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Genomic Analysis of Prophages from Klebsiella pneumoniae Clinical Isolates

Abstract

Klebsiella pneumoniae is an increasing threat to public health and represents one of the most concerning pathogens involved in life-threatening infections. The resistant and virulence determinants are coded by mobile genetic elements which can easily spread between bacteria populations and co-evolve with its genomic host. In this study, we present the full genomic sequences, insertion sites and phylogenetic analysis of 150 prophages found in 40 K. pneumoniae clinical isolates obtained from an outbreak in a Portuguese hospital. All strains harbored at least one prophage and we identified 104 intact prophages (69.3%). The prophage size ranges from 29.7 to 50.6 kbp, coding between 32 and 78 putative genes. The prophage GC content is 51.2%, lower than the average GC content of 57.1% in K. pneumoniae. Complete prophages were classified into three families in the order Caudolovirales: Myoviridae (59.6%), Siphoviridae (38.5%) and Podoviridae (1.9%). In addition, an alignment and phylogenetic analysis revealed nine distinct clusters. Evidence of recombination was detected within the genome of some prophages but, in most cases, proteins involved in viral structure, transcription, replication and regulation (lysogenic/lysis) were maintained. These results support the knowledge that prophages are diverse and widely disseminated in K. pneumoniae genomes, contributing to the evolution of this species and conferring additional phenotypes. Moreover, we identified K. pneumoniae prophages in a set of endolysin genes, which were found to code for proteins with lysozyme activity, cleaving the β-1,4 linkages between N-acetylmuramic acid and N-acetyl-D-glucosamine residues in the peptidoglycan network and thus representing genes with the potential for lysin phage therapy.

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Genomic Analysis of Prophages from Klebsiella pneumoniae Clinical Isolates

Author: Marques, Andreia T.,Tanoeiro, Luis,Duarte, Aida,Gonçalves, Luisa,Vítor, Jorge M. B.,Vale, Filipa
Publisher: MDPI
Year: 2021
Source: https://repositorio.ulisboa.pt/bitstream/10451/52347/1/microorganisms-09-02252-v2.pdf
mic oo ganisms
A icle
Genomic Analysis o P ophages om Klebsiella pneumoniae
Clinical Isola es
And eia T. Ma ques 1,* , Luís Tanoei o 1, Aida Dua e 2,3 , Luisa Gonçal es 4, Jo ge M. B. Ví o 1
and Filipa F. Vale 1,*


Ci a ion: Ma ques, A.T.; Tanoei o, L.;
Dua e, A.; Gonçal es, L.; Ví o ,
J.M.B.; Vale, F.F. Genomic Analysis o
P ophages om Klebsiella pneumoniae
Clinical Isola es. Mic oo ganisms 2021,
9, 2252. h ps://doi.o g/10.3390/
mic oo ganisms9112252
Academic Edi o : Igo V. Babkin
Recei ed: 15 Sep embe 2021
Accep ed: 25 Oc obe 2021
Published: 28 Oc obe 2021
Publishe ’s No e: MDPI s ays neu al
wi h ega d o ju isdic ional claims in
published maps and ins i u ional a il-
ia ions.
Copy igh : © 2021 by he au ho s.
Licensee MDPI, Basel, Swi ze land.
This a icle is an open access a icle
dis ibu ed unde he e ms and
condi ions o he C ea i e Commons
A ibu ion (CC BY) license (h ps://
c ea i ecommons.o g/licenses/by/
4.0/).
1Pa hogen Genome Bioin o ma ics and Compu a ional Biology, Resea ch Ins i u e o
Medicines (iMed-ULisboa), Facul y o Pha macy, Uni e sidade de Lisboa, 1649-003 Lisboa, Po ugal;
[email p o ec ed] (L.T.); j i o @ .ulisboa.p (J.M.B.V.)
2Facul y o Pha macy, Uni e sidade de Lisboa, A . Gama Pin o, 1649-003 Lisboa, Po ugal;
[email p o ec ed]
3Cen o de In es igação In e disciplina Egas Moniz, Ins i u o Uni e si á io Egas Moniz,
2829-511 Mon e da Capa ica, Po ugal
4Clinical Pa hology Uni , Hospi al SAMS, Cidade de Gabela, 1849-017 Lisboa, Po ugal;
[email p o ec ed]
*Co espondence: [email p o ec ed] (A.T.M.); [email p o ec ed] o [email p o ec ed] (F.F.V.)
Abs ac :
Klebsiella pneumoniae is an inc easing h ea o public heal h and ep esen s one o he
mos conce ning pa hogens in ol ed in li e- h ea ening in ec ions. The esis an and i ulence
de e minan s a e coded by mobile gene ic elemen s which can easily sp ead be ween bac e ia
popula ions and co-e ol e wi h i s genomic hos . In his s udy, we p esen he ull genomic sequences,
inse ion si es and phylogene ic analysis o 150 p ophages ound in 40 K. pneumoniae clinical isola es
ob ained om an ou b eak in a Po uguese hospi al. All s ains ha bo ed a leas one p ophage and
we iden i ied 104 in ac p ophages (69.3%). The p ophage size anges om 29.7 o 50.6 kbp, coding
be ween 32 and 78 pu a i e genes. The p ophage GC con en is 51.2%, lowe han he a e age GC
con en o 57.1% in K. pneumoniae. Comple e p ophages we e classi ied in o h ee amilies in he
o de Caudolo i ales:Myo i idae (59.6%), Sipho i idae (38.5%) and Podo i idae (1.9%). In addi ion, an
alignmen and phylogene ic analysis e ealed nine dis inc clus e s. E idence o ecombina ion was
de ec ed wi hin he genome o some p ophages bu , in mos cases, p o eins in ol ed in i al s uc u e,
ansc ip ion, eplica ion and egula ion (lysogenic/lysis) we e main ained. These esul s suppo
he knowledge ha p ophages a e di e se and widely dissemina ed in K. pneumoniae genomes,
con ibu ing o he e olu ion o his species and con e ing addi ional pheno ypes. Mo eo e , we
iden i ied K. pneumoniae p ophages in a se o endolysin genes, which we e ound o code o p o eins
wi h lysozyme ac i i y, clea ing he
β
-1,4 linkages be ween N-ace ylmu amic acid and N-ace yl-D-
glucosamine esidues in he pep idoglycan ne wo k and hus ep esen ing genes wi h he po en ial
o lysin phage he apy.
Keywo ds:
K. pneumoniae genomes; p ophages; bac e iophage; bioin o ma ics; genomic analysis;
compa a i e genomics; phylogeny; sequence anno a ion and compa ison; phage endolysins
1. In oduc ion
Klebsiella pneumoniae is an oppo unis ic and commensal g am-nega i e human pa hogen
p e alen in he hospi al en i onmen . This bac e ium is mainly ound in gas oin es i-
nal and espi a o y ac s and on he skin o heal hy indi iduals, bu in ecen yea s i
has become one o he wo ld’s leading causes o communi y and hospi al-acqui ed in ec-
ions, such as u ina y ac in ec ions (UTIs), pneumonia, sep icaemia, and wound/so
issue in ec ions, wi h an inc easing mo ali y a e, pa icula ly in immunocomp omised
indi iduals, neona es, and he elde ly [1–5].
Due o i s widesp ead dis ibu ion and gene ic plas ici y, K. pneumoniae is one o
he mos impo an mul id ug- esis an (MDR) pa hogens and has been classi ied as an
Mic oo ganisms 2021,9, 2252. h ps://doi.o g/10.3390/mic oo ganisms9112252 h ps://www.mdpi.com/jou nal/mic oo ganisms
Mic oo ganisms 2021,9, 2252 2 o 21
ESKAPE o ganism (En e ococcus aecium,S aphylococcus au eus,K. pneumoniae,Acine obac e
baumannii,Pseudomonas ae uginosa and En e obac e species) [
6
], in which an ibio ic- esis an
s ains a e becoming mo e di icul o ea . K. pneumoniae s ains a e ecu en ly esis an o
an ibio ics a ailable in he apy o ea se ious human diseases, such as luo oquinolones,
aminoglycosides, and be a-lac ams. Among be a-lac ams, penicillins, cephalospo ins and
ca bapenems, he e is inc easing e idence o in ec ions caused by s ains ha ha e become
esis an o imipenem, e apenem and me openem an ibio ics [
5
,
7
–
11
]. Gi en he educ ion
in he e ec i eness o an imic obial he apeu ics o ea K. pneumoniae-associa ed in ec ions,
al e na i e s a egies mus be de eloped in esponse.
Bac e iophages (phages) a e i uses ha in ec bac e ia. Vi uses we e ini ially sug-
ges ed as he i s an imic obial agen s by William Two and Felix d’He elle [
12
,
13
] and
we e a he apy o bac e ial in ec ions [
14
]. Howe e , a e he disco e y o an imic o-
bial compounds, phage he apy was disca ded (excep in Eas e n Eu ope and he o me
So ie Union [
15
]), and om he e on mos s udies add essed p ophage esea ch as a
ool o imp o e ou unde s anding o molecula biology, ho izon al gene ans e and
bac e ial e olu ion.
Mo e ecen ly, gi en he inc ease in he numbe o MDR in ec ions caused by g am-
nega i e bac e ia such as K. pneumoniae, he use o phages o speci ic phage gene p oduc s
has inc eased again as a po en ial al e na i e o cu en an imic obial he apies [
16
]. MDR
isola es o K. pneumoniae we e ound wi h a a iable numbe o p ophages in hei ch o-
mosomes [
17
], and some p ophages ca ied an ibio ic esis ance genes (ARGs) [
18
,
19
],
p omp ing he in e es in bac e iophage esea ch.
Phages o K. pneumoniae ha e been isola ed om a a ie y o sou ces wo ldwide, in-
cluding was ewa e , sewage, seawa e , and human in es inal samples. Such phages belong
o ou o he i e amilies o he o de Caudo i ales, desc ibed as non-en eloped, ailed
phages, wi h icosahed al heads con aining double-s anded DNA: Myo i idae a e cha ac-
e ized by long, s aigh , con ac ile ails; Sipho i idae by long, lexible, non-con ac ile ails;
Podo i idae by sho , non-con ac ile ails; and Acke mann i idae by con ac ile ails wi h up
o ou spikes p esen on each o six ail spike en i ies [20].
Phages a e a g oup o i uses ha in ec bac e ia and make use o bac e ial eplica ion
machine y o become eplica ed, gene a ing p ogeny and eleasing i in he en i onmen
mos ly by p omo ing he cell–hos lysis in he ly ic cycle [
21
,
22
]. In he lysogenic cycle,
phages can in eg a e in he hos genome and emain do man o an unspeci ied amoun
o ime as p ophages, which will be eplica ed as pa o he bac e ial genome wi hou
killing he hos . Unde ce ain condi ions (e.g., in he p esence o en i onmen al s esso s),
p ophages can be excised and induced, assuming a ly ic cycle, and begin ac i ely eplica ing
and p oducing iable phage pa icles [
23
]. In addi ion, du ing he lysogenic cycle, gene ic
changes may happen in p ophage sequences, which lead o cumula i e deg ada ion o
he bac e iophage genome o ans e ence o genes in o he hos ha can con e oxin
p oduc ion and an ibio ic esis ance ai s o he bac e ium genome, hus making he
in ec ion mo e i ulen and di icul o ea [
24
]. Likewise, p ophages can con ibu e
o impo an biological p ope ies o hei bac e ial hos s, such as i ness, i ulence, and
e olu ion [
21
]. E en de ec i e p ophages may p o ide mul iple bene i s o he hos o
su i ing ad e se en i onmen al condi ions [25].
Endolysins (lysins) a e pep idoglycan-hyd olyzing enzymes encoded by phage genes.
In he cell dis up ion s age o he phage ly ic cycle, lysins a e in ol ed in he b eakage
o pep idoglycan o elease phage p ogeny [
26
]. In he case o g am-nega i e bac e ia,
pep idoglycan has a highly conse a i e s uc u e wi h signi ican simila i ies sha ed
among di e en species; he e o e, endolysins a e usually ac i e agains a wide hos
ange [27,28]. Mo eo e , endolysins ea u e easonable selec i i y in a ge ing pa hogenic
species, p ese ing commensal mic o lo a, and he adminis a ion o hese phage-de i ed
enzymes can be easily applied by di e en s a egies, including pa en e al, opical o
o al o mula ions [
27
]. Fo hese easons, he use o endolysins is mo e a ac i e as an
al e na i e an imic obial agen o clinical ea men han he phage i sel ; he e o e, lysins
Mic oo ganisms 2021,9, 2252 3 o 21
ha e been p oposed as al e na i e an imic obial agen s o ea in ec ions in he pos -
an ibio ic e a [
29
–
31
]. Recen esea ch has p oduced some p omising esul s ega ding he
use o endolysins agains K. pneumoniae. A ecombinan endolysin om he K. pneumoniae
phage KP27 was p oduced, and i s pep idoglycan-deg ading ac i i y was demons a ed
agains g am-nega i e bac e ia by he co-incuba ion o bac e ia and endolysin [
32
]. In
a s udy by Walmagh e al. (2013), i e endolysins we e cha ac e ized, including wo
endolysins om K. pneumoniae phages K11 and KP32, and hei mu aly ic ac i i y on he
pep idoglycan o se e al g am-nega i e bac e ial species was demons a ed [
33
]. In ano he
s udy, wo endolysins (ElyA1 and ElyA2) combined wi h colis in we e es ed agains A.
baumannii,P. ae uginosa and K. pneumoniae, and one o hem displayed ac i i y agains
13 ou o 17 s ains o K. pneumoniae [34].
In his wo k, we aimed o e alua e he p ophage p esence in clinical isola es o K.
pneumoniae om an ou b eak in a Po uguese e ia y-ca e hospi al. Also, we aimed o
unde s and how p ophages can con ibu e o he apid e olu ion o his bac e ial pa hogen.
Mo eo e , we ha e iden i ied and cha ac e ized pu a i e endolysin genes encoded by hese
p ophage genomes ha can po en ially be used o phage lysin he apy.
2. Ma e ials and Me hods
2.1. K. pneumoniae Isola es Genomes
A o al o 40 mul iclonal K. pneumoniae isola es om 23 pa ien s hospi alized in in-
ensi e ca e uni a SAMS Hospi al, a Po uguese e ia y-ca e hospi al, we e ecen ly
sequenced by whole genome sequencing (WGS) [
35
] and he genomes we e sc eened o
p ophage p esence.
2.2. P ophage Iden i ica ion
PHASTER (PHAge Sea ch Tool Enhanced Release) [
36
] and P ophage Hun e Tool [
37
]
we e used, allowing o he iden i ica ion and anno a ion o pu a i e p ophages wi hin
con igs o each K. pneumoniae genome (las accessed Janua y 2021). Concu en ly, bac e-
ial genomes we e also anno a ed using he open-access ool RAST: Rapid Anno a ion
using Subsys em Technology [
38
–
40
], and he iden i ied p ophage genes we e ex ensi ely
analysed in e ms o sequence and s uc u e o e alua e i s homology wi h bac e iophage-
de i ed egions. The anno a ion o p ophage coding sequences ound by he h ee di e en
me hods was compa ed (da a no shown).
All p ophage sequences we e manually so ed and cu a ed, and he inse ion si es
we e de e mined as shown below. A comple e p ophage sequence is no o en p esen in
one con ig, and o o e come his limi a ion, whene e possible, p ophages we e sca olded
using BLAST wi h a que y o he p ophages om K. pneumoniae subsp. pneumoniae HS11286
(GenBank Accession: CP003200.1, genome egion om 1288358 o 1338717) and K. pneu-
moniae s ain FDAARGOS_775 (GenBank Accession: NZ_CP040993.1, genome egion om
3328442 o 3378114) o check o homologies in he con igs in a simila way, as desc ibed else-
whe e [
41
]. Bo h genomes we e a ailable on NCBI da abase
(h ps://www.ncbi.nlm.nih.go /
,
las accessed 15 Janua y 2021) as e e ence genomes o K. pneumoniae and, since bo h ha e
in eg a ed p ophages, we also e e ed o hem o de e mine he co ec inse ion si es.
The inse ion si es o he p ophages we e iden i ied whene e he p ophage 5
0
and 3
0
ends
we e con iguously lanked by bac e ial genes in a con ig. The las bac e ial gene be o e he
p ophage sequence and he i s bac e ial gene a e he p ophage sequence we e iden i ied.
Each anno a ed egion was analysed in e ms o nucleo ide sequence wi h BLASTn [
42
]
and phage-limi ed BLASTn (limi ed o bac e iophage- ela ed ax ids: 38018, 10699, 10662,
10744, 10841, 2100421, 28883, 12333, 79205 and 102294) in he NCBI da abase using de aul
pa ame e s. P o ein-coding sequences we e also analysed using egula BLASTp and
phage-limi ed BLASTp (limi ed o bac e iophage- ela ed ax ids: 38018, 10699, 10662, 10744,
10841, 2100421, 28883, 12333, 79205 and 102294). S uc u al homology analyses we e
pe o med using Phy e2 [43].
Mic oo ganisms 2021,9, 2252 4 o 21
2.3. P ophage Classi ica ion
The iden i ied in ac p ophages we e classi ied in silico in o hei espec i e phage
amilies based on he p ophage s uc u al head-neck- ail p o eins using VIRFAM [
44
]. The
p ophage li es yles we e classi ied using PHACTS [
45
] and we e addi ionally assessed by
manually inspec ing he genomes o genes ela ed o li es yle (e.g., in eg ases).
2.4. P ophage Pan-Genome
The co e- and pan-genome o K. pneumoniae in ac p ophages we e de e mined using
Roa y ( e sion 3.13) [
46
], using as se ings o co e genome he genes p esen in a leas
50% o he p ophage in ac genomes, a minimum BLASTp pe cen age iden i y o 40, 50,
60, 70, 80 o 90%, and
−
s op ion. These se ings we e used o de e mine he mos sui able
pa ame e s o de e mining he p ophage pan-genome, as p e iously desc ibed [47].
2.5. P ophage Phylogene ic Analysis
In ac p ophage sequences we e que ied agains all K. pneumoniae phages sequences
a ailable on he PATRIC websi e (h ps://www.pa icb c.o g, las accessed Janua y 2021) [
48
],
which had 256 sequences in Janua y 2021, and agains public da abases using phage-
limi ed BLASTn [
42
] o iden i y simila phages. Hi s wi h a que y co e o a leas 50%
we e conside ed simila phages and hose wi h que y co e s below 50% we e conside ed
close phages.
The p ophage genomes we e aligned using MAFFT e sion 7 [
49
] de aul op ions.
Maximum likelihood phylogene ic ees om he alignmen s we e p oduced using Fas T ee
2.1.11 [
50
]. The p oduced ees we e isualized and anno a ed using In e ac i e T ee O
Li e (iTOL) 6 [51].
2.6. P ophage-Associa ed Vi ulence Fac o s and An ibio ic Resis ance Genes
All p ophage genomic sequences we e sc eened o an ibio ic esis ance genes using
he ResFinde 4.1 da abase (h ps://cge.cbs.d u.dk/se ices/ResFinde -4.1/, las accessed
July 2021) and i ulence genes using Vi ulenceFinde 2.0 (h ps://cge.cbs.d u.dk/se ices/
Vi ulenceFinde /, las accessed July 2021). Simila ly, he Resis ance Gene Iden i ie (RGI)
op ion o The Comp ehensi e An ibio ic Resis ance Da abase (h ps://ca d.mcmas e .
ca/home, las accessed July 2021) was used wi h de aul alues o iden i y esis ance
genes, hei p oduc s, and associa ed pheno ypes ha bo ed by in eg a ed p ophages wi hin
K. pneumoniae s ains.
2.7. Endolysins Iden i ica ion, Gene On ology Analysis and Func ional Anno a ion
Since de ec i e p ophages can also ha bo lysins, we conside ed all p ophages iden-
i ied (in ac and de ec i e) o endolysins iden i ica ion. Toge he wi h ou p ophage
sequences, we also analysed a se o 17 anno a ed phages iden i ied du ing p ophage
phylogene ic analysis, which sha e homology wi h ou p ophages. A o al o 167 p ophage
sequences (150 sequences o iginally iden i ied + 17 phage anno a ed sequences) we e
submi ed o bioin o ma ic analysis o he iden i ica ion o pu a i e phage endolysins
in e ms o sequence homology using BLAST [
42
] and s uc u al homology using he
open-access ools Phy e2 [
43
] and SWISS-MODEL [
52
]. Gene On ology (GO) iden i ie s
and ela ed GO e ms we e assigned o he iden i ied endolysins using he QuickGo web
se e (h p://www.ebi.ac.uk/QuickGO/, las accessed July 2021).
2.8. Endolysin Phylogene ic Analysis
Endolysin genomic and p o eomic sequences we e aligned using MAFFT e sion
7 [
49
] wi h de aul pa ame e s. The genome phylogene ic ee was cons uc ed using he
Jukes–Can o subs i u ion model and he p o eome phylogene ic ee was cons uc ed
using he Le Gascuel subs i u ion model in PHYML 3.3.20180621 (Geneious P ime e sion
2021.1.1). The iden i y ma ix gene a ed du ing he cons uc ion o he phylogene ic ees
Mic oo ganisms 2021,9, 2252 5 o 21
was used o in e nucleo ides and p o eins endolysins iden i y. T ees we e isualized and
anno a ed using In e ac i e T ee O Li e (iTOL) 6 [51].
3. Resul s
3.1. Iden i ica ion and P e alence o P ophages in K. pneumoniae S ains
In he p esen s udy, he genome sequences o 40 K. pneumoniae clinical isola es om
23 pa ien s
we e analysed wi h a web se e ool o iden i ica ion and anno a ion o
p ophage sequences wi hin bac e ial genomes, PHASTER, wi h de aul a gumen s [36].
A o al o 150 p ophage-like elemen s we e de ec ed (Supplemen a y Table S1), o
which 104 we e classi ied as in ac , 39 as incomple e and 7 as ques ionable (Figu e 1a,
Supplemen a y Table S2). One s ain was ound o ha bo only one p ophage, while he
emaining 39 s ains (97.5%) ha e a leas wo p ophages, which indica es ha p ophages
a e abundan in he K. pneumoniae genome. The o al numbe o p ophages pe s ain
anged om 1 o 10, wi h an a e age o 3.7 p ophages pe s ain, and mos s ains ha bo ed
ei he wo (n= 13) o ou (n= 11) p ophages (Figu e 1b).
Figu e 1.
(
A
) Box plo showing he o al, in ac , incomple e, ques ionable, and de ec i e (incomple e + ques ionable)
p ophages o Klebsiella pneumoniae. (
B
) Ba s g aph showing he dis ibu ion o o al p ophages (in ac , incomple e, and
ques ionable) in K. pneumoniae s ains.
A signi ican ly highe p e alence o incomple e and ques ionable p ophages was
expec ed since in ac p ophages a e usually unde s ong selec ion o gene ic deg ada ion
by bac e ia o apid dele ion om bac e ial genomes [
53
,
54
]. Ins ead, we ound ha 97.5%
o he K. pneumoniae s ains con ain in ac p ophages. S ains isola ed om pa ien s 1, 6, 21,
23, 24, 25 and 26 con ained only in ac p ophages, whe eas s ains isola ed om pa ien s
2, 3, 5, 9, 11, 14, 16, 17, 18 and 19 con ained in ac and incomple e p ophages, and s ains
isola ed om pa ien s 4, 7, 8, 10, 13 and 15 con ained in ac , incomple e, and ques ionable
p ophages (Supplemen a y Table S2). Fu he mo e, pa ien s we e colonized wi h one K.
pneumoniae s ain, excep pa ien s 1, 3, 15, 17, 19, 23 and 26, which we e colonized wi h 6, 2,
4, 5, 3, 2 and 2 s ains, espec i ely. I is impo an o no e ha he genomes we e di ided
in o con igs, which implies ha PHASTER may ha e unde es ima ed he co ec numbe
o in ac p ophages (some we e spli in o di e en con igs and iden i ied as incomple e o
ques ionable p ophages).
3.2. Genome Cha ac e is ics o K. pneumoniae P ophages
The sho es ( emnan ) p ophage sequence is 8.9 kbp, and he bigges is 60.8 kbp, wi h
he coding sequences (CDS) numbe anging om 12 o 75. The a e age GC% con en in all
150 p ophages is 52.2% (min 45.1%, max 60.2%), while he a e age bac e ial GC% con en is

Mic oo ganisms 2021,9, 2252 6 o 21
57.1% (min 54.9%, max 57.4%) (Supplemen a y Table S1), which sugges s ho izon al gene
ans e o he p ophage egion.
Genomic analysis o he ups eam and downs eam egions o he p ophage inse ion
si es e ealed ha p ophages a e in eg a ed be ween di e en coding egions: p o eins
in ol ed in me abolic pa hways (18.1%), RNA genes (16.1%), anspo e s (11.1%), e-
combinan p o eins (5.4%), p o ein syn hesis (5.4%), ans e ases (4.7%), ansc ip ional
egula o s (4.0%), memb ane p o eins (2.0%), ibosome biogenesis (1.3%) and sequences
showing homology wi h o he bac e ial genes (8.7%). In he case o some incomple e
p ophages, i was no possible o de e mine he inse ion si e (23.2%) (Supplemen a y
Table S1
). Mo eo e , simila p ophages om di e en K. pneumoniae s ains had a con-
se ed inse ion si e be ween he same wo con iguous genes o K. pneumoniae e e ence
genomes (GenBank Accession: CP003200.1 and NZ_CP040993.1).
Fo he pu pose o ou analysis, incomple e and ques ionable p ophage sequences
di ided in o di e en con igs we e sca olded as desc ibed in ma e ials and me hods.
A e his analysis, p ophages s ill conside ed ques ionable, and incomple e we e g ouped
as de ec i e p ophages. P ophages smalle han 28 kbp we e conside ed no in ac be-
cause hey lacked a p ophage genomic s uc u e and we e di icul o dis inguish om
o he in eg a i e elemen s. Only p ophages wi h iden i ied in eg ase and/o a leas one
gene in ol ed in biological p ocesses (e.g., e minase, endolysin, capsid, ail ibe s) we e
conside ed in ac .
Acco ding o his c i e ion, p ophages we e ound o be in ac in 104 o he
150 p ophage
sequences (63.3%) (Table 1). In ac p ophages ha e an a e age o 50 p edic ed genes (min
32, max 78), 37.4 kbp (min 29.7 kbp, max 50.6 kbp), and 51.2% GC (min 48.3%, max 55.0%).
Table 1.
In ac p ophage genomes cha ac e iza ion. Fea u es such as pa ien , GC%, leng h, CDS, clus e , amily (in
silico-de e mined) and mos ela ed-phage iden i ied a e shown o each p ophage. GC, guanine–cy osine.
P ophages
Pa ien s S ains P ophages GC% Leng h
(kbp) CDS Clus e Family Rela ed Phages Accession
Numbe
Que y
Co e E Value Pe .
Iden
Pa ien 1
Kp4845
PKp4845-1 50,4 33,4 44 C1
Myo i idae
Klebsiella phage
ST16-OXA48phi5.4 MK416015.1 75% 0.0 96.19%
PKp4845-2 50,4 33,4 44 C2 Klebsiella phage 4
LV-2017 KY271398.1 70% 0.0 97.67%
Kp4846
PKp4846-1 50,4 33,4 44 C1 Klebsiella phage
ST16-OXA48phi5.4 MK416015.1 75% 0.0 96.19%
PKp4846-2 50,4 33,4 44 C2 Klebsiella phage 4
LV-2017 KY271398.1 70% 0.0 97.67%
Kp4847
PKp4847-1 50,4 33,4 44 C1 Klebsiella phage
ST16-OXA48phi5.4 MK416015.1 75% 0.0 96.19%
PKp4847-2 50,4 33,4 44 C2 Klebsiella phage 4
LV-2017 KY271398.1 70% 0.0 97.67%
Kp4848
PKp4848-1 50,4 33,4 44 C1 Klebsiella phage
ST16-OXA48phi5.4 MK416015.1 75% 0.0 96.19%
PKp4848-2 50,4 33,4 44 C2 Klebsiella phage 4
LV-2017 KY271398.1 70% 0.0 97.67%
Kp4850
PKp4850-1 50,4 33,4 44 C1 Klebsiella phage
ST16-OXA48phi5.4 MK416015.1 75% 0.0 96.19%
PKp4850-2 51,2 32,3 43 C2 Klebsiella phage 4
LV-2017 KY271398.1 70% 0.0 97.67%
Kp4851
PKp4851-1 48,3 46,7 55 C1 Klebsiella phage
ST16-OXA48phi5.4 MK416015.1 75% 0.0 96.19%
PKp4851-2 50,1 35,6 47 C2 Klebsiella phage 4
LV-2017 KY271398.1 70% 0.0 97.67%
Pa ien 2 Kp4852
PKp4852-1 50,1 35,6 47 C6
Myo i idae
Klebsiella phage
ST101-KPC2phi6.3 MK416017.1 35% 0.0 95.09%
PKp4852-2 50,1 35,6 47 C3 Klebsiella phage
ST147-VIM1phi7.1 MK416018.1 56% 0.0 96.97%
PKp4852-3 50,1 35,6 47 N/D Pseudomonas phage
VW-6B MF975721.1 31% 0.0 77.91%
PKp4852-4 50,1 35,6 47 C9 Klebsiella phage
ST846-OXA48phi9.1 MK416021.1 77% 0.0 98.39%
Mic oo ganisms 2021,9, 2252 7 o 21
Table 1. Con .
P ophages
Pa ien s S ains P ophages GC% Leng h
(kbp) CDS Clus e Family Rela ed Phages Accession
Numbe
Que y
Co e E Value Pe .
Iden
Pa ien 3
Kp4853
PKp4853-1 50,1 35,6 47 C5
Myo i idae
Klebsiella phage 2
LV-2017 KY271396.1 54% 0.0 94.42%
PKp4853-2 50,1 35,6 47 C6
PKp4853-4 50,1 35,6 47 C7 Klebsiella phage 1
LV-2017 KY271401.1 74% 0.0 99.95%
Kp4854
PKp4854-1 50,1 35,6 47 C5 Klebsiella phage 2
LV-2017 KY271396.1 54% 0.0 94.42%
PKp4854-2 50,1 35,6 47 C6
PKp4854-4 50,1 35,6 47 C7 Klebsiella phage 1
LV-2017 KY271401.1 74% 0.0 99.95%
Pa ien 4 Kp4855
PKp4855-2 50,1 35,6 47 C5
Myo i idae
Klebsiella phage
ST16-OXA48phi5.3 MK416014.1 28% 0.0 96.13%
PKp4855-4 51,1 31,9 43 N/D
Klebsiella phage
ST974-
OXA48phi18.2
MK448237.1 68% 0.0 96.79%
PKp4855-5 51,1 31,9 43 C2 Klebsiella phage 4
LV-2017 KY271398.1 82% 0.0 96.43%
Pa ien 5 Kp4856 PKp4856-1 51,1 35,1 44 C5 Myo i idae Klebsiella phage 2
LV-2017 KY271396.1 46% 0.0 97.25%
Pa ien 6 Kp4857 PKp4857-1 51,1 35,1 44 C2 Myo i idae Klebsiella phage 4
LV-2017 KY271398.1 70% 0.0 97.67%
Pa ien 7 Kp4858
PKp4858-1 51,1 35,1 44 C2 Myo i idae
Klebsiella phage
ST512-
KPC3phi13.6/Klebsiella
phage ST437-
OXA245phi4.1
MK433577.1/
MK416011.1 86% 0.0 97.25%
PKp4858-3 51,1 35,1 44 C3 Klebsiella phage
ST147-VIM1phi7.1 MK416018.1 64% 0.0 95.28%
Pa ien 8 Kp4859
PKp4859-1 51,1 35,1 44 C2 Myo i idae
Klebsiella phage
ST512-
KPC3phi13.6/Klebsiella
phage ST437-
OXA245phi4.1
MK433577.1/
MK416011.1 86% 0.0 97.25%
PKp4859-3 51 34,1 40 C3 Klebsiella phage
ST147-VIM1phi7.1 MK416018.1 64% 0.0 95.28%
Pa ien 9 Kp4860
PKp4860-1 52,2 29,7 41 C9
Myo i idae
Klebsiella phage
ST405-OXA48phi1.1 MK388859.1 88% 0.0 85.05%
PKp4860-2 52,2 29,7 41 C4 Klebsiella phage 3
LV-2017 KY271397.1 100% 0.0 100%
PKp4860-3 51,3 33,5 43 C9 Klebsiella phage
ST405-OXA48phi1.1 MK388859.1 80% 0.0 86.57%
PKp4860-4 50,2 36,7 43 C7 Klebsiella phage 1
LV-2017 KY271401.1 74% 0.0 99.95%
PKp4860-6 50,2 36,7 43 C5 Klebsiella phage 2
LV-2017 KY271396.1 36% 0.0 93.97%
PKp4860-7 50,2 36,7 43 C2 Klebsiella phage 4
LV-2017 KY271398.1 100% 0.0 100%
Pa ien 10 Kp4861
PKp4861-1 50,2 36,7 43 C1
Myo i idae
Klebsiella phage
ST16-OXA48phi5.4 MK416015.1 74% 0.0 96.13%
PKp4861-2 50,2 36,7 43 C3 Klebsiella phage
ST147-VIM1phi7.1 MK416018.1 55% 0.0 97.6%
PKp4861-3 50,2 36,7 43 N/D
PKp4861-4 50,2 36,7 43 C6 Klebsiella phage 1
LV-2017 KY271401.1 31% 0.0 96.90%
Pa ien 11 Kp4862 PKp4862-1 50,2 36,7 43 C5 Myo i idae Klebsiella phage 2
LV-2017 KY271396.1 46% 0.0 97.25%
Pa ien 13 Kp4864 PKp4864-1 50,2 36,7 43 C5 Myo i idae Klebsiella phage 2
LV-2017 KY271396.1 35% 0.0 85.93%
Pa ien 14 Kp4865
PKp4865-1 50,2 36,7 43 C9
Myo i idae
Klebsiella phage
ST512-KPC3phi13.3 MK422448.1 73% 0.0 97.23%
PKp4865-2 50,2 36,7 43 C2 Klebsiella phage 4
LV-2017 KY271398.1 53% 0.0 98.48%
PKp4865-3 49,9 37 41 C6 Klebsiella phage
KPP5665-2 MF695815.1 25% 0.0 93.71%
PKp4865-4 54,4 35 48 C9 Klebsiella phage
48ST307 KY271402.1 28% 0.0 94.55%
Mic oo ganisms 2021,9, 2252 8 o 21
Table 1. Con .
P ophages
Pa ien s S ains P ophages GC% Leng h
(kbp) CDS Clus e Family Rela ed Phages Accession
Numbe
Que y
Co e E Value Pe .
Iden
Pa ien 15
Kp4866 PKp4866-3 54,4 35 48 N/D
Myo i idae
PKp4866-6 54,4 35 48 N/D
Kp4867
PKp4867-1 54,4 35 48 C1 Klebsiella phage
ST16-OXA48phi5.4 MK416015.1 75% 0.0 96.19%
PKp4867-2 54,4 35 48 C2 Klebsiella phage 4
LV-2017 KY271398.1 70% 0.0 97.67%
Kp4868
PKp4868-1 54,4 35 48 C1 Klebsiella phage
ST16-OXA48phi5.4 MK416015.1 75% 0.0 96.19%
PKp4868-2 54,4 35 48 C2 Klebsiella phage 4
LV-2017 KY271398.1 70% 0.0 97.67%
Kp4870
PKp4870-1 54,4 35 48 C1 Klebsiella phage
ST16-OXA48phi5.4 MK416015.1 75% 0.0 96.19%
PKp4870-2 54,4 35 48 C2 Klebsiella phage 4
LV-2017 KY271398.1 70% 0.0 97.67%
Pa ien 16 Kp4871
PKp4871-1 50,6 39,1 63 C7
Sipho i idae
Klebsiella phage 1
LV-2017 KY271401.1 74% 0.0 99.95%
PKp4871-2 50,6 39,1 63 C2 Klebsiella phage 4
LV-2017 KY271398.1 100% 0.0 100%
PKp4871-3 50,6 39,1 63 C4 Klebsiella phage 3
LV-2017 KY271397.1 100% 0.0 100%
Pa ien 17
Kp4872
PKp4872-1 50,6 39,1 63 C7
Sipho i idae
Klebsiella phage 1
LV-2017 KY271401.1 74% 0.0 99.95%
PKp4872-2 50,6 39,1 63 C2 Klebsiella phage 4
LV-2017 KY271398.1 100% 0.0 100%
PKp4872-3 52 40,9 57 C4 Podo i idae Klebsiella phage 3
LV-2017 KY271397.1 100% 0.0 100%
Kp4873
PKp4873-1 50,2 45,9 51 C2
Sipho i idae
Klebsiella phage 4
LV-2017 KY271398.1 100% 0.0 100%
PKp4873-2 53,2 34,9 32 C4 Klebsiella phage 3
LV-2017 KY271397.1 100% 0.0 100%
PKp4873-4 55 33,1 45 C7 Myo i idae Klebsiella phage 1
LV-2017 KY271401.1 74% 0.0 99.95%
Kp4874
PKp4874-1 50,4 39,4 49 C2
Sipho i idae
Klebsiella phage 4
LV-2017 KY271398.1 100% 0.0 100%
PKp4874-2 50,5 39,5 49 C4 Klebsiella phage 3
LV-2017 KY271397.1 100% 0.0 100%
PKp4874-4 50,5 39,5 49 C7 Klebsiella phage 1
LV-2017 KY271401.1 74% 0.0 99.95%
Kp4875
PKp4875-1 50,5 39,5 49 C2 Klebsiella phage 4
LV-2017 KY271398.1 100% 0.0 100%
PKp4875-2 50,5 39,5 49 C4 Klebsiella phage 3
LV-2017 KY271397.1 100% 0.0 100%
PKp4875-4 50,5 39,5 49 C7 Klebsiella phage 1
LV-2017 KY271401.1 74% 0.0 99.95%
Kp4876
PKp4876-1 50,5 39,5 49 C2 Klebsiella phage 4
LV-2017 KY271398.1 100% 0.0 100%
PKp4876-2 50,5 39,5 49 C4 Klebsiella phage 3
LV-2017 KY271397.1 100% 0.0 100%
PKp4876-4 50,5 39,5 49 C7 Klebsiella phage 1
LV-2017 KY271401.1 74% 0.0 99.95%
Pa ien 18 Kp4877
PKp4877-1 50,5 39,5 49 C2
Sipho i idae
Klebsiella phage 4
LV-2017 KY271398.1 100% 0.0 100%
PKp4877-2 50,5 39,5 49 C4 Klebsiella phage 3
LV-2017 KY271397.1 100% 0.0 100%
PKp4877-4 50,5 39,5 49 C7 Klebsiella phage 1
LV-2017 KY271401.1 74% 0.0 99.95%
Pa ien 19
Kp4878
PKp4878-1 50,4 39,7 49 C7
Sipho i idae
Klebsiella phage 1
LV-2017 KY271401.1 74% 0.0 99.95%
PKp4878-2 50,4 40,1 50 C2 Klebsiella phage 4
LV-2017 KY271398.1 100% 0.0 100%
PKp4878-3 50,4 40,1 50 C4 Klebsiella phage 3
LV-2017 KY271397.1 100% 0.0 100%
Kp4879
PKp4879-1 50,4 40,1 50 C7 Klebsiella phage 1
LV-2017 KY271401.1 74% 0.0 99.95%
PKp4879-2 50,4 40,1 50 C2 Klebsiella phage 4
LV-2017 KY271398.1 100% 0.0 100%
PKp4879-3 50,4 40,1 50 C4 Klebsiella phage 3
LV-2017 KY271397.1 100% 0.0 100%
Mic oo ganisms 2021,9, 2252 9 o 21
Table 1. Con .
P ophages
Pa ien s S ains P ophages GC% Leng h
(kbp) CDS Clus e Family Rela ed Phages Accession
Numbe
Que y
Co e E Value Pe .
Iden
Kp4880
PKp4880-1 49,7 39,3 55 C2 Klebsiella phage 4
LV-2017 KY271398.1 100% 0.0 100%
PKp4880-2 50,4 41,5 61 C7 Klebsiella phage 1
LV-2017 KY271401.1 74% 0.0 99.95%
PKp4880-3 50,6 38,6 56 C4 Klebsiella phage 3
LV-2017 KY271397.1 100% 0.0 100%
Pa ien 21 Kp4882
PKp4882-1 51,4 39,8 67 C8
Sipho i idae
Klebsiella phage
ST101-KPC2phi6.3 MK416017.1 23% 0.0 97.40%
PKp4882-2 50,9 42,2 58 C3 Klebsiella phage
ST147-VIM1phi7.1 MK416018.1 70% 0.0 100.00%
PKp4882-3 50,9 42,2 58 C6 Klebsiella phage
ST147-VIM1phi7.2 MK448232.1 85% 0.0 99.99%
Pa ien 23
Kp4884
PKp4884-1 49,8 45,5 60 C8
Sipho i idae
Klebsiella phage
ST101-KPC2phi6.3 MK416017.1 23% 0.0 97.40%
PKp4884-2 51,2 50,6 77 C3 Klebsiella phage
ST147-VIM1phi7.1 MK416018.1 70% 0.0 100.00%
PKp4884-3 52,1 48,6 75 C6 Klebsiella phage
ST147-VIM1phi7.2 MK448232.1 85% 0.0 99.99%
Kp4885
PKp4885-1 52,1 48,6 75 C8 Klebsiella phage
ST101-KPC2phi6.3 MK416017.1 23% 0.0 97.40%
PKp4885-2 51,5 46,8 78 C3 Klebsiella phage
ST147-VIM1phi7.1 MK416018.1 70% 0.0 100.00%
PKp4885-3 53 46,9 68 C6 Klebsiella phage
ST147-VIM1phi7.2 MK448232.1 85% 0.0 99.99%
Pa ien 24 Kp4886
PKp4886-1 53 47,1 68 C8
Sipho i idae
Klebsiella phage
ST101-KPC2phi6.3 MK416017.1 23% 0.0 97.40%
PKp4886-2 52,7 48,4 73 C3 Klebsiella phage
ST147-VIM1phi7.1 MK416018.1 70% 0.0 100.00%
PKp4886-3 54,9 30,5 45 C6 Myo i idae Klebsiella phage
ST147-VIM1phi7.2 MK448232.1 85% 0.0 99.99%
Pa ien 25 Kp4887
PKp4887-1 54,9 30,2 45 C8 Myo i idae Klebsiella phage
ST101-KPC2phi6.3 MK416017.1 23% 0.0 97.40%
PKp4887-2 54 35,2 43 C3 Sipho i idae Klebsiella phage
ST147-VIM1phi7.1 MK416018.1 70% 0.0 100.00%
PKp4887-3 50,9 40,2 53 C6 Podo i idae Klebsiella phage
ST147-VIM1phi7.2 MK448232.1 85% 0.0 99.99%
Pa ien 26
Kp4849
PKp4849-1 50,4 33,4 44 C1
Myo i idae
Klebsiella phage
ST16-OXA48phi5.4 MK416015.1 75% 0.0 96.19%
PKp4849-2 50,4 33,4 44 C2 Klebsiella phage 4
LV-2017 KY271398.1 70% 0.0 97.67%
Kp4869
PKp4869-1 54,4 35 48 C1 Klebsiella phage
ST16-OXA48phi5.4 MK416015.1 75% 0.0 96.19%
PKp4869-2 54,4 35 48 C2 Klebsiella phage 4
LV-2017 KY271398.1 70% 0.0 97.67%
3.3. Classi ica ion o K. pneumoniae P ophages
In ac p ophages iden i ied we e in silico assigned o a amily axon using he VIRFAM
websi e [44]. Classi ica ion was based on genes conside ed o be he mos indica i e o i s
amily: majo capsid p o ein, la ge e minase subuni , ail ape measu e p o ein and ail
shea h p o ein. All p ophages could be assigned o a amily. The majo i y,
62 (59.6%) was
assigned o he Myo i idae amily, 40 (38.5%) o he Sipho i idae amily, and 2 (1.9%) o
he Podo i idae amily (Figu e 2). This is in acco dance wi h he es ima ed dis ibu ion
desc ibed in he li e a u e [
55
,
56
]. Based on in o ma ion on he Expansy websi e (h p:
// i alzone.expasy.o g/, las accessed July 2021), Myo i idae a e ypically he la ges phages
wi h a high a iabili y in hei genome sizes, anging om 33 o 244 kbp and coding o 40 o
415 p o eins. In his s udy, all p ophages belonging o he Myo i idae amily ha e genomes
wi h an a e age o 34.8 kbp (min 29.7 kbp, max 46.7 kbp) and coding o 45 p o eins (min
40, max 55). The Sipho i idae amily ound in K. pneumoniae has a genome size o a ound
41.3 kbp (min 35.2, max 50.6) and coding o abou 56 p o eins (min 32, max 78), while he
desc ibed genome size o he Sipho i idae amily is abou 50 kbp and encodes o abou
70 genes. He e, Podo i idae ha e he mo e consis en genome size o abou 40.5 kbp (min
Mic oo ganisms 2021,9, 2252 16 o 21
o ques ionable). Incomple e and ques ionable p ophages o en lack essen ial phage
unc ions [
73
] and he e o e ou u he analysis was ocused on in ac p ophages. Only
a ew s udies ha e cha ac e ized he p e alence o p ophages in K. pneumoniae species,
al hough hey a e gene ic elemen s ha signi ican ly con ibu e o genome a iabili y,
e olu ion, and i ulence o hei bac e ial hos s [32,55,56,72,73,75].
In ou analysis, he size o K. pneumoniae p ophage genomes a ied om 8.9 o
60.8 kbp
, wi h an a e age o 37.4 kbp, which ag ees wi h he li e a u e o wha has al eady
been desc ibed o K. pneumoniae and en e obac e ia [
73
,
75
,
76
]. Using an in silico app oach,
among he 104 in ac p ophages, we ound Myo i idae o be he mos ep esen ed amily
(59.6%), ollowed by Sipho i idae (38.5%) and Podo i idae (1.9%). The same dis ibu ion was
obse ed in o he s udies [
55
,
56
]. Myo i idae, which a e ypically he la ges phage amily,
had size genomes below a e age, while Sipho i idae had sizes sligh ly abo e he a e age.
PHASTER analysis o d a genomes (especially i hese we e dis ibu ed h ough di e en
con igs) could e oneously delimi p ophages, o which all p ophage sequences analysed
we e manually cu a ed. Al hough we ha e manually cu a ed he p ophage inse ion si es
and sca olded p ophages ha we e spli in se e al con igs, his may esul in unexpec ed
o a iable genome sizes. These di e ences may also esul om he acquisi ion o bac e ial
genes adjacen o he p ophage du ing epea ed excision and in eg a ion cycles o loss and
gene ic deg ada ion ha caused he educ ion o i s genome size [76].
P ophages o K. pneumoniae we e ound o be g ea ly simila . Ou compa ison o
104 in ac p ophages
e ealed ha some p ophages sha ed mo e han 50% genome iden i y,
indica ing s ong e olu iona y ela ionships. Compa ing ou p ophage genomes agains
public da abases, we ound 17 Klebsiella phages which sha e simila i y wi h he 104 in ac
p ophages in e ms o que y co e age and iden i y (in some cases highe han 60%) and
his helped us o iden i y nine clus e s composed by iden ical p ophages. Mo eo e , ela ed
clus e s end o g oup p ophages o he same amily. Howe e , a same ime, he p ophages
we e also g ea ly di e si ied. A compa ison o hese nine clus e s e ealed less han 30% o
genome iden i y and we ound a Pseudomonas phage VW-6B ha sha es an iden i y highe
han 31% wi h one o he p ophages iden i ied he e. This may indica e ha he common
ances o o hese wo species was in ec ed by a phage ha co-e ol ed wi h he hos bac e ia
du ing specia ion, o by phage ans e be ween species.
K. pneumoniae p ophages ha e an open pan-genome, meaning ha o each new
p ophage genome added, new genes con ibu e o he pan-genome. Thus, he inclusion o
mo e p ophages is expec ed o aise he numbe o he pan-genome size o 892 genes so a
de e mined, which is also co obo a ed by he high pe cen age o single on genes (43.6%,
389/892). On he o he hand, he educed numbe o co e genes poin s o high sequence
di e si y, only p ese ing essen ial s uc u al genes.
Some p ophages ca y genes ha can al e he ea u es o he hos , anging om in-
c eased hos i ness o inc eased i ulence, and many s udies ha e epo ed he connec ion
o he pa hogen i ulence o he acquisi ion o p ophages [
21
,
77
]. In ac , e en de ec i e
p ophages a e conside ed as po en ial mobile elemen s ca ying i ulence ac o s [
25
].
Thus, al hough open-access esea ch ools did no ind i ulence ac o s, a de ailed analy-
sis showed o he wise, e ealing se e al po en ial i ulence ac o s ha can be ela ed o
bac e ia i ness and in luence he abili y o he bac e ium o colonize i s hos and su i e in
ad e se en i onmen s.
P ophages and hei bac e ial hos s ha e common e olu iona y in e es s since he p o-
li e a ion o he hos also esul s in inc eased p ophage popula ion. Thus, some p ophages
p o ide he bac e ium bene icial ai s, such as inc eased i ness, and con e new i u-
lence ac o s and/o an ibio ic esis ance genes exploi ed o bac e ial pa hogenesis [
25
,
76
].
Acco dingly, we iden i ied se e al pu a i e i ulence ac o s, such as T aR/DksA amily
ansc ip ional egula o , memb ane-associa ed lipop o ein, molecula chape one DnaJ
and o he p o eins wi h unc ions in pe sis ence unde s ess condi ions, in e ac ion wi h
hos cells and egula ion o i ulence gene exp ession. T aR amily egula o s may also
play a ole in p ophage p opaga ion by in e e ing wi h he hos mechanisms o egula ion,

Mic oo ganisms 2021,9, 2252 17 o 21
inc easing he bac e ial conjuga ion, and imp o ing he ansmission o he p ophage by
la e al gene ans e be ween bac e ia [
59
]. Taken oge he , K. pneumoniae may bene i om
ca ying a p ophage due o he pu a i e bene icial genes ca ied by hem. Thus, K. pneumo-
niae p ophages may con e an e olu iona y i ness bene i o he hos due o he p esence o
i ulence ac o s, which should be u he s udy. On he o he hand, ou s udy con i med
he p e ious desc ip ion by Pe digão e al. (2020), whe e pa e ns o esis ance-con e ing
genes ela ed o an imic obial esis ance we e associa ed wi h ch omosomal mu a ions and
plasmid mobiliza ion [
35
]. The p ophages sequences desc ibed he e did no con ain he
genes esponsible by an ibio ic esis ance in hese K. pneumoniae isola es.
P ophages ha e coe ol ed wi h bac e ia o mo e han a billion yea s and ha e de-
eloped e icien s a egies o lyse and hus kill hei bac e ial hos a he end o he ly ic
cycle o p ogeny elease [
16
]. Endolysins a e p o eins used in his ly ic p ocess and
ha e been used in many scien i ic wo ks o he de elopmen o an ibac e ial he apeu-
ics
[71,78–80]
. Depending on clea age si es, hey can be ca ego ized in o ou di e en
g oups: (a) N-ace ylmu amidases (lysozymes), (b) N-ace yl-
β
-D-glucosaminidases (gly-
cosidases) (c) N-ace ylmu amoyl-L-alanine amidases and (d) endopep idases [
71
,
81
]. In
his s udy, we exploi ed he K. pneumoniae sequenced genomes o iden i y endolysins in
hei p ophages and cha ac e ized hem. We iden i ied 132 endolysins (115 endolysins
om ou p ophage genomes and 17 lysins ha bo ed by he mos ela ed phages and he en-
dolysins we e assigned o h ee g oups: lysozymes/mu amidases, glycosidases/chi inases
and endopep idases. The g oup o lysozymes included endolysins ela ed o endolysin
LyzP1 and R21, which a e wo lysozymes o phages P1 and 21, espec i ely, and we e he
i s endolysins showing a signal-ancho - elease (SAR) domain [
82
]. In con as o phage
lysozymes like T4, which accumula e a ully olded and enzyma ically ac i e endolysin in
he cy oplasm, SAR endolysins a e he i s endolysins sec e ed as enzyma ically inac i e
o m ancho ed o he memb ane by he N- e minal SAR domain o a oid p ema u e lysis
o he in ec ed hos [
83
]. The g oup o chi inases a e membe s o glycoside hyd olase
(GH) amily 18 and 19 and a e also a b oad, lysozyme-like supe amily clea ing chi in,
which is he second mos abundan biopolyme on he plane and is a linea , insoluble
homopolyme composed o
β
-1,4 linked subuni s o N-ace yl glucosamine polyme s, a
s uc u e uncommon in bac e ial cell walls. Mos o he bac e ial chi inases isola ed and
sequenced so a a e included in GH amily 18, ha e a molecula weigh ange o 20–60 kDa
and a e smalle han plan chi inases (40–85 kDa) [
70
], which ag ees wi h he molecula
weigh p edic ed he e. The hi d g oup included endopep idases, bu his g oup was only
iden i ied in he ela ed Klebsiella phages, 48ST307 and ST846-OXA48phi9.1.
Ou s udy shows ha he di e si y o K. pneumoniae p ophages is as and con inues
o expand. In addi ion, his genome analysis se es as a basis o he cha ac e iza ion and
e olu iona y ela ionship o p ophages ha bo ed by K. pneumoniae and iden i ica ion o
ele an p o eins, such as endolysins, which may ha e biomedical applica ions o new and
p o ein-based an imic obials. Fu u e wo k will ocus on cloning and cha ac e izing K. pneu-
moniae endolysins and s udying hei lysis ac i i y and po en ial as bac e icidal p oduc s.
Supplemen a y Ma e ials:
The ollowing a e a ailable online a h ps://www.mdpi.com/a icle/10
.3390/mic oo ganisms9112252/s1. Figu e S1: MAFFT alignmen o whole 104 genomic p ophage
sequences om K. pneumoniae. Anno a ed p ophages which sha e homology wi h ou sequences we e
included. Da ke zones indica e highe iden i y. Clus e s o p ophages wi h iden i ies highe han
50% a e indica ed and numbe ed. Myo i idae, g een; Sipho i idae, blue; and mixed-clus e , yellow;
Figu e S2: Genomic ea u e o he in ac p ophage Kp4852-1 in ela ion o i s Type VI Sec e ion Sys em
componen (blue) along he downs eam egions o he p ophage inse ion si e; Figu e S3: MAFFT
alignmen o 115 p ophage endolysins (A) nucleo ides and (B) amino acids sequences ex ac ed
om K. pneumoniae p ophage sequences and 17 phage endolysins sequences ex ac ed om Klebsiella
which sha e homology wi h ou sequences. Da ke zones indica e highe iden i y: black, 90%;
da k-g ey, 70%, g ey, 50%, and ligh -g ey, 30%; Figu e S4: Ances y cha o (A) lysozyme ac i i y
(GO:0003796), (B) chi inase ac i i y (GO:0004568) and (C) endopep idase ac i i y (GO:0004175).
Table S1.
Genomic de ails o he 150 iden i ied p ophages; Table S2: P ophages classi ica ion (in ac ,
Mic oo ganisms 2021,9, 2252 18 o 21
incomple e, ques ionable). GC, guanine–cy osine. De ec i e, incomple e + ques ionable; Table S3: K.
pneumoniae p ophages pan-genome de e mined wi h Roa y o a p o ein iden i y o 40%. P ophage
genes p esen in mo e han hal o he genomes a e in bold; Table S4: Vi ulence and i ness ac o s
iden i ied o 150 p ophages o K. pneumoniae s ains; Table S5: Endolysins cha ac e iza ion.
Au ho Con ibu ions:
Concep ualiza ion, F.F.V. and A.T.M.; me hodology, F.F.V. and A.T.M.; o mal
analysis, A.T.M., F.F.V. and L.T.; in es iga ion, F.F.V., A.T.M. and J.M.B.V.; esou ces, F.F.V., A.T.M.,
A.D. and L.G.; da a cu a ion, F.F.V. and A.T.M.; w i ing—o iginal d a p epa a ion, A.T.M. and F.F.V.;
w i ing— e iew and edi ing, A.T.M., F.F.V., J.M.B.V., A.D., L.G. and L.T.; isualiza ion, A.T.M., F.F.V.,
J.M.B.V., A.D. and L.T.; supe ision, F.F.V.; p ojec adminis a ion, F.F.V.; unding acquisi ion, F.F.V.
All au ho s ha e ead and ag eed o he published e sion o he manusc ip .
Funding:
F.F.V. is unded by Fundação pa a a Ciência e a Tecnologia (FCT) h ough an Assis-
an Resea che g an CEECIND/03023/2017, and a p ojec g an (PTDC/BTM-SAL/28978/2017)
ha suppo ed his wo k. The wo k is pa ially suppo ed by Na ional unds om FCT, p ojec s
UIDB/04138/2020 and UIDP/04138/2020.
Da a A ailabili y S a emen :
Da a a e con ained wi hin he a icle o supplemen a y da a. In ac
p ophage sequences we e deposi in GenBank unde he accession OK490394-OK490474.
Con lic s o In e es : The au ho s decla e no con lic o in e es .
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