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Agua Salud Alphavirus Infection, Dissemination and Transmission in Aedes aegypti Mosquitoes

Abstract

Mosquitoes are competent vectors for many important arthropod-borne viruses (arboviruses). In addition to arboviruses, insect-specific viruses (ISV) have also been discovered in mosquitoes. ISVs are viruses that replicate in insect hosts but are unable to infect and replicate in vertebrates. They have been shown to interfere with arbovirus replication in some cases. Despite the increase in studies on ISV-arbovirus interactions, ISV interactions with their hosts and how they are maintained in nature are still not well understood. In the present study, we investigated the infection and dissemination of the Agua Salud alphavirus (ASALV) in the important mosquito vector Aedes aegypti through different infection routes (per oral infection, intrathoracic injection) and its transmission. We show here that ASALV infects the female Ae. aegypti and replicates when mosquitoes are infected intrathoracically or orally. ASALV disseminated to different tissues, including the midgut, salivary glands and ovaries. However, we observed a higher virus load in the brain than in the salivary glands and carcasses, suggesting a tropism towards brain tissues. Our results show that ASALV is transmitted horizontally during adult and larval stages, although we did not observe vertical transmission. Understanding ISV infection and dissemination dynamics in Ae. aegypti and their transmission routes could help the use of ISVs as an arbovirus control strategy in the future.

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Agua Salud Alphavirus Infection, Dissemination and Transmission in Aedes aegypti Mosquitoes

Author: Jagtap, Swati V,Brink, Jorn,Frank, Svea C,Badusche, Marlis,Leggewie, Mayke,Sreenu, Vattipally B,Fuss, Janina,Schnettler, Esther,Altinli, Mine
Year: 2023
DOI: 10.3390/v15051113
Source: https://macau.uni-kiel.de/servlets/MCRFileNodeServlet/macau_derivate_00005591/viruses-15-01113.pdf
Ci a ion: Jag ap, S.V.; B ink, J.; F ank,
S.C.; Badusche, M.; Leggewie, M.;
S eenu, V.B.; Fuss, J.; Schne le , E.;
Al inli, M. Agua Salud Alpha i us
In ec ion, Dissemina ion and
T ansmission in Aedes aegyp i
Mosqui oes. Vi uses 2023,15, 1113.
h ps://doi.o g/10.3390/ 15051113
Academic Edi o s: Valé ia
Lima Ca alho and Ca los A.
M. Ca alho
Recei ed: 23 Ma ch 2023
Re ised: 25 Ap il 2023
Accep ed: 28 Ap il 2023
Published: 3 May 2023
Copy igh : © 2023 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/).
i uses
A icle
Agua Salud Alpha i us In ec ion, Dissemina ion and
T ansmission in Aedes aegyp i Mosqui oes
Swa i V. Jag ap 1,2, Jo n B ink 1, S ea C. F ank 1, Ma lis Badusche 1, Mayke Leggewie 1, Va ipally B. S eenu 3,
Janina Fuss 4, Es he Schne le 1,2,5,* and Mine Al inli 1,2,*
1Be nha d-Noch -Ins i u e o T opical Medicine, 20359 Hambu g, Ge many; [email p o ec ed] (S.V.J.)
2Ge man Cen e o In ec ion Resea ch, Pa ne Si e Hambu g-Lübeck-Bo s el-Riems, 20359 Hambu g, Ge many
3MRC-Uni e si y o Glasgow-Cen e o Vi us Resea ch, Glasgow G61 1QH, UK
4Ins i u e o Clinical Molecula Biology (IKMB), Kiel Uni e si y, 24105 Kiel, Ge many
5Facul y o Ma hema ics, In o ma ics and Na u al Sciences, Uni e si y Hambu g, 20148 Hambu g, Ge many
*Co espondence: [email p o ec ed] (E.S.); [email p o ec ed] (M.A.)
Abs ac :
Mosqui oes a e compe en ec o s o many impo an a h opod-bo ne i uses
(a bo i uses). In addi ion o a bo i uses, insec -speci ic i uses (ISV) ha e also been disco e ed in
mosqui oes. ISVs a e i uses ha eplica e in insec hos s bu a e unable o in ec and eplica e in
e eb a es. They ha e been shown o in e e e wi h a bo i us eplica ion in some cases. Despi e
he inc ease in s udies on ISV–a bo i us in e ac ions, ISV in e ac ions wi h hei hos s and how
hey a e main ained in na u e a e s ill no well unde s ood. In he p esen s udy, we in es iga ed
he in ec ion and dissemina ion o he Agua Salud alpha i us (ASALV) in he impo an mosqui o
ec o Aedes aegyp i h ough di e en in ec ion ou es (pe o al in ec ion, in a ho acic injec ion)
and i s ansmission. We show he e ha ASALV in ec s he emale Ae. aegyp i and eplica es when
mosqui oes a e in ec ed in a ho acically o o ally. ASALV dissemina ed o di e en issues, including
he midgu , sali a y glands and o a ies. Howe e , we obse ed a highe i us load in he b ain han
in he sali a y glands and ca casses, sugges ing a opism owa ds b ain issues. Ou esul s show
ha ASALV is ansmi ed ho izon ally du ing adul and la al s ages, al hough we did no obse e
e ical ansmission. Unde s anding ISV in ec ion and dissemina ion dynamics in Ae. aegyp i and
hei ansmission ou es could help he use o ISVs as an a bo i us con ol s a egy in he u u e.
Keywo ds: Agua Salud alpha i us; insec -speci ic i uses; ho izon al ansmission; Aedes aegyp i
1. In oduc ion
Mosqui oes a e common ec o s o a bo i uses, including medically impo an i uses
such as Zika, chikungunya, dengue, and Yellow e e i uses. In addi ion o he a bo i uses
hey ansmi o e eb a es, an inc easing numbe o insec -speci ic i uses (ISV) ha e been
disco e ed in mosqui oes o e he las decade [
1
–
3
]. ISVs a e a di e se g oup o i uses
ha eplica e in mosqui oes and mosqui o-de i ed cell lines; howe e , hey a e unable o
in ec e eb a es and de i ed cell lines.
ISV s udies ha e gained ac ion du ing he las decade as some ISVs can se e as ac-
cine pla o ms [
4
,
5
], and some can in e e e wi h a bo i us in ec ion [
6
–
10
]. ISV in e e ence
wi h a bo i uses has been in es iga ed mos ly o la i i uses [
3
] and has p esen ed con a-
dic ing esul s anging om in e e ence o he acili a ion o a bo i us in ec ion [
6
,
9
,
11
–
13
].
Howe e , he e a e s ill many open ques ions in e ms o he in e ac ions o ISV wi h hei
hos s, such as how hey a e main ained in na u e and how hey a ec hei mosqui o
hos s [13].
Despi e he high numbe o insec -speci ic la i i uses ha ha e been disco e ed [
14
],
o da e, only i e insec -speci ic alpha i uses ha e been ound in mosqui oes, namely
he Eila i us (EILV) [
15
], Tai Fo es alpha i us (TALV) [
16
], Mwinilunga alpha i us
(MWAV) [
17
], Yada Yada Vi us [
18
] and Agua Salud alpha i us (ASALV) [
19
]. This s a k
Vi uses 2023,15, 1113. h ps://doi.o g/10.3390/ 15051113 h ps://www.mdpi.com/jou nal/ i uses
Vi uses 2023,15, 1113 2 o 13
di e ence in hei p esence in na u al popula ions compa ed o la i i uses could be ela ed
o di e en ansmission ou es and in e ac ions wi h hei mosqui o hos s.
Alpha i uses encompass a la ge g oup o posi i e-sense single-s anded RNA i uses
wi h a di e se hos ange, anging om e eb a es (e.g., humans, monkeys, ho ses, bi ds,
ep iles, and amphibians) o in e eb a es (e.g., mosqui oes and icks). Only wo o he
insec -speci ic alpha i uses ha e been isola ed o da e, namely ASALV and EILV. EILV was
isola ed om a pool o Anopheles cous ani and has been shown o in ec di e en mosqui o
species, including Aedes albopic us,Ae. aegyp i,Anopheles gambiae,Culex quinque ascia us, and
Cx. a salis [
15
,
20
,
21
]. EILV can in e e e wi h he eplica ion o se e al a bo i uses [
22
];
howe e , i is no ye known whe he his is he case o o he insec -speci ic alpha i uses,
including ASALV. ASALV was isola ed om Culex decla a o mosqui oes and sampled
in Panama [
19
], al hough he ASALV hos ange
in i o
has no ye been in es iga ed.
In i o
, ASALV eplica es bo h in Ae. albopic us-de i ed C6/36 and U4.4 cells [
19
] and Ae.
aegyp i-de i ed AF5 cells [
23
]. ASALV has been shown o in e ac wi h he majo an i i al
esponse in mosqui oes wi h RNA in e e ence. RNA in e e ence (RNAi) is a na u al
phenomenon ha egula es gene exp ession and plays an impo an ole in he egula ion
o i al in ec ions in mosqui oes [
24
,
25
]. I can be di ided in o h ee dis inc pa hways
in mosqui oes: he mic oRNA (miRNA), small in e e ing RNA (siRNA), and P-elemen -
induced wimpy es is (PIWI)-in e ac ing RNA (piRNA) pa hway. The siRNA pa hway is
an i i al agains all es ed a bo i uses [
26
] and ASALV, oo [
23
]. The siRNA pa hway is
igge ed by long double-s anded RNAs (dsRNA), o ins ance, eplica ion in e media es,
p oduced du ing i al eplica ion. dsRNAs a e hen cu by Dice 2 in o i us-de i ed
siRNAs ( siRNA) o 21 nucleo ides (n ) in size, and siRNAs a e loaded in o he mul i-
p o ein, RNA-induced silencing complex (RISC). RISC can hen a ge complemen a y i al
RNA o subsequen clea age, esul ing in he inhibi ion o i us eplica ion [
27
,
28
]. In
addi ion o siRNAs, i us-de i ed piRNA ( piRNA) o 25 o 29 n in leng h ha e also been
epo ed in in ec ed mosqui oes and mosqui o-de i ed cells [
29
,
30
]. In Ae.aegyp i-de i ed
cells, piRNA is p oduced h ough a ping-pong ampli ica ion cycle by Ago3 and Piwi5/6.
The esul an piRNAs ha e a bias o ei he u idine a posi ion one o adenine a posi ion
en in he an isense and sense sequences, espec i ely (U1 and A10), and a complemen a y
egion o 10 nucleo ides [29–31].
He e, we in es iga ed ASALV in ec ion and dissemina ion in Ae. aegyp i h ough
di e en in ec ion ou es (o al o in a ho acic injec ion) and i s possible ansmission
ou es. Unde s anding how ISVs in e ac wi h hei mosqui o hos s and ansmission
ou es is impo an o he use o ISVs o a bo i us con ol ools in he u u e.
2. Ma e ials and Me hods
2.1. Mosqui oes
The Ae. aegyp i PAEA s ain (ob ained om P o . Failloux, Ins i u e Pas eu ) was used
in he expe imen s [
32
]. The Cx. quinque ascia us (Malaysia) labo a o y colony was ob ained
om Baye (Baye , Le e kusen, Ge many). Bo h colonies we e ea ed and main ained a
28 ±5◦C and 80% humidi y, wi h a 12 h ligh /da k cycle and 10% uc ose ad libi um.
2.2. Vi us S ocks and Ti a ion
A 70% con luen C6/36 cell lask (T75) was inocula ed wi h ASALV [
30
]. Th ee days
a e inocula ion, he clea ed supe na an was collec ed and s o ed a
−
80
◦
C. ASALV
i a ions we e pe o med using he TCID50 assay wi h C6/36 cells. 4
×
10
4
cells/well
we e seeded in a 96-well pla e wi h a cell medium (Leibo i z’s L15 medium The mo
Fishe Scien i ic, Inc., Wal ham, MA, USA) supplemen ed wi h 10% oe al cal Se um
(The mo Fishe Scien i ic Inc., Wal ham, MA USA) 1x penicillin/s ep omycin (The mo
Fishe Scien i ic Inc., Wal ham, MA, USA) and 10% yp ose phospha e b o h (Gibco Li e
Technologies, Paisley, UK). Fou eplica es we e used o each dilu ion. A e h ee days o
incuba ion a 28
◦
C, he cells we e i s checked o mo phological changes, as low ISV i e s
can cause mo phological changes wi hou causing a clea CPE. Then, he cells we e ixed
Vi uses 2023,15, 1113 3 o 13
wi h 8% o maldehyde and s ained wi h c ys al iole . The i e was calcula ed acco ding
o he Spea man–Kaebe algo i hm [33].
2.3. ASALV T ansmission Expe imen s
2.3.1. Adul In ec ions h ough Feeding and In a ho acic Injec ions
Be ween 7 and 13 days old emale Ae. aegyp i mosqui oes we e ei he in ec ed by
in a ho acic injec ion o o al eeding. Fo in a ho acic injec ion, he mosqui oes we e
immobilised wi h CO
2
, kep on ice, and injec ed wi h ASALV (10
3
PFU/mosqui o, using
Nanojec II (D ummond). Fo in ec ions h ough eeding, mosqui oes we e s a ed o
uc ose o 24 h and hen ed wi h an ASALV-PBS solu ion (10
7
PFU/mL, 10% ATP, and
blue ood dye) o 45 min, using he Hemo ek memb ane eeding sys em wi h syn he ic
chicken skin as he memb ane. Cx. quinque ascia us mosqui oes (Figu e S1) we e in ec ed
using he same i us i e s and injec ion me hod, al hough, o o al in ec ion, co on buds
we e used o deli e he ASALV-PBS solu ion. Mosqui oes we e anaes he ised wi h CO
2
,
and ed mosqui oes we e incuba ed a 28
±
5
◦
C and 80% humidi y, wi h a 12 h ligh /da k
cycle and 10% uc ose ad libi um.
Inocula ed mosqui oes we e ei he ha es ed a 0, 7, o 14 days pos -in ec ion (dpi) o
used in u he expe imen s (sali a ion, dissemina ion, ho izon al ansmission assays).
2.3.2. ASALV Dissemina ion
ASALV- ed o injec ed adul emales we e anaes he ised wi h CO
2
and dissec ed a
7 and 14 dpi. The heads (including sali a y glands), gu s, o a ies, and ca casses o 15
mosqui oes we e pooled pe sample and homogenised in GMEM (The mo Fishe Scien-
i ic, Inc., Wal ham, MA, USA). The o al RNA was isola ed using T izol LS (In i ogen,
Ca lsbad CA, USA), acco ding o he manu ac u e ’s p o ocol. To u he in es iga e he
dissemina ion in he head pa s, heads, sali a y glands and ca casses om ASALV-injec ed
mosqui oes we e dissec ed. Be o e homogenisa ion, he an enna and mou h pa s we e
emo ed om he heads o in es iga e ASALV dissemina ion o he b ain. The body pa s
o 5 mosqui oes we e pooled pe sample, and a o al o 6 samples we e p ocessed.
2.3.3. ASALV Ho izon al T ansmission
To in es iga e ho izon al ansmission du ing he adul li e s age, ASALV-injec ed Ae.
aegyp i emales we e pu in he same cage wi h unin ec ed male mosqui oes. A week la e ,
males and emales we e collec ed and es ed o ASALV in ec ion.
To in es iga e he ho izon al ansmission du ing la al li e s ages, one-day-old
mosqui o la ae we e ans e ed in o a 96-well pla e in a 30
µ
L la ae ood solu ion
(200 mL wa e + 0.2 g ish ood pelle - Se a Wels Tabs XXL). 10
7
PFU ASALV pe well was
added and incuba ed a 28
◦
C
±
5 wi h a 12 h ligh /da k cycle. Two days pos -in ec ion,
he la ae we e ans e ed on o a 24-well pla e in 1 mL ood solu ion. A o al o 300
µ
L
o ood solu ion was added e e y wo days. A e 6 days, he la ae we e ans e ed o
a clean 24-well pla e, gi en esh ood, and le o pupa e. The pupae we e ans e ed o
glass ubes, and eme ging adul s we e collec ed and s o ed a
−
80
◦
C un il analysed. The
expe imen was epea ed wice independen ly.
2.3.4. Sali a ion Assay
A sali a ion assay was pe o med using ASALV-injec ed emale mosqui oes 14 dpi.
Mosqui oes we e anaes he ised wi h CO
2,
and hei legs and wings we e emo ed. They
we e o ced o sali a e in 10
µ
L o PBS in a cu il e ip, as p e iously desc ibed [
32
]. A e
30 min o o ced sali a ion, he ip con aining he PBS-sali a mix u e was emo ed and
placed in o a eac ion ube con aining 10
µ
L o PBS. Finally, 20
µ
L sali a + PBS was added o
C6/36 seeded in 96 well pla es. As no mo phological changes o CPE was obse ed in he
cells, o check whe he i al RNA was p esen , he supe na an was collec ed om he sali a
samples and some nega i e con ol cells. A QIAamp i al isola ion ki (QIAGEN, Hilden,
Ge many) was used o RNA isola ion om he supe na an s. Co esponding emale
Vi uses 2023,15, 1113 4 o 13
mosqui o bodies we e collec ed and homogenised in GMEM (The mo Fishe Scien i ic,
USA) wi hou supplemen s, and RNA was isola ed wi h T izol LS (In i ogen, Ca lsbad
CA, USA). ASALV quan i ica ion was pe o med as desc ibed below.
2.3.5. ASALV Ve ical T ansmission
Be ween 7 and 10 days old emale mosqui oes we e ei he injec ed o ed wi h ASALV
as desc ibed abo e. A e a week, emales we e gi en a blood meal (50% blood, 10% Fe al
Cal Se um, 1% ATP, comple ed wi h F uc ose). Blood- ed emales we e ans e ed o
a cage and le o lay eggs. The eggs we e looded a e a d ying pe iod. L4 la ae and
adul s ( emales and males) we e collec ed, homogenised, and isola ed, while RNA was
es ed o ASALV p esence by i us-speci ic RT-PCR. The expe imen was epea ed wice
independen ly.
2.4. ASALV Quan i ica ion
Whole mosqui o samples o dissec ed issue pools we e homogenised in 500
µ
L o
250
µ
L o GMEM (The mo Fishe Scien i ic, Wal ham, MA, USA) wi hou supplemen s,
espec i ely. The homogena e was cla i ied by cen i uging, and 200
µ
L o he supe -
na an was used o ex ac RNA using TRIzol LS (In i ogen, Ca lsbad CA, USA) (3:1
/TRIzol: homogena e) acco ding o he manu ac u e ’s p o ocol. The RNA concen a ion
was measu ed using a nanod op. RNA was ei he used di ec ly (One-s ep quan i a i e
(q)PCR), o cDNA was syn hesised ( o be used in qPCR) using 1
µ
g o RNA, andom
hexame s, and M-MLV e e se ansc ip ase (P omega, Fi chbu g, WI, USA) acco ding o
he manu ac u e ’s p o ocol.
To quan i y he ASALV load in di e en issues, we pe o med wo-s ep qPCR using
cDNA samples and a Quan iTec SYBR G een PCR ki (QIAGEN, Hilden, Ge many), acco ding
o he manu ac u e ’s p o ocol. The ASALV load was quan i ied ela i e o ibosomal S7 gene
(housekeepe gene, Ae. aegyp i) o GAPDH (housekeepe gene, Cx. quinque ascia us, Figu e S1)
using p e iously published speci ic p ime s (ASALV, F: 5
0
-CCGTACTCGAAACAGACATTGC-
3
0
, R: 5
0
-TCGTCAACGCCTAGATCCTCTA-3
0
; S7, F: 5
0
-CCAGGCTATCCTGGAGTTG-3
0
, R:
5
0
-GACGTGCTTGCCGGAGAAC-3
0
; GAPDH, F:5
0
-TCAAGCAGAAGGTCAAGGAAG-3
0
,
R:5
0
-GTTGTCGTACCAGGAGATGAG-3
0
) [
15
,
34
,
35
]. A one-s ep qRT-PCR (Quan iTec SYBR
G een RT-PCR Ki , QIAGEN, Hilden, Ge many) was pe o med, acco ding o he manu ac-
u e ’s p o ocol, o de ec ASALV in ec ion (in ec ion a e, sali a ion assay, and ho izon al
ansmission assays). Cp > 33.5 was conside ed nega i e based on he s anda d cu e.
All PCR eac ions we e pe o med in h ee echnical eplica es. The da a we e analysed
using a Ligh Cycle 480 II Ins umen (Roche) and he Ligh Cycle 480 so wa e ( e sion
1.5.0 SP4), ei he using absolu e quan i ica ion o ad anced ela i e quan i ica ion. S anda d
cu es o each gene we e c ea ed using dilu ions o he speci ic PCR p oduc s, and genome
copy numbe s we e calcula ed and used o bo h absolu e and ela i e quan i ica ion assays.
2.5. Polyme ase Chain Reac ion (PCR)
Fo ASALV de ec ion, he abo e-men ioned ASALV-speci ic o wa d and e e se
p ime s we e used in combina ion wi h cDNA as a empla e. The ampli ica ion was
pe o med using Go Taq polyme ase (P omega, Fi chbu g, WI, USA) wi h deoxynucleoside
iphospha es (dNTPs) and a 5x G een Go Taq bu e , wi h a inal eac ion olume o 50
µ
L.
The mocycling condi ions o he i s ound o ampli ica ion we e 95
◦
C o 2 min, ollowed
by 32 cycles o dena u a ion (95
◦
C o 30 s), annealing (56
◦
C o 30 s), ex ension (72
◦
C o
45 s), and a inal ex ension a 72
◦
C o 7 min. The ampli ica ion p oduc was isualised in a
2% aga ose-1
×
TAE (T is-ace a e-e hylenediamine e aace ic acid) gel by e hidium b omide
s aining and UV ansillumina ion. The expec ed size o ampli ica ion (PCR p oduc ) was
97 bp.
Vi uses 2023,15, 1113 5 o 13
2.6. Small RNA Sequencing
The midgu s om 15 mosqui oes (ASALV ed, 7 dpi) we e pooled and homogenised in
GMEM (The mo Fishe Scien i ic, Wal ham, MA, USA). The o al RNA was isola ed using
TRIzol LS (In i ogen, Ca lsbad CA, USA) acco ding o he manu ac u e ’s p o ocol, wi h
glycogen as a ca ie . Fo small RNA sequencing, lib a ies we e p epa ed wi h 100 ng o he
o al RNA and he Nex lex small RNA-Seq ki 3 (Pe kinElme Inc., Wal ham, MA, USA),
and lib a ies wi h a size co esponding o (18–35 nucleo ides a e lib a y p epa a ion)
we e sequenced on a No aSeq6000 SP 1.0 pla o m (2
×
50 bp) [
29
]. Sequencing was
pe o med a IKMB (Kiel, Ge many). The da a we e analysed, as desc ibed p e iously [
23
].
As a empla e, he ASALV genome was used (GenBank accession numbe MK959115).
2.7. Da a Analyses
Da a analyses we e conduc ed in R e sion 4.1.2 (1 No embe 2021). To analyse he
ASALV eplica ion in whole mosqui oes a 0, 7 and 14 dpi, we used a non-pa ame ic
K uskal–Wallis es . When he e was a signi ican e ec du ing he day, pai wise compa -
isons we e made using a dunnTes (FSA package) wi h Bon e oni co ec ion. To analyse
he e ec s o issue ype,dpi (7, 14), and ea men (Injec ed, Fed) on he ASALV load in
di e en issues, we i s i ed a gene alised linea model om he Gaussian amily using
log- ans o med da a. Likelihood a io es s o he ull model agains he model wi hou
a gi en e ec we e used o ob ain he deg ees o eedom, de iance and p- alues. The
s a is ical di e ence be ween he sali a y gland, ca casses and b ain issues in e ms o
he ASALV load was es ed using a pai wise- - es wi h Bon e oni co ec ion o mul iple
es ing. A p- alue < 0.05 was conside ed s a is ically signi ican .
3. Resul s
3.1. ASALV In ec s and Replica es in Ae. aegyp i
To de e mine whe he ASALV could in ec and eplica e in Ae. aegyp i mosqui oes,
mosqui oes we e ei he injec ed o ed wi h ASALV and we e collec ed a di e en imes
pos -in ec ion (0, 7, and 14 dpi). ASALV was quan i ied by qRT-PCR. The samples om
0 dpi we e ASALV-posi i e, con i ming ha bo h he eeding and injec ion expe imen s
wo ked well. The injec ed mosqui oes showed a 100% in ec ion a e on 7 and 14 dpi, while
mosqui oes o ally exposed o ASALV showed a lowe in ec ion a e on 14 dpi (Figu e 1A).
A gene al inc ease in he ASALV RNA copy numbe was obse ed a 7 (mean (
±
se),
10
5.17(±0.33)
) and 14 dpi (mean (
±
se), 10
4.89 (±0.37)
) compa ed o ha a 0 dpi (mean (
±
se),
10
3.10(±0.17)
), sugges ing he ac i e in ec ion and eplica ion o ASALV in Ae. aegyp i
mosqui oes o bo h g oups (Figu e 1B). This inc ease was pa icula ly high in he injec ed
g oup wi h a 3 log inc ease om 0 dpi 10
3.26(±0.261)
o 7 dpi 10
6.65(±0.17)
(K uskal–Wallis
χ2
= 44, d = 2, p< 0.001; Funn es : 0–7 dpi p< 0.001; 0–14 dpi p< 0.001). In he ed
g oup, he ASALV load did no di e signi ican ly be ween 0, 7 and 14 dpi (K uskal–Wallis
χ2
= 4, d = 2, p> 0.05), and only some samples collec ed a 7 dpi and 14 dpi exhibi ed
a highe ASALV load compa ed o 0 dpi (Figu e 1B). This sugges ed a s ong bo leneck
passing he midgu ba ie when he mosqui oes we e ed wi h ASALV. Ne e heless, many
mosqui oes emained posi i e a 14 dpi, indica ing ha ASALV could in ec and eplica e
in Ae. aegyp i by eeding.

Vi uses 2023,15, 1113 6 o 13
Vi uses 2023, 15, x FOR PEER REVIEW 6 o 14
compa ed o 0 dpi (Figu e 1B). This sugges ed a s ong bo leneck passing he midgu
ba ie when he mosqui oes we e ed wi h ASALV. Ne e heless, many mosqui oes e-
mained posi i e a 14 dpi, indica ing ha ASALV could in ec and eplica e in Ae. aegyp i
by eeding.
Figu e 1. ASALV in ec ion a e (A) and load (B) in emale Ae aegyp i mosqui oes ollowing in a ho-
acic injec ion and o al in ec ion. Adul emale mosqui oes (7–13 days old) we e ed o injec ed wi h
ASALV and RNA was isola ed om he collec ed mosqui oes a 0, 7 and 14 dpi. ASALV was quan-
i ied using he qRT-PCR in ec ion a e (A), o genome copy numbe s (B) we e calcula ed using
co esponding s anda d cu es. Each da a poin ep esen s indi idual mosqui oes (whole bodies).
E o ba s indica e 95% con idence in e als o he in ec ion a e, n = sample size.
3.2. ASALV In e ac s wi h he RNAi Response in he Midgu
The o al RNA o he dissec ed midgu pool o 15 ASALV-injec ed mosqui oes was
sequenced and analysed o in es iga e ASALV-speci ic small RNA p oduc ion. ASALV-
speci ic 21 n -sized siRNAs we e p oduced in he midgu (Figu e 2A). These siRNAs
we e p oduced along he ASALV genome and an igenome o a simila amoun (Figu e
2B). We obse ed ASALV-speci ic piRNA-sized small RNAs (mos ly mapping o he ge-
nome) in he midgu . Howe e , hese did no show ping-pong ampli ica ion signals (da a
no shown).
Figu e 1.
ASALV in ec ion a e (
A
) and load (
B
) in emale Ae aegyp i mosqui oes ollowing in a ho-
acic injec ion and o al in ec ion. Adul emale mosqui oes (7–13 days old) we e ed o injec ed
wi h ASALV and RNA was isola ed om he collec ed mosqui oes a 0, 7 and 14 dpi. ASALV was
quan i ied using he qRT-PCR in ec ion a e (
A
), o genome copy numbe s (
B
) we e calcula ed using
co esponding s anda d cu es. Each da a poin ep esen s indi idual mosqui oes (whole bodies).
E o ba s indica e 95% con idence in e als o he in ec ion a e, n = sample size.
3.2. ASALV In e ac s wi h he RNAi Response in he Midgu
The o al RNA o he dissec ed midgu pool o 15 ASALV-injec ed mosqui oes was
sequenced and analysed o in es iga e ASALV-speci ic small RNA p oduc ion. ASALV-
speci ic 21 n -sized siRNAs we e p oduced in he midgu (Figu e 2A). These siRNAs we e
p oduced along he ASALV genome and an igenome o a simila amoun (Figu e 2B). We
obse ed ASALV-speci ic piRNA-sized small RNAs (mos ly mapping o he genome) in he
midgu . Howe e , hese did no show ping-pong ampli ica ion signals (da a no shown).
Vi uses 2023, 15, x FOR PEER REVIEW 7 o 14
Figu e 2. ASALV-speci ic small RNA p oduc ion in he Ae. aegyp i emale midgu . Adul emale Ae.
aegyp i mosqui oes we e ed wi h ASALV, and he midgu o 15 emale mosqui oes was pooled a
14 dpi. Size dis ibu ion o small RNAs mapping o he ASALV genome (whi e) o an igenome
(g ey) (A). Dis ibu ion o he 21 n small RNAs along he ASALV genome (whi e) and an igenome
(g ey) (B).
3.3. ASALV Dissemina es o Di e en Tissues and Replica es Mos ly in Heads
The ASALV load was quan i ied using qPCR in pooled issue samples om in a ho-
acically injec ed and o ally in ec ed mosqui oes. In bo h g oups, ASALV was dissemi-
na ed success ully o all dissec ed issues (Figu e 3A). Al hough we pe o med he dissec-
ions a 7 and 14 dpi sepa a ely, he e was no di e ence be ween 7 and 14 dpi samples in
e ms o he ASALV load, so hese da a we e pooled oge he in Figu e 3A (glm, d = 1,
de = 3.27, p = 0.15). A majo di e ence was caused by he in ec ion ou e; injec ed mos-
qui oes gene ally had highe ASALV genomes compa ed o ed mosqui oes (glm, d = 1,
de = 109, p < 0.001; Figu e 3A). The e was no signi ican e ec in he in e ac ion o he
in ec ion ou e and issue ype (glm, d = 3, de = 2.64, p > 0.05), showing ha he injec ion
ou e did no change he issue opism o ASALV. Vi al load di e ed be ween dissec ed
issues (glm, d = 3, de = 18.6, p < 0.001), wi h he highes ASALV load obse ed in head
pools, including he sali a y glands (Figu e 3A). To de e mine whe he he issue opism
o ASALV was speci ic o Ae. aegyp i, o i i exhibi ed he same issue opism in ano he
mosqui o species, we checked he ASALV issue opism in Cx. quinque ascia us using he
same in ec ion p o ocols as Ae. aegyp i. No speci ic opism o he head was obse ed in
Cx. quinque ascia us emale mosqui oes (Figu e S1).
Figu e 2.
ASALV-speci ic small RNA p oduc ion in he Ae. aegyp i emale midgu . Adul emale Ae.
aegyp i mosqui oes we e ed wi h ASALV, and he midgu o 15 emale mosqui oes was pooled a 14
dpi. Size dis ibu ion o small RNAs mapping o he ASALV genome (whi e) o an igenome (g ey) (
A
).
Dis ibu ion o he 21 n small RNAs along he ASALV genome (whi e) and an igenome (g ey) (B).
Vi uses 2023,15, 1113 7 o 13
3.3. ASALV Dissemina es o Di e en Tissues and Replica es Mos ly in Heads
The ASALV load was quan i ied using qPCR in pooled issue samples om in a ho-
acically injec ed and o ally in ec ed mosqui oes. In bo h g oups, ASALV was dissemina ed
success ully o all dissec ed issues (Figu e 3A). Al hough we pe o med he dissec ions a
7 and 14 dpi sepa a ely, he e was no di e ence be ween 7 and 14 dpi samples in e ms o
he ASALV load, so hese da a we e pooled oge he in Figu e 3A (glm, d = 1, de = 3.27,
p= 0.15). A majo di e ence was caused by he in ec ion ou e; injec ed mosqui oes gen-
e ally had highe ASALV genomes compa ed o ed mosqui oes (glm, d = 1, de = 109,
p< 0.001; Figu e 3A). The e was no signi ican e ec in he in e ac ion o he in ec ion
ou e and issue ype (glm, d = 3, de = 2.64, p> 0.05), showing ha he injec ion ou e
did no change he issue opism o ASALV. Vi al load di e ed be ween dissec ed issues
(glm, d = 3, de = 18.6, p< 0.001), wi h he highes ASALV load obse ed in head pools,
including he sali a y glands (Figu e 3A). To de e mine whe he he issue opism o
ASALV was speci ic o Ae. aegyp i, o i i exhibi ed he same issue opism in ano he
mosqui o species, we checked he ASALV issue opism in Cx. quinque ascia us using he
same in ec ion p o ocols as Ae. aegyp i. No speci ic opism o he head was obse ed in
Cx. quinque ascia us emale mosqui oes (Figu e S1).
Vi uses 2023, 15, x FOR PEER REVIEW 8 o 14
Figu e 3. ASALV dissemina ion o di e en issues in ASALV- ed o injec ed adul Ae. aegyp i e-
males. The RNA o di e en issue pools (15 mosqui oes/pool), dissec ed a 7 and 14 dpi, was iso-
la ed and he ASALV load was de e mined by qPCR (A). RNA o b ain issue, sali a y glands (sg)
and ca cass pools (5 mosqui oes/pool) we e isola ed om ASALV-injec ed mosqui oes a 7 dpi (B).
Six pools pe issue we e analysed o ASALV load in he ca cass, sali a y gland and b ain in
ASALV-injec ed Ae. aegyp i emales. ASALV load was de e mined by qPCR and ela i e ASALV
quan i ica ion using he ibosomal S7 gene as a housekeeping gene. ***: p < 0.001. Each da a poin
ep esen s dissec ed issue pools consis ing o 15 (A) o 5 (B) mosqui oes.
To in es iga e which issue was esponsible o he high ASALV load in he heads,
he expe imen was epea ed. This ime, in addi ion o he ca cass, he heads o ASALV-
injec ed mosqui oes (a 7 dpi) we e sepa a ed o c ea e pools o he sali a y glands and
b ains (Figu e 3B). ASALV load was highes in he b ain pool compa ed o he sali a y
glands (pai wise- es wi h Bon e oni co ec ion, p < 0.001) and ca casses (pai wise- es
wi h Bon e oni co ec ion, p < 0.001). ASALV load in he ca cass was no signi ican ly
di e en om sali a y glands.
3.4. ASALV T ansmission Rou es in Ae. aegyp i
To unde s and how ASALV migh be ansmi ed in na u e, we checked ho izon al
ansmission du ing adul and la al s ages. Since ASALV was de ec ed in he sali a y
glands, i s ansmission h ough sali a was checked. Fo his, ASALV-injec ed Ae. aegyp i
was used o pe o m a o ced sali a ion assay a 14 dpi. We did no obse e any in ec ion
signs in he sali a-incuba ed mosqui o cells, no was ASALV RNA de ec ed in he col-
lec ed cell supe na an s. Howe e , all sali a ed emales we e posi i e.
Due o he p esence o ASALV in he o a ies, we in es iga ed he e ical ansmis-
sion o ASALV in F1 o sp ing. The e o e, ASALV’s p esence in F1 La ae (10 L4 es ed
pe g oup) o adul pools (10 pools o 5 males o emales es ed pe g oup) de i ed om
ASALV-injec ed o - ed emales was de e mined by RT-PCR. Expe imen s we e epea ed
wice o each g oup, bu no ASALV was de ec ed in he F1 la ae o adul s.
To in es iga e he ho izon al ansmission be ween adul mosqui oes, we placed 5–7
emales in a cage wi h 15 unin ec ed males in wo independen eplica es (12 emales and
30 males in o al). A week la e , su i ing emales (n = 12) and males (n = 18) we e
Figu e 3.
ASALV dissemina ion o di e en issues in ASALV- ed o injec ed adul Ae. aegyp i emales.
The RNA o di e en issue pools (15 mosqui oes/pool), dissec ed a 7 and 14 dpi, was isola ed and
he ASALV load was de e mined by qPCR (
A
). RNA o b ain issue, sali a y glands (sg) and ca cass
pools (5 mosqui oes/pool) we e isola ed om ASALV-injec ed mosqui oes a 7 dpi (
B
). Six pools pe
issue we e analysed o ASALV load in he ca cass, sali a y gland and b ain in ASALV-injec ed Ae.
aegyp i emales. ASALV load was de e mined by qPCR and ela i e ASALV quan i ica ion using he
ibosomal S7 gene as a housekeeping gene. ***: p< 0.001. Each da a poin ep esen s dissec ed issue
pools consis ing o 15 (A)o 5(B) mosqui oes.
To in es iga e which issue was esponsible o he high ASALV load in he heads, he
expe imen was epea ed. This ime, in addi ion o he ca cass, he heads o ASALV-injec ed
mosqui oes (a 7 dpi) we e sepa a ed o c ea e pools o he sali a y glands and b ains
(Figu e 3B). ASALV load was highes in he b ain pool compa ed o he sali a y glands
(pai wise- es wi h Bon e oni co ec ion, p< 0.001) and ca casses (pai wise- es wi h
Vi uses 2023,15, 1113 8 o 13
Bon e oni co ec ion, p< 0.001). ASALV load in he ca cass was no signi ican ly di e en
om sali a y glands.
3.4. ASALV T ansmission Rou es in Ae. aegyp i
To unde s and how ASALV migh be ansmi ed in na u e, we checked ho izon al
ansmission du ing adul and la al s ages. Since ASALV was de ec ed in he sali a y
glands, i s ansmission h ough sali a was checked. Fo his, ASALV-injec ed Ae. aegyp i
was used o pe o m a o ced sali a ion assay a 14 dpi. We did no obse e any in ec ion
signs in he sali a-incuba ed mosqui o cells, no was ASALV RNA de ec ed in he collec ed
cell supe na an s. Howe e , all sali a ed emales we e posi i e.
Due o he p esence o ASALV in he o a ies, we in es iga ed he e ical ansmission
o ASALV in F1 o sp ing. The e o e, ASALV’s p esence in F1 La ae (10 L4 es ed pe
g oup) o adul pools (10 pools o 5 males o emales es ed pe g oup) de i ed om
ASALV-injec ed o - ed emales was de e mined by RT-PCR. Expe imen s we e epea ed
wice o each g oup, bu no ASALV was de ec ed in he F1 la ae o adul s.
To in es iga e he ho izon al ansmission be ween adul mosqui oes, we placed 5–7
emales in a cage wi h 15 unin ec ed males in wo independen eplica es (12 emales
and 30 males in o al). A week la e , su i ing emales (n = 12) and males (n = 18) we e
collec ed, and he ASALV load was quan i ied using qRT-PCR. All es ed emales we e
highly in ec ed wi h ASALV (Figu e 4). Ou o he 18 males es ed, 9 we e in ec ed,
indica ing a 50% ansmission a e (95% CI: 26-73%). Howe e , ASALV load was lowe
in he males (mean(
±
se):10
3(±0.2)
) compa ed o he emales (mean(
±
se):10
6.62(±0.42)
) ha
we e injec ed.
Vi uses 2023, 15, x FOR PEER REVIEW 9 o 14
collec ed, and he ASALV load was quan i ied using qRT-PCR. All es ed emales we e
highly in ec ed wi h ASALV (Figu e 4). Ou o he 18 males es ed, 9 we e in ec ed, indi-
ca ing a 50% ansmission a e (95% CI: 26-73%). Howe e , ASALV load was lowe in he
males (mean(±se):10
3(±0.2)
) compa ed o he emales (mean(±se):10
6.62(±0.42)
) ha we e in-
jec ed.
Figu e 4. ASALV can be ho izon ally ansmi ed om emale o male Ae. aegyp i mosqui oes.
ASALV-injec ed emales we e kep wi h unin ec ed males o 7 days. ASALV genome copy numbe s
we e quan i ied in emale and male mosqui oes using qRT-PCR. The esul s ep esen he combined
da a o wo independen epea s. Each da a poin ep esen s an indi idual mosqui o (whole body
sample).
To in es iga e he ho izon al ansmission du ing la al s ages, mosqui o la ae we e
ea ed in wa e ha bou ing ASALV. Eme ging adul mosqui oes we e collec ed and es ed
o he p esence o ASALV by PCR. A o al o 10% (95% CI: 2–20%) o he es ed adul
mosqui oes (n = 29, in h ee independen expe imen s) we e ASALV-posi i e, sugges ing
he possibili y o ASALV ho izon al ansmission du ing la al s ages.
4. Discussion
ISVs can only eplica e in insec s and insec -de i ed cell lines and no in e eb a es.
A la ge numbe o ISVs ha e been disco e ed as a esul o ecen ad ances in sequencing
echnology and inc eased ield mosqui o su eillance. Howe e , ou knowledge o ISV
hos ange, hei e ec s on mosqui o i ness, and how hey a e main ained and ansmi ed
in na u e is limi ed. To add ess some o hese open ques ions, we s udied he eplica ion
kine ics, dissemina ion, and ansmission o ASALV in ec o mosqui o species, Ae. ae-
gyp i.
Despi e he inc ease in he de ec ion o many di e se ISVs by sequencing s udies,
ISVs’ hos ange was no always clea ly de ined. In he case whe e he disco e ed ISV was
isola ed, i s eplica ion in mosqui o cells and e eb a e cells was checked. Howe e , he
eplica ion kine ics o ISVs a e a ely checked in o he insec s, wi h only se e al excep-
ions [21,36]. ASALV canno eplica e in cell lines de i ed om ec o he mic hos s o he
Culex mosqui o ( ogs, snakes and ish-de i ed cell lines), sugges ing ha ASALV is an
ISV [19]. P e ious s udies ha e demons a ed ASALV eplica ion in cell lines de i ed
om Aedes species, e en hough i was isola ed om Culex decla a o mosqui oes [19,23].
In his s udy, we showed ha Ae. aegyp i emales a e suscep ible o ASALV when in a ho-
acically and o ally in ec ed. The in ec ion a es in in a ho acically injec ed mosqui oes
we e highe han in o ally in ec ed mosqui oes, and he ASALV load in whole mosqui oes
Figu e 4.
ASALV can be ho izon ally ansmi ed om emale o male Ae. aegyp i mosqui oes. ASALV-
injec ed emales we e kep wi h unin ec ed males o 7 days. ASALV genome copy numbe s we e
quan i ied in emale and male mosqui oes using qRT-PCR. The esul s ep esen he combined da a o
wo independen epea s. Each da a poin ep esen s an indi idual mosqui o (whole body sample).
To in es iga e he ho izon al ansmission du ing la al s ages, mosqui o la ae we e
ea ed in wa e ha bou ing ASALV. Eme ging adul mosqui oes we e collec ed and es ed
o he p esence o ASALV by PCR. A o al o 10% (95% CI: 2–20%) o he es ed adul
mosqui oes (n = 29, in h ee independen expe imen s) we e ASALV-posi i e, sugges ing
he possibili y o ASALV ho izon al ansmission du ing la al s ages.
Vi uses 2023,15, 1113 9 o 13
4. Discussion
ISVs can only eplica e in insec s and insec -de i ed cell lines and no in e eb a es.
A la ge numbe o ISVs ha e been disco e ed as a esul o ecen ad ances in sequencing
echnology and inc eased ield mosqui o su eillance. Howe e , ou knowledge o ISV
hos ange, hei e ec s on mosqui o i ness, and how hey a e main ained and ansmi ed
in na u e is limi ed. To add ess some o hese open ques ions, we s udied he eplica ion
kine ics, dissemina ion, and ansmission o ASALV in ec o mosqui o species, Ae. aegyp i.
Despi e he inc ease in he de ec ion o many di e se ISVs by sequencing s udies,
ISVs’ hos ange was no always clea ly de ined. In he case whe e he disco e ed ISV was
isola ed, i s eplica ion in mosqui o cells and e eb a e cells was checked. Howe e , he
eplica ion kine ics o ISVs a e a ely checked in o he insec s, wi h only se e al excep-
ions [
21
,
36
]. ASALV canno eplica e in cell lines de i ed om ec o he mic hos s o he
Culex mosqui o ( ogs, snakes and ish-de i ed cell lines), sugges ing ha ASALV is an
ISV [
19
]. P e ious s udies ha e demons a ed ASALV eplica ion in cell lines de i ed om
Aedes species, e en hough i was isola ed om Culex decla a o mosqui oes [
19
,
23
]. In his
s udy, we showed ha Ae. aegyp i emales a e suscep ible o ASALV when in a ho acically
and o ally in ec ed. The in ec ion a es in in a ho acically injec ed mosqui oes we e highe
han in o ally in ec ed mosqui oes, and he ASALV load in whole mosqui oes inc eased
signi ican ly in he ASALV-injec ed mosqui oes. On he o he hand, ASALV load did no
signi ican ly inc ease in he whole mosqui oes ollowing o al in ec ion wi h ASALV, bu
mosqui oes s ayed posi i e a 14 dpi, suppo ing i s ac i e eplica ion. In addi ion, he
p esence o ASALV-speci ic 21-n siRNAs in Ae. aegyp i midgu showed ha ASALV
in ec ed and eplica ed in he midgu ollowing o al in ec ion, which igge ed he hos
RNAi esponse. In addi ion o siRNAs, piRNA-sized ASALV-speci ic small RNAs we e
also de ec ed; hese lacked ping-pong ampli ica ion signals, simila o p e ious indings
in Ae. albopic us-de i ed (U4.4) cells [
19
] and Ae. aegyp i-de i ed cells (RNAi-compe en
AF5 cells) [
23
]. O e all, ou esul s show ha ASALV in ec s and eplica es in Ae. aegyp i,
simila o he esul s o p e ious s udies showing success ul EILV in ec ion in Ae. aegyp i
and Cx. a salis. [
20
,
21
]. To da e, all insec -speci ic alpha i uses ha e been disco e ed
in Culex o Anopheles species, al hough he success ul eplica ion o EILV and ASALV
in Ae. aegyp i mosqui oes [
15
–
21
] sugges ha Ae. aegyp i could be a po en ial hos o
insec -speci ic alpha i uses.
When a i us is o ally acqui ed, he midgu is he i s o gan in he mosqui o o become
in ec ed. Following midgu in ec ion, he i us sp eads o seconda y issues, such as he
sali a y glands [
37
,
38
]. P e ious esea ch has shown ha when in ec ed o ally, Ae. aegyp i,
Anopheles gambiae, and Cx. quinque ascia us mosqui oes expe ienced low dissemina ion o
EILV o hei legs and wings. When in ec ed o ally, a high in ec ious i e was necessa y
o dissemina ion in Ae. aegyp i (10
7
PFU/mL), Anopheles gambiae (10
7
PFU/mL), and
Cx. quinque ascia us (10
9
PFU/mL) compa ed o he injec ed ones [
20
]. This sugges s
a s ong midgu ba ie agains insec -speci ic alpha i uses. In his s udy, ASALV was
dissemina ed success ully in Ae. aegyp i wi h a i al i e o 10
7
PFU/mL, simila o EILV.
Howe e , since we did no de e mine he dissemina ion a e (i.e., by es ing indi idual
mosqui oes) in his s udy, ou esul s o ASALV canno be di ec ly compa ed o he
p e iously epo ed dissemina ion a es o EILV wi h he same i e . We also obse ed
a signi ican impac in e ms o he ou e o in ec ion on he ASALV load in dissec ed
issues: ASALV-injec ed mosqui oes had highe i al loads han o ally in ec ed mosqui oes.
Ne e heless, ASALV success ully dissemina ed in di e en issues in bo h ASALV-injec ed
and o ally in ec ed mosqui oes, and he in ec ion ou e did no change he issue opism o
ASALV in Ae. aegyp i.
Ano he open ques ion on ISVs is how hey a ec mosqui os’ i ness. Some ISVs wi h
DNA genomes (e.g., Aedes albopic us denso i uses) exhibi ed isible pa hology and mass
mo ali y du ing he la al s age [
39
], whe eas insec -speci ic RNA i uses did no seem
o cause any easily de ec able pa hology o high mo ali y. Howe e , some RNA i uses
ha e been shown o a ec mosqui o beha iou . Fo ins ance, CxFV in ec ion al e s he