scieee Science in your language
[en] (orig)

Distinct Hippocampal Oscillation Dynamics in Trace Eyeblink Conditioning Task for Retrieval and Consolidation of Associations

Read accessible full text

Distinct Hippocampal Oscillation Dynamics in Trace Eyeblink Conditioning Task for Retrieval and Consolidation of Associations

Author: Kim, Kayeon,Nokia, Miriam S.,Palva, Satu
Publisher: Society for Neuroscience
Year: 2024
Source: https://jyx.jyu.fi/bitstream/123456789/94869/1/ENEURO.0030-23.2024.full.pdf
This is a sel -a chi ed e sion o an o iginal a icle. This e sion
may di e om he o iginal in pagina ion and ypog aphic de ails.
Au ho (s):
Ti le:
Yea :
Ve sion:
Copy igh :
Righ s:
Righ s u l:
Please ci e he o iginal e sion:
CC BY 4.0
h ps://c ea i ecommons.o g/licenses/by/4.0/
Dis inc Hippocampal Oscilla ion Dynamics in T ace Eyeblink Condi ioning Task o
Re ie al and Consolida ion o Associa ions
© 2024 Kim e al.
Published e sion
Kim, Kayeon; Nokia, Mi iam S.; Pal a, Sa u
Kim, K., Nokia, M. S., & Pal a, S. (2024). Dis inc Hippocampal Oscilla ion Dynamics in T ace
Eyeblink Condi ioning Task o Re ie al and Consolida ion o Associa ions. eNeu o, 11(4),
A icle ENEURO.0030-23.2024. h ps://doi.o g/10.1523/ENEURO.0030-23.2024
2024
Dis inc Hippocampal Oscilla ion
Dynamics in T ace Eyeblink
Condi ioning Task o Re ie al and
Consolida ion o Associa ions
Kayeon Kim,
1,2
Mi iam S. Nokia,
3
and Sa u Pal a
1,4,5
1
Neu oscience Cen e , Helsinki Ins i u e o Li e Sciences, Uni e si y o Helsinki, Helsinki
FI-00014, Finland,
2
Depa men o Neu oscience, Facul y o Heal h and Medical Science,
Uni e si y o Copenhagen, Copenhagen N DK-2200, Denma k,
3
Depa men o Psychology,
Uni e si y o Jy äskylä, Jy äskylä FI-40014, Finland,
4
Cen e o Cogni i e Neu oscience,
School o Psychology and Neu oscience, Uni e si y o Glasgow, Glasgow G12 8QQ, Sco land,
and
5
Di ision o psychology, VISE, Facul y o Educa ion and Psychology, Uni e si y o Oulu,
Oulu, Os obo hnia FI-90014, Finland
Abs ac
T ace eyeblink condi ioning (TEBC) has been widely used o s udy associa i e lea ning in bo h animals
and humans. In his pa adigm, condi ioned esponses (CRs) o condi ioned s imuli (CS) se e as a
measu e o e ie ing lea ned associa ions be ween he CS and he uncondi ioned s imuli (US) wi hin
a ial. Memo y consolida ion, ha is, lea ning o e ime, can be quan i ied as an inc ease in he p opo ion
o CRs ac oss aining sessions. Howe e , how hippocampal oscilla ions di e en ia e be ween success ul
memo y e ie al wi hin a session and consolida ion ac oss TEBC aining sessions emains unknown. To
add ess his ques ion, we eco ded local ield po en ials (LFPs) om he a do sal hippocampus du ing
TEBC and in es iga ed hippocampal oscilla ion dynamics associa ed wi h hese wo unc ions. We
show ha ansien b oadband esponses o he CS we e co ela ed wi h memo y consolida ion, as indexed
by an inc ease in CRs ac oss TEBC sessions. In con as , induced alpha (8–10 Hz) and be a (16–20 Hz)
band esponses we e co ela ed wi h he success ul e ie al o he CS–US associa ion wi hin a session,
as indexed by he di e ence in ials wi h and wi hou CR.
Key wo ds: classical condi ioning; c oss- equency coupling; hippocampus; memo y; phase locking
Signi icance S a emen
T ace eyeblink condi ioning is widely used o s udy he neu al basis o lea ning. How b ain oscilla o y
signa u es o ins an aneous e ie al o associa ions di e om hose e lec ing long- e m memo y
consolida ion is no well unde s ood. We eco ded local ield po en ials om he a hippocampus
du ing condi ioning o dissocia e oscilla ion dynamics associa ed wi h hese unc ions. We show
ha a ansien , ea ly, b oadband esponse is co ela ed wi h memo y consolida ion (inc ease in
condi ioned esponses ac oss aining sessions) whe eas long-la ency sus ained alpha and gamma
oscilla ions a e associa ed wi h he pe o mance wi hin a gi en ial in a session.
In oduc ion
Memo ies a e ep esen ed by he dis ibu ed ac i i y o neu ons o ganized in o neu onal
assemblies in hippocampal–neoco ical ci cui s (Squi e, 1992;Buzsáki and Mose , 2013).
T ace eyeblink condi ioning (TEBC) has been widely used as a model sys em o s udying
he neu al basis o associa i e lea ning and memo y in a wide ange o species om mice
o humans. In TEBC, a condi ioned s imulus (CS, usually audi o y s imulus) is epea edly
pai ed wi h an eyeblink-e oking uncondi ioned s imulus (US, ai pu o elec ic shock o
Recei ed Jan. 24, 2023; e ised Ap il 4,
2024; accep ed Ap il 10, 2024.
The au ho s decla e no compe ing
financial in e es s.
Au ho con ibu ions: M.S.N. and S.P.
designed esea ch; M.S.N. pe o med
esea ch; K.K. and M.S.N. analyzed
da a; K.K., M.S.N., and S.P. w o e he
pape .
This wo k was suppo ed by unding
om Sig id Juselius Founda ion o S.P.
and Academy o Finland o M.S.N.
(g an numbe s: 275954, 321522).
Co espondence should be add essed
o Sa u Pal a a sa u.pal a@helsinki.fi
o Kim Kayeon a kayeon.kim@sund.
ku.dk.
Copy igh © 2024 Kim e al.
This is an open-access a icle
dis ibu ed unde he e ms o he
C ea i e Commons A ibu ion 4.0
In e na ional license, which pe mi s
un es ic ed use, dis ibu ion and
ep oduc ion in any medium p o ided
ha he o iginal wo k is p ope ly
a ibu ed.
Resea ch A icle: New Resea ch
Cogni ion and Beha io
Ap il 2024, 11(4). DOI: h ps://doi.o g/10.1523/ENEURO.0030-23.2024. 1 o 11
he eyelid). A success ul condi ioned esponse (CR) in esponse o he CS is dependen on lea ning, and upon la e
encoun e wi h he CS, e ie ing om memo y, o an associa ion be ween he CS and he US, ha is, con ingency de ec-
ion (P okasy, 1984;Cla k and Squi e, 1998;Thompson, 2005;Cheng e al., 2008).
Fo ming an associa ion be ween wo e en s sepa a ed in ime is a c i ical b ain unc ion (Pilkiw and Takeha a-Nishiuchi,
2018) ha depends on he hippocampus (Solomon e al., 1986;Moye e al., 1990;Weiss e al., 1996;Tseng e al., 2004).
In iguingly, ecen wo k u ilizing human in ac anial and scalp elec oencephalog am (EEG) sugges ed ha he hippocam-
pus could ep esen bo h senso y and mnemonic in o ma ion and ac as a swi chboa d be ween in e nal and ex e nal ep-
esen a ions (T ede e al., 2021). In line, pa ien s wi h medial empo al lobe (MTL) lesions and memo y impai men also
exhibi ed diminished ma ke s o conscious pe cep ion (U goli es e al., 2018) and showed a enua ed and empo ally
mo e dispe sed esponses o isual s imuli (Rebe e al., 2017), sugges ing ha hippocampal ci cui s also ep esen sen-
so y s imulus p ope ies (K eiman e al., 2002).
A c ucial ole in memo y o ma ion and he ini ial encoding o in o ma ion in o neu al ep esen a ions is played by he a
(θ,4–12 Hz) oscilla ions ( o e iews see Buzsáki, 2002;Colgin, 2013,2016). Hippocampal θoscilla ions a e abundan du -
ing explo a o y beha io in oden s, and hey o ganize bi s o in o ma ion in o cohe en en i ies ( o an example o θand
place cells, see O’Kee e and Recce, 1993). In e es ingly, du ing TEBC, hippocampal θoscilla ions inc ease du ing he
ace pe iod sepa a ing he CS o se and he US onse , bo h in abbi s (Nokia e al., 2009,2015) and in a s (Nokia e
al., 2012). The CS- ela ed θoscilla ions in he hippocampus and connec ed b ain s uc u es a e hough o eflec he
encoding and e ie al o he CS–US con ingency (Wikg en e al., 2010;Nokia and Wikg en, 2013;Su e e al., 2019).
Addi ionally, be a (β;12–30 Hz) and gamma (γ) band (30–40 Hz) oscilla ions a e also p ominen in he hippocampus
(Colgin e al., 2009), wi h γoscilla ions synch onizing he ac i i y in he hippocampal–en o hinal co ical (EC) loop and
ela ing o encoding and e ie al o associa ions (Iga ashi e al., 2014). Whe eas θoscilla ions a e p oposed o allow
chunking o g ouping o in o ma ion, βand γoscilla ions a e p oposed o eflec he in o ma ion pe se. In his con ex ,
c oss- equency phase–ampli ude coupling (PAC) be ween he θphase and β/γoscilla ion ampli udes is hough o enable
he chunking o senso y in o ma ion (Colgin, 2016).
Despi e ex ensi e esea ch on he neu al basis o lea ning using TEBC, he ela ionship be ween mapping s imulus con-
ingencies wi hin a ial (encoding and e ie al o he CS–US associa ion) and lea ning, ha is, en o cing hei associa ions
ac oss aining sessions (memo y consolida ion), emains unclea . While he ole o oscilla ion dynamics in memo y unc-
ions is well es ablished, he di e ences in hese dynamics be ween he o ma ion o mnemonic associa ions be ween
he CS and US wi hin a ial and memo y consolida ion o s imulus con ingencies ac oss aining sessions emains
unexplo ed. Wi h aining on he CS–US con ingency, he p obabili y o a CR o each CS inc eases g adually o e ime.
Howe e , e en wi h ex ensi e aining, some CS p esen a ions ail o elici a CR. In his s udy, we hypo hesized ha
dis inc spa io empo al signa u es would cha ac e ize mapping CS–US con ingencies wi hin sessions (indexed as CR
o he ial) and memo y consolida ion ac oss aining sessions (indexed as an inc easing p opo ion o CRs o e
sessions). To his end, we eco ded local field po en ials (LFPs) om he do sal hippocampus in eely mo ing adul heal hy
Sp ague Dawley male a s du ing classical TEBC and es ima ed oscilla ion dynamics o hippocampal subfields using
s a e-o - he-a analysis app oaches.
Ma e ials and Me hods
Animals. Eigh adul heal hy male Sp ague Dawley a s (Ha lan Labo a o ies/En igo, weighing ∼300 g, ∼10 weeks)
we e used as subjec s. Food and wa e we e a ailable ad libi um, wi h oom empe a u e and humidi y main ained a
21 ± 2°C and 50 ± 10%, espec i ely. The a s we e kep unde a 12 h ligh /da k cycle. All p ocedu es and expe imen s
we e conduc ed du ing he ligh cycle. The s udy was conduc ed in acco dance wi h Di ec i e 2010/63/EU o he
Eu opean Pa liamen and o he Council on he ca e and use o animals o esea ch. The expe imen s we e app o ed
by he Animal Expe imen Boa d o he Regional S a e Adminis a i e Agency o Sou he n Finland. The ARRIVE guidelines
(h p://a i eguidelines/o g/a i e-guidelines) we e ollowed.
TEBC and analysis o he eyeblink esponse. Da a we e collec ed du ing a TEBC ask (Fig. 1A) using LabVIEW (Na ional
Ins umen s). The animals we e condi ioned using whi e noise (75 dB, 200 ms) as a CS and a 100 Hz bu s o 0.5 ms bipola
pulses o pe io bi al shocks (100 ms) as a US. The ampli ude o he US was adjus ed indi idually o each animal o elici a blink
esponse, ha is, he uncondi ioned esponse in 100% o he ials. Each ial s a ed wi h he 200 ms CS p esen a ion,
ollowed by a 500 ms s imulus- ee ace pe iod, and hen a 100 ms shock US. Each animal pe o med eigh
sessions, each consis ing o 60 ials. O e ime, he animals s a ed o blink in esponse o he CS; ha is, hey acqui ed
he CR.
Eyeblinks we e de ec ed om he EMG signals o fline o de e mine he pe cen age o CRs (he e defined as he hi a e,
HR), as in Nokia e al. (2017). In b ie , o each ial, he esponse was defined as a CR i he signal exceeded a h eshold o
mean + 3 s anda d de ia ions (SD) wi hin he las 200 ms o he ace pe iod (Fig. 1A). Tha is, he eyelid s a ed o close
immedia ely be o e he onse o US. HR was defined as he p opo ion o ials wi h a CR (Fig. 1D). We hen used epea ed
measu es ANOVA ( m ANOVA) o es ima e he change in HR ac oss he eigh sessions as well as ac oss he animals.
Reac ion imes (RTs) we e compu ed o he ials wi h CRs.
Resea ch A icle: New Resea ch 2 o 11
Ap il 2024, 11(4). DOI: h ps://doi.o g/10.1523/ENEURO.0030-23.2024. 2 o 11
Su ge y. Ra s we e anes he ized wi h an in ape i oneal injec ion o pen oba bi al (60 mg/kg) and ea ed o pain wi h
ca p o en (5 mg/kg, s.c.) and bup eno phine (0.03 mg/kg, s.c.). Using a s e eo ac ic ame, we implan ed wo ou -wi e
elec odes (Fo m a -Insula ed Nich ome, ba e diame e 50 µm, no. 762000, A-M Sys ems) ch onically o eco d LFPs
om he do sal hippocampus. The wi es we e glued oge he wi h a ip sepa a ion o 200–250 µm. The bundles
we e implan ed wi h he lowes elec ode ip a he den a e gy us (DG; 3.6–4.5 mm pos e io , 1.5–2.2 mm la e al, and
3.6–4.0 mm below b egma; Fig. 1C). Skull c ews se ed as he e e ence (11 mm pos e io and 2 mm la e al o
b egma) and g ound (4 mm an e io and 2 mm la e al o b egma). To s imula e he eyelid and eco d elec omyog aphy
(EMG) du ing TEBC, wo bipola elec odes made o s ainless s eel wi e insula ed wi h Teflon (ba e diame e 127 µm)
we e implan ed h ough he uppe igh eyelid. Finally, he en i e cons uc ion was secu ed in place using den al
ac ylic cemen . A e he su ge y, each a was allowed o eco e o a leas 1 week and was medica ed o pain
wi h bup eno phine.
Reco dings. A low-noise wi ed p eamplifie (10×) was di ec ly a ached o he elec ode connec o in he a ’s head. The
LFP signals we e fil e ed om 1 o 5,000 Hz, amplified 50×, digi ized a 20 kHz, and hen low-pass fil e ed a 500 Hz.
Finally, all signals we e s o ed a a sampling a e o 2 kHz (USB-ME-64, Mul i Channel Sys ems).
His ology. Ra s we e killed by exposu e o a ising concen a ion o CO
2
and hen decapi a ed. The loca ions o he elec-
ode ips in he b ain we e ma ked by passing a DC anodal cu en (200 mA, 5 s) h ough hem. The b ain was hen
emo ed, fixed in a 4% pa a o maldehyde solu ion, and co onally sec ioned wi h a ib a ome (Leica VT1000). The slices
we e s ained wi h P ussian blue and c esyl iole . The elec ode ip loca ions we e de e mined wi h he help o a con en-
ional ligh mic oscope and a b ain a las (Paxinos and Wa son, 1998).
Signal p ep ocessing, e- e e encing, and fil e ing. T ials wi h la ge LFP fluc ua ions due o mo emen o de ice- ela ed
a i ac s we e excluded i hey exceeded 1,500 µV cu o , esul ing in a ejec ion a e o 0.6%. To emo e he
s imulus-induced spike a i ac , aw signals be ween −2.5 and 1.5 ms om CS onse and o se we e in e pola ed wi h
an alpha blend ac ion o 0.45. Cu en sou ce densi y (CSD) p ofiles we e hen calcula ed o e- e e encing using he
Laplacian e- e e encing me hod wi h adjacen channels (Mi zdo , 1985). The signal was hen fil e ed be ween 3 and
480 Hz using a fini e impulse esponse (FIR) fil e wi h a loga i hmically scaled inc emen o equency and u ilizing a com-
bina ion o high-pass and low-pass fil e pai s (high-pass: 0.6 s op band and low-pass: 1.4 s op band, 60 dB a enua ion).
The fil e ed signals we e u he Hilbe ans o med o ob ain phase and ampli ude ime se ies (Fig. 1E).
Da a analysis o oscilla ion dynamics. We compu ed local oscilla ion dynamics using measu es o oscilla ion ampli udes
and in e ial cohe ence (ITC) wi h a phase-locking ac o (J. M. Pal a e al., 2005) sepa a ely o he hilus and fissu e. The
ampli ude and ITC ime se ies we e a e aged ac oss ials o each condi ion om −600 o 600 ms om CS onse o each
fil e ed equency. The a e age baseline alues om −600 o −100 o CS onse we e hen sub ac ed om pos s imulus
alues. Phase ime se ies da a we e u he used o compu e in e a eal synch oniza ion be ween he fissu e and hilus using
he phase-locking alue (PLV; Fig. 1F). PLV was no malized by di iding he alue by he a e aged PLV alue ob ained by
shu fling ials wi hin a condi ion and measu emen si e 100 imes o con ol o he con ibu ions o s imulus-d i en a i-
ficial synch oniza ion (Hi onen e al., 2018).
To es ima e coupling ac oss he equencies, PAC was compu ed wi h PLV be ween he phase o he slow oscilla ion
(low equency, LF) and he phase o he ampli ude en elope o he high- equency (HF) oscilla ion o he m:n a ios
be ween2and9(Fig. 1G;J. M. Pal a e al., 2005;Siebenhühne e al., 2016). Phase ans e en opy (phase TE; Lobie e
al., 2014) was compu ed o iden i y di ec ionali y in he na ow-band oscilla o y signals. Phase TE was de i ed om he ins an-
aneous phase ime se ies o he signal X
hilus
( )andY
fissu e
( ) exp essed as θ
hilus
( )andθ
fissu e
( )(Fig. 1E). To c ea e a bias- ee
measu e, we compu ed he di e en ial TE (dTE) de i ed by pTE
hil→fis
−pTE
fis→hil
and used his measu e o u he analysis
(Fig. 1H).
S a is ical analysis. To a oid di e en signal- o-noise a ios (SNRs) om influencing he esul s, he numbe o ials
be ween condi ions (CR s no-CR; highes HR s lowes HR) was equalized be o e s a is ical analyses by andomly selec -
ing ials o ma ch he minimum numbe o ials wi hin a session. S a is ically significan changes in oscilla ion ampli udes,
ITC, and in e a eal synch ony we e achie ed by de i ing null dis ibu ions (n= 20,000) using andom flips wi h a p obabili y
o 0.5 (Mon e Ca lo p< 0.025, wo- ailed). To co ec o mul iple compa isons, we used he Benjamini–Hochbe g p oce-
du e o each analysis ime window.
To assess he significan di e ences be ween CR and no-CR ials, we fi s es ima ed he di e ences in neu onal dynamics
wi hin each animal. We hen used a pai ed es o iden i y he - h eshold (p< 0.025, wo- ailed) o each ime and equency
and ob ained he -sum obse ed alue based on empo al adjacency. The maximum -sum obse ed was es ed agains he
-sum null dis ibu ion om 1,000 su oga es (Mon e Ca lo p< 0.05) using clus e -based pe mu a ion s a is ics, which accoun
o mul iple compa isons in s a is ical analysis (Ma is and Oos en eld, 2007). The same clus e ing pe mu a ion s a is ics we e
pe o med o compa e he sessions wi h he lowes and highes HR. The null dis ibu ions we e de i ed by andomizing ials
o compa ison be ween CR and no-CR ials and by andomizing he sessions o compa ing lea ning.
Resea ch A icle: New Resea ch 3 o 11
Ap il 2024, 11(4). DOI: h ps://doi.o g/10.1523/ENEURO.0030-23.2024. 3 o 11
Indi idual-le el s a is ical analysis o oscilla ion ampli ude di e ences was compu ed using a clus e -based pe mu a-
ion me hod by andomizing he CR and no-CR ials and sessions o he lowes %HR and highes %HR, espec i ely, o
ob ain su oga e mean alues. Indi idual-le el s a is ical analysis o ITC alues was ob ained by compa ing each ITC
alue wi h a su oga e null dis ibu ion [Mon e Ca lo p< 0.05, alse disco e y a e (FDR) co ec ed].
To di ec ly s udy he main e ec s and he in e ac ion e ec o success ul memo y e ie al wi hin a session (CR
s no-CR) and consolida ion ac oss TEBC aining sessions, we conduc ed wo-way m ANOVA on bo h he oscilla ion
ampli udes and on he ITC wi hin he ime- equency egions o in e es (p< 0.025). The s a is ical analysis o 1:1 in e a eal
synch oniza ion be ween condi ions was pe o med using a wo-sample es o he ime- equency egions o in e es .
The p esence o significan PAC in he pos s imulus pe iods was assessed pos hoc using a one-sample es ac oss all
subjec s and sessions o each pai o low and high equencies, analysis ime windows, and lamina pai (FDR co ec ed).
Fo s a is ical analysis o phase TE, su oga e da a we e ob ained by shu fling ials 1,000 imes and compa ing he su -
oga e dis ibu ions wi h he empi ical da a o es he s a is ical significance agains a null hypo hesis o no in o ma ion
ans e be ween he hilus and fissu e (Mon e Ca lo p< 0.05, FDR co ec ed).
The code o phase TE is eely a ailable a he Pal a Gi Hub eposi o y (h ps://gi hub.com/pal alab/pal alab).
Resul s
Beha io al da a
Associa i e lea ning was assessed using a TEBC ask (Fig. 1A, see Ma e ials and Me hods o mo e de ails). HR ( he
pe cen age o CRs) significan ly inc eased as a unc ion o he session (Pea son’s = 0.49; p= 4.51 × 10
−5
;Fig. 1B), bu
Figu e 1. O e iew o he app oach. A, Task schema ics and an example o EMG ace. In he TEBC ask, a one was used as CS ollowed by he US
(pe io bi al shock). Eyeblinks we e eco ded wi h EMG. The g ay a ea indica es he ime window when eyeblinks we e coun ed as a CR. B, HR o he
CRs as a unc ion o session wi h mean and SEM. The ci cles ep esen da a om indi idual a s (n= 8). C, A g aphical illus a ion o eco ding elec ode
placemen in he a hippocampus a ge ing fissu e ( , uppe ) and hilus (h, lowe ). D,E, An example o a b oadband aw signals eco ded om fissu e (blue)
and hilus (o ange) o a single ial and o hei na ow-band fil e ing and ans o ma ion o complex alues o ob ain ampli ude and phase ime se ies.
F, In e a eal synch oniza ion be ween fissu e and hilus was es ima ed by compu ing PLV be ween signals and compa ing he empi ical alues o a
su oga e dis ibu ion. G, The n:m PAC was compu ed be ween he phase o a lowe equency (n) and ampli ude o he highe equency (m). The aces
show he θphase in hilus and he γampli ude en elope in fissu e (black). H, Di e en ial phase ans e en opy (phase dTE) was es ima ed om he
phase-lag in o ma ion om each egion using an analysis window o 0.5 s du ing he pos -CS pe iod. (See Ma e ials and Me hods o mo e de ails.)
Resea ch A icle: New Resea ch 4 o 11
Ap il 2024, 11(4). DOI: h ps://doi.o g/10.1523/ENEURO.0030-23.2024. 4 o 11

sessions wi h he bes pe o mance a ied ac oss animals. The mean RT o CRs a e aged ac oss all sessions and animals
was 558.72 ms wi h an SEM o 5.7 ms. To con ol he con ounding e ec s o indi idual di e ences, we also conduc ed m
ANOVA, confi ming a significan change in HR ac oss sessions (F
(7,49)
= 5.72; p= 7.17 × 10
−5
) and indica ing ha he a s
lea ned o an icipa e he shock US and shield he eye wi h a CR as aining p og essed.
Figu e 2. Spa io empo al dynamics o hippocampal oscilla ions du ing TEBC. A, A g oup-a e aged b oadband e oked esponse o he CS, a e aged
ac oss all ials, sessions, and animals om fissu e (le ) and hilus ( igh ). Shade indica es SEM. Dashed lines indica e CS onse and mean (±SEM) and
la ency o CR (558.7 ± 5.7 ms), espec i ely. B, Baseline-co ec ed ime- equency ep esen a ion (TFR) o oscilla ion ampli udes in esponse o he CS
sepa a ely o fissu e (le ) and hilus ( igh ). Oscilla ion ampli udes we e a e aged ac oss ials, sessions, and hen ac oss all a s (n= 8). The ho izon al
ba below he panel indica es analysis pe iods ela i e o CS onse ; 0–0.1 s (black), 0.1–0.3 s (g ay), 0.3–0.5 s (ligh g ay). C, Oscilla ion ampli udes a e -
aged ac oss h ee ime windows. Ho izon al colo ed ba s deno e s a is ical significance a p< 0.025 (see Ma e ials and Me hods o de ails). D,E, In e ial
cohe ence (ITC) as es ima ed wi h PLF as in Band C. Ho izon al ba s deno e s a is ical significance a p< 0.025.
Resea ch A icle: New Resea ch 5 o 11
Ap il 2024, 11(4). DOI: h ps://doi.o g/10.1523/ENEURO.0030-23.2024. 5 o 11
Spa io empo al dynamics o oscilla ions in esponse o he CS
Figu e 2Ashows g oup-a e aged CSD e- e e enced LFP aces om he hippocampal subfields (fissu e, hilus).
Consis en wi h he fissu e encompassing dend i es o he DG g anule cells ecei ing he main inpu om he EC,
CS-e oked esponses we e obus in he fissu e bu no in he hilus. In addi ion, he e oked esponses we e eflec ed
in bo h oscilla ion ampli udes and ITC, showing ansien b oadband esponses in he fissu e bu also in he hilus
(Fig. 2B–E; Mon e Ca lo p< 0.025, wo- ailed, FDR co ec ed). This ime-locked ac i i y was ollowed by induced alpha
[α,8–12 Hz, no e ha his band is usually defined as he a (θ) in oden li e a u e] and high-gamma (high-γ,50–100 Hz)
band esponses in he fissu e (Fig. 2B,C, g ay, ligh g ay; Mon e Ca lo p< 0.025, wo- ailed, FDR co ec ed). In addi ion,
concu en supp ession o θ(he e 4–6 Hz) and β/γband (23–40 Hz) ampli udes was obse ed bo h in he fissu e and hilus
(Fig. 2B,C, ligh g ay ace; Mon e Ca lo p< 0.025, wo- ailed, FDR co ec ed). Despi e simila spa io empo al oscilla o y
p ofiles in he hilus and fissu e, induced ampli udes we e s onge in he fissu e, which is he p ima y si e o EC inpu s ia
he pe o an pa hway (Scha man, 2016).
Dis inc spa io empo al pa e ns o he e en ion o s imulus con ingencies be ween CS–US and consolida ion
ac oss aining sessions
We nex explo ed whe he dis inc spa io empo al pa e ns associa ed wi h he e ie al o s imulus con ingencies
be ween he CS and he US and wi h memo y consolida ion ac oss he daily aining sessions could be iden ified
(Fig. 3A–D). To examine his, we u ilized he eyeblink–CR as an app oxima ion o he con ingency de ec ion and e ie al
o he CS–US associa ion, compa ing ials wi h CR o hose wi hou CR (=no CR) wi hin he session. A e he ini ial ials
du ing which ep esen a ions o he CS and US a e o med, CR is hough o depend on e ie ing he associa ion be ween
he CS and he US as well as planning and execu ing he subsequen mo o esponse (P okasy, 1984). To assess he
Figu e 3. Dis inc spa io empo al p ofiles o hippocampal oscilla ions. A, Oscilla ion ampli udes ( op panel) and ITC (bo om panel) o he con as be ween
CR and no-CR ials. The colo scale indica es he ampli ude ( op) and ITC (bo om) o each ime- equency elemen . The significan clus e s o ime and
equency (Mon e Ca lo p< 0.05) a e highligh ed wi h anspa ency while nonsignifican obse a ions a e non anspa en . Dashed lines indica e mean RT.
Solid lines indica e CS onse . B, The same as in A, bu o he con as be ween sessions wi h he lowes and he highes HR. C, Indi idual le el s a is ics o
he con as be ween CR and no CR and o D. The lowes e sus highes HR. Colo scale indica es he ac ion o indi iduals ha show significance in each
ime- equency elemen (Mon e Ca lo p< 0.050). E,F, Two-way ANOVA. E, The ep esen a ion o significan ime and equencies deno ing he main e ec s
o CR e sus no-CR (in ed) and Highes %HR e sus Lowes %HR (in blue), along wi h he in e ac ion o he wo ac o s (in pink) on ampli ude (ANOVA p<
0.025). Fissu e (le ), hilus ( igh ). Black lines deno e CS onse F. The same con en ion as in Ebu illus a es he main e ec s o he ANOVA ac o s on ITC.
Resea ch A icle: New Resea ch 6 o 11
Ap il 2024, 11(4). DOI: h ps://doi.o g/10.1523/ENEURO.0030-23.2024. 6 o 11
spa io empo al pa e ns o oscilla ions ela ed o success ul con ingency de ec ion, we compu ed oscilla ion ampli udes
and ITC sepa a ely o ials wi h and wi hou CR o each animal and condi ion. Sus ained ampli udes in αand βbands a
∼300 ms om he CS onse we e s onge o he CR ials han o he no-CR ials in bo h he fissu e and o a lesse ex en
in he hilus (Fig. 3A; Mon e Ca lo p< 0.050). In con as , he e was no no iceable di e ence be ween he CR and no-CR
ials in he ITC (Fig. 3A, bo om). In addi ion o g oup-le el significance, he esul s we e u he ep oduced by pe o ming
s a is ical analysis a he indi idual le el (Fig. 3C; Mon e Ca lo p< 0.050).
We hen es ed whe he we could dissocia e a sepa a e spa io empo al pa e n o p edic ing lea ning ac oss he daily
aining sessions by compa ing he da a om he session wi h he highes and lowes %HR o each animal. T ansien
b oadband ampli udes and ITC we e s onge o he session wi h he highes %HR han o he lowes %HR (Fig. 3B;
Mon e Ca lo p< 0.050). The esul s we e u he ep oduced by pe o ming s a is ical analysis a he indi idual le el
(Fig. 3D; Mon e Ca lo p< 0.050).
Nex , we pe o med an m ANOVA o p obe whe he he di e en oscilla o y pa e ns associa ed wi h he CR and
no-CR ials and memo y consolida ion ac oss sessions in he p e ious analysis we e s a is ically significan ly di e en .
This analysis confi med ha sus ained αand βband ampli udes we e s onge o he CR e sus no-CR di e ence
(α,F
(1,127)
= 25.94, p= 1.44 × 10
−6
;β,F
(1,127)
= 13.12, p= 4.40 × 10
−4
) han hose o he memo y consolida ion ac oss
sessions in he fissu e (α,F
(7,127)
= 1.19, p= 0.32; β,F
(7,127)
= 0.88, p= 0.53; Fig. 3E, le panel). Simila ends we e
obse ed in he hilus (α, CR s no-CR, F
(1,127)
= 10.1, p= 0.002; memo y consolida ion, F
(7,127)
= 1.39, p= 0.21; Fig. 3E,
igh panel).
In con as , he ansien γband ampli ude esponse was s onge o memo y consolida ion (fissu e, F
(1,31)
= 8.23,
p= 0.008; hilus, F
(1,31)
= 13.17, p= 0.001; Fig. 3E) han ha o CR s no-CR (fissu e, F
(1,31)
= 4.23 × 10
−4
,p= 0.98; hilus,
F
(1,31)
= 0.87, p= 0.36), whe eas he e we e no significan e ec s in he lowe equencies despi e he s a is ical di e ences
shown in Figu e 3B. Howe e , he ansien αband ITC exhibi ed a s onge associa ion wi h memo y consolida ion ac oss
TEBC sessions in he fissu e (F
(1,31)
= 10.75; p= 0.003) compa ed wi h ha in CR s no-CR ials (F
(1,31)
= 0.24; p= 0.63;
Fig. 3F, le panel). An in e ac ion e ec was obse ed be ween e ie al o he CS–US con ingency and memo y consol-
ida ion ac oss he daily aining sessions in he hilus (F
(1,31)
= 10.85; p= 0.003; Fig. 3F, igh panel). This analysis confi med
ha he e ie al o s imulus con ingencies be ween he CS and he US and memo y consolida ion ac oss he daily aining
sessions a e associa ed wi h dis inc spa io empo al pa e ns o neu onal oscilla ions.
Figu e 4. In e a eal synch oniza ion and di ec ed in e ac ions be ween hilus and fissu e. A, G oup-a e aged in e a eal synch oniza ion be ween hilus and
fissu e es ima ed wi h PLV. Da a a e a e aged ac oss ials, sessions, and hen ac oss all a s (le ). B, Same as in Abu p esen ing PLV o he con as
be ween CR and no-CR ials (le ) and he con as be ween he highes and he lowes HR ( igh ). The anspa ency highligh s he ime and equencies
wi h a significan di e ence. The sca e plo s below show indi idual a da a, wi h ed ho izon al lines indica e he median, (pai ed es , p< 0.05).
C, G oup-a e aged di e en ial phase ans e en opy (dTE) ac oss sessions and a s du ing a 0.5 s pos -CS pe iod. G een ma ks indica e significan
dTE om hilus o fissu e, blue ma k indica es significan dTE om fissu e o hilus. D, Dis ibu ion o mean dTE de i ed om su oga e da a by ial shu fling.
The g een o blue a ows in each subplo indica e he mean dTE o he empi ical da a.
Resea ch A icle: New Resea ch 7 o 11
Ap il 2024, 11(4). DOI: h ps://doi.o g/10.1523/ENEURO.0030-23.2024. 7 o 11
Phase synch oniza ion and di ec ional in e ac ions among he hippocampal subfields
In he hippocampus, in o ma ion flows om he EC o he dend i es o he DG g anule cells and CA1 py amidal cells
lining he fissu e (pe o an pa h) and om he DG o CA3 py amidal cells ia he hilus (mossy fibe s). F om he hilus, in o -
ma ion eeds back o he CA1 py amidal cell dend i es lining he fissu e (Fig. 1C). To s udy he in o ma ion flow be ween
he hippocampal subfields, we compu ed he phase synch oniza ion o oscilla ions be ween he hilus and fissu e. Robus
phase synch ony be ween he hilus and fissu e was ound in he αband and in he high-γband (Fig. 4A, igh ; Mon e Ca lo
p< 0.010, FDR co ec ed) despi e he lack o concu en oscilla ion ampli ude inc eases. In e es ingly, o local oscilla-
ions, sus ained α-βband (9–16 Hz) phase synch oniza ion be ween he hilus and fissu e was significan ly highe o
he highes %HR e sus lowes %HR (Fig. 4B, igh ; p< 0.05), whe eas he ea ly ansien αand βband phase synch o-
niza ion was s onge o CR e sus no-CR ials (Fig. 4B, le ; p< 0.05).
To u he es ablish whe he oscilla o y in e ac ions would be di ec ional as p edic ed by he eed- o wa d in o ma ion
flow om he fissu e o he hilus o eedback p ocesses om he hilus o he fissu e, we es ima ed he di ec ionali y o
coupling using pTE (Lobie e al., 2014), ocusing on he equencies showing significan in e a eal synch ony.
Di e en ial TE (dTE) was de i ed by he di e ence be ween pTE
hil→fis
and pTE
fisl→hil
ac oss all sessions and a s. In he
αand βbands, in o ma ion flow was significan om he hilus o he fissu e (Fig. 4C,D, g een ma ks; Mon e Ca lo
p< 0.050), whe eas oscilla ions a high-γ(80Hz)bandshowed heopposi edi ec ion, om hefissu e o he hilus
(Fig. 4C,D,bluema ks;Mon eCa lop< 0.050).
Nes ed α-γoscilla ions associa ed wi h lea ning ac oss sessions
We hen examined he PAC be ween oscilla ions ac oss equencies and lamina pai s. Specifically, we ocused on he
coupling o αphase (9 Hz) wi h highe equencies. Robus α:γPAC cha ac e ized he LFP signal wi hin he hilus and
be ween he hilus and fissu e ac oss all windows (Fig. 5A). PAC did no di e be ween CR and no-CR ials (Fig. 5B); how-
e e , he e was a no able inc ease in α:γPAC du ing sessions wi h he highes %HR compa ed wi h he lowes %HR ses-
sions be ween 100 and 500 ms om CS onse (Fig. 5C; pai ed es ; p< 0.05, co ec ed), showing ha α:γs eng hens as a
unc ion o lea ning.
Discussion
TEBC has been widely used o s udy neu onal mechanisms o lea ning in humans (Cason, 1922), abbi s (Schneide man
e al., 1962), and oden s (Weiss e al., 1996;McEch on and Dis e ho , 1999;Tseng e al., 2004). In his s udy, we used a
classical TEBC ask in a s o in es iga e hippocampal oscilla ion dynamics linked o he e ie al o s imulus con ingen-
cies wi hin a ial (app oxima es as CR) om hose dynamics associa ed wi h memo y consolida ion, ha is, he imp o e-
men in pe o mance ac oss he aining sessions. Ou esul s demons a e ha di e en spa io empo al pa e ns o
hippocampal oscilla ions eflec hese unc ions. T ansien CS ime-locked esponses we e co ela ed wi h memo y con-
solida ion (lea ning ac oss sessions), bu no wi h he wi hin-session e ie al o s imulus con ingencies. In con as ,
induced θ/αand γband oscilla ions a la e ime windows we e co ela ed wi h he success ul e ie al o he CS–US con-
ingency wi hin sessions, bu no wi h memo y consolida ion ac oss he aining sessions. These esul s demons a e ha
lea ning subp ocesses a e associa ed wi h dis inc oscilla ion dynamics.
T ansien ea ly b oadband ac i i y p edic s lea ning ac oss sessions
The ea ly ansien b oadband esponse was simila o ha ound in he senso y co ices in humans o pe cep ion (S.
Pal a e al., 2005;Pal a e al., 2011;Hi onen and Pal a, 2016;Julku e al., 2021) and sho - e m memo y encoding
(Pal a e al., 2011), as well as in he p ima y audi o y co ex in guinea pigs (Voig e al., 2018). The ansien γband ampli ude
esponse, and θ-αITC, p edic ed memo y consolida ion (imp o ed pe o mance) ac oss he aining sessions. This esul
ag ees wi h p e ious findings o θband phase a CS onse p edic ing hippocampal esponses and lea ning in TEBC in ab-
bi s (Seage e al., 2002;Nokia e al., 2015) and in human episodic memo y asks (G i fi hs e al., 2021). The ea ly la ency o
his ansien esponse sugges s ha i migh eflec he encoding o he CS ea u es and eed- o wa d p ocessing o sen-
so y in o ma ion (Lamme and Roel sema, 2000), a he han sho - e m memo y o he CS, e ie ing he CS–US associa-
ion om memo y, o he mo o esponse planning. This suppo s he idea ha imp o ed beha io al pe o mance ac oss
he aining sessions is due o s eng hened s imulus ep esen a ions o CS, which leads o memo y consolida ion o e
ime. This is also suppo ed by he in e ac ion e ec be ween memo y consolida ion and con ingency de ec ion in he hilus.
Wi hin- ial e ie al o s imulus con ingencies is associa ed wi h sus ained oscilla ions
Beyond he encoding o he physical en i onmen , such as spa ial mapping du ing na iga ion o explo a ion (O’Kee e
and Dos o sky, 1971;Mo gan e al., 2011), he hippocampus is also implica ed in ep esen ing and encoding isual in o -
ma ion in p ima es (Lee e al., 2012;Ju as e al., 2013;Zeidman e al., 2015). In his s udy, sus ained αand γband
esponses we e co ela ed wi h success ul e ie al o CS–US con ingencies, bu no wi h lea ning ac oss daily aining
sessions. This indica es ha p ocesses ela ed o e ie ing he CS–US associa ion a e dis inc om hose media ing
imp o emen s in lea ned beha io o e ex ended pe iods (hou s, days). Ou s udy dissocia ing hese wo p ocesses in
a classical TEBC ask p o ides a no el iew o he ole o concu en θand γoscilla ions, whe e he adi ional iew has
Resea ch A icle: New Resea ch 8 o 11
Ap il 2024, 11(4). DOI: h ps://doi.o g/10.1523/ENEURO.0030-23.2024. 8 o 11