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Bioinformatic discovery and initial characterisation of nine novel antimicrobial peptide genes in the chicken

Abstract

Antimicrobial peptides (AMPs) are essential components of innate immunity in a range of species fromDrosophila to humans and are generally thought to act by disrupting the membrane integrity of microbes. In order to discover novel AMPs in the chicken, we have implemented a bioinformatic approach that involves the clustering of more than 420,000 chicken expressed sequence tags (ESTs). Similarity searching of proteins' predicted to be encoded by these EST clusters for homology to known AMPs has resulted in the in silico identification of full-length sequences for seven novel gallinacins (Gal-4 to Gal-10), a novel cathelicidin and a novel liver-expressed antimicrobial peptide 2 (LEAP-2) in the chicken. Differential gene expression of these novel genes has been demonstrated across a panel of chicken tissues. An evolutionary analysis of the gallinacin family has detected sites primarily in the mature AMP that are under positive selection in these molecules. The functional implications of these results are discussed.

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Bioinformatic discovery and initial characterisation of nine novel antimicrobial peptide genes in the chicken

Author: Lynn, David J.,Higgs, Rowan,Gaines, Susan,Tierney, Joanna,James, Tharappel,Lloyd, Andrew T.,Fares, Mario A.,Mulcahy, Grace,O'Farrelly, Cliona
Publisher: Springer-Verlag
Year: 2004
Source: https://mural.maynoothuniversity.ie/id/eprint/319/1/41peptide.pdf
Immunogene ics (2004) 56: 170–177
DOI 10.1007/s00251-004-0675-0
ORIGINAL PAPER
Da id J. Lynn .Rowan Higgs .Susan Gaines .
Joanna Tie ney .Tha appel James .And ew T. Lloyd .
Ma io A. Fa es .G ace Mulcahy .Cliona O’Fa elly
Bioin o ma ic disco e y and ini ial cha ac e isa ion o nine no el
an imic obial pep ide genes in he chicken
Recei ed: 30 Janua y 2004 / Re ised: 22 Ma ch 2004 / Accep ed: 22 Ma ch 2004 / Published online: 18 May 2004
#Sp inge -Ve lag 2004
Abs ac An imic obial pep ides (AMPs) a e essen ial
componen s o inna e immuni y in a ange o species
omD osophila o humans and a e gene ally hough o
ac by dis up ing he memb ane in eg i y o mic obes. In
o de o disco e no el AMPs in he chicken, we ha e
implemen ed a bioin o ma ic app oach ha in ol es he
clus e ing o mo e han 420,000 chicken exp essed
sequence ags (ESTs). Simila i y sea ching o p o eins—
p edic ed o be encoded by hese EST clus e s— o
homology o known AMPs has esul ed in he in silico
iden i ica ion o ull-leng h sequences o se en no el
gallinacins (Gal-4 o Gal-10), a no el ca helicidin and a
no el li e -exp essed an imic obial pep ide 2 (LEAP-2) in
he chicken. Di e en ial gene exp ession o hese no el
genes has been demons a ed ac oss a panel o chicken
issues. An e olu iona y analysis o he gallinacin amily
has de ec ed si es—p ima ily in he ma u e AMP— ha a e
unde posi i e selec ion in hese molecules. The unc ional
implica ions o hese esul s a e discussed.
Keywo ds Chicken .De ensins .An imic obial pep ide .
Inna e immune sys em
In oduc ion
An imic obial pep ides (AMPs), essen ial componen s o
inna e hos de ence in species as di e se as plan s, lies
and mammals a e gene ally hough o ac by dis up ing
he memb ane in eg i y o mic obes (Kagan e al. 1990;
Sa chell e al. 2003). In an age when an ibio ic esis ance
is an inc easing p oblem, hese pep ides a e o in e es as
po en ial no el pha maceu ical agen s. In e eb a es, he e
a e wo majo amilies o AMPs: de ensins and ca he-
licidins. In mammals, α-de ensins and β-de ensins a e wo
s uc u ally dis inc ca ionic, cys eine- ich AMPs, which
di e in size and in he spacing o a six-cys eine s uc u al
mo i (Liu e al. 1997). α-de ensins a e unique o
mammals, bu β-de ensins a e much mo e widely
dis ibu ed and, in he chicken, ou β-de ensins, known
as gallinacins, ha e been desc ibed o da e (E ans e al.
1994; Ha wig e al. 1994; Zhao e al. 2001). Homologous
pep ides ha e also been desc ibed in he u key (E ans e
al. 1994; Zhao e al. 2001). Gal-1, Gal-1αand Gal-2 we e
isola ed om chicken he e ophils, while Gal-3 was shown
o be cons i u i ely exp essed in he epi helia o a ange o
issues and o be inducible in he achea ollowing
in ec ion (Zhao e al. 2001). Gallinacins exhibi a iable
ac i i y agains a numbe o G am-posi i e and G am-
nega i e bac e ia, and Gal-1 and Gal-1αa e ac i e agains
he yeas Candida albicans (E ans e al. 1995; Ha mon
1998).
Ca helicidins a e a amily o highly di e se AMPs bu
a e all encoded by p ep opep ides con aining highly
D. J. Lynn .R. Higgs .S. Gaines .T. James .A. T. Lloyd .
C. O’Fa elly (*)
Educa ion and Resea ch Cen e, S . Vincen ’s Uni e si y
Hospi al,
4 Dublin, I eland
e-mail: [email p o ec ed]
Tel.: +353-1-2094940
Fax: +353-1-2838123
D. J. Lynn .R. Higgs
Depa men o Medicine, Uni e si y College Dublin,
4 Bel ield, Dublin, I eland
T. James
Moyne Ins i u e o P e en i e Medicine, T ini y College
Dublin,
2 Dublin, I eland
A. T. Lloyd
Depa men o Gene ics, T ini y College Dublin,
2 Dublin, I eland
J. Tie ney .G. Mulcahy
Depa men o Mic obiology and Pa asi ology, Facul y o
Ve e ina y Medicine, Uni e si y College Dublin,
4 Bel ield, Dublin, I eland
M. A. Fa es
Biology Depa men , Na ional Uni e si y o I eland,
Maynoo h, I eland
Conway Ins i u e, Uni e si y College Dublin,
4 Bel ield, Dublin, I eland
conse ed ca helin domains. To da e, ca helicidins ha e
only been desc ibed in mammals, including humans,
monkeys, ho ses, ca le, sheep, goa s, pigs, abbi s, mice
and guinea pig ( o e iew, see Ramana han e al. 2002).
Each species has a iable numbe s o ca helicidin genes;
a iodac yls in pa icula ha e high copy numbe s (Scocchi
e al. 1997), whe eas humans and mice ha e only one gene
copy each (Age be h e al. 1995; Cowland e al. 1995;
Gallo e al. 1997; La ick e al. 1995). Neu ophils a e a
pa icula ly ich sou ce o ca helicidins in a a ie y o
species. In humans, ca helicidins ha e also been ound o
be exp essed in se e al o he issues, including he es is
(Age be h e al. 1995; Malm e al. 2000), squamous
epi helia (F ohm Nilsson e al. 1999; Nize e al. 2001),
ai way epi helia (Bals e al. 1998), swea glands
(Mu akami e al. 2002b), sali a y glands (Mu akami e
al. 2002a) and colon (Hase e al. 2002). Ca helicidins ha e
a wide spec um o an imic obial ac i i y and ha e been
shown o be ac i e agains G am-nega i e and G am-
posi i e bac e ia (T a is e al. 2000), ungi (Shin e al.
2000) and en eloped i uses (Tamamu a e al. 1995).
Ac i i y agains a pa icula mic obe depends on he ype
o ma u e pep ide and he species om which i o igina es.
In his s udy, we desc ibe a bioin o ma ics app oach o
he iden i ica ion o no el AMPs in he chicken. This
me hod in ol es homology sea ching o clus e ed chicken
exp essed sequences ags (ESTs) by BLAST (Al schul e
al. 1997) and by he mo e sensi i e hidden Ma ko model
(HMM) p o ile sea ching (Eddy 1998). Ou app oach has
iden i ied eigh no el an imic obial pep ides, se en
gallinacins and one ca helicidin in he chicken. We show
ha all hese pep ides as well as li e -exp essed an imi-
c obial pep ide 2 (LEAP-2)—an AMP we ha e p e iously
iden i ied in chicken (Lynn e al. 2003)—a e exp essed a
he mRNA le el in a panel o chicken issues. Fu he -
mo e, an e olu iona y analysis o he gallinacin amily has
p o ided e idence ha ce ain amino acid si es in he
ac i e pep ide a e subjec o posi i e selec ion.
Ma e ials and me hods
F om he dbEST Web si e (h p://www.ncbi.nlm.nih.go /dbEST/),
422,426 chicken ESTs we e downloaded. P io o he clus e ing
s ep, epea sequences in he ESTs we e masked using Repea Mas-
ke (Smi and G een, unpublished), and con aminan sequences we e
emo ed using SeqClean (h p://www. ig .o g/ db/ gi/so wa e/) o
minimize alse clus e ing due o spu ious EST simila i y.
The ESTs we e hen clus e ed using The Ins i u e o Genomic
Resea ch Gene Indices clus e ing ools (TGICL) (Pe ea e al. 2003)
(a ailable om h p://www. ig .o g/ db/ gi/so wa e/). ESTs we e
clus e ed i hey sha ed mo e han 30 bp o a leas 95% iden i y. The
clus e ed con ig sequences a e a ailable a h p://www.bin .o g/
immunogene ics/con igs. a.
The sequences o each clus e we e pos -p ocessed wi h
ESTScan (Iseli e al. 1999). ESTScan de ec s and econs uc s
po en ial coding egions in ESTs, using a no el HMM me hod ha
can au oma ically co ec o ame-shi e o s. F om he coding
egions, he p edic ed p o ein can be de e mined (a ailable a h p://
www.bin .o g/immunogene ics/es scanp edic ions. a). A da abase o
known AMPs, as iden i ied by an SRS sea ch (h p://s s.ebi.ac.uk/)
o he Swissp o -T embl p o ein da abase was cons uc ed and is
a ailable a h p://e cbin o1.ucd.ie/APPDb/. All AMPs om his
da abase we e sea ched agains he clus e ed EST con igs and he
da abase o p o eins p edic ed by ESTScan om he EST clus e s
using he BLAST p og ams, wi h an E- alue cu -o o 0.001
(Al schul e al. 1997). Molecula weigh and ne cha ge o he
comple e chicken p o eins we e p edic ed using he P o Pa am ool
(h p://www.expasy.o g/ ools/p o pa am.h ml).
To sea ch o no el an imic obial p o eins ha could ha e been
missed by BLAST, we cons uc ed HMMs o a numbe o AMP
amilies. All he sequences anno a ed as ei he α-de ensins,
ca helicidins o hepcidins in he P am da abase (Ba eman e al.
2002)—a manually cu a ed and anno a ed collec ion o p o ein
amilies (h p://www.sange .ac.uk/So wa e/P am)—we e ex ac ed.
The gallinacin amily is no ep esen ed in he P am da abase, so all
known gallinacin sequences we e ex ac ed om he Na ional
Cen e o Bio echnology In o ma ion GenPep p o ein da abase.
These sequences included Gal-1 (P46156), Gal-1α(Q9DG59), Gal-
2 (P46158), Gal-3 (Q9DG58), u key he e ophil pep ide-1 (THP1)
(P80391), THP2 (P80392) and u key β-de ensin (TBD) (Q9DG57).
To c ea e an HMM p o ile o each amily, all cons i uen sequences
o AMPs we e aligned using he T-Co ee p og am (No edame e al.
2000), and hese alignmen s we e used as inpu o he HMMER,
e sion 2.1.1, sui e o p og ams (Eddy 1998) (h p://hmme .wus l.
edu/). The HMM o each amily was cons uc ed using he
Table 1 PCR p ime sequences and p edic ed p oduc leng hs
Ta ge mRNA
a
5′P ime 3′P ime P oduc
size (bp)
Gal-1 5′-GAAATGCTCAAGATTTCACCTCTG-3′5′-CCTTTATTCAGCAGAGAAAAGCAG-3′231
Gal-2 5′-GCATAAACACTTCATGAGTCCATC-3′5′-GAAGAAAGGCAGTGCAGAAGATA-3′166
Gal-3 5′-CCTTCTTCCTCTTGTTTCTCCAG-3′5′-ATCAACCTCATATGCTCTTCCAC-3′158
Gal-4 5′-GATCCTTTACCTGCTGCTGTCT-3′5′-TCCTCACACAGCAAGATTTTAGTC-3′185
Gal-5 5′-GATCCTTTACCTGCTGCTGTCT-3′5′-AGCAAGAGCCTATTCCATTGTTAC-3′176
Gal-6 5′-ATGAGAATCCTTTTCTTCCTTGTTGC-3′5′-TTAGGAGCTAGGTGCCCATTTGCAGC-3′201
Gal-7 5′-ATCGTGCTCCTCTTTGTGGCAGTTCA-3′5′-CTACAACCATCTACAGCAAGAATACT-3′171
Gal-8 5′-CTGTTCTCCTCTTCCTCTTCCAG-3′5′-AATCTTGGCACAGCAGTTTAACA-3′170
Gal-9 5′-ATGCAGATCCTGCCTCTCCTCTTTGCT-3′5′-TCAGGAATACCATCGGCTCCGGCAGCAGAA-3′201
Gal-10 5′-ATGAGGAACCTTTGTTTCGTGT-3′5′-TCAGGTCTTGGTGGGAGTTGGTG-3′198
LEAP-2 5′-CACCATGCACTGTTTGAAAATTATGGCA-3′5′-TCACTCGGAGGCCGTTCTAAGGAA-3′235
Ca helicidin 5′-CACCATGCTGAGCTGCTGGGTGCTGCTG-3′5′-TCACTTCTTCTTGATCGCCCGGTA-3′451
β-ac in 5′-GCGCTCGTTGTTGACA-3′5′-TCATCCCAGTTGGTGACA-3′206
a
Gal-Gallinacin, LEAP-2 li e -exp essed an imic obial pep ide 2
171
hmmbuild p og am, and hmmcalib a e was used o calib a e E- alue
sco es. The HMM p o iles we e hen used o sea ch agains he
da abase o p o eins p edic ed by ESTScan om he EST clus e s
using he hmmsea ch p og am.
E olu iona y analysis o he gallinacins
A mul iple-sequence alignmen o he gallinacin amily o AMPs
(including he no el sequences and he homologous u key
sequences) was cons uc ed using he T-Co ee p og am (No edame
e al. 2000). A neighbo -joining phylogene ic ee was in e ed om
he p o ein alignmen using MEGA, e sion 2.1, wi h he Poisson
co ec ed model implemen ed (Kuma e al. 2001). One housand
boo s ap eplica es we e ca ied ou o es he signi icance o each
node in he ee. To cons uc an alignmen o he coding sequences,
he p o ein alignmen was used as a empla e and a ‘copygaps’Pe l
sc ip was used o align he DNA, main aining he gaps ha we e
p esen in he p o ein alignmen . Any columns in he DNA
alignmen ha had mo e han h ee gap cha ac e s we e emo ed.
The opology o he neighbo -joining ee and he DNA alignmen
we e used as inpu o he CODEML and CODEMLSITES p og ams
om he PAML package, e sion 3.12 (Yang 1997), o es o
e idence o posi i e selec ion du ing he e olu ion o he
gallinacins.
The p inciple in ol ed in such es s is o compa e he a es o
synonymous (d
S
) and non-synonymous (amino acid changing: d
N
)
changes among he DNA sequences. I amino acid changes a e
selec i ely neu al (i.e. mu a ions ha a e nei he ad an ageous o
dele e ious), hey will be ixed a he same a e as synonymous
mu a ions and ω a io (d
N
/d
S
)=1. ω alues >1 a e aken o indica e
ha amino acid changes a e accumula ing a a as e a e han is
accep able unde a neu al mu a ion model. Tha is o say, he a e o
amino acid changes (d
N
) signi ican ly exceeds he a e o
synonymous changes (d
S
) a he DNA le el. The CODEML
p og am es s o a iable selec i e p essu es among lineages in
he phylogeny by looking o signi ican di e ences in ω a ios. To
es o a iable selec i e p essu es among phylogene ic lineages,
he one- a io model, which assumes an equal ω a io o all b anches
in he phylogeny, was compa ed o he ee- a ios model, which
allows an independen ω a io o each b anch (Yang 1998; Yang
and Nielsen 1998). The esul o his p og am is a log-likelihood
alue o each model. To es which is he a ou ed model, he log-
likelihood alues o each model a e compa ed by a likelihood a io
es (LRT). Twice he log-likelihood di e ence be ween he wo
models is compa ed o a χ
2
dis ibu ion wi h n−1d , whe e nis he
numbe o b anches o he phylogeny. I a signi ican P- alue is
ob ained, i can be concluded ha he ee- a ios model is he
a ou ed model, and b anches on he phylogeny wi h ω alues >1
a e subjec o posi i e selec ion.
Posi i e selec ion in amino acid si es
Ano he way o looking o posi i e selec ion is o look o
signi ican a iabili y in ω a ios among amino acid si es in he
mul iple-sequence alignmen (Nielsen and Yang 1998). The
CODEMLSITES p og am de e mines whe he any o six p og es-
si ely mo e complex models o e olu ion a e signi ican ly be e a
explaining he obse ed a ia ion in he da ase (Yang e al. 2000).
The i s es compa es he models M0 and M3. Model M0 is an
e olu iona y model whe eby all he amino acid si es ha e a single ω
alue. This model is compa ed o M3, which classi ies he amino
acid si es in o one o h ee classes, wi h he p opo ion o si es
belonging o a pa icula class and he ω alues o each class o si e
es ima ed by CODEMLSITES om he da a. M3 is a es o amino
acid si es subjec o posi i e selec ion, as i allows o he p esence
o si es wi h ω>1.
The second es compa es he models M1 and M2. M1 is a model
o neu al e olu ion whe e amino acid si es can be conse ed (ω=0)
o neu ally e ol ing (ω=1). Model M2 is a es o selec ion, as i
allows o he p esence o si es whe e ωis a ee pa ame e and as
such can ha e a alue >1.
The inal es , which compa es he models M7 and M8, is he
mos s ingen es . M7 allows o si es wi h ω alues ha ollow a
βdis ibu ion o alues be ween ω= 0 and ω=1. Model M8 is he
same as M7 bu allows o he p esence o si es wi h ω>1, and
compa ing hese wo models is a es o selec ion.
As wi h he es o posi i e selec ion among lineages, CODEML-
SITES es ima es a log-likelihood alue o each model. To es
which a e he a ou ed models, he log-likelihood alues o M0
e sus M3, M1 e sus M2 and M7 e sus M8 we e compa ed by
LRTs. Pos e io Bayesian p obabili ies we e calcula ed o de e mine
which amino si es belong o which si e classes (Nielsen and Yang
1998). I signi ican a iabili y is e ealed, hen hose si es, which
ha e ω>1 and high pos e io p obabili ies, a e likely o be unde
posi i e, di e si ying selec ion.
Exp ession o AMPs in chicken issue
One-day-old male chickens (Cobb 500 b oile ) we e pu chased om
he Knocknaga m Ha che y, hen housed in a loo pen in he
Biomedical Facili y, Uni e si y College Dublin, Bel ield, Dublin,
I eland. En i onmen al empe a u e was kep a a cons an 25°C.
Animals we e ed comme cial coccidios a - ee s a e /g owe a ion
and wa e ad lib. One bi d was sac i iced a 3 weeks o age by
in a enous pen oba bi one sodium inocula ion. The issues we e
quickly dissec ed, squeezed be ween Wha man il e pape o
emo e excess blood, insed in saline and snap ozen in liquid
ni ogen. Tissues we e s o ed a −80°C un il p ocessed u he .
Following pul e isa ion o he issues using a Mik o-Dismemb a o
U (B. B aun Bio ech In e na ional), o al cellula RNA was pu i ied
using he RNeasy Ki (Qiagen, Wes Sussex, UK) acco ding o he
manu ac u e ’s ecommenda ions. Spec ophome ic analysis was
pe o med in o de o assess he quan i y and quali y o o al RNA.
Single-s anded cDNA was syn hesised om 1 μg RNA using oligo-
dT p ime (P omega, Madison, Wis.) and Omnisc ip (Qiagen). The
AMP-speci ic cDNAs we e ampli ied by PCR using Taq polyme ase
(Qiagen) and p ime s designed in e nally om he coding sequence
o Gal-1 o Gal-10, LEAP-2, ca helicidin and β-ac in. Thi y cycles
(94°C o 30 s, 55°C o 30 s and 72°C o 30 s) we e used o
ampli ica ion. PCR p oduc s we e sepa a ed by elec opho esis on
e hidium b omide-s ained 2% aga ose gels and isualised using
Eagle Eye (S a agene, La Jolla, Cali .). A lis o PCR p ime
sequences and p oduc leng hs a e shown in Table 1.
cDNA cloning
Posi i e issues om he abo e exp ession panel we e chosen as
sou ce ma e ial o each speci ic gene. The cDNA was ampli ied as
desc ibed abo e bu using P u DNA polyme ase (P omega) and
gene-speci ic p ime s wi h CACC o e hangs ups eam o he s a
codon, hus p o iding he complemen a y sequence necessa y o
di ec ional cloning. The ampli ied cDNA was pu i ied (GenElu e
PCR Clean-up Ki , Sigma, S . Louis, Mo.), and liga ed in o he
pcDNA 3.1 cloning ec o (In i ogen, G oningen, The Ne he -
lands). Cloned plasmids we e sequenced (Ad anced Bio echnology
Cen e, London, UK), using ec o -speci ic p ime s and compa ed
o he EST consensus sequence.
Resul s
In he absence o comple e genome sequence, ESTs a e a
ich sou ce o no el sequence in o ma ion. By de ini ion,
ESTs a e sho , e o -p one sequences. Clus e ing o ESTs
ha a e likely o be encoded by he same mRNA educes
he edundancy in he EST da abase, imp o es he
172
sequence quali y and inc eases he sequence co e age o a
pa icula clus e .
By implemen ing a bioin o ma ic app oach ha in-
ol es he clus e ing o mo e han 420,000 chicken ESTs,
we ha e iden i ied eigh no el AMPs in he chicken.
Clus e ing o hese ESTs esul ed in he gene a ion o
34,819 chicken con igs and om his, 29,344 coding
sequences we e p edic ed. Gi en es ima es o he gene
numbe in human o 30,000 (Pennisi 2003), we expec o
ha e a leas pa ial sequence in o ma ion o mos chicken
genes. TBLASTN sea ches (which sea ches p o ein
que ies agains a nucleo ide da abase) o known AMPs
agains he clus e ed EST con igs iden i ied i e con igs
wi h homology o he β-de ensins, which we ha e named
Gal-4 o Gal-8. These sea ches also iden i ied a no el
chicken ca helicidin. BLASTP sea ches (which sea ches
p o ein que ies agains a p o ein da abase ansla ed in all
six eading ames) o p o eins, p edic ed by ESTScan o
be encoded by hese EST clus e s, ailed o iden i y any
o he gallinacins o ca helicidins.
Due o hei small size and poo sequence conse a ion,
sea ching o no el AMPs by con en ional homology
sea ch ools such as BLAST (Al schul e al. 1997) may
mean ha signi ican hi s a e missed. Howe e , he
p esence o conse ed mo i s makes hese pep ides good
candida es o HMM p o ile sea ching. An HMM p o ile
is a p obabilis ic model o a p o ein amily mul iple-
sequence alignmen , which uses posi ion-speci ic sco es o
indica e he likelihood o each amino acid occu ing in
each posi ion in he alignmen (Eddy 1998). To sea ch o
no el AMPs ha could be missed by BLAST, we
cons uc ed HMM p o iles o a numbe o AMP amilies,
including α-de ensins, gallinacins, ca helicidins and
hepcidins. The HMM p o iles we e hen used o sea ch
agains he da abase o p o eins p edic ed by ESTScan
om he EST clus e s. This me hod iden i ied wo
addi ional gallinacins (Gal-9 and Gal-10). Fu he mo e,
his app oach also led o he iden i ica ion o a gallinacin-
like sequence ha has unusual cys eine spacing. The e is
e idence om o he species ha β-de ensins wi h
al e na i e cys eine mo i s a e s ill ac i e as AMPs
(Maxwell e al. 2003).
We ha e cloned and sequenced all he no el AMPs
iden i ied in his s udy and submi ed he sequences o
GenBank. The accession numbe s and p ope ies o he
p edic ed encoded p o eins a e summa ised in Table 2. All
he sequences we e in ag eemen wi h he EST p edic ions,
excep o Gal-10, which had a single synonymous change
a base posi ion 159 om C o T. We ha e examined he
exp ession o he known gallinacins (Gal-1–Gal-3), he
no el gallinacins (Gal-4–Gal-10), ca helicidin and LEAP-
2 in a panel o 21 di e en issues om a heal hy 3-week-
old chicken (Fig. 4). These issues co e he diges i e
sys em, he espi a o y sys em, he geni o-u ina y sys em
and se e al o he a eas o he chicken ana omy.
The known gallinacins Gal-1 and Gal-2 a e exp essed
s ongly in he bone ma ow and he lung, as has been
p e iously shown (Zhao e al. 2001). Howe e , we ha e
also shown s ong exp ession o Gal-1 and Gal-2 in he
es is, mode a e exp ession in he bu sa and in es ine and
low exp ession in he cloaca, gall bladde , b ain and
panc eas. Gal-2 is also exp essed a low le els in he
achea, ai sacs and spleen. The hi d known gallinacin,
Gal-3, was exp essed in he ongue and bone ma ow, as
has p e iously been shown (Zhao e al. 2001), howe e ,
we ound no Gal-3 exp ession in o he issues.
The no el gallinacins (Gal-4–Gal-10) exhibi a iable
exp ession ac oss mos o he issues examined, wi h
di e en gallinacins being exp essed in di e en issues.
The phylogene ically ela ed Gal-4 and Gal-5 show a
simila pa e n o exp ession, as does Gal-7, wi h all h ee
being highly exp essed in he bone ma ow and es is. Gal-
8 is also s ongly exp essed in he es is, and along wi h
Gal-6 shows e y s ong exp ession in he li e , gall
bladde and kidneys. Gal-9 is he only no el gallinacin o
be exp essed in he ongue and also shows low exp ession
in he oesophagus, achea, b ain and bone ma ow whils
Gal-10 shows low exp ession in he la ge in es ine,
kidneys and es is.
In addi ion o LEAP-2 being highly exp essed in he
li e , simila le els o exp ession we e ound in he
Fig. 1 Neighbo -joined ee o he gallinacin amily o AMPs.
Cons uc ed using MEGA, e sion 2.1 (Poisson co ec ed model,
1,000 boo s ap eplica es). B anches wi h less han 50% boo s ap
suppo ha e been collapsed. GAL1–10 Gallinacins (Gal-) 1–10,
GAL1A Gal-1α,THP u key he e ophil pep ide, TBD u key β-
de ensin, BD07 MOUSE mouse β-de ensin 7 (Q91V70)
Table 2 GenBank accession numbe s and p ope ies o no el
AMPs
Name Accession numbe Leng h (aa) M
Ne cha ge
Gal-4 AY534892 67 7.5 +8
Gal-5 AY534893 67 7.6 +7
Gal-6 AY534894 67 7.3 +3
Gal-7 AY534895 63 7.2 +8
Gal-8 AY534896 68 7.1 +2
Gal-9 AY534897 66 7.4 +4
Gal-10 AY534898 65 7.2 +2
LEAP-2 AY534899 76 8.8 +8
Ca helicidin AY534900 148 16.1 +2
173
in es ine, gall bladde and kidneys. These esul s a e
consis en wi h s udies o human LEAP-2, which is also
exp essed in he li e , kidney and colon (K ause e al.
2003). Chicken ca helicidin is exp essed ac oss a wide
a ie y o issues, bu shows pa icula ly high le els o
exp ession in he bu sa, es is and bone ma ow, and is he
only no el AMP o show exp ession in he gizza d.
E olu iona y analysis o he gallinacins
We ha e pe o med an e olu iona y analysis o he
gallinacin amily and ha e de ec ed si es ha a e unde
posi i e selec ion in hese molecules. A neighbo -joining
phylogene ic ee was econs uc ed om he amino acid
alignmen (Fig. 1). This ee opology was used in he
subsequen analyses o de ec adap i e e olu ion. To es
o a iable ω a ios among phylogene ic lineages, he one-
a io model (Goldman and Yang 1994)—which assumes
he same ω a io o all lineages—was compa ed using he
LRT o he ee- a io model (Yang 1998), which assumes
an independen ω a io o each b anch. The ee- a io
model is no signi ican ly be e han he one- a io model
(P>0.5) bu does, howe e , p edic a iable ω alues
among lineages, some o which a e g ea e han 1 (Fig. 2).
Since he LRT did no e eal a signi ican di e ence, we
canno conclude ha he e is e idence o posi i e selec ion
among he gallinacin lineages.
To es o posi i e selec ion a indi idual amino acid
si es, LRTs we e ca ied ou be ween model M0 and M3,
M1 and M2, and M7 and M8. All 3 models (M2, M3 and
M8) which allow o selec ion (Table 3) a e signi ican ly
a ou ed o e he o he models (P<0.001) in all cases
(Table 4). Gallinacins a e encoded as p ep opep ides ha
a e p o eoly ically clea ed o elease he C- e minal AMP.
All o he si es p edic ed o be subjec o posi i e selec ion
a e loca ed in he ma u e AMP and no in he p ep opep-
ide egion (Fig. 3a), sugges ing unc ional signi icance.
The si es p edic ed o be subjec o posi i e selec ion ha e
been displayed supe imposed on he h ee-dimensional
s uc u e o mouse β-de ensin 7, a ela ed molecule o
which a h ee-dimensional s uc u e is a ailable (Fig. 3b).
The si es unde posi i e selec ion occu h oughou he
molecule and no pa icula pa e n o clus e ing o si es is
disce nable.
Discussion
We ha e applied a bioin o ma ics app oach ha in ol es
he clus e ing o mo e han 420,000 ESTs o he iden i-
ica ion o no el AMPs in he chicken. This app oach has
Table 3 E idence o adap i e e olu ion among si es in chicken gallinacins. ℓLog-likelihood alue o model, d
N
/d
S
Ra io o a es o
synonymous (d
S
) and non-synonymous (amino acid changing: d
N
) changes among he DNA sequences
Model ℓd
N
/d
S
Posi i ely Selec ed Si es
M0—one- a io −2,662.94 0.5834
M1—neu al −2,581.48 0.8923
M2—selec ion −2,541.32 2.5815 25,29,30,33,34,39,42,45,47,49,52,54,55,57,58,63,65
M3—disc e e −2,516.42 1.2094 21,23,24,25,26,27,28,29,30,32,33,34,35,39,42,45,46, 47,48,49,52,54,55,56,57,58,61,62,63,64,65
M7—β−2,531.96 0.6170
M8—βand ω−2,516.42 1.2987 25,29,30,42,45,52,57,63,65
Fig. 2 Phylogeny o gallinacins. B anch leng hs we e es ima ed by
maximum likelihood unde he ee- a io model, which assumes an
independen ω alue o each b anch. B anches wi h no ω alues
shown had alues=∞.ω alues >1 a e shown in bold ace
Table 4 Likelihood a io es o de ec adap i e e olu ion
Models 2Δℓχ
2
alue d P- alue
M1 e sus M2 2(−2581.48–2541.32) 80.32 2 <0.001
M0 e sus M3 2(−2662.94–2541.32) 243.24 4 <0.001
M7 e sus M8 2(−2531.96–2516.42) 31.08 2 <0.001
174

Fig. 3 a Si es p edic ed o be unde posi i e selec ion in he
gallinacins. Si es p edic ed o be unde posi i e selec ion a e
highligh ed in he mul iple-sequence alignmen . Si es shown in ed
a e hose si es p edic ed o be unde posi i e selec ion (model M8).
Pos e io p obabili ies o hese si es a e all g ea e han 0.95. Si es
shown in blue a e he si es ha 100% conse ed ac oss all
ope a ional axonomic uni s (OTUs). The ma u e AMP o Gal-1
is highligh ed. bThe s uc u e o he ma u e mouse β-de ensin 7
(PDB en y = 1E4T) was displayed using RasMol, e sion 2.7.2.1
(h p://www.open asmol.o g/so wa e/ asmol/). Si es shown in ed
a e hose si es p edic ed o be unde posi i e selec ion in he
gallinacins. Si es shown in blue a e he si es ha 100% conse ed
ac oss all OTUs
Fig. 4 Exp ession o Gal-1–
Gal-10, ca helicidin (Ca h) and
li e -exp essed an imic obial
pep ide 2 (LEAP-2) in a panel o
issues om a heal hy chicken. 1
ongue, 2oesophagus, 3p o-
en iculus, 4c op, 5gizza d, 6
li e , 7small in es ine, 8
LARGE in es ine, 9cloaca, 10
bu sa o Fab icius, 11 gall blad-
de , 12 achea,13 lung, 14 ai
sacs, 15 b ain, 16 skin, 17
kidney, 18 spleen, 19 panc eas,
20 es is, 21 bone ma ow
175
iden i ied nine no el AMPs, se en o which a e
gallinacins, one a ca helicidin and one a LEAP-2 (Lynn
e al. 2003). We ha e shown he di e en ial exp ession o
hese genes in a panel o issues om a single chicken and
ha e cloned and sequenced he mRNAs encoding hese
no el AMPs. Iden i ica ion o hese AMPs in he chicken
will aid in he s udy o he inna e immune esponse o he
chicken, economically an impo an species. Mo eo e ,
hese no el AMPs may be exploi ed o he de elopmen
o new he apeu ic agen s o economically signi ican
chicken diseases such as coccidiosis, which esul s in a
loss o he wo ld poul y indus y ha is es ima ed a $700
million annually. These AMPs could be po en ially
de eloped as na u al al e na i es o he a i icial an ibio ics
ha a e commonly ed o chickens and which a e o
g owing public conce n.
In his s udy, we ha e also de ec ed posi i e selec ion a
se e al amino acid si es loca ed in he ac i e an imic obial
pep ide egion o he gallinacin amily o an imic obial
pep ides. I is likely ha as bi ds e ol ed o occupy new
niches, hey we e aced wi h new anges o mic obial
pa hogens. E olu ion o an imic obial pep ides wi h new
sensi i i ies capable o a ge ing no el in ec ious agen s
would con e a selec i e ad an age. The e is expe imen al
e idence ha gallinacin pep ides a e di e se in hei
po ency agains di e en pa hogens. Fo example, Gal-1
and Gal-1αa e ac i e agains he yeas Candida albicans,
whe eas he o he s es ed so a do no show ac i i y
(E ans e al. 1995; Ha mon 1998). Ou esul s indica e
ha gallinacins ha e been subjec o adap i e e olu ion o
inc ease he s uc u al and unc ional di e si y o his
p o ein amily. This is an e ec i e esponse in an a ms
ace agains an inc easing di e si y o mic obial pa ho-
gens.
Acknowledgemen s This esea ch was suppo ed by he Food
Ins i u ional Resea ch Measu e g an no. 01/R&D/D/135 om he
I ish Depa men o Ag icul u e, Food and Ru al De elopmen . All
expe imen s desc ibed in his manusc ip comply wi h he cu en
laws o he Republic o I eland. Au ho s Da id Lynn and Rowan
Higgs con ibu ed equally o his wo k.
Re e ences
Age be h B, Gunne H, Odebe g J, Kogne P, Boman HG,
Gudmundsson GH (1995) FALL-39, a pu a i e human pep ide
an ibio ic, is cys eine- ee and exp essed in bone ma ow and
es is. P oc Na l Acad Sci USA 92:195–199
Al schul SF, Madden TL, Scha e AA, Zhang J, Zhang Z, Mille W,
Lipman DJ (1997) Gapped BLAST and PSI-BLAST: a new
gene a ion o p o ein da abase sea ch p og ams. Nucleic Acids
Res 25:3389–3402
Bals R, Wang X, Zaslo M, Wilson JM (1998) The pep ide
an ibio ic LL-37/hCAP-18 is exp essed in epi helia o he
human lung whe e i has b oad an imic obial ac i i y a he
ai way su ace. P oc Na l Acad Sci USA 95:9541–9546
Ba eman A, Bi ney E, Ce u i L, Du bin R, E wille L, Eddy SR,
G i i hs-Jones S, Howe KL, Ma shall M, Sonnhamme EL
(2002) The P am p o ein amilies da abase. Nucleic Acids Res
30:276–280
Cowland JB, Johnsen AH, Bo egaa d N (1995) hCAP-18, a
ca helin/p o-bac enecin-like p o ein o human neu ophil spe-
ci ic g anules. FEBS Le 368:173–176
Eddy SR (1998) P o ile hidden Ma ko models. Bioin o ma ics
14:755–763
E ans EW, Beach GG, Wunde lich J, Ha mon BG (1994) Isola ion
o an imic obial pep ides om a ian he e ophils. J Leukoc Biol
56:661–665
E ans EW, Beach FG, Moo e KM, Jackwood MW, Glisson JR,
Ha mon BG (1995) An imic obial ac i i y o chicken and
u key he e ophil pep ides CHP1, CHP2, THP1, and THP3. Ve
Mic obiol 47:295–303
F ohm Nilsson M, Sands ed B, So ensen O, Webe G, Bo egaa d
N, S ahle-Backdahl M (1999) The human ca ionic an imic o-
bial p o ein (hCAP18), a pep ide an ibio ic, is widely exp essed
in human squamous epi helia and colocalizes wi h in e leukin-
6. In ec Immun 67:2561–2566
Gallo RL, Kim KJ, Be n ield M, Kozak CA, Zane i M, Me luzzi L,
Genna o R (1997) Iden i ica ion o CRAMP, a ca helin- ela ed
an imic obial pep ide exp essed in he emb yonic and adul
mouse. J Biol Chem 272:13088–93
Goldman N, Yang Z (1994) A codon-based model o nucleo ide
subs i u ion o p o ein-coding DNA sequences. Mol Biol E ol
11:725–736
Ha mon BG (1998) A ian he e ophils in in lamma ion and disease
esis ance. Poul y Sci 77:972–977
Ha wig SS, Swide ek KM, Kok yako VN, Tan L, Lee TD,
Panyu ich EA, Aleshina GM, Shamo a OV, Leh e RI (1994)
Gallinacins: cys eine- ich an imic obial pep ides o chicken
leukocy es. FEBS Le 342:281–285
Hase K, Eckmann L, Leopa d JD, Va ki N, Kagno MF (2002) Cell
di e en ia ion is a key de e minan o ca helicidin LL-37/
human ca ionic an imic obial p o ein 18 exp ession by human
colon epi helium. In ec Immun 70:953–963
Iseli C, Jongeneel CV, Buche P (1999) ESTScan: a p og am o
de ec ing, e alua ing, and econs uc ing po en ial coding
egions in EST sequences. P oceedings o he in e na ional
con e ence on in elligen sys ems molecula biology, pp 138–
148
Kagan BL, Sels ed ME, Ganz T, Leh e RI (1990) An imic obial
de ensin pep ides o m ol age-dependen ion-pe meable chan-
nels in plana lipid bilaye memb anes. P oc Na l Acad Sci
USA 87:210–214
K ause A, Silla d R, Kleemeie B, Klu e E, Ma onde E, Conejo-
Ga cia JR, Fo ssmann WG, Schulz-Knappe P, Nehls MC,
Wa le F, Wa le S, Ade mann K (2003) Isola ion and
biochemical cha ac e iza ion o LEAP-2, a no el blood pep ide
exp essed in he li e . P o ein Sci 12:143–152
Kuma S, Tamu a K, Jakobsen IB, Nei M (2001) MEGA2:
molecula e olu iona y gene ics analysis so wa e. Bioin o -
ma ics 17:1244–1245
La ick JW, Hi a a M, Zhong J, W igh SC (1995) An i-mic obial
ac i i y o human CAP18 pep ides. Immuno echnology 1:65–
72
Liu L, Zhao C, Heng HH, Ganz T (1997) The human β-de ensin-1
and α-de ensins a e encoded by adjacen genes: wo pep ide
amilies wi h di e ing disul ide opology sha e a common
ances y. Genomics 43:316–320
Lynn DJ, Lloyd AT, O’Fa elly C (2003) In silico iden i ica ion o
componen s o he Toll-like ecep o (TLR) signaling pa hway
in clus e ed chicken exp essed sequence ags (ESTs). Ve
Immunol Immunopa hol 93:177–184
Malm J, So ensen O, Pe sson T, F ohm-Nilsson M, Johansson B,
Bja ell A, Lilja H, S ahle-Backdahl M, Bo egaa d N, Eges en
A (2000) The human ca ionic an imic obial p o ein (hCAP-18)
is exp essed in he epi helium o human epididymis, is p esen
in seminal plasma a high concen a ions, and is a ached o
spe ma ozoa. In ec Immun 68:4297–4302
Maxwell AI, Mo ison GM, Do in JR (2003) Rapid sequence
di e gence in mammalian β-de ensins by adap i e e olu ion.
Mol Immunol 40:413–421
176
Mu akami M, Oh ake T, Do schne RA, Gallo RL (2002a)
Ca helicidin an imic obial pep ides a e exp essed in sali a y
glands and sali a. J Den Res 81:845–850
Mu akami M, Oh ake T, Do schne RA, Schi ek B, Ga be C, Gallo
RL (2002b) Ca helicidin an i-mic obial pep ide exp ession in
swea , an inna e de ense sys em o he skin. J In es De ma ol
119:1090–1095
Nielsen R, Yang Z (1998) Likelihood models o de ec ing
posi i ely selec ed amino acid si es and applica ions o he
HIV-1 en elope gene. Gene ics 148:929–936
Nize V, Oh ake T, Lau h X, T owb idge J, Rudisill J, Do schne
RA, Pes onjamasp V, Pi aino J, Hu ne K, Gallo RL (2001)
Inna e an imic obial pep ide p o ec s he skin om in asi e
bac e ial in ec ion. Na u e 414:454–457
No edame C, Higgins DG, He inga J (2000) T-Co ee: a no el
me hod o as and accu a e mul iple-sequence alignmen . J
Mol Biol 302:205–217
Pennisi E (2003) Human genome. A low numbe wins he
GeneSweep Pool. Science 300:1484
Pe ea G, Huang X, Liang F, An onescu V, Sul ana R, Ka amyche a
S, Lee Y, Whi e J, Cheung F, Pa izi B, Tsai J, Quackenbush J
(2003) TIGR Gene Indices clus e ing ools (TGICL): a so wa e
sys em o as clus e ing o la ge EST da ase s. Bioin o ma ics
19:651–652
Ramana han B, Da is EG, Ross CR, Blecha F (2002) Ca helicidins:
mic obicidal ac i i y, mechanisms o ac ion, and oles in inna e
immuni y. Mic obes In ec 4:361–372
Sa chell DP, Sheynis T, Shi a uji Y, Kolushe a S, Ouelle e AJ,
Jelinek R (2003) In e ac ions o mouse Pane h cell α-de ensins
and α-de ensin p ecu so s wi h memb anes. P osegmen inhi-
bi ion o pep ide associa ion wi h biomime ic memb anes. J
Biol Chem 278:13838–13846
Scocchi M, Wang S, Zane i M (1997) S uc u al o ganiza ion o he
bo ine ca helicidin gene amily and iden i ica ion o a no el
membe . FEBS Le 417:311–315
Shin SY, Kang SW, Lee DG, Eom SH, Song WK, Kim JI (2000)
CRAMP analogues ha ing po en an ibio ic ac i i y agains
bac e ial, ungal, and umo cells wi hou hemoly ic ac i i y.
Biochem Biophys Res Commun 275:904–909
Tamamu a H, Mu akami T, Ho iuchi S, Sugiha a K, O aka A,
Takada W, Ibuka T, Waki M, Yamamo o N, Fujii N (1995)
Syn hesis o p o eg in- ela ed pep ides and hei an ibac e ial
and an i-human immunode iciency i us ac i i y. Chem Pha m
Bull (Tokyo) 43:853–858
T a is SM, Ande son NN, Fo sy h WR, Espi i u C, Conway BD,
G eenbe g EP, McC ay PB J , Leh e RI, Welsh MJ, Tack BF
(2000) Bac e icidal ac i i y o mammalian ca helicidin-de i ed
pep ides. In ec Immun 68:2748–2755
Yang Z (1997) PAML: a p og am package o phylogene ic analysis
by maximum likelihood. Compu Appl Biosci 13:555–556
Yang Z (1998) Likelihood a io es s o de ec ing posi i e selec ion
and applica ion o p ima e lysozyme e olu ion. Mol Biol E ol
15:568–573
Yang Z, Nielsen R (1998) Synonymous and nonsynonymous a e
a ia ion in nuclea genes o mammals. J Mol E ol 46:409–418
Yang Z, Nielsen R, Goldman N, Pede sen AM (2000) Codon-
subs i u ion models o he e ogeneous selec ion p essu e a
amino acid si es. Gene ics 155:431–449
Zhao C, Nguyen T, Liu L, Sacco RE, B ogden KA, Leh e RI (2001)
Gallinacin-3, an inducible epi helial β-de ensin in he chicken.
In ec Immun 69:2684–2691
177