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Landscape simplification increases Bactrocera oleae abundance in olive groves: adult population dynamics in different land uses

Abstract

Bactrocera oleae is the main pest in olive groves, and its management requires a sustainable perspective to reduce the use of chemical products. Landscape context is being considered as an important driver of pest reduction, but results on B. oleae show inconsistency to date. Most of landscape-pest control studies focus on the dynamics of the pests within the focal crop, ignoring these dynamics in other land uses. Here we present a study in which we analyze the seasonal population dynamics of the olive pest B. oleae in the most important land uses of a typical olive landscape in Portugal. We found that B. oleae is present in all the land uses and the dynamics are very similar to those in the olive groves. However, the presence of these land uses in the landscape did not display any increase in B. oleae abundance within the olive groves. In contrast, a landscape mainly composed by olive groves increased the abundance of this pest. Importantly, more diverse landscapes surrounding olive groves reduce the abundance of the olive fy. Based on these fndings, we can conclude that B. oleae is present in all the land uses of the studied landscape but that this presence does not imply an increase of B. oleae in olive groves. Indeed, other land uses can promote landscape diversifcation which is a driver of the reduction of B. oleae populations in olive groves. We thus encourage olive stakeholders to increase landscape diversifcation around their farms by promoting/restoring other crops/habitats

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Landscape simplification increases Bactrocera oleae abundance in olive groves: adult population dynamics in different land uses

Author: Paredes, Daniel,Alves, João Frederico,Mendes, Sara,Costa, José Miguel,Alves, Joana,Silva, António Alves da,Sousa, José Paulo
Publisher: Springer Nature
Year: 2022
DOI: 10.1007/s10340-022-01489-1
Source: https://estudogeral.uc.pt/bitstream/10316/100342/1/Paredes2022_Article_LandscapeSimplificationIncreas.pdf
Vol.:(0123456789)
1 3
Jou nal o Pes Science
h ps://doi.o g/10.1007/s10340-022-01489-1
ORIGINAL PAPER
Landscape simpli ica ion inc eases Bac oce a oleae abundance
inoli e g o es: adul popula ion dynamics indi e en land uses
DanielPa edes1 · JoãoF ede icoAl es1· Sa aMendes1 · JoséMiguelCos a1 · JoanaAl es1 ·
An ónioAl esdaSil a1 · JoséPauloSousa1
Recei ed: 10 No embe 2021 / Re ised: 27 Janua y 2022 / Accep ed: 25 Feb ua y 2022
© The Au ho (s) 2022
Abs ac
Bac oce a oleae is he main pes in oli e g o es, and i s managemen equi es a sus ainable pe spec i e o educe he use o
chemical p oduc s. Landscape con ex is being conside ed as an impo an d i e o pes educ ion, bu esul s on B. oleae
show inconsis ency o da e. Mos o landscape-pes con ol s udies ocus on he dynamics o he pes s wi hin he ocal c op,
igno ing hese dynamics in o he land uses. He e we p esen a s udy in which we analyze he seasonal popula ion dynamics
o he oli e pes B. oleae in he mos impo an land uses o a ypical oli e landscape in Po ugal. We ound ha B. oleae is
p esen in all he land uses and he dynamics a e e y simila o hose in he oli e g o es. Howe e , he p esence o hese
land uses in he landscape did no display any inc ease in B. oleae abundance wi hin he oli e g o es. In con as , a landscape
mainly composed by oli e g o es inc eased he abundance o his pes . Impo an ly, mo e di e se landscapes su ounding
oli e g o es educe he abundance o he oli e ly. Based on hese indings, we can conclude ha B. oleae is p esen in all
he land uses o he s udied landscape bu ha his p esence does no imply an inc ease o B. oleae in oli e g o es. Indeed,
o he land uses can p omo e landscape di e si ica ion which is a d i e o he educ ion o B. oleae popula ions in oli e
g o es. We hus encou age oli e s akeholde s o inc ease landscape di e si ica ion a ound hei a ms by p omo ing/ es o -
ing o he c ops/habi a s.
Keywo ds Pes managemen · Land uses· Landscape di e si ica ion· Oli e ly
Key message
• Pes popula ion dynamics ou o he ocal c op has been
poo ly s udied.
• Bac oce a oleae was ound in all he land uses ha com-
pound a ypical oli e landscape in Po ugal.
• The p esence in o he land uses did no lead o a ise o
pes popula ion in he oli e g o es.
• Landscape domina ed by oli e g o es signi ican ly
inc eases he abundance o his pes .
• We encou age oli e g owe s o p omo e landscape di e -
si ica ion o educe he abundance o his pes .
In oduc ion
In he las decades, ag icul u e has passed h ough an in en-
si ica ion p ocess by d as ically inc easing he land de o ed
o a ming o ood p oduc ion (Foley e al. 2005). This p o-
cess has esul ed in he loss o na u al habi a s which in u n
has p o oked a loss o biodi e si y and a educ ion o he
ecosys em se ices associa ed wi h i (Di zo e al. 2014).
In addi ion, his landscape simpli ica ion p ocess inc eases
he likelihood o mo e damaging and ca as ophic pes ou -
b eaks (Pa edes e al. 2021), which has in ensi ied a me s’
dependence on insec icides. Howe e , he esis ance o pes s
o insec icides is augmen ing, e en exceeding he capaci y
o gene a e new p oduc s o comba hese pes s (Gould e al.
2018). Because o his, new policies a e p omo ing he use
o sus ainable solu ions o pes managemen ha do no
Communica ed by Ma io Balzan.
* Daniel Pa edes
[email p o ec ed]; a [email p o ec ed]
1 Cen e o Func ional Ecology, Associa ed Labo a o y
TERRA, Depa men o Li e Sciences, Uni e si y
o Coimb a, Calçada Ma im de F ei as, 3000-456Coimb a,
Po ugal
Jou nal o Pes Science
1 3
imply he use o his kind o p oduc s (Eu opean Comission
2020). Al hough mos o he echniques ha ha e been es ed
a e o ien a ed owa d i s implemen a ion a he local le el,
ecologis s, ag onomis s and a me s a e inc easingly ecog-
nizing he c i ical ole ha su ounding landscapes can play
in de e mining pes damage (Thies and Tscha n ke 1999;
Bianchi e al. 2006).
Simpli ied landscapes (i.e., expansi e monocul u es) can
inc ease pes ou b eaks because hey p omo e specialized
pes popula ions o de elop and sp ead mo e easily, whe eas
complex landscapes (i.e., mosaics o di e en land uses)
can be a ba ie ha hampe his expansion (Roo 1973;
O’Rou ke and Pe e sen 2017). On he o he hand, di e si ied
landscapes can p omo e pes na u al enemies (p eda o s and
pa asi oids) by p o iding esou ces such as shel e , nec a ,
pollen and/o al e na i e p ey o hei op imal de elopmen ,
hus imp o ing hei ac ion agains pes s (Landis e al. 2000;
Chaplin-K ame e al. 2011). The e o e, plan ing mul iple
c ops o e aining non-c op ege a ion may lowe pes densi-
ies and educe insec icide applica ions (Dainese e al. 2019;
Pa edes e al. 2021). Howe e , pes s can also use o he land
uses in he landscape o hei de elopmen , hus inc eas-
ing hei p esence in o he c op (Tscha n ke e al. 2016).
Fo example, in A ica, co n s embo e s appea ed o be
p omo ed by g asslands (Midega e al. 2014), which aligns
wi h ano he s udy in Aus alia ha also showed na u al
g asslands as a sou ce o pes (Pa y e al. 2015). Pe haps,
he mos c i ical case is he in asi e pes species D osoph-
ila suzukii ha seems o be posi i ely a ec ed by na u al
habi a s a he landscape scale, by using al e na i e hos s
o h i e (San oiemma e al. 2018) and also because hese
habi a s p o ide be e p o ec ion agains ad e se wea he
condi ions du ing win e and summe pe iods (San oiemma
e al. 2019). Thus, he inconsis ency o pes esponses o
landscape complexi y p e en s esea che s o emi clea con-
clusions abou he ole o landscape on pes con ol (Ka p
e al. 2018). I also highligh s he impo ance o pes species’
ai s o elucida e i s esponses o landscape composi ion
(Tambu ini e al. 2020) as well as on how hey in e ac wi h
he di e en elemen s in he landscape.
Bac oce a oleae (Rossi) is he majo oli e pes ha
induces economic losses wo ldwide o aling app oxima ely
15% pe yea (Mon iel-Bueno and Jones 2001). The e ec
o landscape con ex on his pes is no well de ined. Fo
example, a s udy pe o med in sou he n Spain showed a
educ ion o his pes in a eas wi h mo e na u al habi a edge
densi y, landscape di e si y and highe numbe o pa ches
o na u al ege a ion (O ega and Pascual 2014). Howe e ,
ano he s udy ca ied ou in I aly did no ind any e ec o
na u al habi a s on B. oleae abundance (Picchi e al. 2016),
whe eas ano he wo k de eloped in sou he n Spain showed
a posi i e e ec o na u al habi a s on B. oleae abundance
(Manjón-Cabeza e al. 2017). The s ochas ici y ha pes
popula ions ha e may be behind hese con as ing esul s
(Chaplin-K ame e al. 2013; Pa edes e al. 2021). Howe e ,
nei he o hese s udies no mos o he o he s ega ding he
e ec o landscape on o he pes s (bu see San oiemma e al.
2019) ha e e e explo ed whe he he popula ion dynamics
o his pes in o he land uses is di e en o simila om ha
in he oli e g o e.
E en mo e, he oli e ly has a pe iod du ing he yea in
which i disappea s om he oli e g o es. This is called he
“whi e pe iod” ha akes place in he mon hs o May and
June when he abundance o oli e ly in he ield suddenly
d ops, and he e a e no oli e ui s o a ack (Michelakis and
Neuenschwande 1981). Be o e ha pe iod, he e is an en i e
gene a ion o lies (Ma ch–May) (Ma chini e al. 2017) ha
can only lay eggs on he incipien oli e ui s (Boccacio and
Pe achi 2009). By he end o he summe , a e he “whi e
pe iod”,a new gene a ion begins o ise un il he win e
(Ma chini e al. 2017). Du ing he “whi e pe iod,” he oli e
ly can be ound wi hin he oli e ui as la ae, bu he
oli e ly in headul s agecan also mo e in he landscape
looking o o he esou ces ha ul ima ely can ein o ce i s
popula ion when i s a s ising in Au umn. The e o e, o
unde s and he popula ion dynamics o B. oleae in o he land
uses is c i ical o unde s and he impo ance o a landscape
pe spec i e in he managemen o his pes and how can we
be e p omo e na u al pes con ol mechanisms based on
landscape managemen (Daane and Johnson 2010).
He e we pu pose a s udy in which we in es iga e he
dynamics o B. oleae in he di e en land uses ha com-
pound a ypical oli e landscape in Po ugal. We aim a
answe ing he ollowing ques ions: (1) To wha ex en is
Bac oce a oleae p esen in he di e en land uses, includ-
ing oli e g o e? (2) Which a e he dynamics o B. oleae
in hese land uses? and (3) How di e en land uses a he
landscape scale a ec he abundance o Bac oce a oleae in
oli e g o es?
Ma e ial andme hods
S udy si es andinsec sampling
To achie e he objec i es o his s udy, a o al o 79 sam-
pling poin s dis ibu ed among he mos common land uses
de ec ed in he sampling a ea loca ed in he Bei a In e io
egion o Po ugal wi hin he municipali ies o Cas elo
B anco and Idanha-a-No a we e selec ed (Fig.1). The
land uses de ec ed in his a ea we e sh ublands, eucalyp us
o es s, pine o es s, “mon ado” (Ibe ian oaks sa annahs),
g asslands, ineya ds and oli e g o es. As i is he main land
use o he s udy and he place whe e he ac i i y o B. oleae
akes place, o he o al o 79 sampling poin s, 25 poin s
we e loca ed in oli e g o es. The wen y- i e oli e g o es
Jou nal o Pes Science
1 3
we e mos ly cen ena y o he same a ie y (Galega), non-
i iga ed, wi h low g oundco e ege a ion due o li es ock
p esence and we ecul i a ed a he momen o sampling.
Du ing his s udy, oli e g owe s did no apply pes icides and
did no use land plouwing me hods. The es o sampling
poin s we e dis ibu ed among he o he land uses a he a e
o nine o each one (Fig.1).
To de e mine B. oleae abundance, a McPhail ap was
placed a each one o he poin s selec ed in Feb ua y 2019
(Fig.1). Each ap was illed wi h a liquid con en consis -
ing o a 250mL aqueous solu ion wi h 5% diammonium
phospha e and 2% bo ax, which is e y e ec i e in a ac ing
B. oleae adul s (Po cel e al. 2009). Samples we e mon hly
collec ed o one yea s a ing in Feb ua y 2019 and ending
in Janua y 2020. A e collec ion in he ield, samples we e
anspo ed o he labo a o y whe e indi iduals o B. oleae
we e coun ed.
Landscape analysis
A each o he 25 sampling poin s loca ed in oli e g o es,
a geospa ial analysis o he su ounding bu e a ea wi h a
adius o 500m was pe o med using QGIS so wa e (Open-
Sou ce Geospa ial Founda ion. Bea e on. OR. USA), a
Geog aphic In o ma ion Sys ems (GIS) pla o m. Based on
ae ial pho og aphs, we delinea ed polygons by ep esen ing
he di e en pa ches o he di e en land uses ound in he
s udy a ea al eady men ioned abo e. The minimal digi ized
polygon size was 0.8ha. associa ed wi h a ineya d land
use. To alida e misalignmen o he landscape elemen s,
in addi ion o adding da a o he elemen s ha canno be
iden i ied om he ae ial pho og aphs, i was necessa y o
pe o m a isual ield alida ion o con i m he land use o
each selec ed poin . All o his geospa ial in o ma ion was
con e ed o as e images and analyzed in o F ags a s so -
wa e (Uni e si y o Massachuse s. Amhe s , MA. USA).
F om his spa ial pa e n analysis, we ob ained class-le el
landscape me ics, in which he o al a ea o each land use
wi hin each o he landscape bu e zones was quan i ied
as a pe cen age. F om hese alues, we hen ob ained he
Shannon’s di e si y index (SHDI) ha we used as a p oxy
o landscape di e si y. To es ima e landscape simpli ica ion,
we used he p opo ion o he oli e land use su ounding he
sampling poin .
Modeling
To de e mine he p esence o B. oleae in he di e en land
uses p esen a he s udy a ea, we i s added all he indi idu-
als coun ed a each sampling da e o ge a single alue pe
sampling poin . We hen s ablisheds a is ically signi ican
di e ences be ween se s o pai s o land uses by using a non-
pa ame ic Wilcoxon ank sum es wi h p- alues adjus ed
by he Benjamini & Hochbe g me hod (Benjamini and
Hochbe g 1995). Then, o be e ep esen a ion in a box-
plo we log- ans o med he da a used o pe o m his es .
G asslands
Legend
Ecualyp us o es s
Sh ublands
O he landuses(e.g.,u ban a eas)
Oli eg o es
Mon ado
Pine o es s
Vineya ds
ab
0Km5Km10 Km
Fig. 1 Loca ion o he s udy a ea in Po ugal (a) and dis ibu ion o sampling poin s ac oss he di e en land uses o he s udy a ea (b)
Jou nal o Pes Science
1 3
To accoun o he dynamics o B. oleae in he di e -
en habi a s du ing one yea , we used Gene alized Addi-
i e Mixed Models (GAMMs) wi h a p edic o in he o m
o an in e ac ion be ween he Julian day in which he aps
we e sampled and he land use in which hey we e loca ed.
Numbe o kno s we e se a i e o allow o he ep esen a-
ions o he luc ua ions o he popula ion a each land use.
Finally, we added he loca ion o he ap (sampling poin ) as
a andom ac o o con ol o he pseudo eplica ion o e he
ime as se e al samples we e collec ed in he same poin a
di e en momen s o he yea . We i s modeled his combi-
na ion o ac o s wi h a Poisson e o dis ibu ion o being
he na u e o he esponse a iable a coun bu a e es ing
o o e dispe sion, we inally decided o model i wi h a
nega i e binomial e o dis ibu ion wi h a log link unc ion
o accoun o o e dispe sion. To accoun o model s abili y,
we pe o med he popula ion dynamic models o each one
o he land uses sepa a ely and ob ained e y simila esul
in e ms o signi ican dynamics (p- alue < 0.05).
To accoun o he e ec o he di e en land uses on B.
oleae abundance in oli e g o es, we also used he pooled
da ase applied in he i s analysis ha con ains a single
alue o each one o he 25 oli e g o es sampled. We hus
decided o pe o m a model selec ion app oach based on
he Akaike in o ma ion c i e ia co ec ed o small sample
size (AICc) o choose he bes model. Models wi h he low-
es AICc and hose wi h a di e ence o less han wo AICc
uni s om he lowes we e chosen o u he explana ion.
Thus, we c ea ed a se o gene alized linea models each one
including as p edic o he pe cen age o a single land use
ha we e: oli e, sh ublands, “mon ado,” g asslands, euca-
lyp us o es , pine o es s, ineya ds and Shannon di e si y
index. We comple e his se o models wi h a null model
o accoun o non-e ec s. Simila ly o popula ion dynamic
models, we i s op ed o a Poisson e o dis ibu ion bu
a e es ing o o e dispe sion we decided o model he da a
wi h a nega i e binomial e o dis ibu ion and log link unc-
ion. All analyses we e pe o med in R using he packages
“mgc ” o GAMMs (Wood 2011), “lme4” o GLMs (Ba es
e al. 2015), “DHARMa” o o e dispe sion analysis (Ha ig
e al. 2018) and “ggplo 2” o isualized esul s (Wickham
2016).
Resul s
A o al o 10,315 B. oleae indi iduals we e collec ed and
coun ed du ing he whole expe imen . They we e p esen in
all he land uses es ed in his s udy (Fig.2). As expec ed,
he highes abundance was ound in oli e g o es wi h a o al
o 8290 indi iduals. In he land use “mon ado,” a o al o
794 indi iduals we e apped ollowed by eucalyp us o es s
in which 634 indi iduals we e collec ed. Fo he o he land
uses, he o al numbe o cap u ed was lowe , wi h 246 indi-
iduals in pine o es , 196 in ineya ds, 114 in sh ublands
and only 34 in g asslands. These di e ences a e e lec ed in
Fig.2 and align wi h he esul s ob ained in he Wilcoxon
es (Table1). Oli e g o es appea s as he land use ha -
ing signi ican di e ences wi h all he es o he land uses.
“Mon ado” showed di e ences wi h g asslands, pine o es
Fig. 2 Boxplo o he loga i hm o he abundance o B. oleae o he
di e en land uses in ol ed in he s udy. The op and bo om o he
box a e i s qua ile (Q1) and hi d qua ile (Q3), and he cen e line
is median (Q2). Whiske s ep esen 1.5 imes he IQR (Q3–Q2) in
ela ion o he uppe and lowe qua iles. Poin s ep esen helog o
he abundance a each sampling poin
Jou nal o Pes Science
1 3
and oli e g o es bu no wi h eucalyp us o es s and ine-
ya ds. Simila esul s we e ob ained o eucalyp us o es s.
Sh ublands only showed signi ican di e ences wi h oli e
g o es and “mon ado.” A simila si ua ion occu ed wi h
pine o es and g asslands, bu hese land uses also showed
signi ican di e ences wi h eucalyp us o es s. Finally,
ineya ds only displayed signi ican di e ences wi h oli e
g o es.
Pes dynamics we e signi ican in i e o he se en land
uses es ed in his s udy (Fig.3). Speci ically, B. oleae
showed signi ican dynamics in oli e g o es, “mon ado,”
eucalyp us o es s, g asslands and ineya ds (Table2). Bac-
oce a oleae popula ion in oli e g o es s a ed aising in
Table 1 S a is ically signi ican
di e ences be ween se s o
pai s o land uses by using a
nonpa ame ic Wilcoxon ank
sum es wi h p- alues adjus ed
by he Benjamini & Hochbe g
me hod
Signi ican di e ences (p < 0.05) highligh ed in bold
Eucalyp us o es s Sh ublands Mon ado Oli e g o es G asslands Pine o es s
Sh ublands 0.053
Mon ado 0.691 0.029
Oli e g o es < 0.001 < 0.001 0.005
G asslands 0.006 0.442 0.009 < 0.001
Pine o es s 0.027 0.376 0.029 < 0.001 0.685
Vineya ds 0.329 0.442 0.156 < 0.001 0.074 0.137
Fig. 3 Bac oce a oleae empo al dynamics in he di e en land
uses ha compound he s udy along wi h he ep esen a ion o all he
dynamics oge he . Blue, pink, g een, b own and ed lines ep esen
g asslands, ineya ds, oli e g o es, “mon ado” and eucalyp us o -
es s, espec i ely. Shadowed a eas ep esen he con iden in e als a
95%
Table 2 Signi icance o alues o oli e ly popula ion dynamics in
he di e en land uses used o he Gene alized Addi i e Model
Va iable p- alue
Popula ion dynamics in Eucalyp us o es s < 0.001
Popula ion dynamics in Sh ublands 0.371
Popula ion dynamics in Mon ado 0.003
Popula ion dynamics in Oli e g o es < 0.001
Popula ion dynamics in G asslands 0.019
Popula ion dynamics in Pine o es s 0.615
Popula ion dynamics in Vineya ds < 0.001
R2 0.204
De iance explained 70.6%

Jou nal o Pes Science
1 3
Ma ch, eaching a peak in May. Then, i sligh ly dec eased
un il mid-July when s a ed no ably spiking o ind he maxi-
mum abundance in mid-Oc obe o hen dec ease du ing
he win e . G asslands and ineya ds showed a e y simi-
la pa e n ha e lec ed a sus ained g ow h om Ma ch o
Oc obe and hen dec ease du ing he win e . In con as , he
dynamics o B. oleae in eucalyp us o es s and “mon ado”
displayed a wo-hump pa e n wi h an in ense g ow h om
Feb ua y o mid-Ap il and hen a dec ease inding he bo -
om a ound July and Augus and hen expe ienced ano he
g ow h ha peaked in he beginning o No embe . These
dynamics we e e y simila o he one in oli e g o es, bu
he in ensi y o he i s inc ease was highe han in oli e
g o es, especially o eucalyp us o es s (Fig.3).
Rega ding he e ec o he di e en land uses on he
abundance o B. oleae in oli e g o es, he selec ed mod-
els displayed a posi i e e ec su ounding oli e g o es
(Es ima e = 0.015: p- alue = 0.019) and a nega i e e ec o
he Shannon di e si y index on B. oleae abundance (Es i-
ma e = − 0.734: p- alue = 0.045) (Table3; Fig.4). The abun-
dance o B. oleae inc eased mo e han wo imes om oli es
g o es wi h o he land uses su ounding hem o places wi h
a e y simpli ied landscape > 90% o oli e g o es in he
bu e a ea). In con as , landscape di e si ica ion displayed
a nega i e e ec educing he abundance o B. oleae wo
imes om less di e si ied o mo e di e si ied landscapes.
I is impo an o no ice ha he pa allel e ec ha shows
he ends o landscape simpli ica ion and landscape di e -
si y is due o he high nega i e co ela ion among hese wo
p edic o s.
Discussion
This s udy demons a ed ha B. oleae is p esen in he main
land uses ha comp ise his ypical Po uguese oli e land-
scape. As expec ed, maximum abundance was ound in
oli e g o es, bu also impo an abundances we e ound in
Table 3 Akaike alues
co ec ed o small sample size
(AICc) o he di e en models
gene a ed o es ing he e ec
o he amoun o a land use in
he landscape on he abundance
o he pes Bac oce a oleae
Minimum AICc in bold
Land use AICc
Null 345.45
Mon ado 363.32
Eucalyp us o es s 347.87
G asslands 345.68
Pine o es s 346.20
Sh ublands 347.91
Vineya ds 347.81
Oli e g o es 341.46
Shannon di e si y 342.91
Fig. 4 Es ima ed e ec s o g adien s o landscape di e si y (b own line) and landscape simpli ica ion (g een line) on Bac oce a oleae abun-
dance. Shadowed a eas ep esen he con iden in e als a 95% (N = 25)
Jou nal o Pes Science
1 3
eucalyp us o es s and “mon ado.” Ou expe imen al design
does no allow us o in e he easons o he p esence o B.
oleae in he di e en land uses, bu we can hypo hesize ha
hey a e no h i ing on al e na i e hos s due o B. oleae
cha ac e is ics as a specialis oli e pes (Daane and Johnson
2010; Cla ke 2018). In con as , he ac ha his ly appea s
in all he land uses es ed may be ela ed o i s dispe sal
beha io , being able o ly a ound 400m pe week (Fle che
and Kapa os 1981). When popula ions s a o build, new
adul lies dispe se o o he oli e a eas o de elop he nex
gene a ion (Kouna idis e al. 2008). Du ing his mig a ion,
hey can pass h ough pa ches o o he land uses in which
hey es and sea ch o esou ces o su i e. Consequen ly,
i makes sense ha he dynamics in o he land uses has o be
ela ed o he dynamics in he oli e g o es as hey a e going
o ac as a sou ce o oli e lies. Ne e heless, his pa allelism
is no pe ec in all he land uses. Fo example, he popula-
ions in ineya ds and g assland peak a he same ime as in
oli e g o es, in he all, bu no peak is displayed in sp ing.
C i ically, howe e , B. oleae abundance in eucalyp us o es
and in “mon ado” eally encompassed oli e g o e dynamics
wi h wo clea ly de ined peaks: one in sp ing and he o he
in au umn. This ac could be explained by he simila dis-
ibu ional cha ac e is ics o hese habi a s.
The dis ibu ional cha ac e is ic o a habi a can be
e y impo an o pes s o ecognize new po en ial sui -
able e i o ies o dispe se (P opoki and Owens 1983; Jac-
el e al. 2021). This is especially ele an in he bi o ous
diu nal species such as eph i id lies, he g oup o which
B. oleae belongs. Fo hese insec s, isual cues may play
an impo an ole in he loca ion o hos plan s and essen-
ial esou ces, such as ood, ma ing and o iposi ion si es
(P opoki and Owens 1983). Indeed, some eph i id lies ha e
been de ec ed isually eac ing o shapes and silhoue es o
plan popula ions (Moe icke e al. 1975). The e o e, size o
ege a ional pa ch, densi y and dispe sion pa e n o hos s
plan s wi hin a pa ch, mo phological di e ences be ween
hos s and non-hos s, and he o e all aspec o hos habi-
a s (Feeny 1976, Rausche 1981) in space and ime may all
ha e an e ec ha can be eally impo an wi hin an ag i-
cul u al con ex (Bach 1981; Smi h 1976). The e o e, when
dispe sing, B. oleae could po en ially selec eucalyp us o es
and, especially, “mon ados” as sui able habi a s o look o
esou ces du ing he sp ing, as hey show dispe sion pa -
e ns and densi ies e y simila o oli e g o es wi h soli a y
sca e ed ees. Indeed, his could be he eason behind he
ac ha B. oleae popula iondynamic in “mon ados” mimic
hose in oli e g o es. Howe e , eucalyp us o es appea ance
is no simila o oli e g o es and he easons o epea ing
some empo al dynamics could be ela ed o his habi a ac -
ing as a shel e o ex eme wea he condi ions specially
in summe when B. oleae is highly a ec ed by high em-
pe a u es in he adul s age (Gu ie ez e al. 2009; Wang
e al. 2009; Abd El-Salam e al. 2019). Howe e , empo al
dynamics in eucalyp us o es s show a decline in he oli e
ly popula ion du ing summe . This is no consis en wi h
he clima e shel e hypo hesis, and mo e esea ch should be
done o elucida e why B. oleae eels a ac ion o eucalyp us
o es s.
Despi e he ac ha mos o he land uses s udied dis-
played a signi ican popula ion dynamic o he pes , ou
esul s show ha none ac as a ese oi o boos Bac oce a
oleae popula ions. This is co obo a ed wi h he null e ec
ha any habi a had on ly abundance wi hin he oli e g o e.
C i ically, landscape simpli ica ion (la ge a eas jus co e ed
wi h oli e g o es in he landscape) and landscape di e si-
ica ion (di e si y o land uses in he landscape) displayed
he mos no able e ec s. On he one hand, simpli ied land-
scapes allow B. oleae o easily g ow as hey ha e plen y o
esou ces o build hei popula ion and sp ead easily because
hey ha e no ba ie s o impede i s dispe sion (Roo 1973;
O’Rou ke and Pe e sen 2017). Impo an ly, he p esence o
B. oleae indi iduals in o he land uses, as demons a ed in
his s udy, suppo s he idea ha hese landscape elemen s
could ac as a ba ie o he dispe sion o his pes , which
e lec s i s low abundance in di e si ied landscapes. Mo eo-
e , simpli ied landscapes lack na u al enemies ha can exe
a p ope op-down con ol o he pes popula ion, whe eas
di e si ied landscapes can p o ide wi h esou ces o hese
na u al enemies allowing he deli e y o na u al pes con ol
se ices (Chaplin-K ame e al. 2011; Rusch e al. 2016).
Thus, he implica ion o inc easing landscape di e si y
seems ob ious o his pes and align wi h o he s udies ha
de ec ed landscape di e si ica ion as a majo d i e o B.
oleae abundance educ ion (O ega and Pascual 2014).
Managemen implica ions
As a consequence o hese indings, we encou age a me s,
echnicians and poli icians o p omo e landscape di e si i-
ca ion in oli e g o es. Inc easing a eas wi h di e en land
uses will likely impend he dispe sion o B. oleae, ul ima ely
p e en ing sudden popula ion peaks, which would o he wise
esul in ou b eaks ha would necessi a e insec icide appli-
ca ions. A he indi idual le el, a me s could be e con ol
B. oleae popula ions by plan ing na i e ege a ion a ound
hei a ms. Howe e , he inc ease in land use di e si y will
depend on he coo dina ion be ween g oups o neighbo ing
a me s o edesign he a angemen o he di e en elemen s
o he landscape, aking ad an age o he syne gies p o ided
by he o og aphy and changing land uses in a eas whe e
he composi ion is no balanced. A good way o p omo e
coo dina ion be ween di e en ag icul u al s akeholde s is
he inancial compensa ion p og ams ha go e nmen s can
pu in place o help inc ease he di e si y o he landscape
(Ba á y e al. 2015). This ype o coo dina ion based on he
Jou nal o Pes Science
1 3
in o ma ion we ob ain om he landscape is an impo an
and necessa y s ep o ob aining colla e al bene i s ela ed
o he p omo ion o ecosys em se ices such as biodi e si y
conse a ion and human heal h.
Au ho s’ con ibu ion
DP, SM, JA, AAS and JPS concei ed he p ojec and
designed he me hods; DP, SM, JFA and JMC collec ed he
da a; DP and JPS analyzed he da a; DP w o e he s udy. All
au ho s made c i ical con ibu ions o he d a and ga e inal
app o al o publica ion.
Acknowledgemen s The au ho s a e g a e ul o he Associa ion o
Oli e Oil P oduce s o Bei a In e io (APABI, Po ugal) o all he
e o and ca e in iden i ying and de ec ing he landowne s we equi ed,
as well as o all he oli e g owe s who kindly allowed he aps o
emain on hei p ope ies du ing he ial pe iod. We hank M. Sc.
Danielle Rudley o p oo eading he documen . We would also like
o hank M. Sc. Mikola Rasko, M. Sc. Rúben Mina and M. Sc. Sand a
Simões o hei con ibu ion o he sampling p ocess.
Funding This esea ch was unded by P og ama Ope acional Regional
do Cen o, G an Numbe Cen o-01-0145-FEDER-000007 (ReNA-
TURE), by he Eu opean Union’s Ho izon 2020 Resea ch and Inno-
a ion P og amme, unde G an Ag eemen No. 773554 (EcoS ack),
and by Fundação pa a a Ciência e Tecnologia h ough he p ojec
PTDC/ASP-PLA/30003/2017 (OLIVESIM). JA was inanced by
FCT/MCTES, h ough na ional unds (PIDDAC), o he Cen e o
Func ional Ecology-Science o People and he Plane (CFE), wi h he
e e ence UIDB/04004/2020.
Decla a ions
Con lic o in e es All au ho s decla e ha hey ha e no con lic o in-
e es . The au ho s ha e no ele an inancial o non- inancial in e es s
o disclose. The au ho s ha e no compe ing in e es s o decla e ha a e
ele an o he con en o his a icle. All au ho s ce i y ha hey ha e
no a ilia ions wi h o in ol emen in any o ganiza ion o en i y wi h
any inancial in e es o non- inancial in e es in he subjec ma e o
ma e ials discussed in his manusc ip . The au ho s ha e no inancial
o p op ie a y in e es s in any ma e ial discussed in his a icle.
E hical app o al This a icle does no con ain any s udies wi h human
pa icipan s o animals pe o med by any o he au ho s.
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