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Staphylococcus aureus and MRSA Growth and Biofilm Formation after Treatment with Antibiotics and SeNPs

Abstract

Methicillin-resistant Staphylococcus aureus (MRSA) is a dangerous pathogen resistant to -lactam antibiotics. Due to its resistance, it is difficult to manage the infections caused by this strain. We examined this issue in terms of observation of the growth properties and ability to form biofilms in sensitive S. aureus and MRSA after the application of antibiotics (ATBs)—ampicillin, oxacillin and penicillin—and complexes of selenium nanoparticles (SeNPs) with these ATBs. The results suggest the strong inhibition effect of SeNPs in complexes with conventional ATBs. Using the impedance method, a higher disruption of biofilms was observed after the application of ATB complexes with SeNPs compared to the group exposed to ATBs without SeNPs. The biofilm formation was intensely inhibited (up to 99% ± 7% for S. aureus and up to 94% ± 4% for MRSA) after application of SeNPs in comparison with bacteria without antibacterial compounds whereas ATBs without SeNPs inhibited S. aureus up to 79% ± 5% and MRSA up to 16% ± 2% only. The obtained results provide a basis for the use of SeNPs as a tool for the treatment of bacterial infections, which can be complicated because of increasing resistance of bacteria to conventional ATB drugs.

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Staphylococcus aureus and MRSA Growth and Biofilm Formation after Treatment with Antibiotics and SeNPs

Author: Číhalová, Kristýna; chudobova, Dagmar; Kizek, René; Michálek, Petr; Moulick, Amitava; Guráň, Roman; Kopel, Pavel; Adam, Vojtěch
Publisher: MDPI
Year: 2015
DOI: 10.3390/ijms161024656
Source: https://dspace.vut.cz/bitstreams/17863107-4c35-4296-8453-029ec4bd7bda/download
In . J. Mol. Sci. 2015, 16, 24656-24672; doi:10.3390/ijms161024656
In e na ional Jou nal o
Molecula Sciences
ISSN 1422-0067
www.mdpi.com/jou nal/ijms
A icle
S aphylococcus au eus and MRSA G ow h and Bio ilm
Fo ma ion a e T ea men wi h An ibio ics and SeNPs
K is yna Cihalo a 1,2, Dagma Chudobo a 1,2, Pe Michalek 1,2, Ami a a Moulick 1,2,
Roman Gu an 1,2, Pa el Kopel 1,2, Voj ech Adam 1,2,3 and Rene Kizek 1,2,*
1 Depa men o Chemis y and Biochemis y, Mendel Uni e si y in B no, Zemedelska 1,
CZ-613 00 B no, Czech Republic; E-Mails: k iki.cihalo [email p o ec ed] (K.C.);
dagma .chudobo a@cen um.cz (D.C.); pe [email protected] (P.M.);
ami a [email protected] (A.M.); .gu [email protected] (R.G.);
[email p o ec ed] (P.K.); oj [email protected] (V.A.)
2 Cen al Eu opean Ins i u e o Technology, B no Uni e si y o Technology, Technicka 3058/10,
CZ-616 00 B no, Czech Republic
3 Depa men o Mic oelec onics, Facul y o Elec ical Enginee ing and Communica ion,
B no Uni e si y o Technology, Technicka 3058/10, CZ-616 00 B no, Czech Republic
* Au ho o whom co espondence should be add essed; E-Mail: [email p o ec ed];
Tel.: +420-5-4513-3350; Fax: +420-5-4521-2044.
Academic Edi o : Bing Yan
Recei ed: 30 July 2015 / Accep ed: 14 Sep embe 2015 / Published: 16 Oc obe 2015
Abs ac : Me hicillin- esis an S aphylococcus au eus (MRSA) is a dange ous pa hogen
esis an o β-lac am an ibio ics. Due o i s esis ance, i is di icul o manage he in ec ions
caused by his s ain. We examined his issue in e ms o obse a ion o he g ow h
p ope ies and abili y o o m bio ilms in sensi i e S. au eus and MRSA a e he
applica ion o an ibio ics (ATBs)—ampicillin, oxacillin and penicillin—and complexes o
selenium nanopa icles (SeNPs) wi h hese ATBs. The esul s sugges he s ong inhibi ion
e ec o SeNPs in complexes wi h con en ional ATBs. Using he impedance me hod, a
highe dis up ion o bio ilms was obse ed a e he applica ion o ATB complexes wi h
SeNPs compa ed o he g oup exposed o ATBs wi hou SeNPs. The bio ilm o ma ion was
in ensely inhibi ed (up o 99% ± 7% o S. au eus and up o 94% ± 4% o MRSA) a e
applica ion o SeNPs in compa ison wi h bac e ia wi hou an ibac e ial compounds whe eas
ATBs wi hou SeNPs inhibi ed S. au eus up o 79% ± 5% and MRSA up o 16% ± 2%
only. The ob ained esul s p o ide a basis o he use o SeNPs as a ool o he ea men
OPEN ACCESS
In . J. Mol. Sci. 2015, 16 24657
o bac e ial in ec ions, which can be complica ed because o inc easing esis ance o
bac e ia o con en ional ATB d ugs.
Keywo ds: S aphylococcus au eus; me hicillin- esis an S aphylococcus au eus;
an ibio ics; selenium nanopa icles
1. In oduc ion
The o ma ion o bio ilms is a na u al p ope y o a wide ange o bac e ial species [1,2]. These species
can cause many se ious bac e ial in ec ions ini ia ing se ious complica ions [3–5]. S aphylococci a e
ecognized as he mos equen causes o bio ilm-associa ed in ec ions [6], den al plaque [7] and his
excep ional s a us among bio ilm-associa ed pa hogens is due o he ac ha hey a e equen commensal
bac e ia on he human skin and mucous su aces (and hose o many o he mammals).
Excessi e use o me hicillin an ibio ics (ATBs) led o he o ma ion o me hicillin- esis an
S. au eus (MRSA) wi h adhesion p ope ies. The occu ence o esis an s ains o bac e ia is a
complica ion o all medical p ac ices ha a e commonly encoun e ed in ecen ime wi h CA-MRSA
(communi y-associa ed me hicillin- esis an S. au eus) [8] and HA-MRSA (hospi al-acqui ed
me hicillin- esis an S. au eus) [9]. These s ains a e unlike non- esis an S. au eus esis an o β-lac am
ATBs [10]. All MRSA s ains ca y an acqui ed gene ic de e minan -mecA o mecC- which encodes
low a ini y penicillin binding p o eins-PBP2a [11]. The mecA gene is p esen on a S aphylococcal
casse e ch omosome mec (SCCmec), which is a genomic island ha concen a es β-lac am ATBs
esis ance genes and o he esis ance genes [12]. The majo i y o MRSA ound in clinical es ing a e
mul id ug esis an (MDR) [13]. MRSA may be esis an o o he g oups o an ibio ics such as
aminoglycosids, ce alospo ins, penicillins o glycopep ides. Included in he glycopep ides g oup is
ancomycin, which has long been conside ed he an ibio ic o las eso agains se ious and
mul i-d ug- esis an in ec ions caused by G am-posi i e bac e ia. Howe e , ancomycin esis ance has
eme ged, i s in en e ococci [14,15] and, mo e ecen ly, in S aphylococcus au eus [16].
Because o an inc easing esis ance o bac e ial species o ATBs, i is necessa y o de elop new
me hods o bac e ial inhibi ion. Recen ly, scien is s we e inc easingly ocused on he ac i i y o sil e
nanopa icles ha exhibi an ibac e ial, an i i al and an i ungal e ec s [17], as in he case o gold
nanopa icles [18], TiO2 nanopa icles [19], o a mix u e o Ag/ZnO nanopa icles [20]. A s udy [21]
compa ed he an ibac e ial e ec be ween sil e and selenium nanopa icles; an ibac e ial e ec s o
selenium nanopa icles inhibi ed he bac e ia S. au eus su p isingly be e han nanopa icles o sil e
phospha e. In ano he s udy, selenium nanopa icles (SeNPs) showed good p ope ies as an ibac e ial
d ugs. The e ec o selenium nanopa icles was con i med in a s udy by T an e al. [22] ha showed
ha he g ow h o S. au eus is inhibi ed a e h ee hou s o incuba ion wi h SeNPs. The combina ion
o ATBs d ugs, which a e aimed a g oups o mul i-d ug esis an bac e ia [23], wi h he me al
nanopa icles can also ep esen a new al e na i e as pha maceu ical ools wi h a high an ibac e ial
e ec on a b oad spec um o bo h esis an and non- esis an bac e ia [24]. Me al nanopa icles
in e ac ing wi h cellula componen s (DNA, RNA and ibosomes) deac i a e and e ec i ely al e
cellula p ocesses [25]. Me al nanopa icles pene a e he cell memb ane o each he cy osol due o
In . J. Mol. Sci. 2015, 16 24658
hei abili y o dissol e slowly while eleasing ions, bu he exac mechanism o he me al
nanopa icles an imic obial ac ion emains unclea [21].
Fo de e mining an ibac e ial e ec o esis an bac e ia we compa ed non- esis an S. au eus and
me hicillin- esis an S. au eus. This s udy examined he changes on he cellula le el in cul u es o
S. au eus and MRSA a e incuba ion wi h ATBs and complexes o SeNPs wi h ATBs. A he same
ime, a en ion was ocused on he changes o bio ilm o ma ion a e ATBs and complexes o SeNPs
wi h ATBs ea men . Real- ime cell analysis (RTCA) on xCELLigence de ice was used o his
de e mina ion [26,27]. The me hod wo ks on he p inciple o cell adhesion on he su ace o elec odes,
which modula es he esul ing impedance [28]. In he case o bac e ia adhe ence o bio ilm on he
su ace o he elec odes occu s [29] and he eby he change o he ela i e impedance is obse ed [30].
The s udy was suppo ed h ough moni o ing o he ac i i y o he exp ession p ocess o ATB
esis ance genes.
2. Resul s and Discussion
2.1. In luence o An ibac e ial Compounds o G ow h P ope ies
Mic obiological de e mina ion o he inhibi ion zone sizes showed e iden inhibi o y e ec
esul ing om he applica ion o SeNPs enhanced by o ming a complex wi h ampicillin, oxacillin and
penicillin. The ATBs alone demons a ed an ibac e ial p ope ies only o sensi i e S. au eus wi h sizes
o he g ow h inhibi ion zones wi hin he ange o 4–12 mm (Figu e 1A). Howe e , he complexes o
SeNPs wi h ATBs showed he signi ican an ibac e ial e ec wi h inhibi ion zone sizes wi hin he ange
o 6–13 mm o sensi i e S. au eus (Figu e 1(Aa)) and 3–5 mm o MRSA (Figu e 1(Ab)). A e he
applica ion o ampicillin, he obse ed sizes o g ow h inhibi ion zones we e 4 and 6 mm o non- esis an
S. au eus (Figu e 1(Aa)) and 0 and 4 mm o MRSA (Figu e 1(Ab)). Applica ion o oxacillin p o ided
he highes g ow h inhibi ion zones wi h sizes o 12 and 13 mm o non- esis an S. au eus (Figu e 1(Aa))
and 0 and 5 mm o MRSA (Figu e 1(Ab)). In he case o penicillin, he sizes o inhibi ion zones we e
7 and 8 mm o non- esis an S. au eus (Figu e 1(Aa)) and 0 and 3 mm o MRSA (Figu e 1(Ab)).
Applica ion o o he d ugs exhibi ed simila esul s. Al hough MRSA did no o m inhibi ion zones
a e applica ion o he discs con aining ATBs wi hou SeNPs, complexes o SeNPs wi h ATBs
mani es ed inhibi ion zones be ween 4–6 mm. Applica ion o complex o SeNPs wi h AMP, OXA,
PNC has abou 0%, 25%, 54% highe inhibi ion e ec han SeNPs alone o non- esis an S. au eus,
espec i ely, and abou 25%, 40%, 0% highe inhibi ion e ec han SeNPs alone o MRSA,
espec i ely. The inhibi ion e ec o SeNPs is abou 50% highe o non- esis an S. au eus han o
MRSA. In he case o non- esis an S. au eus, la ge inhibi ion zones we e obse ed a e he
applica ion o complexes o SeNPs wi h ATBs han ATBs alone. In he non- esis an S. au eus case,
ampicillin, oxacillin and penicillin caused highe inhibi o y e ec s (44%, 8% and 13% espec i ely)
when applied in combina ion wi h SeNPs han ATBs alone (Figu e 1(Aa)). Applica ion o ATBs in
combina ion wi h SeNPs caused 100% highe inhibi ion e ec because ATBs do no cause o ma ion o
he inhibi ion zones (Figu e 1(Ab)). Muhsin e al. [31] epo ed ha he applica ion o sil e
nanopa icles caused a 17 mm wide g ow h inhibi ion zone o S. au eus. On he o he hand, he use
o gen amycin alone could cause a g ow h inhibi ion zone o la ge size (31 mm). Howe e , he
In . J. Mol. Sci. 2015, 16 24659
modi ica ion o sil e nanopa icles wi h gen amycin showed a small inc ease o he inhibi ion zone
wid h up o 33 mm [31].
Figu e 1. (A) De e mina ion o inhibi ion zones a e applica ion o ci cula discs on he
S. au eus (a) and MRSA (b) s ains wi h 100 µM concen a ion o ampicillin, oxacillin,
penicillin o complexes (100 µM o nanopa icles and 100 µM o ATBs) o SeNPs wi h
ampicillin, SeNPs wi h oxacillin and SeNPs wi h penicillin. Cul i a ion was ca ied ou a
37 °C o 24 h; (B) Op imiza ion o SeNPs concen a ion o non- esis an S. au eus (a)
and MRSA (b) o o he measu emen s; (C) G ow h cu es a e applica ion o ATBs
(ampicillin— ed line, oxacillin-g een line, penicillin—pu ple line) on S. au eus (a) and
MRSA (c)—blue line and complexes o SeNPs (100 μM) wi h he same ATBs (100 μM)
S. au eus (b) and MRSA (d)—blue line. All da a ep esen mean ± S.D. NS, no
signi ican , * p < 0.05.
In . J. Mol. Sci. 2015, 16 24660
The an ibac e ial ac i i y o ATBs o hei complexes wi h SeNPs a e 24 h was con i med by he
me hod o he g ow h cu es [21]. The 50% inhibi o y concen a ion was de e mined in he p e ious
s udy [21] and o ou s udy, 100 µM concen a ions o SeNPs in combina ion wi h 100 µM o ATB
(Figu e 1(Ba,b)) was used. Concen a ion o SeNPs ha showed inhibi o y di e ences be ween
non- esis an S. au eus and MRSA we e selec ed o measu emen s in his pape . ATBs concen a ions
we e chosen on he basis o p e ious measu emen s. Fo he compa ison o ATBs wi h o wi hou
SeNPs, we used only one concen a ion (100 µM) o ATBs, and i was ound ha he ATBs applied in
combina ion wi h SeNPs (100 µM) showed a g ea e an ibac e ial e ec han ATBs alone. The
inhibi ion e ec o ATBs was signi ican on a non- esis an S. au eus (Figu e 1(Ca)). Bu in he case o
MRSA, ATBs, as expec ed, we e mos ly ine ec i e (Figu e 1(Cc)). Only oxacillin showed low
an ibac e ial ac i i y wi h MRSA wi hou an ibac e ial compounds. The applica ion o complexes o
SeNPs wi h ATBs caused almos comple e inhibi ion o bo h s ains (non- esis an S. au eus and
MRSA) in he case o all 3 ypes o applied ATBs-ampicillin, oxacillin, penicillin (Figu e 1(Cb,d)).
2.2. In luence o An ibac e ial Compounds o Bio ilm Fo ma ion
The assessmen o he an imic obial componen s was u he ca ied ou o es he iabili y o he
cells. The ela i e impedance depending on he adhe ence o cell cul u e o he gold elec odes in eal
ime was used o his pu pose. Real ime xCELLigence analysis sys em is an impedance-based cell
de ec ion pla o m ha p o ides a non-in asi e, label- ee way o con inuous cellula moni o ing [32–34].
This me hod has been used in many published esea ch s udies [27,35–37]. Junka e al. [28] showed
ha xCELLigence sys em can also be use ul o mic obiological es s, including (i) measu emen s o
mo phological changes in p oka yo ic cells; (ii) measu emen o bac e ial bio ilm o ma ion and
(iii) impac o an isep ics on he bio ilm s uc u e.
Figu e 2A depic s he applica ion o SeNPs on he non- esis an S. au eus and MRSA, showing ha
he bio ilm o ma ion was mo e hampe ed in p esence o SeNPs han in con ol (S. au eus o MRSA
wi hou applica ion o an ibac e ial componen s). The xCELLigence sui abili y o he mic obiological
es s was con i med in he same way as in he s udy p e iously conduc ed by Junka e al. [28]. The
es ed bac e ia mus always be able o adhe e on he su ace o elec ode a he bo om in he measu ing
well [7,38]. The abili y o des oy he bio ilm o ma ion is one o he i ulence ac o s in bac e ia wi h
low sensi i i y o ATBs [39].
A e applica ion o he an ibac e ial agen s, he bio ilm is dis up ed and bac e ial cells a e eleased
om he su ace o elec odes. This end is measu ed as an impedance alues and depic ed in he
g aph (Figu e 2A,B). The di e ences in he ela i e impedance o S. au eus showed dec eases in he
alues o all componen s applied in compa ison wi h he con ol, which is caused by balanced
iola ion o he bio ilm o med on he elec ode su ace. In he case o non- esis an S. au eus, ATBs
and complexes o SeNPs wi h ATBs dis up ed he bac e ial bio ilm, and a e ha a highe e ec on
hese bac e ia could be seen (Figu e 2A). The bio ilm o med by MRSA (Figu e 2(Bb,c)) was mo e
esis an o ATBs and complexes o SeNPs wi h ATBs han he bio ilm o med by he non- esis an
S. au eus (Figu e 2(Ab,c)). Figu e 2B shows he pe cen age dec ease o bio ilm o ma ion a e
applica ion o ATBs and complexes o SeNPs wi h ATBs in compa ison wi h con ol. The con ol
sample o non- esis an S. au eus eached he ela i e impedance alues o 0.29 and he con ol sample

In . J. Mol. Sci. 2015, 16 24661
o MRSA eached 0.52 a e 24-h measu emen and om hese alues he dec ease o he ela i e
impedance a e applica ion o ATBs and complexes o SeNPs wi h ATBs was calcula ed. The
measu emen s we e pe o med in iplica es. Low adhesion showed a dec easing end caused by he
bio ilm o ma ion on he elec odes, and om his we can conclude ha he applica ion o ATBs and
complexes o SeNPs wi h ATBs caused dis up ion o he bio ilm on he elec odes. The esul s a e
summa ized in Table 1.
Figu e 2. (A) Moni o ing o bio ilm dis up ion a e applica ion o 100 μM SeNPs on
S. au eus—blue line (a) and ATBs (100 μM): ampicillin— ed line, oxacillin—g een line,
penicillin—pu ple line on S. au eus—blue line (b) and complexes o SeNPs (100 μM) wi h
he same ATBs (100 μM) on S. au eus—blue line (c); (B) Moni o ing o bio ilm dis up ion
a e applica ion o 100 μM SeNPs on MRSA—blue line (a) and ATBs (100 μM)
ampicillin— ed line, oxacillin—g een line, penicillin—pu ple line on MRSA—blue line
(b) and complexes o SeNPs (100 μM) wi h he same ATBs (100 μM) on MRSA—blue
line (c); (C) Compa ison o di e ences in ela i e impedance a e applica ion o 100 μM
concen a ion o ATBs o complexes o ATBs wi h SeNPs (100 μM) and SeNPs alone
(100 μM) on S. au eus (a) and MRSA (b) a e 24 h o measu emen . All da a ep esen
mean ± S.D. om h ee measu emen s, NS, no signi ican , * p < 0.05.
In . J. Mol. Sci. 2015, 16 24662
Table 1. Pe cen age dis up ion o bio ilm a e ea men o an ibac e ial componen
(ATBs, SeNPs + ATBs) a e 24 h (Figu e 2(Ca,b)).
Compounds
Bio ilm Dis up ion (%)
S. au eus MRSA
ATB SeNPs + ATBs ATB SeNPs + ATBs
AMP 74 ± 2 93 ± 3 6 ± 5 94 ± 4
OXA 79 ± 5 96 ± 2 16 ± 2 93 ± 4
PNC 71 ± 2 99 ± 7 0 86 ± 2
SeNPs 81 ± 4 55 ± 3
The applica ion o complex o SeNPs wi h ATBs (SeNPs wi h ampicillin, SeNPs wi h oxacillin,
SeNPs wi h penicillin) caused a wo old dec ease in he ela i e impedance compa ed o ATBs only.
Fo non- esis an S. au eus he signi ican ly highe e ec o SeNPs wi h ATBs was no obse ed,
howe e inc eased inhibi ion o bio ilm o ma ion in case o complexes o SeNPs wi h ATBs
was con i med.
2.3. De e mina ion o Exp ession In ensi y o mecA Gene
The mecA gene is esponsible o bac e ial esis ance o β-lac am ATBs and occu s a
s aphylococcal ch omosome casse e mec (SCCmec), which besides mecA gene con ains a numbe o
o he genes causing he esis ance [10]. I s exp ession was moni o ed a e applica ion and also a e
24-h cul i a ion in he p esence o ATBs alone (50 µM) o a same concen a ion o ATBs in
complexes wi h SeNPs (100 µM). Bac e ial s ain MRSA e en wi hou d ugs applica ion always
exhibi ed he exp ession o his gene in compa ison wi h he s ain o S. au eus, whe e his exp essed
gene was absen .
Exp ession o he mecA gene in MRSA wi hou an ibac e ial compounds was highe (by 84%) han
he s anda d exp ession o he 16S gene. Fluo escence alues o 16S ( he housekeeping gene wi h a
luminescence le el 13,098 a.u. (abso bance uni s) o non- esis an S. au eus and 12,544 a.u. o
MRSA) wa e sub ac ed om he mecA (Figu e 3A).
Fo non- esis an S. au eus he exp ession o mecA gene eached he in ensi y o luo escence o
13,059 a.u. while o MRSA was he luo escence in ensi y much highe (36 imes). S. au eus g ew
only in he p esence o 50 µM ampicillin and penicillin, bu no in he p esence o 50 µM
concen a ion o oxacillin. Fo ampicillin and penicillin, non- esis an S. au eus eached a e y low
exp ession o mecA gene (17,315 and 15,543 a.u., espec i ely). MRSA showed highe exp ession by
14% in he case o using 50 µM concen a ions o ampicillin o oxacillin, and low exp ession o mecA
gene a e 24 h cul i a ion wi h 50 µM penicillin, when compa ing wi h MRSA wi hou applica ion o
an ibac e ial compounds (Figu e 3A).
In MRSA, he exp ession o he mecA gene was dec eased a e applica ion o ATBs wi h selenium
nanopa icles when compa ed wi h exp ession o he mecA gene in MRSA wi hou an ibac e ial
compounds. Highe luo escence in ensi y o mecA gene exp ession was obse ed in MRSA a e
incuba ion wi h 50 μM o ATBs (ampicillin, oxacillin and penicillin) alone (Figu e 3), as compa ed o
complexes o SeNPs wi h ATBs, o which he luo escence in ensi ies o exp ession we e 48%, 70%
and 90% lowe , espec i ely (Figu e 3B).
In . J. Mol. Sci. 2015, 16 24663
In non- esis an S. au eus, mecA gene exp ession was obse ed o be 37% highe a e incuba ion
wi h 50 µM concen a ion o ampicillin in compa ison wi h con ol (S. au eus wi hou an ibac e ial
compounds). Non- esis an S. au eus did no g ow a e applica ion o oxacillin (50 µM) hus, gene
exp ession could no be de e mined (Figu e 3B). In he case o ATBs wi h selenium nanopa icles,
he g ow h o non- esis an S. au eus was obse ed only a e applica ion o 50 µM concen a ion o
penicillin (Figu e 3B). The exp ession was measu able only in he case o penicillin. This exp ession
was by 7% highe compa ed o non- esis an S. au eus wi hou an ibac e ial compounds.
MecA gene exp ession in esis an s ains o bac e ia was discussed in he s udy o Rudkin e al. [40],
whe e he use o di e en concen a ions o oxacillin inc eased he le el o exp ession o mecA gene
and hey de ec ed a highe le el o oxici y in CA-MRSA han in HA-MRSA. I was obse ed, ha in
he HA-MRSA, high exp ession o PBP2a educed he oxici y by dis up ing he ag quo um sensing
sys em, which con ols he exp ession o i ulence.
Figu e 3. Moni o ing o mecA gene exp ession in bac e ial s ains S. au eus and MRSA
a e 24 h o g ow h wi h (A) 50 µM ATBs concen a ion and wi h (B) 100 µM
concen a ion o SeNPs wi h 50 µM ATBs concen a ion in complexes using PCR and
subsequen gel elec opho esis. Con ols a e bac e ial s ains (S. au eus and MRSA)
wi hou applica ion o an ibac e ial componen . All da a ep esen mean ± S.D. NS, no
signi ican , * p < 0.05.
2.4. De e mina ion o Changes in P o ein S uc u e
The signi ican changes in he p o ein composi ion o bac e ial s ains caused by he e ec o
selenium nanopa icles we e obse ed using mass spec ome y. In he mass spec a o non- esis an
S. au eus wi h di e en ATBs, h ee peaks wi h m/z 4306, 6355 and 6845 we e selec ed as signi ican
peaks showing he di e ences be ween mass spec a (Figu e 4A). Simila ly, in he mass spec a o
MRSA, peaks wi h m/z 5303, 6356 and 7567 we e selec ed (Figu e 4B). Peaks wi h he same o simila
m/z alue we e desc ibed in a ious publica ions [41,42]. I is ob ious ha he p esence o selenium
nanopa icles causes dis inc changes in p o ein p o iles—acco ding o he mass spec a, he mos
In . J. Mol. Sci. 2015, 16 24664
e icien we e SeNPs wi h oxacillin in he case o non- esis an S. au eus (Figu e 4A) and wi h
ampicillin and penicillin in he case o MRSA (Figu e 4B). These compounds caused he supp essed
exp ession o almos all p o eins compa ed o he con ol s ain o non- esis an S. au eus and MRSA
wi hou he addi ion o SeNPs (Figu e 4A,B). These esul s can be a sui able basis o compa ison o
he p o ein ep esen a ion and hei e ec on he pa hogenici y o bac e ia.
Figu e 4. The compa ison o MALDI-TOF mass spec a o (A) S. au eus and (B) MRSA
wi h ampicillin, SeNPs wi h ampicillin, oxacillin, SeNPs wi h oxacillin, penicillin and
SeNPs wi h penicillin. The analysis was pe o med in linea posi i e mode. A solu ion o
2,5-dihyd oxybenzoic acid (concen a ion 20 mg·mL
−1
) in 30% ace oni ile and 0%, 1%
i luo oace ic acid was used as a ma ix. The lase powe was se o 75%. The highligh ed
peaks show he bigges di e ences in compa ed spec a.
These p o ein changes may a ec he pa hogenici y o bac e ia. In e ac ion o me al ions wi h DNA
can a ec he p o ein-DNA in e ac ions [43]. In he case o sil e nanopa icles, he in e ac ion wi h
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