o
he
second
possibili y
in ol ing
in amolecula
s acks,
many
examples
exis .
[2,28,30,31,39’40’43]
Hence,
he
addi ional
enhanced
complex
s abili y
may
be
a ibu ed
indeed
o
in amolecula
s ack
o ma ion.
Applica ion
o
space- illing
molecula
models
e eals
ha
he
adenine
esidue
o
he
9,8aPMEA
o
8,8aPMEA
ligands,
which
a e
equa o ially
chela ed
o
Cu(A m)
2+
ia
he
phospho-
ha e
g oup
and
he
e he
oxygen,
canno
s ack
well
wi h
he
a oma ic
ings
o
he
also
equa o ially
coo dina ed
A m;
a
subs an ial
and
s ain- ee
o e lap
o
he
a oma ic
sys ems
is
only
possible
i
he
e he
oxygen
is
no
equa o ially
coo dina ed
o
Cu
e+.
This
la e
si ua ion
is
depic ed
in
Figu e
3
o
9,8aPMEA.
Howe e ,
om
he
molecula
models
i
is
also
e iden
ha
an
apical
e he
oxygen
coo dina ion
and
simul aneous
s ack
o ma ion
would
be
compa ible
wi h
each
o he
in
he
Cu(A m)(PA)
species
wi h
PA
2-
9,8aPMEA
o
8,8aPMEA.
Hence,
he e
a e
a ious
in amole-
cula ly
s acked
Cu(A m)(PA)
species
possible
including
hose
wi h
somewha
di e en
o ien a ions
o
he
a oma ic
ings
owa d
each
o he .
As
he e
is
a
p esen
no
way
o
dis inguish
hese
a ious
isome s
and
con o me s
om
each
o he ,
we
ea
all
he
s acked
species
oge he
and
designa e
hem
as
Cu(A m)(PA)s
.
The
sum
o
he
abo e
easonings
hen
gi es
ise
o
he
equilib ium
scheme
(16),
whe e
he
pu e
phosphona e-coo dina ed
isome
is
designa ed
as
Cu(A m)(PA)op.
I
is
e iden
ha
he
uppe
b anch
o
his
equilib ium
scheme
e lec s
equilib ium
(13a)
while
he
lowe
b anch
e lec s
he
s acking
in e ac ion
(Fig.
3).
Cu(A m)(PA)c,o
Cu(A m)
2+
+
PA
2-
Cu(A m)(PA)op
Cu(A m)(PA).
(16)
319
Helmu
Sigel
e
al.
Te na y
Coppe (lI)
Complexes
in
Solu ion[I,2]
Fo med
wi h
8-Aza
De i a i es
o
he
An i i al
Nucleo ide
Analogue
9-[2-(Phosphonome hoxy)e hyl)Adenine(PMEA)
H2
NV7
x
/,OH
’
H2!
O
Figu e
3.
Ten a i e
and
simpli ied
s uc u e
o
a
Cu(Phen)(9,8aPMEA)
species
wi h
an
in amolecula
s ack.
The
o ien a ion
o
he
a oma ic
ings
may
a y
among
he
s acked
species;
such
a
s acked
complex
in
solu ion
should
no
be
conside ed
as
being
igid.
3.4.
E alua ion
o
he
In amolecula
Equilib ia
In ol ing
Th ee
Di e en
Cu(A m)(PA)
Species
Based
on
he
equilib ium
scheme
(16)
he
co esponding
equilib ium
cons an s
can
be
de ined
as
gi en
in
equa ions
(17)-(19):
log
"R2u(A m)(PA)opk’Cu(A m)
[Cu(A m)(PA)op]/([Cu(A m)2+]
[pA2-])
(17)
KI/o
[Cu(A m)(PA)cl/O]/[Cu(A m)(PA)op]
(18)
Kl/s
[Cu(A m)(PA)s ]/[Cu(A m)(PA)op]
(19)
Wi h
hese
de ini ions
he
expe imen ally
accessible
equilib ium
cons an
(4b)
can
be
e o mula ed
as
equa ion
(20):
[20a,31]
[Cu(A m)(PA)]
(4b)
(A m)(PA)
[Cu(A m)2+
[pA2_]
([Cu(A m)(PA)op]
+
[Cu(A m)(PA)cl/O]
+
[Cu(A m)(PA)s
])
[Cu(A m)
2+
[PA
2-
/(Cu(A m)
k-Cu(A m)
+
Kl/s "
"’Cu(A m)(PA)op
k,Cu(A m)
+
KI/O
"’Cu(A m)(PA)op
"xCu(A m)(PA)op
(20a)
(20b)
k’Cu(A m)
"’Cu(A m)(PA)op
(1
+
KI/0
+
Kl/s
)
(20c)
F om
he e
one
a i es
easily
[31
a
equa ion
(21),
whe e
Cu(A m)(PA)in / o
e e s
o
he
sum
o
all
he
species
wi h
an
in amolecula
in e ac ion:
Cu(A m)
Cu(A m)(PA)
10
Ig
ACu/A m/PA
(21
a)
K
Kl/ o
,Cu(g m)
"’Cu(A m)(PA)op
320
Me al
Based
D ugs
Vol.
7,
N .
6,
2000
[Cu(A m)(PA)in /
(21
b)
/’(i
Kl/ o
[Cu(A m)(PA)op
[Cu(A m)(PA)cl/O]
+
[Cu(A m)(PA)s ]
[Cu(A m)(PA)op
(21c)
KI/0
+
Ki/s
(2
d)
In
hose
ins ances
whe e
he
s acked
species
do
no
o m,
he
abo e
equa ions
educe
o
he
wo-
isome
p oblem
ea ed
in
equa ions
(13)
and
(14).
I
is
e iden
ha /I
Kl/ o
acco ding
o
equa-
ion
(21a)
can
be
calcula ed
ia
he
alues
log
ACu/A m/P
A
as
de ined
by
equa ion
(12)
and
lis ed
in
he
uppe
pa
o
column
4
in
Table
2.
Table
3.
ln amolecula
Equilib ium
Cons an s
o
he
Fo ma ion
o
he
Th ee
Di e en ly
S uc u ed
Cu(A m)(PA)
Species
Shown
in
he
Equilib ium
Scheme
(16),
Toge he
wi h
he
Pe cen ages
in
Which
These
Species
Occu
in
Aqueous
Solu ion
a
25
C
and
I
0.1
M
(NaNO3)
a
No.
Cu(A m)(PA)
log
ACu/Ann/l:,
A
g
’=
KI/ o
%Cu(A m)(PA)in / o
%Cu(A m)(PA)op
a
Cu(Bpy)(9,8aPMEA)
2a
Cu(Phen)(9,8aPMEA)
1.37
+
0.09
22.44
+
4.86
95.73
+
0.88
4.27
+
0.88
1.61
+
0.08
39.74
+
7.50
97.55
+/-
0.45
2.45
+
0.45
3a
Cu(Bpy)(8,8aPMEA)
1.32
+
0.09
19.89
+
4.33
4a
Cu(Phen)(8 SaPMEA)
1.61
+
0.09
39.74
+
8.44
No.
Cu(A m)(PA)
K
I/O
Ki/s
95.21
+
0.99
4.79
+
0.99
97.55
+
0.51
2.45
+/-
0.51
%Cu(A m)(PA)el/o
b
%Cu(A m)(PA)s
b
Cu(Bpy)(9,SaPMEA)
2.89
+/-
0.68
19.55
+
4.91
2b
Cu(Phen)(9,SaPMEA)
3.17
+/-
0.69
36.57
+/-
7.53
3b
Cu(Bpy)(8,SaPMEA)
2.89
+/-
0.68
17.00
+/-
4.38
4b
Cu(Phen)(8,8aPMEA)
3.17
+
0.69
36.57
+/-
8.47
12.3
+/-
3.9
83.4
+/-
4.0
7.8
+/-
2.2
89.8
+/-
2.2
13.8
+/-
4.3
81.4
+/-
4.4
7.8
+
2.3
89.8
+
2.4
a
The
alues
lis ed
in
he
hi d
column
o
he
uppe
pa
a e
om
he
ou h
column
in
he
uppe
pa
o
Table
2.
The
alues
o
K’
Ki/ o
ollow
om
eq.
(21a)
and
%Cu(A m)(PA)in / o
is
calcula ed
analogously
o
eq.
(15).
The
alues
gi en
in
he
six h
column
o
%Cu(A m)(PA)op
ollow
om
100
%Cu(A m)(PA)in / o .
The
cons an s
o
K o
in
column
3
o
he
lowe
pa
a e
om
column
5
in
he
lowe
pa
o
Table
2
( o
he
co esponding
jus i ica ion[
311
see
also
ex
in
Sec ion
3.4);
wi h
eq.
(21d)
and
he
now
known
alues
o
K’
and
KI/0
ha
o
Kl/s
may
be
calcula ed
(column
4
in
he
lowe
pa ).
All
e o
limi s
co espond
o
h ee
imes
he
s anda d
de ia ion
(3);
hey
we e
calcula ed
acco ding
o
he
e o
p opaga ion
a e
Gauss.
b
These
alues
we e
calcula ed
ia
eq.
(18)
wi h
K o
and
%Cu(A m)(PA)op.
The
alues
o
%Cu(A m)(PA)s
ollow
om
he
di e ence
%Cu(A m)(PA)in / o -
%Cu(A m)(PA)cl/o
(c .
eqs
(21b)
and
(2
c));
%Cu(A m)(PA)s
may
also
be
calcula ed
ia
eq.
(19)
wi h
K s
and
%Cu(A m)(PA)op.
The
esul s
a e
he
same
o
bo h
calcula ion
me hods
ye
he
e o
limi s
a e
unde s andably
la ge
o
he
second
me hod
(da a
no
shown).
The
esul ing
K
alues
a e
gi en
in
he
ou h
column
o
he
uppe
pa
o
Table
3
and
hey
allow
o
calcula e
he
concen a ions
o
he
open
isome s,
Cu(A m)(PA)op.
To
be
able
o
calcula e
he
o ma ion
deg ee
o
he
species
ha
o m
he
i e-membe ed
chela e
wi h
he
e he
oxygen,
i.e.
Cu(A m)(PA)c/O
(eq.
(18)),
we
made
he
jus i ied
assump ion
ha
Cu(A m)(PME)c
(Sec ion
3.3;
Table
2)
I31
and
Cu(A n)(PA)cl/O
ha e
he
same
s abili y,
i.e.
ha
he
equilib ium
cons an
K o
o
Cu(A m)(PA)cVO
equals
he
co esponding
alue
(=
K)
o
Cu(A m)(PME)c.
Knowledge
o
K
and
K/o
pe mi s
now
o
calcula e
K/s
by
using
equa ion
(21d)
and
hence
he
o ma ion
deg ee
o
he
Cu(A m)(PA)s
species.
Finally,
he
di e ence
be ween
100
and
he
sum
o
he
pe cen ages
o
Cu(A m)(PA)op
and
Cu(A n)(PA)c O
will,
o
cou se,
also
esul
in
%
Cu(A m)(PA)s
and
Ki/s .
The
esul s
o
hese
Calcula ions
a e
summa ized
in
he
lowe
pa
o
Table
3.
Conside ing
he
equilib ium
scheme
(16)
and
he
co esponding
esul s
summa ized
in
Table
3
se e al
conclusions
a e
e iden :
(i)
All
h ee
s uc u ally
di e en
species
a e
o med
in
app eciable
amoun s
in
he
Cu(Phen)(9,8aPMEA)
and
Cu(Phen)(8,SaPMEA)
sys ems.
(ii)
The
s acked
species
(Fig.
3)
clea ly
domina e,
eaching
o ma ion
deg ees
o
abou
80
o
90%.
(iii)
Consequen ly,
he
o ma ion
deg ee
o
he
i e- nembe ed
chela es
in ol ing
he
e he
oxygen
is
supp essed,
oughly
speaking
o
abou
10%,
compa ed
wi h
he
app oxima ely
75%
p esen
in
he
Cu(A n)(PME)
sys ems
(c
Table
2).
321