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Metal complexes of 1,10-phenanthroline-5,6-dione alter the susceptibility of the yeast Candida albicans to Amphotericin B and Miconazole

Abstract

Growth of the pathogenic yeast Candida albicans in sub-MIC (minimum inhibitory concentration) levels of Cu(ClO4)2 · 6H2O and [Cu(phendio)3](ClO4)2 · 4H2O (phendio = 1,10-phenanthroline-5,6-dione) increased the concentration of miconazole and amphotericin B required to achieve the MIC90 whereas pre-growth in AgClO4 and [Ag(phendio)2]ClO4 resulted in a small decrease in the relevant MIC90 values. The copper complexes reduce the oxygen consumption of C. albicans while the silver complexes increase oxygen consumption. In addition, pregrowth of cells in the copper complexes resulted in a lower ergosterol content while the silver complexes induced an elevation in ergosterol synthesis. The ability of copper and silver complexes to alter the susceptibility of C. albicans to miconazole and amphotericin B may be influenced by their action on respiration, since reduced respiration rates correlate with reduced cellular ergosterol which is the target for amphotericin B. Lower levels of ergosterol have previously been associated with elevated tolerance to this drug. In the case of reduced sensitivity to miconazole, tolerance may be mediated by lower ergosterol synthesis giving rise to fewer toxic side products once biosynthesis is inhibited by miconazole.

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Metal complexes of 1,10-phenanthroline-5,6-dione alter the susceptibility of the yeast Candida albicans to Amphotericin B and Miconazole

Author: Eshwika, Ahmed,Coyle, Barry,Devereux, Michael,McCann, Malachy,Kavanagh, Kevin
Publisher: Kluwer Academic Publishers
Year: 2004
Source: https://mural.maynoothuniversity.ie/id/eprint/197/1/52712831.pdf
BioMe als 0: 1–7, 2004.
© 2004 Kluwe Academic Publishe s. P in ed in he Ne he lands. 1
Me al complexes o 1,10-phenan h oline-5,6-dione al e he suscep ibili y
o he yeas Candida albicans o Ampho e icin B and Miconazole
Ahmed Eshwika1, Ba y Coyle2, Michael De e eux3, Malachy McCann2& Ke in Ka anagh1,∗
1Medical Mycology Uni , NICB, Depa men o Biology, Na ional Uni e si y o I eland Maynoo h, Co. Kilda e,
I eland; 2Depa men o Chemis y, Na ional Uni e si y o I eland Maynoo h, Co. Kilda e, I eland; 3Dublin
Ins i u e o Technology, Ca hal B ugha S ., Dublin 1; ∗Au ho o co espondence (Tel: 353-1-708 3859, Fax:
353-1-708 3845, E-mail: ke in.ka [email protected].)
Recei ed 15 Oc obe 2003; Accep ed 28 No embe 2003
Abs ac
G ow h o he pa hogenic yeas Candida albicans in sub-MIC (minimum inhibi o y concen a ion) le els o
Cu(ClO4)2·6H2O and [Cu(phendio)3](ClO4)2·4H2O (phendio =1,10-phenan h oline-5,6-dione) inc eased he
concen a ion o miconazole and ampho e icin B equi ed o achie e he MIC90 whe eas p e-g ow h in AgClO4
and [Ag(phendio)2]ClO4 esul ed in a small dec ease in he ele an MIC90 alues. The coppe complexes educe
he oxygen consump ion o C. albicans while he sil e complexes inc ease oxygen consump ion. In addi ion, p e-
g ow h o cells in he coppe complexes esul ed in a lowe e gos e ol con en while he sil e complexes induced
an ele a ion in e gos e ol syn hesis.
The abili y o coppe and sil e complexes o al e he suscep ibili y o C. albicans o miconazole and ampho-
e icin B may be in luenced by hei ac ion on espi a ion, since educed espi a ion a es co ela e wi h educed
cellula e gos e ol which is he a ge o ampho e icin B. Lowe le els o e gos e ol ha e p e iously been asso-
cia ed wi h ele a ed ole ance o his d ug. In he case o educed sensi i i y o miconazole, ole ance may be
media ed by lowe e gos e ol syn hesis gi ing ise o ewe oxic side p oduc s once biosyn hesis is inhibi ed by
miconazole.
Abb e ia ions: phendio =1,10-phenan h oline-5,6-dione. phen =1,10-phenan h oline
In oduc ion
The yeas Candida albicans is esponsible o a ange
o supe icial and sys emic diseases in he immuno-
comp omised pa ien . Con en ional he apies o he
con ol o hese diseases ely upon he use o azole
and polyene d ugs which a ge e gos e ol biosyn-
hesis and al e memb ane pe meabili y, espec i ely
(Whi e e al., 1998, Abu Salah, 1996). In ecen yea s,
he appea ance o ungal s ains mani es ing esis ance
o con en ional d ugs (Canu o & Rode o, 2002) has
p omp ed he sea ch o no el an i- ungals wi h modes
o ac ion dis inc o he exis ing ange o an i- ungals.
Me al-based d ugs ep esen a no el g oup o an i-
ungal agen s wi h po en ial applica ions o he con-
ol o ungal in ec ions. P e ious wo k in ou labo -
a o ies has demons a ed ha in RPMI medium a
37oC he me al-based d ugs [Cu(phen)2(mal)]·2H2O,
[Mn(phen)2(mal)]·2H2O and [Ag(phen)2]ClO4(phen
=1,10-phenan h oline) inhibi he g ow h o C. al-
bicans by a ound 95% a a concen a ion o 5 µg/ml
(McCann e al. 2000; Coyle e al. 2003a). I was
es ablished ha bo h me al- ee phen and he me al-
phen complexes a ec mi ochond ial unc ion, e a d
he syn hesis o cy och omes b and c and uncouple es-
pi a ion. T ea men o ungal cells wi h he Cu(II) and
Ag(I) complexes esul ed in a educed amoun o e -
gos e ol in he cell memb ane and subsequen inc ease
in i s pe meabili y. Cells exposed o me al- ee phen
and he Cu(II) and Mn(II) complexes (bu no he Ag(I)
complex) demons a ed an ele a ion in oxygen up ake.
The gene al conclusion was ha he d ugs damage
mi ochond ial unc ion and uncouple espi a ion. Fu -
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AUTHOR’S PROOF!
2
he mo e, he ac ha he d ugs we e no uni o mly
ac i e sugges ed ha hei bioac i i y had a deg ee o
me al-ion dependency.
Mo e ecen ly, me al- ee phendio (phendio =
1,10-phenan h oline-5,6-dione) and he Ag(I) com-
plex [Ag(phendio)2]ClO4ha e been shown o cause
ex ensi e, non-speci ic DNA clea age o C. albicans,
dis up cell di ision and induce g oss dis o ions in
ungal cell mo phology (Coyle e al., 2003b). P e-
limina y expe imen s on cul u ed human cance cells
p oduced IC50 alues o 0.008 µg/ml (0.04 µM)
and 0.025 µg/ml (0.40 µM) o me al- ee phendio
and [Ag(phendio)2]ClO4, espec i ely (Coyle e al.
2003b). S udies by Igdalo e al. (1983) e ealed ha
bo h phendio and i s isome , 1,7-phenan h oline-5,6-
dione, inhibi he g ow h o S49 mouse lymphona cells
and S110 mouse cells, and al hough i was pos u-
la ed ha inhibi ion o DNA and RNA syn heses we e
majo componen s o he cy o oxic e ec s he phenan-
h olines we e p esumed o ha e mo e han one mode
o ac ion.
Me al-based d ugs ha e well es ablished ungi-
s a ic and ungicidal e ec s and he aim o he wo k
p esen ed he e was o e alua e he possibili y o using
Cu (II) and Ag (I) phendio complexes in combina-
ion wi h azole and polyene d ugs o he con ol o
C. albicans.
Ma e ials and me hods
Fungal isola e and cul u e condi ions
C. albicans MEN (a kind gi om D . Da id Ke idge,
Camb idge, UK) was g own o he s a iona y phase
(app oxima ely 1.5 ×108cells/ml) a 30 ◦C o e nigh
in YEPD b o h (2% (w/ ) glucose (Sigma Ald ich
Chemical Co., Do se , UK), 2% (w/ ) bac e iological
pep one (Sigma Ald ich) and 1% (w/ ) yeas ex ac
(Sigma Ald ich)) in an o bi al incuba o a 200 pm.
D ugs
Chemicals we e ob ained om comme cial sou ces
and used wi hou u he pu i ica ion. Cu(ClO4)2·6H2O
was pu chased om Sigma Ald ich and used wi hou
u he pu i ica ion. [Cu(phendio)3](ClO4)2·4H2O
and [Ag(phendio)2]ClO4we e syn hesized in acco d-
ance wi h he p ocedu es ou lined in McCann e al.
(2003).
An i-Candida suscep ibili y es ing o me al-based
d ugs
Solu ions o wa e -soluble coppe and sil e com-
plexes we e p epa ed by dissol ing 0.02 g o he solid
in s e ile dis illed wa e o yield a s ock solu ion o
200 µg/ml. The solu ions we e il e s e ilised using a
Millipo e memb ane il e (0.45 µm). S a iona y phase
cul u es o C. albicans we e ha es ed by cen i u-
ga ion (2220 ×g o 5 min in a Beckmann GS-6
cen i uge), washed wice wi h PBS and esuspended
a a inal densi y o 1 ×106cells/ml. Cell suspension
(100 µl) was added o each well o a 96-well mic o i e
pla e excep he i s column (con ol medium). Se ial
dilu ions o me al-based d ugs we e added o ows o
wells o cons uc a concen a ion g adien om 50–
0.78 µg/ml and he pla es we e incuba ed a 30 ◦C
o 24 h. The abso bance a 450 nm was de e mined
using a MRX spec opho ome e (Dynax Technology,
Chan illy, VA, USA) and he concen a ion ha was
capable o inhibi ing g ow h by 90% (MIC90) ela i e
o he con ol was calcula ed.
Ampho e icin B and miconazole suscep ibili y es ing
Yeas cul u es we e g own o he s a iona y phase
in an ibio ic medium 3 (AB 3, Oxoid) o e nigh a
30 ◦C and 200 pm, ha es ed by cen i uga ion and
dilu ed o 1 ×106/ml. Cells (1 ×105in 100 µl) we e
added o each ow o a 96-well pla e con aining am-
pho e icin B in se ial dilu ions (Sigma-Ald ich) om
2.5–0.0048 µg/ml in AB3 medium.
Miconazole suscep ibili y es ing was pe o med
using s a iona y phase C. albicans ha had been g own
in RPMI medium o e nigh (Sigma Ald ich). Cells
(100 µlo 1×106/ml) we e added o each ow o
a 96-well pla e con aining miconazole, se ially dilu ed
in RPMI medium om 20–0.19 µg/ml.
All pla es we e incuba ed a 30 ◦C o 24 h and he
op ical densi y was ead a 450 nm using a MRX spec-
opho ome e (Dynax Technology, Chan illy, VA,
USA).
Oxygen consump ion
Cells we e g own in YEPD b o h supplemen ed wi h
sub-MIC le els o sil e o coppe complexes a 30 ◦C
o 24 h, ha es ed by cen i uga ion and e-suspended
a a densi y o 1 ×108/ml in phospha e bu e ed saline
(PBS, pH 7.2). A Cla k Type oxygen elec ode (Ranks
B o he s, Camb idge, UK) was employed o de e m-
ine he espi a ion a e o cells. The a e o oxygen
B5271283. ex; 16/03/2004; 11:56; p.2
3
Fig 1. E ec o me al-based d ugs on he g ow h o C. albicans. Cells o C. albicans we e exposed o inc easing concen a ions o MBD and
he e ec on g ow h a e 24 h incuba ion was de e mined.
consump ion is exp essed as he numbe o µmoles o
oxygen consumed pe hi y sec pe 1 ×108cells.
S e ol ex ac ion and analysis
S e ols we e ex ac ed acco ding o he me hod o
A hing on–Skaggs e al. (1999). S a iona y phase
cells (1.3 g we weigh ) we e ha es ed and washed
wi h PBS (pH 7.2). Cells we e e-suspended in 20%
(w/ ) KOH and 60% ( / ) e hanol and placed in a
shaking wa e ba h (80–90 ◦C) o 1.5 h. Hep ane was
added o he solu ion which was hen agi a ed o
10 sec and he aqueous laye emo ed. The s e ol con-
en o he hexane laye was quan i ied using a dual
beam spec opho ome e o e he ange 250–300 nm.
S a is ical analysis
The K uskal–Wallis es was pe o med, whe e app o-
p ia e, on all esul s using he SigmaS a S a is ical
Analysis Sys em (Ve sion 1.00). Values a e p esen ed
as ±SE o he mean o da a om h ee independen
expe imen s.
Resul s
The e ec o selec ed Cu(II) and Ag(I) phendio
complexes on he g ow h o C. albicans was as-
sessed. The esul s indica e (Figu e 1) ha AgClO4
and [Ag(phendio)2]ClO4display MIC90 alues o ap-
p oxima ely 6.0 µg/ml while Cu(ClO4)2·6H2Oand
[Cu(phendio)3](ClO4)2·4H2OdisplayMIC
90 alues
o >50 and 46 µg/ml, espec i ely. In all sub-
sequen assays, concen a ions co esponding o 1/4
MIC90 alues o hese complexes alues we e em-
ployed i.e. AgClO4and [Ag(phendio)2]ClO4a a
concen a ion o 1.5 µg/ml and Cu(ClO4)2·6H2O
and [Cu(phendio)3](ClO4)2·4H2O a concen a ions
o 12.5 µg/ml and 11.5 µg/ml, espec i ely. Sub-MIC
alues we e employed in all subsequen assays so ha
any e ec on d ug suscep ibili y would no be due o
he ungis a ic e ec s o hese compounds
Expe imen s we e pe o med o de e mine whe he
p e-g ow h o C. albicans in he p esence o di -
e en me al complexes a ec ed he subsequen sus-
cep ibili y o cells o azole and/o polyene d ugs.
Cells we e p e-g own in medium supplemen ed wi h
1/4 MIC90 o he Cu(II) and Ag(I) phendio com-
plexes o 24 h a 30 ◦C and ha es ed by cen i-
uga ion. An i- ungal suscep ibili y assays we e pe -
o med as desc ibed. The esul s (Figu e 2) in-
dica e ha p e-g ow h o C. albicans in medium
supplemen ed wi h 12.5 µg/ml Cu(ClO4)2·6H2O
o 11.5 µg/ml [Cu(phendio)3](ClO4)2·4H2O signi-
ican ly dec eases he suscep ibili y o C. albic-
ans o miconazole (p <0.001) (con ol MIC90 =
7.94 ±1.2 µg/ml, cells p e-g own in 1/4 MIC
Cu(ClO4)2·6H2OMIC
90 =10.9 ±0.2 µg/ml, cells
p e-g own in 1/4 MIC [Cu(phendio)3](ClO4)2·4H2O
MIC90 =11.4±0.3 µg/ml ). In he case o he sil-
e complexes, p e-g ow h o C. albicans in 1.5 µg/ml
AgClO4o [Ag(phendio)2]ClO4inc eases he suscep -
ibili y o he cells o miconazole. Cells p e-g own
in 1/4 MIC90 AgClO4show a miconazole MIC90
alue o 3.24 ±0.09 µg/ml while hose p e-g own in
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4
Fig 2. Suscep ibili ies o Miconazole o C. albicans p e-g own in he p esence o sub-MIC90 le els o me al complexes. The suscep ibili y o
C. albicans o miconazole was de e mined a e cells had been i s p e-g own in sub- MIC90 le els o me al-based d ug.
1/4 MIC90 [Ag(phendio)2]ClO4demons a e a MIC90
alue o 4.95 ±0.27 µg/ml.
The suscep ibili y o C. albicans o he polyene
d ug ampho e icin B was also a ec ed ollowing
p e-g ow h o he cells in medium supplemen ed
wi h coppe o sil e complexes a 1/4 MIC90 al-
ues (Figu e 3). In he case o p e-g ow h in 1/4
MIC90 Cu(ClO4)2·6H2O he amoun o ampho e i-
cin B equi ed o achie e he MIC90 inc eases o
0.029 ±0.007 µg/ml om 0.024 ±0.003 µg/ml
(con ol) and ollowing p e-g ow h in a simila con-
cen a ion o [Cu(phendio)3](ClO4)2·4H2O inc eases
o 0.03 ±0.003 µg/ml (p =0.238). In he case
o p e-exposu e o he sil e complexes he e is a
dec ease in he amoun o ampho e icin B equi ed
o achie e he MIC90. P e-g ow h o C. albicans in
ei he o he sil e complexes educes he amoun
o ampho e icin B equi ed o achie e he MIC90
om 0.024 ±0.003 µg/ml o 0.019 ±0.001 µg/ml
(p =0.238) (Figu e 3).
Azoles, such as miconazole, inhibi he ac ion
o lanos e ol 14α-deme hylase which con ols an es-
sen ial in e media e s ep in he biosyn hesis o e -
gos e ol (Whi e e al., 1998, Daum e al., 1998).
In con as , polyenes, such as ampho e icin B, bind
o e gos e ol in he ungal cell memb ane c ea ing
po es h ough which cell cons i uen s may escape
(Abu Salah, 1996). E gos e ol biosyn hesis is an oxy-
gen dependen p ocess and also equi es NADPH
which is syn hesised in he ae obically espi ing mi-
ochond ion. Consequen ly, expe imen s we e pe -
o med o es ablish whe he he al e ed suscep ib-
ili y o C. albicans o miconazole and ampho e i-
cin B was due o he abili y o he coppe o sil-
e complexes o al e espi a ion. The esul s (Fig-
u e 4) demons a e ha p e-g ow h o cells in 1/4
MIC90 o he coppe complexes (Cu(ClO4)2·6H2O
and [Cu(phendio)3](ClO4)2·4H2O) esul s in a educ-
ion in he cellula espi a ion a e (p <0.001) whe eas
g ow h o cells in he p esence o he sil e com-
plexes (AgClO4and [Ag(phendio)2]ClO4)inc eases
he espi a ion a e o C. albicans (p <0.001).
The e gos e ol biosyn he ic pa hway is he a -
ge o he azole d ugs (Whi e e al. 1998) whils
polyenes bind e gos e ol in he cell memb ane and
c ea e po es (Abu Salah, 1996). Quan i ica ion o
e gos e ol in cells g own in medium supplemen ed
wi h sub MIC90 concen a ions o he me al-based
d ugs demons a ed ha g ow h in he p esence o
coppe complexes esul ed in a educed e gos e ol
con en , while g ow h in medium supplemen ed wi h
he sil e complexes esul ed in an inc ease in cel-
lula e gos e ol (Figu e 5). In e es ingly, hose com-
pounds ha inc ease he espi a ion a e (AgClO4and
[Ag(phendio)2]ClO4) also cause an inc ease in e -
gos e ol con en while hose ha dep ess espi a ion
(Cu(ClO4)2·6H2O and [Cu(phendio)3](ClO4)2·4H2O)
lead o a educ ion in e gos e ol con en .
B5271283. ex; 16/03/2004; 11:56; p.4
5
Fig 3. Suscep ibili ies o Ampho e icin B o C. albicans p e-g own in he p esence o sub-MIC90 le els o me al complexes. The suscep ibili y
o C. albicans o ampho e icin B was de e mined a e cells had been i s p e-g own in sub- MIC90 le els o me al-based d ug.
Fig 4. Respi a ion a es o C. albicans cells p e-g own in sub-MIC90 le els o me al complexes. The oxygen consump ion a es o C. albicans
cell p e-g own in sub-MIC90 le els o me al-based d ug we e de e mined using a Rank Oxygen elec ode and exp essed as µmoles o oxygen
consumed pe 108cells pe 30 sec.
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NEW ARTWORK PLEASE!
Fig 5. E gos e ol p o iles o C. albicans cells p e-g own in
sub-MIC90 le els o me al complexes. (Rep esen a i e igu e). The
ela i e amoun s o e gos e ol in cells p e- ea ed wi h sub-MIC90
concen a ions o me al-based d ug we e asce ained spec opho o-
me ically o e he ange 250–300 nm.
Discussion
Me al-based d ugs ep esen a no el g oup o an i-
mic obial agen s wi h po en ial he apeu ic applica-
ions (Coyle e al. 2003a; McCann e al. 2000). Wi h
he ad en o ungal isola es mani es ing esis ance o
azole and polyene d ugs (Canu o & Rode o, 2002)
he e is a equi emen o new d ugs wi h al e na i e
modes o ac ion o wi h he abili y o inc ease he
e icacy o exis ing p esc ip ion d ugs. Many me al-
based d ugs display modes o ac ion dis inc o hose
o he p esc ip ion an i- ungals (Coyle e al. 2003a)
possibly allowing hei use whe e esis ance o con-
en ional d ugs has eme ged (Whi e e al. 1998). In
addi ion, hei di e en mode(s) o ac ion may be u il-
ised by employing such d ugs in conjunc ion wi h
exis ing d ugs in o de o a ge wo (o mo e) si es
wi hin he ungal cell and hus aising he possibili y
o achie ing he same he apeu ic e ec by educing
he equi ed amoun o an azole o polyene d ug.
Con en ional an i- ungal d ugs such as polyenes o
azoles a ge e gos e ol in he cell memb ane o he
e gos e ol biosyn he ic pa hway, espec i ely. In he
wo k p esen ed he e we ha e e alua ed he abili y o
Cu(II) and Ag(I) phendio complexes o al e he sus-
cep ibili y o C. albicans o con en ional azole and
polyene d ugs.
The coppe and sil e complexes e alua ed he e
demons a ed ungis a ic p ope ies bu o his wo k
sub-MIC90 alues we e employed o asce ain hei
e ec on he sensi i i y o C. albicans o he con en-
ional an i ungal d ugs. Sub-MIC le els we e chosen
o ensu e ha he obse ed e ec was no due o he
ungis a ic ac ions o he me al complex. When cells
a e p e-g own in sub-MIC90 le els o he sil e o
coppe complexes and hen assessed o hei esponse
o miconazole o ampho e icin B he e is e idence o
al e a ions in suscep ibili y. P e-g ow h in 1/4 MIC90
Cu(ClO4)2·6H2O o [Cu(phendio)3](ClO4)·4H2Oin-
c eased he ole ance o C. albicans o miconazole
and ampho e icin B, whe eas p e-g ow h in equi alen
concen a ions o AgClO4and [Ag(phendio)2ClO4]
lowe s he suscep ibili y o C. albicans o miconazole
and ampho e icin B.
The al e a ion in suscep ibili y o miconazole and
ampho e icin B may occu due o he ac ha
he me al complexes which inhibi espi a ion (i.e.
Cu(ClO4)2·6H2O and [Cu(phendio)3](ClO4)2·4H2O)
also cause a educ ion in he cellula e gos e ol con-
en . Azoles, such as miconazole, a ge lanos e ol
14α-deme hylase which egula es an in e media e s ep
in e gos e ol biosyn hesis (Mo schhause , 2002). The
azoles can kill cells by inhibi ing his enzyme which
subsequen ly leads o a dec ease in e gos e ol con en
o he ungal cell memb ane. In addi ion, he inhibi ion
o he ac ion o 5,6-s e ol desa u ase by luconazole
leads o he accumula ion o oxic in e media es (such
as 14α-me hyl ecos e ol) which may p o e a al o he
ungal cell (Gebe e al. 1995). The al e ed suscep ib-
ili y o miconazole may be due o educed e gos e ol
biosyn hesis esul ing in ewe oxic side p oduc s be-
ing o med once he ac ion o he deme hylase has
been inhibi ed by miconazole. Enhanced e gos e ol
biosyn hesis may inad e en ly lead o g ea e p oduc-
ion o oxic side-p oduc s once he azole-media ed
inhibi ion o s e ol biosyn hesis occu s.
Reduced le els o e gos e ol in he ungal cell
memb ane p o ide ewe binding si es o ampho e i-
cin B. Consequen ly a highe concen a ion o ampho-
e icin B is equi ed o e a d he g ow h o he cell.
Reduc ions in s e ol le els in C. albicans ha e been
iden i ied p e iously as a mechanism o inc eased
g ow h in he p esence o ampho e icin B (Kelly e al.
1997; Whi e e al. 1998). Dis up ions o he genes in
he e gos e ol biosyn hesis pa hway cause a dec ease
in e gos e ol in C. glab a a andaninc easeind ug
ole ance, pa icula ly o ampho e icin B (Gebe e al.
1995; Vazquez e al. 1996). Inhibi ion o espi a ion
in C. albicans by e y h omycin leads o a d op in e -
gos e ol and a concomi an inc ease in ole ance o
ampho e icin B (Ge agh y & Ka anagh, 2003a). In
addi ion, dis up ion o mi ochond ial unc ion leads o
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7
ole ance o ampho e icin B due o deple ed e gos e ol
syn hesis (Ge agh y & Ka anagh, 2003b).
The equi emen o a unc ional mi ochond ion
in e gos e ol biosyn hesis is well cha ac e ised and
a ises om he p o ision o NADPH o squalene di-
me isa ion (Pa ks & Casey, 1995). In addi ion, E g1
encodes squalene epoxidase, which con e s squalene
o 2,3-oxidosqualene. This is an oxygen-dependen
s ep, and in a cell wi h educed espi a ion he e would
a consequen educ ion in he syn hesis o e gos e ol
(Daum e al. 1998), hus leading o he educed e -
gos e ol con en e iden in cells exposed o he coppe
complexes.
An inc ease in espi a ion, as e iden when
cells a e p e-g own in he p esence o AgClO4and
[Ag(phendio)2]ClO4s imula es e gos e ol p oduc ion.
Thus, he e is mo e e gos e ol o ampho e icin B o
bind and, as a consequence, lowe ing he amoun o
he polyene necessa y o inhibi ion o cell g ow h. In
he case o he al e ed sensi i i y o miconazole, he
sil e complexes s imula e espi a ion and e gos e ol
biosyn hesis and consequen ly may indi ec ly lead o
he gene a ion o mo e oxic side-p oduc s once he
cells a e exposed o miconazole.
The wo k p esen ed he e demons a es ha using
sub-MIC le els o coppe o sil e dione complexes i
is possible o al e he amoun o an azole o polyene
d ug equi ed o inhibi he g ow h o C. albicans.This
e ec appea s o be media ed h ough al e a ions in
he espi a ion a e o he cell, he eby in luencing he
amoun o e gos e ol syn hesis. This opens he possib-
ili y o u ilising, non- oxic le els o sil e complexes
o s imula e espi a ion and e gos e ol p oduc ion wi h
a concomi an educ ion in he amoun o miconazole
o ampho e icin B equi ed o achie e he ele an
MIC90.
Acknowledgemen
This wo k was suppo ed by a g an om he Depa -
men o Educa ion, Libya.
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