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Probing Interkingdom Signaling Molecules via Liquid Extraction Surface Analysis-Mass Spectrometry

Abstract

Previously, metabolites diffused or secreted from microbial samples have been analyzed via liquid chromatography–mass spectrometry (LC–MS) approaches following lengthy extraction protocols. Here, we present a model system for growing biofilms on discs before utilizing rapid and direct surface sampling MS, namely, liquid extraction surface analysis, to study the microbial exometabolome. One of the benefits of this approach is its surface-specific nature, enabling mimicking biofilm formation in a way that the study of planktonic liquid cultures cannot imitate. Even though Pseudomonas aeruginosa (P. aeruginosa), Staphylococcus aureus (S. aureus), and Candida albicans (C. albicans) have been studied previously in isolation, very few studies consider the complexity of the interplay between these pathogens, which are commonly combined causative agents of infection. Our model system provides a route to investigate changes in the exometabolome, such as metabolites that become circulatory in the presence of multiple pathogens. Our results agree with previous reports showing that 2-alkyl-4(1H)-quinolone signal molecules produced by P. aeruginosa are important markers of infection and suggest that methods for monitoring levels of 2-heptyl-4-hydroxyquinoline and 2,4-dihydroxyquinoline, as well as pyocyanin, could be beneficial in the determination of causative agents in interkingdom infection including P. aeruginosa. Furthermore, studying changes in exometabolome metabolites between pqs quorum sensing antagonists in treated and nontreated samples suggests suppression of phenazine production by P. aeruginosa. Hence, our model provides a rapid analytical approach to gaining a mechanistic understanding of bacterial signaling.

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Probing Interkingdom Signaling Molecules via Liquid Extraction Surface Analysis-Mass Spectrometry

Author: Robertson, Shaun N.; Soukarieh, Fadi; M. White, Thomas; Cámara Botia, Miguel Ángel; Romero Bernárdez, Manuel; Griffiths, Rian L.
Publisher: American Chemical Society
Year: 2023
DOI: 10.1021/ACS.ANALCHEM.2C05703
Source: https://minerva.usc.es/bitstreams/08481c2c-f6dd-408e-a64f-aef6033c6036/download
P obing In e kingdom Signaling Molecules ia Liquid Ex ac ion
Su ace Analysis
−
Mass Spec ome y
Shaun N. Robe son, Fadi Souka ieh, Thomas M. Whi e, Miguel Cama a, Manuel Rome o,*
and Rian L. G i i hs*
INTRODUCTION
Polymic obial bio ilms a e common h oughou heal hca e,
indus ial, and en i onmen al se ings. These su ace-associ-
a ed o agg ega i e mic obial communi ies a e cen al o he
challenge o an imic obial esis ance due o he o e p oduc ion
o ex acellula polyme ic subs ances ha can en ap and limi
he di usion o ce ain an ibio ics,1 and he induc ion o
physiological changes ha lead o an imic obial ole ance in
cells.2 I is es ima ed ha 65% o bac e ial in ec ions a e
bio ilm-associa ed
3
and while unde es ima ed, Candida albicans
(C.
albicans)
bio ilm
in ec ions
a e
esponsible
o
an
es ima ed
>400,000 li e- h ea ening in ec ions a yea wo ldwide wi h a
mo ali y a e o 46−75%.4 In hese communi ies, mic obes
con ey hei p esence by p oducing small di usible signal
molecules known as au oinduce s, which can hen be de ec ed
and esponded o in a popula ion-coo dina ed manne . This
o m o mic obial in e cellula communica ion is called
quo um sensing (QS)5 and egula es physiological p ocesses
in hese communi ies and, impo an ly, has been shown o
con ol bio ilm o ma ion.6 Rema kably, QS signaling mole-
cules ha e p e iously been shown o ac as bioma ke s o lung
in ec ion ia LC−MS o plasma om cys ic ib osis pa ien s.7
Hence, hese molecules could ep esen impo an ci cula o y
indica o s o in ec ion ha could be es ed nonin asi ely.
Gi en ha mos bio ilm-cen e ed in ec ions a e polymic o-
bial,8,9 he possibili y o in e species mic obial communica ion
can also occu and QS is hough o play a i al ole in
in e species in e ac ions anging om commensalism o
an agonism.8 Fo ins ance, in e kingdom QS signaling be ween
he
bac e ium
Pseudomonas
ae uginosa
(P.
ae uginosa)and
ungi
C. albicans species has been desc ibed9 as media ed ia he
p oduc ion o 2-alkyl-4(1H)-quinolone (AQ) signal molecules
and a nesol, espec i ely. Mo eo e , hese species a e o en
p esen alongside S aphylococcus au eus (S. au eus) in heal h-
ca e se ings10,11 and i is well documen ed ha P. ae uginosa
displays se e e compe i ion agains S. au eus in i o. Fo
example, in wound in ec ions o cys ic ib osis lung,
ex acellula ac o s p oduced by P. ae uginosa ha e been
shown o subjuga e S. au eus o pe sis as small colony
a ian s.12 One o such ac o s is he AQ molecule 2-hep yl-4-
hyd oxyquinoline N-oxide (HQNO), a cy och ome inhibi o
eleased by P. ae uginosa. In u n, P. ae uginosa can sense
ex acellula p oduc s sec e ed by S. au eus such as he
exopolyme N-ace yl glucosamine, and in esponse, inc ease
he p oduc ion o i ulence ac o s and an imic obials.5,12,13
ABSTRACT: P e iously, me aboli es di used o sec e ed om mic obial samples ha e been
analyzed ia liquid ch oma og aphy−mass spec ome y (LC−MS) app oaches ollowing leng hy
ex ac ion p o ocols. He e, we p esen a model sys em o g owing bio ilms on discs be o e
u ilizing apid and di ec su ace sampling MS, namely, liquid ex ac ion su ace analysis, o s udy
he mic obial exome abolome. One o he bene i s o his app oach is i s su ace-speci ic na u e,
enabling mimicking bio ilm o ma ion in a way ha he s udy o plank onic liquid cul u es canno
Candida albicans (C. albicans) ha e been s udied p e iously in isola ion, e y ew s udies conside
he complexi y o he in e play be ween hese pa hogens, which a e commonly combined causa i e agen s o in ec ion. Ou model
sys em p o ides a ou e o in es iga e changes in he exome abolome, such as me aboli es ha become ci cula o y in he p esence o
mul iple pa hogens. Ou esul s ag ee wi h p e ious epo s showing ha 2-alkyl-4(1H)-quinolone signal molecules p oduced by P.
ae uginosa a e impo an ma ke s o in ec ion and sugges ha me hods o moni o ing le els o 2-hep yl-4-hyd oxyquinoline and
2,4-dihyd oxyquinoline, as well as pyocyanin, could be bene icial in he de e mina ion o causa i e agen s in in e kingdom in ec ion
including P. ae uginosa. Fu he mo e, s udying changes in exome abolome me aboli es be ween pqs quo um sensing an agonis s in
ea ed and non ea ed samples sugges s supp ession o phenazine p oduc ion by P. ae uginosa. Hence, ou model p o ides a apid
analy ical app oach o gaining a mechanis ic unde s anding o bac e ial signaling.
A icle
Simila ly, a nesol, a nesoic acid,14 and a ious amino acid-
de i ed alcohol15−17 molecules sec e ed by C. albicans ha e
been shown o play an impo an ole in bio ilm o ma ion18,19
and a e cu en ly unde -in es iga ed in he con ex o
polymic obial bio ilms.
Mass spec ome y (MS) o e s a ou e o he un a ge ed
analysis o mul iple species wi hou equi ing chemical
agging/modi ica ion. Su ace sampling app oaches o e he
oppo uni y o di ec ly p obe solid biological samples such as
issue sec ions, blood spo ca ds, and bac e ial bio ilms. Many
mic obial species ha e been analyzed ia di ec su ace
sampling MS app oaches. The aims o hese s udies a y
om bac e ial pheno yping o d ug sc eening and unde -
s anding bac e ial bio ilms. Va ious biomolecules ha e been
s udied ia di e en app oaches; an imic obials, bac e ial QS
signaling molecules, me aboli es, and hamnolipids ha e been
s udied ia ma ix-assis ed lase deso p ion ioniza ion
(MALDI) ioniza ion MS,20−22 and seconda y ioniza ion mass
spec ome y (SIMS).22−28 Phospholipid analysis is widely
epo ed ia apid e apo a i e ioniza ion mass spec ome y
(REIMS)29 and deso p ion elec osp ay ioniza ion (DESI)
app oaches, and lipids and in ac p o eins ha e been s udied by
liquid ex ac ion su ace analysis−mass spec ome y (LESA-
MS).30−32 Many REIMS s udies ocus on specia ion using
ma hema ical algo i hms o unde s and p o iles o , e.g.,
bac e ial s ains including P. ae uginosa29,33 and ungi such as
he Candida genus,33,34 wi hou iden i ying speci ic analy es.
P e iously, p o eins in ol ed in he in e ac ion be ween P.
ae uginosa and S. au eus ha e been in es iga ed ia bo om-up
p o eomics/MALDI-MS imaging and co ela ed o me al ions
(in ol ed in p o ein in e ac ions) by lase abla ion-induc i ely
coupled plasma MS imaging.35 Di e ences in he lipid and
me aboli e p o iles (including heme, po phy in, and an ibio ic
compounds) o Shewanella oneidensis and Bacillus sub ilis as
single species and mixed bio ilms ha e been in es iga ed ia
nano-DESI.36
LESA-MS
is
a
su ace
sampling
app oach
ha
u ilizes
sol en
ex ac ion in o a obo ically ope a ed pipe e ip p io o
elec osp ay ioniza ion. LESA-MS o e s so ioniza ion and
apid analysis ime (a ew minu es) wi h he addi ional bene i
o long sp ay imes, pa icula ly use ul o s uc u al
iden i ica ion (MSMS) expe imen s. P e iously, LESA-MS o
mic obial colonies including P. ae uginosa, S. au eus, and
ESKAPE pa hogens has been desc ibed o he analysis o
in ac p o eins om a ange o mono-mic obial sys-
ems.30,31,37,38 Mo e ecen ly, LESA-MS has been used o
he di ec bac e ial analysis o lipids om Mycobac e-
ium30−32,38 and has been sugges ed as a po en ial al e na i e
o MALDI-MS in specia ion o clinical isola es. He e, we
desc ibe o he i s ime exome aboli e analysis speci ically,
and om mono- and poly-mic obial bio ilms.
This s udy seeks o in es iga e P. ae uginosa QS signaling
molecules di used and/o sec e ed om single and poly-
mic obial species bio ilms using a no el sample p epa a ion
me hod speci ically designed o unde s and he bac e ial
exome abolome. LESA-MS is desc ibed o he i s ime o
a ge ed analysis o sec e ed QS molecules; in he aga
unde nea h a bio ilm g own on a disc. Di e ences in QS we e
de e mined in he p esence o a mic obial compe i o (namely,
S. au eus o C. albicans), and in he p esence o bo h
compe i o s using he LESA-MS pla o m. Ou model allowed
he de ec ion o he AQ signal 2-hep yl-4-quinolone (HHQ),
p e iously
iden i ied
as
a
diagnos ic
ma ke
o
P.
ae uginosa
in ec ion, and sugges ed he u ili y o ou app oach. Ou esul s
also sugges ha me hods o moni o ing le els o o he AQs
such as 2,4-dihyd oxyquinoline (DHQ), as well as pyocyanin,
could be bene icial in he de e mina ion o causa i e agen s in
in e kingdom bio ilm communi ies. Fu he mo e, he e ec o
an ibio ic ea men and/o inhibi ion o he AQ-based
communica ion sys em in P. ae uginosa was examined and
ou s udy shows ha , in ag eemen wi h p e ious epo s, AQ
inhibi o s can supp ess phenazine biosyn hesis in bio ilm
communi ies including his bac e ial pa hogen. The e o e, ou
model p o ides a apid analy ical app oach o gaining a
mechanis ic unde s anding o QS p ocesses in he con ex o
polymic obial bio ilms.
EXPERIMENTAL
SECTION
Ma e ials and Me hods. S ain and Colony Bio ilm
Cul u e Condi ions. S. au eus SH1000 and P. ae uginosa
PAO1-L s ains we e ou inely g own on he lysogeny b o h
(LB, Oxoid, Camb idge, UK) aga . C. albicans SC5314 was
ou inely g own in he Sabou aud dex ose (SAB, Oxoid,
Camb idge, UK) aga . Bac e ial and ungi pla es we e
incuba ed a 37 and 30 °C, espec i ely. UVC-s e ilized
polyca bona e (PC) discs (13 mm diame e ) on wells o 6-well
pla es illed wi h 5 mL o media. The s ock inoculum (10 μL,
added on op o one ano he o polymic obial combina ions)
was pipe ed o he cen e o he PC disc. Pla es we e hen
ans e ed o a s a ic incuba o and incuba ed a 37 °C o 24 h
o allow colony bio ilm g ow h. Fo ea men wi h he QS
inhibi o s (QSIs), SEN19 and SEN89 compounds we e
supplemen ed a 10 μM in he inal s ock inoculum o PAO1-
L. T ea men o 18 h PAO1-L colony bio ilms wi h
cip o loxacin was pe o med by adding 20 μL o 64 μg/mL in
H2O pipe ed gen ly on op o he p e o med colony bio ilm.
A he endpoin , PC discs wi h a ached colony bio ilms we e
asep ically emo ed and aga plugs we e used o QS signal
de ec ion. T iplica e biological and echnical epea s we e
conduc ed o all expe imen s p esen ed. Fu he de ails,
including CFU coun ing de ails, can be ound in he
Supplemen al In o ma ion.
LESA Sampling. LESA was ca ied ou using he T i e sa
Nanoma e (Ad ionBiosciences, I haca, NY, USA). The
ex ac ion/ioniza ion sol en was 1:1 me hanol/wa e . Du ing
ex ac ion, 5 μL o sol en was aspi a ed om he sol en well,
be o e sampling he aga wi h 2 μL o his sol en o 5 s wice
(1 mix). Finally, 2.5 μL o he sampling sol en was e-
aspi a ed and in used in o he mass spec ome e a a gas
p essu e o 0.3 psi and a po en ial o 2.0 kV.
Mass Spec ome y. Expe imen s we e pe o med on a
The mo Fishe O bi ap Q-Exac i e mass spec ome e . Mass
spec a we e eco ded in ull scan mode a a esolu ion o
140,000 a m/z 400 in he m/z ange o 50−750 in posi i e
ioniza ion mode. The AGC a ge was 1 × 106 cha ges wi h a
maximum injec ion ime o 500 ms. Each scan consis ed o 1
mic oscan. MSMS de ails can be ound in he Supplemen al
In o ma ion. Da a we e eco ded o up o 1 min and analyzed
using The mo Xcalibu e sion 4.2.28.14 so wa e. MSMS
spec a we e manually in e p e ed.
RESULTS
AND
DISCUSSION
Alkyl-quinolone (AQ) Quo um Sensing (QS) Signaling
Molecules Di used om and Vi ulence Fac o s
Sec e ed
by
P.
ae uginosa
Bio ilms
De ec ed
by
LESA-MS.
A icle
Figu e 1. Exome abolome analysis o QS molecules om P. ae uginosa PAO1-L bio ilms. Pho os o (A) bio ilm g own on PC disc, (B) aga
sampled a e emo al o he disc wi h loca ions indica ed (blue = cen e , o ange = edge), and (C) LESA sampling. (D) Ba cha s showing
dec easing signal in ensi ies o selec ed QS molecules om he cen e and he edge o whe e he bio ilm was g own on he PC disc. (E) Schema ic
o he sample p epa a ion o exome abolome analysis and LESA sampling. (F) Spec a showing LESA-MS o aga backg ound (blue) and selec ed
QS molecules de ec ed in he exome abolome o P. ae uginosa bio ilms.
To assess whe he LESA-MS could be used o s udy he
elease o small o ganic molecules om mic obial bio ilms, we
s udied he p esence o QS molecules, which a e mos likely
passi ely di used, and pyocyanin sec e ed by 24 h P. ae uginosa
PAO1-L monospecies bio ilms. De ails ega ding speci ic QS
pa hways and molecules analyzed a e p o ided in he
Supplemen al In o ma ion.
To allow cell- ee me aboli e ex ac ion om aga subs a es,
bio ilms we e g own on 0.2 μm po e PC discs placed on he
aga medium o enable he asep ic emo al o he mic obial
cells p io o LESA-MS analysis (Figu e 1). The ollowing P.
ae uginosa signals we e de ec ed om he media: HQNO,
C9:1-PQS, C9-PQS, C9 quinolone, C11 quinolone, and HHQ,
see Figu es 1 and 2. These all in o h ee classes o AQ QS
molecules: HHQ-de i ed compounds [m/z 244.1696 (HHQ),
270.1849 and 272.2007], PQS-de i ed compounds (m/z
260.1642 and 288.1955), and HQNO-de i ed compounds
[m/z 260.1642 (HQNO) and 288.1955], see Table 1. No e
ha some o hese compounds a e isome s o one ano he ,
he e o e MSMS is equi ed o elucida ion. Howe e , N-acyl
homose ine lac one (AHL) signal molecules we e no de ec ed
in he condi ions es ed. The i ulence ac o pyocyanin ([M +
H]+ m/z 211.0863) was de ec ed and sec e ed om PAO1-L
bio ilms, sugges ing ha ou no el sample p epa a ion
me hodology allows de ec ion o a ious di used and/o
sec e ed me aboli es ex e nal o he bio ilm. LESA-MS was
p e iously desc ibed o analyzing in ac bac e ial p o eins and
lipids.32−34 Howe e , o ou knowledge, QS au oinduce s ha e
no p e iously been epo ed using his app oach.
QS molecules ha e p e iously been analyzed using, e.g.,
SIMS, om bio ilms anging om 7 o 72 h o g ow h.22,27,28
AQs wi h C9 alkyl chains we e shown o be highly abundan in
ea ly 7 h bio ilms o P. ae uginosa g own on silicon iles.28
Simila molecules ha e been epo ed ia MALDI imaging o
12 h bio ilms.21,39 These QS signaling molecules ha e also
been epo ed in ma u e (72 h) bio ilms o P. ae uginosa g own
on silicon wa e iles.40 He e, we show ha AQs de i ed om
HHQ, PQS, and HQNO can be analyzed ia LESA om
bio ilms g own o 24 h. The e a e nume ous bene i s o ou
app oach. Fi s , p e ious epo s ha e s udied bio ilms di ec ly;
hence, i is no possible o dis inguish be ween me aboli es
wi hin he bio ilm and hose di using away om he bio ilm.
He e, we p esen a new sample o ma speci ically designed o
analyze bac e ial bio ilm exome aboli es ha also has he
ad an age o unde s anding he e ec o dis ance on mic obial
QS, which could be impo an in de e mining diagnos ic
ma ke s o in ec ion/se e i y. Compa ison o he exome abo-
li es de ec ed in he media a he si e o he colony g ow h
(blue, Figu e 1B), and hen a ound he ou e edge o he PC
disc (o ange, Figu e 1B, and u he away (whi e, Figu e 1C),
A icle
Figu e 2. Ba cha showing he mean signal in ensi y o QS molecules de ec ed ia LESA-MS in he exome abolome analysis o in e species
bio ilms. Mean alues o PA−SA−CA, which we e lowe han o he bio ilms a e shown in he inse .
Table 1. Me aboli es De ec ed in he Exome abolome o In e species and In e kingdom Bio ilms o P. ae uginosa (PA), S.
au eus (SA), and C. albicans (CA), and in he Exome abolome o Cip o loxacin (CIP) D ug and/o (SEN019 o SEN089)
Inhibi o -T ea ed PA Bio ilmsa
HHQ
assignmen PA SA CA CA CIP
SEN019
SEN019-CIP SEN089
HQNO/C7-PQS * * - *
*
*
- *
C9:1 quinolone * * - *
*
*
- -
NHQ
C9 PQS
C11 quinolone * * *
- - *
- -
pyocyanin
cis-2-decenoic acid
(CDA)
dihyd oxyquinolone
(DHQ)
aKey: - = no de ec ed eliably, * = de ec ed eliably ac oss epea s.
shows dec easing signal in ensi ies o he ollowing signals: m/z
260.1642 (HQNO), m/z 272.2007 (C9-quinolone/2-nonyl-
4(1H)-quinolone (NHQ)) and m/z 288.1955 C9-PQS/
NQNO, see Figu e 1A,B,D. On a p ac ical le el, ou app oach
allows he analysis o biomolecules di used/sec e ed om
bac e ial bio ilms wi hou needing a dedica ed ins umen in
he mic obial labo a o y, subjec o he app op ia e biological
sa e y measu es.
Ou LESA expe imen s bene i om coupling o a high-
esolu ion (O bi ap) mass analyze o e ing he ad an age o
de ec ed
m/z
accu a e
m/z
ppm
chemical
o mula
244.1696
244.1701
2.2
C
16
H
22
NO
260.1642
260.1651
3.5
C16H22NO2
270.1849
270.1858
3.3
C18H24NO
272.2007
272.2014
2.6
C
18
H
26
NO
288.1955
288.1964
3.1
C18H26NO2
300.232
300.2327
2.3
C
20
H
30
NO
211.0863
211.0871
3.8
C13H11N2O
188.1642
188.1651
4.8
C10H10N2O2
162.0548
162.0555
4.3
C
9
H
8
NO
2
PA
−
PA
−
PA
−
SA
−
PA
−
PA
−
PA
−
PA
−
*
*
*
*
*
*
-
-
*
*
-
*
*
*
-
-
*
*
-
-
*
*
-
-
*
*
*
-
*
-
-
-
A icle
- - - * - * - -
- - - * - * - -
accu a e mass (wi hin 5 ppm), see Table 1. P e ious
su ace- sampling MS s udies in o QS di ec ly om
bio ilms ha e ypically u ilized ei he SIMS o
MALDI, which a e mo e commonly coupled o ime-o -
ligh ins umen a ion ha does no o e he same
capabili ies. Only ecen ly has O bi ap SIMS
ins umen a ion become a ailable,41 epo ing he
de ec ion o 33 AQs and 6 AHLs in bio ilms o P.
ae uginosa cul u ed o 48 h.42 The di e ences wi h ou
esul s could a ise due o di e ences in sampling ime
poin s (24 s 48 h bio ilms), sampling o he
exome abolome a he han di ec

A icle
bio ilm analysis, and/o he lowe di usion and s abili y o
AHLs dispe sing o he bio ilms.
Ou app oach also bene i s om MSMS capabili y, allowing
s uc u al cha ac e iza ion o de ec ed molecules. Hyb id
ins umen s wi h his capabili y ha e only ecen ly been
desc ibed in he SIMS communi y.43 MSMS expe imen s
con i med m/z 244.17 is HHQ, see he Supplemen al
In o ma ion and Figu e S1. HHQ has ecen ly been shown o
ha e clinical diagnos ic ele ance in he ea ly de ec ion o
in ec ion om nonin asi e biological luids such as u ine and
b ea h condensa e in c i ically ill pa ien s wi h in ec ions
cha ac e ized by polymic obial bio ilms wi h bac e ial and
ungal con ibu o s.44 HCD agmen a ion o m/z 260.16
sugges s his is a mix u e o HQNO and PQS. Upon
dissocia ion o m/z 272.20, he ollowing p oduc ions we e
de ec ed: m/z 159.08, 172.07; howe e , he e was no agmen
a m/z 188.10 o 175.06 sugges ing ha his species is NHQ
a he han C9-PQS. This was de ec ed in ela i ely high
abundance and has p e iously been shown o be an impo an
bioma ke o lung in ec ion ia LC−MS o plasma om cys ic
ib osis pa ien s.7 This demons a es he po en ial o his
app oach as a model o he s udy o sec e ed biomolecules
ha en e he ci cula o y sys em and can in o m QS molecules
ha could be moni o ed ia nonin asi e biological samples and
a e indica i e o in ec ion.
In e species
and
In e kingdom
Exome abolome
Analysis. Using ou LESA-MS app oach, we s udied he
exome abolome o in e species bio ilms, including P. ae ugino-
sa−S. au eus (PA−SA), and in e kingdom bio ilms o P.
ae uginosa−C. albicans (PA−CA), and P. ae uginosa−S.
au eus−C. albicans (PA−SA−CA) combina ions. Colony
bio ilms
o
P.
ae uginosa
PAO1-L,
S.
au eus
SH1000,
and/o
C. albicans SC5314 mix u es we e co-cul u ed o 24 h, and he
aga subs a es we e analyzed ia LESA-MS. QS signals ha e
p e iously been epo ed in in e species in e ac ions om 24 h
bio ilms g own a a 5 mm dis ance.20 He e, we epo hem
om bio ilm colonies g own wi h no spa ial sepa a ion.
PA−SA Bio ilms. Simila AQ molecules we e obse ed in
he exome abolome o PA−SA communi ies compa ed o PA
bio ilms, howe e , ela i e abundances we e di e en , see
Figu e 2. HHQ was pa icula ly abundan in PA−SA, wi h C7-
PQS/HQNO also de ec ed in highe abundance han in PA
alone. In PA bio ilms, he mos abundan AQ de ec ed was
NHQ, ollowed by C9:1-quinolone/NHQ and hen HHQ and
HQNO/C7-PQS. Ye , in he PA−SA, HHQ was he mos
abundan , ollowed by C7-PQS/HQNO, wi h NHQ signi i-
can ly dec eased. This ag ees wi h p e ious MALDI imaging
s udies o simila polymic obial sys ems, which de ec ed HHQ
om P. ae uginosa (DK2-P2M24-2003 s ain) in he p esence
o S. au eus (JE2).20 Ou esul s also sugges ha HQNO
p oduc ion om P. ae uginosa PAO1-L inc eases in he
p esence o S. au eus SH1000. Bo h HHQ and C9-PQS ha e
been shown o ep ess S. au eus sp eading.45 In hese assays,
he e was no obse ed di e ence in he iable eco e y o bo h
mic obial species when co-incuba ed a 24 h when compa ed
o monospecies g ow h. Pyocyanin was de ec ed in ela i ely
high abundance ia LESA-MS in PA−SA, a h ee old inc ease in
compa ison o PA, see Figu e S2. Pyocyanin is ac i ely
sec e ed om PA; he e o e, i is a pa icula ly use ul
bioma ke o a ge , i is also oxic o SA, hence an inc ease
in p oduc ion is no unexpec ed. I is p omising ha ou
app oach can de e mine a signi ican change in pyocyanin.
Nume ous a emp s a modi ied pyocyanin assays ha e no
yielded meaning ul esul s, possibly owing o sensi i i y
limi a ions. Po en ially, his highligh s a bene i o ou
app oach, al hough u he alida ion is equi ed.
PA−CA Bio ilms. In he p esence o C. albicans SC5314,
HHQ was de ec ed howe e , mos AQ molecules we e eliably
supp essed (Figu e 2), sugges ing an impo an ole o HHQ
in P. ae uginosa su i al in he p esence o C. albicans o ,
con a y o SA compe i ion, a po en ial dis up ion in he
con e sion o HHQ o PQS by CA. HHQ has p e iously been
shown o a ec C. albicans bio ilm o ma ion, and i is hough
o play an essen ial ole in PA−CA in e kingdom in e -
ac ions.46 Mo eo e , CFU coun ing showed a educ ion in CA
g ow h in he p esence o PA wi h a 1−2 log di e ence in o al
cell coun s. Inhibi ion o HQNO p oduc ion sugges s po en ial
dis up ion o he PpqsL enzyma ic ac i i y in he PAO1-L
pa hway; howe e , his pa hway is no dis up ed in PA−SA.
Pyocyanin was de ec ed, al hough a lowe abundance
(∼six old dec ease compa ed o PA bio ilm yields) in he
p esence o CA. Fu u e wo k will ocus on alida ing
educ ions in AQs and pyocyanin as po en ial bioma ke s o
in ec ion caused by PA in he p esence o CA.
PA
−
SA
−
CA Bio ilms.
Despi e HHQ and HQNO molecules
being he mos abundan AQs p oduced by PA in
polymic obial bio ilms, including SA and CA (Figu e 2), a
signi ican educ ion in hese AQ yields was eco ded (wi h no
AQs de ec ed in some epea s), sugges ing compe i ion om
hese could a ec he PQS signaling sys em. Resul s indica e
ha , unde he es ed condi ions, HHQ could be a good
indica o o P. ae uginosa coloniza ion, suppo ing he po en ial
o his QS signal as a p ospec i e ea ly indica o o in ec ion by
his pa hogen e en in he con ex o polymic obial in ec ions.
In e es ingly, he AQ DHQ, con a y o single and dual-species
bio ilms including PA, was consis en ly de ec ed in he PA−
SA−CA communi y exome abolome (m/z 162.0548, Δppm
4.3). In con as o HHQ and PQS, DHQ can be p oduced
unde low oxygen condi ions,47 sugges ing he educ ion in
HHQ and PQS yields and de ec ion o DHQ could be
explained by he o ma ion o anae obic niches in PA
−
SA
−
CA
communi ies. Mo eo e , DHQ has been shown o ac as a QS
molecule o ac i a e he esponse egula o PqsR o
ansc ip ion o he pqs ope on in P. ae uginosa in he absence
o PQS and HHQ signaling and has been epo ed o alle ia e
he inhibi ion o PqsR by a nesol, albei a a lowe le el
compa ed wi h PQS.47 Cis-2-decenoic acid (CDA) was
de ec ed a m/z 188.1642 Δppm 4.8 in his iple sys em, and
no in he o he samples. Simila ly o he PA−CA sys em, a
signi ican dec ease in pyocyanin was obse ed in PA−SA− CA
compa ed o PA bio ilms, which is in ag eemen wi h a
educ ion in he PQS sys em ac i i y as i has been epo ed
ha phenazine p oduc ion in P. ae uginosa is unde he con ol
o his QS egula o y sys em.48 Fu u e wo k will ocus on
alida ing HHQ, HQNO, and DHQ p esence and hei
po en ial use, oge he wi h pyocyanin, as bioma ke s o
polymic obial in ec ions including P. ae uginosa.
Summa y. O e all, a ange o alkyl-quinolones (AQs) was
de ec ed in he exome abolome o PA only. Pa icula ly high
le els o HHQ and pyocyanin in he exome abolome we e
indica i e o PA in combina ion wi h SA causa i e agen s. Low
abundances o all AQs we e de ec ed when PA was co-cul u ed
wi h CA, alongside a signi ican dec ease in pyocyanin. When
PA was co-cul u ed in he p esence o bo h SA and CA, again
many o he AQs ha we e de ec ed in he PA-only sys em
we e supp essed, whe eas DHQ and CDA we e de ec ed o
A icle
Figu e 3. Ba cha showing he mean signal in ensi y o QS molecules de ec ed ia LESA-MS in he exome abolome analysis o ea ed PA
bio ilms. CFU measu emen s om PA, inhibi o (SEN019)- ea ed PA, and cip o loxacin d ug (CIP)- ea ed PA a e shown in he inse .
he i s ime and he e o e ep esen po en ially in o ma i e
ions alongside AHLs. When SA was co-cul u ed wi h CA,
many ions ha we e de ec ed we e simila o hose p esen in
he exome abolome o he PA−SA−CA sys em, wi h he
excep ion o CDA and DHQ. Ou indings a e summa ized in
Figu e S3.
Pla o m o Tes ing The apeu ic S a egies:
Pseudo-
monas ae uginosa QS Inhibi o s, Cip o loxacin, and
Adjunc i e S a egies. Changes in QS molecules and
i ulence ac o p oduc ion could also po en ially be used o
moni o he e ec i eness o he apeu ic in e en ions. To
s udy changes in hese biomolecules upon ea men , bio ilms
o P. ae uginosa PAO1-L we e cul u ed o 24 h in he p esence
o he an ibio ic cip o loxacin and/o he PqsR an agonis s
SEN01949 (a mode a e inhibi o ) and SEN089 (a po en
inhibi o ). These QSIs in e e e wi h he binding o AQ QS
signals o he PqsR esponse egula o leading o educed
ac i a ion o he pqs ope on exp ession and he e o e educed
biosyn hesis o AQ signals and i ulence ac o s in P.
ae uginosa. Despi e CFU coun s showing a educ ion in cell
iabili y in PAO1-L bio ilms ea ed wi h cip o loxacin (
∼
4-log
educ ion), mos AQ molecules de ec ed in he exome abo-
lome o un ea ed PAO1-L bio ilms we e ound in
communi ies ea ed wi h he an ibio ic, e.g., HHQ (m/z
244.1696), C7-PQS/HQNO (m/z 260.1642), C9:1-quinolone
(m/z 270.1849), and C9-quinolone/NHQ (m/z 272.2007).
Howe e , in his expe imen , HHQ was signi ican ly educed
in signal in ensi y ac oss biological and echnical epea s, and
C7-PQS and C9-PQS we e sligh ly ele a ed. In con as , he P.
ae uginosa i ulence ac o pyocyanin abundance was no
signi ican ly al e ed by cip o loxacin ea men , see Figu e 3.
In he p esence o QSI SEN089 (IC50 = 67 nM,46), no AQ
molecules we e de ec ed in he PAO1-L bio ilm exome abo-
lomes ac oss all expe imen al biological and echnical epea s,
see Figu e 3. This sugges s ha he p esence o his inhibi o
e ec i ely dis up s he AQ biosyn he ic pa hway. P e iously,
QS molecules p oduc ion was shown o dec ease in plank onic
cul u es in he p esence o a ious pqs inhibi o s.46,49 He e, we
show simila esul s om a sampling o ma speci ically
designed o he analysis o su ace-associa ed mic obial
communi ies. This highligh s one o he key bene i s o ou
su ace-based app oach o e al e na i e liquid-based ap-
p oaches. No ably, pyocyanin sec e ion was also dec eased in
PAO1-L bio ilms ea ed wi h his QSI, sugges ing he
supp ession o phzAB exp ession in line wi h p e ious
pheno ypic analysis done wi h hese QS an agonis s.46,49
When PAO1-L bio ilms we e ea ed wi h he less po en
QSI SEN19 (IC50 = 1 μM,49), AQ molecules could s ill be
de ec ed in he bio ilm exo-me abolome albei a a educed
yield. Simila ly, o un ea ed bio ilms, HHQ emained he mos
abundan AQ ollowed by NHQ, see Figu e 3. In addi ion,
pyocyanin displayed a sec e ion dec ease a e SEN19
ea men (Figu e S3), again indica ing supp ession o phzAB
exp ession. As expec ed om ea men wi h an i i ulence
compounds, CFU expe imen s showed no educ ion in iable
coun s in he p esence o bo h QSI inhibi o s compa ed o
un ea ed PAO1-L bio ilms. CDA and DHQ we e de ec ed
when PA was ea ed wi h he less po en inhibi o (SEN019),
howe e , hese we e no de ec ed upon ea men wi h a mo e
po en inhibi o (SEN089).
In e es ingly, bio ilms cul u ed in he p esence o SEN019
inhibi o and cip o loxacin led o no de ec ion o he common
AQs p esen in PAO1-L exome abolome. Mo eo e , unde
combina o y ea men , no sec e ed pyocyanin could be
de ec ed, sugges ing a global dis up ion o AQ-based QS
ne wo ks and he po en ial o LESA-MS-based app oaches o
s udying mechanisms o d ug ac ion o new an i- i ulence
ea men s and adjunc i e he apies. In con as , CFU coun s
showed a simila dec ease in bio ilm cell iabili y (∼4-log
educ ion) compa ed o bio ilms ea ed wi h cip o loxacin
only. These esul s indica e ha he combina ion o hese wo
d ugs could con ibu e o a educ ion in P. ae uginosa i ulence
A icle
bu no o a u he educ ion in cell iabili y o ea ed
bio ilms unde he condi ions es ed.
CONCLUSIONS
This s udy demons a es ha he LESA-MS sampling o ma
desc ibed he e p o ides a sui able model o he analysis o he
mic obial exome abolome; wi h a ange o clinically ele an
me aboli es de ec ed in he s udied mic obial communi ies,
including in e species and in e kingdom sys ems. Ou
app oach has he added bene i o allowing mic obiological
cell cul u e in a labo a o y wi h he app op ia e sa e y measu es
o he speci ic pa hogen, wi hou he need o a dedica ed
ins umen in he same lab. Fu he mo e, di used o sec e ed
compounds can be analyzed using ou app oach. HHQ has
p e iously been indica ed as an ea ly diagnos ic ma ke o
in ec ion in P. ae uginosa; ou s udy ag ees and he e o e shows
p omise as a model. Addi ionally, ou esul s sugges ha
me hods o moni o ing le els o AQs such as DHQ and
pyocyanin could be bene icial in he de e mina ion o causa i e
agen s in in e kingdom in ec ion. Fu he in es iga ion is
equi ed o alida ion; quan i a i e analysis o le els in
ci cula o y bio luids ia, e.g., LC−MS would be bene icial.
Finally, we show how he LESA pla o m could p o ide a ou e
o assessing he e ec o d ug ea men s and adjunc i e
he apies o he u u e s udy o app op ia e ea men s o
bac e ial, in e bac e ial, and in e kingdom sys ems using a
bac e ia- ee pla o m.
We en ision ha ou model will ind use in apidly
in es iga ing bac e ial exome abolome analy es such as QS
molecules om bac e ial and in e kingdom sys ems ha will
aid p edic ion o clinically ele an diagnos ic me aboli es o
in ec ion in bac e ial, ungal, and in e species/in e kingdom
sys ems ha mimic he ue complexi y o ch onic in ec ion.
This has ele ance in he in es iga ion and subsequen
p edic ion o clinically ele an bioma ke s ha can be
moni o ed nonin asi ely om biological luids. A a ie y o
in e species and in e kingdom sys ems could be s udied in he
u u e using his pla o m.
ASSOCIATED
CONTENT
*
Suppo ing In o ma ion
The Suppo ing In o ma ion is a ailable ee o cha ge a
h ps://pubs.acs.o g/doi/10.1021/acs.analchem.2c05703.
Expanded Expe imen al and Resul s sec ions, and
Supplemen al Figu es 1−3 (PDF)
AUTHOR
INFORMATION
Co esponding
Au ho s
Manuel
Rome o
−
U.K.
Na ional
Bio ilm
Inno a ion
Cen e
(NBIC), Biodisco e y Ins i u e, School o Li e Sciences,
Facul y o Heal h and Medical Sciences, Uni e si y o
No ingham, NG7 2RD No ingham, U.K.; Depa men o
Mic obiology and Pa asi ology, Facul y o Biology-CIBUS,
Uni e sidade de San iago de Compos ela, 15782 San iago de
Compos ela,
Spain;
Email:
[email p o ec ed]
Rian
L.
G i i hs
−
Facul y
o
Science,
School
o
Pha macy,
Uni e si y o No ingham, NG7 2RD No ingham, U.K.;
o cid.o g/0000-0002-1601-4664; Email: ian.g i i hs@
no ingham.ac.uk
Au ho s
Shaun N. Robe son
−
U.K. Na ional Bio ilm Inno a ion
Cen e (NBIC), Biodisco e y Ins i u e, School o Li e Sciences,
Facul y o Heal h and Medical Sciences, Uni e si y o
No ingham, NG7 2RD No ingham, U.K.
Fadi
Souka ieh
−
U.K.
Na ional
Bio ilm
Inno a ion
Cen e
(NBIC), Biodisco e y Ins i u e, School o Li e Sciences,
Facul y o Heal h and Medical Sciences, Uni e si y o
No ingham, NG7 2RD No ingham, U.K.; o cid.o g/
0000-0002-6730-2543
Thomas M.
Whi e
−
Facul y o Science, School o Pha macy,
Uni e si y o No ingham, NG7 2RD No ingham, U.K.
Miguel
Cama a
−
U.K.
Na ional
Bio ilm
Inno a ion
Cen e
(NBIC), Biodisco e y Ins i u e, School o Li e Sciences,
Facul y o Heal h and Medical Sciences, Uni e si y o
No ingham, NG7 2RD No ingham, U.K.
No es
The au ho s decla e no compe ing inancial in e es .
ACKNOWLEDGMENTS
R.L.G. would like o acknowledge suppo om a Uni e si y o
No ingham unded Anne McLa en Fellowship. This expe -
imen al wo k was unded ia a B i ish Mass Spec ome y
Socie y (BMSS) Resea ch Suppo G an . T.M.W. would like
o acknowledge unding om he Uni e si y o No ingham o
a summe s uden ship. M.R., S.N.R., F.S., and M.C. we e
suppo ed by he Na ional Bio ilms Inno a ion Cen e
[BBSRC, BB/R012415/1]. MR is suppo ed by he Ma ia
Zamb ano p og am om he Spanish Minis y o Uni e si ies.
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