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T1 mapping of myocardium in rats using self-gated golden-angle acquisition

Abstract

PurposeThe aim of this study is to design a method of myocardial T1 quantification in small laboratory animals and to investigate the effects of spatiotemporal regularization and the needed acquisition duration.MethodsWe propose a compressed-sensing approach to T1 quantification based on self-gated inversion-recovery radial two/three-dimensional (2D/3D) golden-angle stack-of-stars acquisition with image reconstruction performed using total-variation spatiotemporal regularization. The method was tested on a phantom and on a healthy rat, as well as on rats in a small myocardium-remodeling study.ResultsThe results showed a good match of the T1 estimates with the results obtained using the ground-truth method on a phantom and with the literature values for rats myocardium. The proposed 2D and 3D methods showed significant differences between normal and remodeling myocardium groups for acquisition lengths down to approximately 5 and 15 min, respectively.ConclusionsA new 2D and 3D method for quantification of myocardial T1 in rats was proposed. We have shown the capability of both techniques to distinguish between normal and remodeling myocardial tissue. We have shown the effects of image-reconstruction regularization weights and acquisition length on the T1 estimates.

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T1 mapping of myocardium in rats using self-gated golden-angle acquisition

Author: Vitouš, Jiří; Jiřík, Radovan; Stračina, Tibor; Hendrych, Michal; Nádeníček, Jaroslav; Macíček, Ondřej; Tian, Ye; Krátká, Lucie; Dražanová, Eva; Nováková, Marie; Babula, Petr; Panovský, Roman; DiBella, Edward; Starčuk, Zenon
Publisher: John Wiley and Sons
Year: 2023
DOI: 10.1002/mrm.29846
Source: https://dspace.vut.cz/bitstreams/90d27ad5-ff2d-4665-8cae-d114b989810a/download
Recei ed: 14 Ma ch 2023 Re ised: 19 July 2023 Accep ed: 10 Augus 2023
DOI: 10.1002/m m.29846
RESEARCH ARTICLE
T1 mapping o myoca dium in a s using sel -ga ed
golden-angle acquisi ion
Ji
í Vi ouš1,2 Rado an Ji
ík1Tibo S aˇ
cina3Michal Hend ych4
Ja osla Nádeníˇ
cek3Ond
ej Macíˇ
cek1Ye Tian5Lucie K á ká1
E a D ažano á1,6 Ma ie No áko á3Pe Babula3
Roman Pano ský7,8 Edwa d DiBella9Zenon S a ˇ
cuk1
1Ins i u e o Scien i ic Ins umen s, Czech Academy o Sciences, B no, Czechia
2Facul y o Elec ical Enginee ing and Communica ion, B no Uni e si y o Technology, B no, Czechia
3Depa men o Physiology, Masa yk Uni e si y, Facul y o Medicine, B no, Czechia
4Fi s Depa men o Pa hology, S . Anne’s Uni e si y Hospi al and Facul y o Medicine Masa yk Uni e si y, B no, Czechia
5Vi e bi School o Enginee ing, Uni e si y o Sou he n Cali o nia, Los Angeles, Cali o nia USA
6Depa men o Pha macology, Facul y o Medicine, Masa yk Uni e si y, B no, Czechia
7In e na ional Clinical Resea ch Cen e , S . Anne’s Facul y Hospi al, Facul y o Medicine, Masa yk Uni e si y, B no, Czechia
81s Depa men o In e nal Medicine/Ca dioangiology, S . Anne’s Facul y Hospi al, Facul y o Medicine, Masa yk Uni e si y, B no Czechia
9School o Medicine, Uni e si y o U ah, Sal Lake Ci y, U ah USA
Co espondence
Ji
í Vi ouš, Ins i u e o Scien i ic
Ins umen s, Czech Academy o Sciences,
B no, Czechia.
Email: [email p o ec ed]
Funding in o ma ion
Eu opean Regional De elopmen Fund,
G an /Awa d Numbe :
CZ.02.1.01/0.0/0.0/16_019/0000868;
G an o á Agen u a ˇ
Ceské Republiky,
G an /Awa d Numbe : GA2210953S;
Léka
ská akul a, Masa yko a uni e zi a,
G an /Awa d Numbe s:
MUNI/11/SUP/09/2022,
MUNI/A/1379/2022; Minis e s o
Škols í, Mládeže a Tˇ
elo ýcho y,
G an /Awa d Numbe s:
EF18_046/0016045, LM2018129,
LM2023050
Abs ac
Pu pose: The aim o his s udy is o design a me hod o myoca dial T1 quan i i-
ca ion in small labo a o y animals and o in es iga e he e ec s o spa io empo al
egula iza ion and he needed acquisi ion du a ion.
Me hods:Wep oposeacomp essed-sensingapp oach oT1quan i ica ionbasedon
sel -ga ed in e sion- eco e y adial wo/ h ee-dimensional (2D/3D) golden-angle
s ack-o -s a sacquisi ionwi himage econs uc ionpe o medusing o al- a ia ion
spa io empo al egula iza ion. The me hod was es ed on a phan om and on a
heal hy a , as well as on a s in a small myoca dium- emodeling s udy.
Resul s: The esul s showed a good ma ch o he T1 es ima es wi h he esul s
ob ainedusing heg ound- u hme hodonaphan omandwi h heli e a u e alues
o a s myoca dium. The p oposed 2D and 3D me hods showed signi ican di e -
ences be ween no mal and emodeling myoca dium g oups o acquisi ion leng hs
down o app oxima ely 5 and 15 min, espec i ely.
Conclusions: A new 2D and 3D me hod o quan i ica ion o myoca dial T1 in
a s was p oposed. We ha e shown he capabili y o bo h echniques o dis in-
guishbe weenno maland emodelingmyoca dial issue.Weha eshown hee ec s
o image- econs uc ion egula iza ion weigh s and acquisi ion leng h on he T1
es ima es.
KEYWORDS
ca diac, ib osis, MRI, quan i ica ion, emodeling, e ospec i e ga ing, T1
This is an open access a icle unde he e ms o he C ea i e Commons A ibu ion-NonComme cial-NoDe i s License, which pe mi s use and dis ibu ion in any medium,
p o ided he o iginal wo k is p ope ly ci ed, he use is non-comme cial and no modi ica ions o adap a ions a e made.
© 2023 The Au ho s. Magne ic Resonance in Medicine published by Wiley Pe iodicals LLC on behal o In e na ional Socie y o Magne ic Resonance in Medicine.
368 wileyonlinelib a y.com/jou nal/m m Magn Reson Med. 2024;91:368–380.
VITOUŠ e al. 369
1INTRODUCTION
T1 quan i ica ion can de ec and quan i y pa hological
changes in issue s uc u e. In ca diology, i has been
success ully used o example in diagnosing myoca dial
ib osis, in lamma ion o in localiza ion o in a c ion.1
In p eclinical imaging, myoca dial T1 quan i ica ion can
show hee ec so d ugson hephysiologyo hehea and
ela ed de elopmen o po en ial pa hologies.2
In i o ca diac imaging has o be synch onized wi h
espec o ca diac and espi a o y ( o ee-b ea hing
acquisi ion) mo ion. This synch oniza ion can be done by
using signals om elec oca diog aphic (ECG) and espi-
a o y senso s.2
In ul a-high- ield (UHF) MRI, o example, clini-
cal MRI a 7T, and in p eclinical imaging, e y s ong
magne ic ields and g adien pulses wi h as slew a es
a e used in o de o ob ain good image esolu ion and
signal- o-noise a io (SNR). The ul a-high magne ic ield
in combina ion wi h blood low leads o he magne-
ohyd odynamic e ec 3and he as -swi ching g adien
pulses cause induc ion o noise in o he ECG leads.
Toge he , hese e ec s ende de ec ion o R wa es
and hence he ECG synch oniza ion di icul i no
impossible.
Becauseo hea o emen ionedp oblemsin UHFMRI,
me hods using e ospec i e na iga ion wi h na iga o
ex ac ion om hemeasu edMRda aha ebeenp oposed
in his ield.4-10
WhileclinicalT1 mapping o myoca dium hasbecome
an es ablished me hod, co esponding echniques o
small animals a e no well es ablished. This is because
o he e y di e en espi a o y and mainly ca diac a es
which a e much highe in mice and a s compa ed o
humans( a s s.humans:app ox.45 s.12b ea hspe min
and 260 s. 60 bea s pe min).11-13 In addi ion, b ea h-hold
acquisi ion (s anda d in clinical ca diac MRI) is no an
op ion in p eclinical MRI. This makes small-animal T1
quan i ica ion o myoca dium, he ocus o his pape , a
speci ic ask on i s own.
Mos o he known ca diac T1 quan i ica ion me h-
ods can be di ided in o wo basic g oups: a iable lip
angle7on one hand and In e sion Reco e y (IR) p e-
pa ed sequences4,6,14,15 (o sa u a ion eco e y p epa ed
sequences16) on he o he hand. Some mo e ad anced
echniques,suchasMR inge p in ing,17 s andasideo he
men ioned g oups.
The a iable lip angle me hods su e om high sen-
si i i y o B1inhomogenei y, p esen in ul a-high ield
MRI o a la ge ex en , he e o e B1maps ha e o be mea-
su ed. This is a complica ion in ca diac MRI as also he B1
mapping sequence has o be synch onized wi h espec o
ca diac (and espi a o y) mo ion.18
The second g oup o me hods is based on IR (o
sa u a ion eco e y) p epa a ion. They a e mos ly based
on heLook-Locke me hodwi hp ospec i esynch oniza-
ion wi h ECG,19 wi h he mos widely known Modi ied
Look-Locke in e sion eco e y20 o clinical ca diac T1
mapping and Small Animal Look-locke In e sion Reco -
e y21 o small-animal ca diac T1 mapping. Also a ech-
nique based on segmen ed 2D modi ied look-locke in e -
sion eco e y acquisi ion was success ully p oposed o
mice.22 Compa ed o a iable lip angle, IR p epa ed
sequences a e less sensi i e o B1inhomogenei y (p o-
nounced in UHF MRI), when using small- lip-angle exci-
a ion pulses and global adiaba ic in e sion pulses. As
his pape aims a UHF MRI ( ypical o small-animal
MRI), we ocus only on IR me hods wi h e ospec i e
na iga ion.
Wi h espec o he abo e-men ioned aspec s, we p o-
pose a me hodology o e ospec i e sel -ga ed UHF-MRI
T1 quan i ica ion o myoca dium in small animals wi h
IR-p epa ed acquisi ion. To he au ho s’ knowledge,
he e ha e been only wo pape s on his opic in
he small-animal a ea.4,6 Win e e al.4show e ospec-
i e sel -ga ing o IR-p epa ed wo-dimensional (2D)
golden-angle adial acquisi ion; howe e , i lacks he
possibili y o synch oniza ion a ound he magne iza ion
ze o-c ossing poin o he in e sion eco e y p ocess.
Fu he mo e, he me hod equi es p ospec i e synch o-
niza ion wi h ECG and espi a o y signals o s a he
in e sion cycle always in he same espi a o y and ca -
diac phase. Han Pei e al.6sugges a simila app oach,
howe e wi h acquisi ion o sepa a e na iga o echoes,
which unnecessa ily p olongs he acquisi ion. Compa ed
o Win e ’s4and ou app oaches, Han Pei’s acquisi ion6
is based on Ca esian k-space sampling, which does no
bene i om he lowe sensi i i y o mo ion o adial ead-
ou and omincohe en p ope ies(noise-likeappea ance
o unde sampling-induceda i ac s)o adialgolden-angle
k-space sampling, exploi ed in comp essed sensing.23
Ou app oach (p elimina y wo k published in
Re e ence 24) equi es no ex e nal ECG/ espi a o y sig-
nals. I elies only on e ospec i e sel -ga ing based on a
na iga o signal de i ed om sho ini ial segmen s o he
ee-induc ion-decay (FID) signals. Independence o he
ca diac and espi a o y ac i i ies om he pulse sequence
and hei pe iodici y in sho segmen s allow us o eliably
de e mine e ospec i e physiological ga ing h oughou
he in e sion eco e y in e al.
Weha eimplemen edanIR-p epa ed2Dgolden-angle
adial acquisi ion me hod (simila o Re e ence 4)and
a h ee-dimensional (3D) golden-angle s ack-o -s a s
me hod.25 Images a e econs uc ed using o al a ia-
ion spa io empo al econs uc ion (no conside ed in
Re e ence 4o 6). A complex-image-domain model o
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370 VITOUŠ e al.
Look-Locke IR is hen i ed o he econs uc ed images
o quan i y T1.
Ou mo i a ion o implemen ing a 3D acquisi ion
sequence in addi ion o a 2D e sion was as ollows. Con-
a y o he p oblem o non- ec angula slice p o ile in
2D acquisi ion, a 3D acquisi ion p o ides a cons an lip
anglein he inne slices o heslab.Also,inmo ing issue,
like hea , a p edic able s eady s a e o magne iza ion in a
spoiled g adien echo sequence is mo e easily achie able
wi h a 3D acquisi ion, as he whole ( hick) slab is exci ed
a once. These wo aspec s should, a leas in heo y, lead
o mo e accu a e modeling o he e ec s o he exci a ion
pulses in he T1 quan i ica ion model.
2METHODS
2.1 Acquisi ion and p ocessing me hod
The me hod implemen ed acquisi ion o IR-p epa ed
spoiled g adien echoes wi h adial k-space eadou using
golden-angle azimu h inc emen s. Fo he 3D case, posi-
ion encoding was based on a golden-angle s ack-o -s a s
scheme as desc ibed in Re e ence 25. The IR p epa a ion
was accomplished wi h a sequence o Nin (e.g., 60) nons-
elec i e in e sions epea ed wi h a pe iod TIR ≫T1 (e.g.,
10s),whichwe ein e lea edwi h ainso N ad (e.g.,1500)
low- lip-angle eadou pulses. Execu ed as slice-selec i e
o slab-selec i e o 2D o 3D encoding, espec i ely. The
choice o he small lip angle o he eadou RF pulses (3◦)
was based on he ollowing easoning. Fo low lip angles,
heunce ain yabou he eal lipangledue oB1inhomo-
genei y a ec s he T1 es ima es negligibly. Also, con a y
o high- lip-angle pulses, wi h low- lip-angle pulses he
s eady s a e is eached la e , which allows mo e accu a e
es ima ion o longe T1s.10 On he o he hand, low lip
angle means lowe SNR. The choice o 3◦was a comp o-
mise be ween he abo e-men ioned aspec s based on ou
p e ious expe imen s.
The pulse sequence is shown in Figu e 1and he
ga ing p ocess can be seen in Figu e 2.Thep o-
posed pulse sequences we e implemen ed on a B uke
BioSpec USR 94/30 (B uke BioSpin GmbH) 9.4T scan-
ne wi h he BGA12S-HP (660 mT/m) g adien sys em.
The pulse-sequence pa ame e s used o e alua ion on
bo h he phan om and a s (see below) a e summa ized
in Table 1. Fo each exci a ion, Nacq =168 samples we e
acqui ed (incl. he FID and he echo signal), o which he
i s sample was ex ac ed o na iga ion, he ollowing 39
samples (sampled du ing g adien p ewinding) we e dis-
ca ded and he emaining 128 samples (lying on he adial
k-space ajec o y) we e used o image econs uc ion.
Ass a edabo e, he awna iga o signalwasex ac ed
om he i s sample o he FID signals and p ocessed o
emo e he IR end as ollows. The same polynomial o
he8 h o de was i ed o all Nin acqui edIR–IR in e als
simul aneously, based on he assump ion ha he ca diac
and espi a o y mo ion in he indi idual IR–IR in e als
d
FIGURE 1 Two/ h ee dimensional (2D/3D) golden-angle (s ack-o -s a s) pulse-sequence iming diag am. Fo 3D, he phase-encoding
g adien in heslab-selec iondi ec ionisshowndashed(no usedin he2Dcase).Thena iga o isacqui eda hebeginningo he“Acq.”block
(whe e all g adien s a e o , ma ked by blue dashed lines). The ans e se magne iza ion is spoiled immedia ely a e each in e sion eco e y
pulse as well as be ween he g adien -echo eadou s. Bo h adio equency pulse phase al e na ion and g adien spoiling echniques a e used.
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VITOUŠ e al. 371
(s)
FIGURE 2 The pic u e shows he magne iza ion e olu ion and syn he ic hea and espi a o y na iga o (Fo an example o a eal
na iga o see Figu e S1) wi h depic ed ga ing in e als (g een) ha lie in he selec ed espi a o y (bo om ow) and ca diac (middle ow)
phases. Any selec ed p ojec ion mus lie wi hin hese ga ing in e als o be selec ed o econs uc ion. In e als ha sa is y his condi ion a e
shown again g een in he magne iza ion e olu ion cha (uppe ow). The p ojec ions om hese in e als a e hen binned based on hei
posi ion wi hin he in e sion eco e y (IR) cycle. Each IR bin (Dashed ed boxes, op) is hen used o econs uc ion o one image. Fo
illus a ion pu poses, he shown numbe o p ojec ions pe IR cycle is educed signi ican ly compa ed o eali y o imp o e he cla i y,
simila ly o he hea and espi a o y a es. Also he numbe o IR bins is educed o 8 shown as oppose o 20 in eal acquisi ion.
TABLE 1 Two- (2D) and h ee-dimensional (3D) T1 mapping pulse-sequence pa ame e s, ha we e used o all MRI expe imen s
(phan om, heal hy a , ib osis) desc ibed in his pape .
Pa ame e 𝝉 d TE FA Nacq N ad TIR Ma ix FOV
2D 7 ms 12 ms 7 ms 1.4 ms 3◦168 1500 10.5 s 128 ×128 40 ×40 ×2mm3
3D 8.2 ms 12 ms 8ms 1.2 ms 3◦168 1500 10.5 s 128 ×128 ×840 ×40 ×16mm3
Abb e ia ions: FA, lip angle; FOV, ield o iew; TE, echo ime.
is unco ela ed. The o de o he polynomial was selec ed
as a comp omise be ween i s lexibili y and complexi y,
based on ou p elimina y es ing o a ious polynomial
o de s. As i emo ed he IR end su icien ly, o he pos-
sibili ies such as i ing a sum o exponen ials we e no
es ed. The app op ia e coil elemen was hen selec ed by
choosing he elemen wi h he s onges na iga o signal.
Then, he na iga o signals o hea and espi a ion we e
sepa a ed by band-pass il e ing ( ia spec al dele ion) o
heIR- end-compensa edna iga o (sizeNin ×N ad).The
physiological espi a o y and hea a es we e aken in o
accoun (hea a e be ween 240 and 600 bea s pe minu e
and espi a ionin he angeo 18–180b ea hspe minu e).
Then he ancho poin s we e de ec ed in he na iga o
signals,andex apola ed oa eas,whe e hena iga o was
un eliable ( he i s 25% o he IR–IR in e al, co e ing
he i s pa o he IR end up o sho ly a e he mag-
ne iza ion ze o-c ossing poin ). The esul ing espi a o y
na iga o (con aining only he ancho poin s) was hen
con e ed oaga ingsignalbyselec ing55%o each espi-
a o y cycle co esponding o i s pla eau (expi a ion phase
wi h minimal animal mo ion). Fo he ca diac na iga o
(also now con aining only he ancho poin s), each ca -
diac cycle was spli in o subsequen ca diac phases. The
equi ed ca diac phase (in ou case dias ole) was hen
ex ac ed by selec ing 15% o he ca diac cycle’s samples
a ound he equi ed ca diac phase posi ion in he na iga-
o . The ela i e posi ions o he dias ole phase wi hin he
ca diac cycle we e ound om isual inspec ion o images
econs uc ed o a ious posi ions. The p oposed choice
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372 VITOUŠ e al.
o posi ionsandleng hso heselec edsegmen s ela i e o
he leng h o each indi idual espi a o y and ca diac cycle
(in pe cen age) makes he sel -ga ing me hod obus wi h
espec o changes in espi a o y and ca diac a es du ing
he acquisi ion. These ga ing signals we e hen combined
ogene a e he esul ingga ingsignal o he whole acqui-
si ion.I was henused o selec iono hep ojec ions ha
we e acqui ed in he app op ia e in e als, ha is, wi hin
hepla eau espi a o yphaseand hedesi edca diacphase
(Figu e 2). The selec ed p ojec ions we e inally binned
in oIRbinsbasedon hei posi ionwi hin heIR–IRin e -
al (Figu e 2). He e, 20 equally long IR bins we e used o
he whole IR–IR in e al.
Image econs uc ion was pe o med o line o bo h
he 2D and 3D acquisi ion using modi ied spa ially
and empo ally cons ained econs uc ion so wa e om
Re e ence 26. The spa io empo al egula iza ion was
o mula ed as o al a ia ion egula iza ion, whe e, he
empo aldimensionwas hein e sion ime,TI.Ingene al,
hedesc ibed e ospec i esel -ga ingmaylead odi e en
(and po en ially low) numbe s o p ojec ions in di e en
IR bins and, o he 3D e sion, also di e en numbe s o
p ojec ions in di e en slice phase-encoding s eps.
This caused poo pe o mance o he o iginal 2.5D
GROG g idding ope a o . Hence, i was eplaced by s an-
da d NUFFT om Re e ence 27 based on J. Fessle ’s
implemen a ion in Re e ence 28,whichled obe e
image econs uc ion. The spa ially and empo ally
cons ained econs uc ion algo i hm inco po a es also
pa allel imaging by p ocessing signals om all coil chan-
nels oge he wi h hei sensi i i ies, es ima ed p io o
he econs uc ion.
The econs uc ed images we e subsequen ly used o
es ima ion o T1 using he ollowing bin-a e aging model
(based on Re e ence 29):
SIRLL
bin (𝜌0,T1)
=1
NPB
n2
∑
n=n1
𝜌0sin(𝛼)[F+(E𝜏cos𝛼)n−1(Q−F)],(1a)
F=1−E𝜏
1−E𝜏cos𝛼,(1b)
Q=−Fcos𝛼E Ed[1−(E𝜏cos𝛼)N−1]−2Ed+E Ed+1
1+cos𝛼E Ed(E𝜏cos𝛼)N−1,
(1c)
E𝜏=exp(−𝜏
T1),(1d)
E =exp(−
T1 ),(1e)
Ed=exp(− d
T1 ).(1 )
I akes in o accoun he pe iod be ween he in e sion
pulse and he i s exci a ion, d, he ime be ween subse-
quen exci a ions,𝜏, he elaxa ionpe iod a he end o he
eadou echo ain, , and he lip angle o he exci a ion
pulses o he eadou ain, 𝛼. The numbe o p ojec ions
in each IR bin is deno ed as NPB and n1,2s and o indices
o he i s and las p ojec ions in each IR bin. The num-
be o all exci a ions pe in e sion pe iod is desc ibed by
N ad. The model assumes pe ec in e sion and was i ed
ocomplex oxel-basedin e sion eco e ycu es, esul ed
in es ima es o he complex ac o 𝜌0( ela ed o p o on
densi y) and he ue T1 elaxa ion ime.
2.2 E alua ion on phan om
measu emen s
The p oposed me hodology was i s es ed on a s a ic
phan om consis ing o eigh ials wi h wa e solu-
ions o Gado is ® (Baye AG) o di e en concen-
a ions (0.1–2.5 mmol/L) and hus in di e en T1
elaxa ion imes in each ial. To e alua e he p o-
posed me hods, he phan om was i s measu ed wi h a
g ound- u h acquisi ion— he s anda d IR me hod wi h
11 TIs (4–9000 ms) wi h one g adien -echo eadou pe
in e sion, TR/TE 10,000/4 ms (MR scanne speci ied
abo e). The T1 quan i ica ion om hese g ound- u h
da a was hen based on he ollowing model i ed o he
complex-image domain:
I=𝜌0[1−2exp(−TI∕T1)+exp(−TR∕T1)].(2)
Then, he same phan om was imaged wi h he p oposed
2D and 3D acquisi ion me hods, wi h he same pa am-
e e s as used la e o a s ( o pa ame e s see Table 1).
To accoun o ga ing in a acquisi ions, we andomly
selec ed 8.25% o he acqui ed p ojec ions, based on
he abo e men ioned segmen leng hs o he espi a o y
(55%) and ca diac (15%) ga ing (0.15 ×0.55 =0.0825). We
assumenoco ela ionbe ween heca diacand espi a o y
ac i i ies.
Then, we compa ed he T1 es ima es o he
g ound- u h me hod wi h he es ima es ob ained by he
p oposed 2D and 3D me hods wi h a long acquisi ion
du a ion, ha is, 18 and 45 min long, espec i ely (he e-
a e e e ed o as ull-leng h acquisi ions) o see i he
p oposed ull-leng h 2D and 3D me hods can be used
as a e e ence when e alua ing he e ec s o a sho e
acquisi ion and spa io empo al image egula iza ion on
a da a (whe e he s anda d g ound- u h IR acquisi-
ion is una ainable). To quan i y he e o , we measu ed
he mean T1 elaxa ion ime in each ial o he phan-
om using all me hods and hen calcula ed he ela i e
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VITOUŠ e al. 373
e o o he p oposed 2D o 3D me hod wi h espec o
he g ound- u h IR me hod, which is hen shown in
pe cen age.
2.3 E alua ion on a heal hy a
All measu ing p ocedu es we e pe o med unde EU
Di ec i e no. 2010/63/EU and app o ed by he Ani-
mal Ca e Commi ee o Czech Academy o Sciences,
Czech Republic, and Czech Go e nmen al Animal Ca e
Commi ee, in compliance wi h Czech Animal P o-
ec ion Ac No. 246/1992. Imaging was done using
a olume esona o as he ansmi e and a su ace
a -b ain ou -channel a ay coil as he ecei e . The a
was anes he ized using a mix u e o iso luo ane (2 %)
and oxygen gas (1000 mL/min) and lay p one on he
su ace coil.
The abo e desc ibed 2D and 3D T1-quan i ica ion
scans we e done in an oblique o ien a ion co esponding
o hesho -axis iew.Thesliceswe eposi ionedacco ding
o B uke ’s ecommenda ions based on se e al i e-slice
g adien echo scans wi h low compensa ion.
A e scanning, he da a we e p ocessed o line. The
p ojec ions we e i s selec ed using he abo e desc ibed
ga ingandbinningalgo i hms(dias olicca diacphasewas
chosen, as i is s anda d in clinical p ac ice and also used
ino he pape swecompa eou me hodwi h), ollowedby
image econs uc ion and T1 es ima ion.
To e alua e he e ec s o sho ening he acquisi ion
ime and he e ec s o a ious egula iza ion weigh s,
we ha e c opped he da ase s o se e al sho e da ase s.
As he s anda d g ound- u h IR acquisi ion used o he
phan om canno be applied o in i o ca diac imag-
ing o a s (because o ca diac and espi a o y mo ion),
pe o ming a ull-leng h 2D and 3D acquisi ions wi h
he p oposed me hods (18 and 45 min long, espec-
i ely) yielded a e e ence. Nex , he measu ed da a
we e c opped and econs uc ed wi h mul iple egu-
la iza ion weigh s and he bes egula iza ion weigh s
we e ound.
The T1 es ima ion e o was e alua ed simila ly as in
hephan omexpe imen ,he einside egionsde i ed om
manually d awn le - en icula myoca dium ou lines. In
case o he 3D me hod, six slices ou o eigh we e used
o e alua ion— he ou e slices o he slab we e omi ed.
The ela i e e o o he T1 es ima es was calcula ed o
each myoca dial oxel as absolu e alue o he di e ence
be weenT1es ima esob ainedwi h he ull-leng hand he
sho ened egula ized da ase , di ided by he ull-leng h
T1. Then, hei a e age was epo ed as he mean ela i e
e o .
2.4 E alua ion on he a model
o myoca dial- emodeling
The p oposed me hods we e also alida ed in he ol-
lowing animal expe imen s, ca ied ou acco ding o he
ecommenda ions o he Eu opean Communi y Guide o
he Ca e and Use o Labo a o y Animals and acco ding
o he expe imen al p o ocol (No. MSMT-35972/2020-3)
app o ed by he Commi ee o Ensu ing he Wel a e o
Labo a o y Animals, Masa yk Uni e si y and licensed by
he Minis y o Educa ion, You h and Spo s o he Czech
Republic.
The o al o nine Sp ague-Dawley male a s (6 weeks
old) we e included in he s udy. The animals we e an-
domly di ided in o wo expe imen al g oups: ib osis
(FIB; n=5) and con ols (CON; n=4, o iginally i e
animals – 1 animal died du ing he expe imen ). The ani-
mals we e housed in g oups in a empe a u e-, p essu e-,
and humidi y-con olled en i onmen , wi h ligh cycle
12/12 (ligh /da k), ad libi um access o wa e and s an-
da d die du ing he whole expe imen . The animals
we e allowed o adap o he en i onmen and e e y-day
manipula ion o minimally 7 days. The deoxyco icos-
e one ace a e (DOCA, Sigma-Ald ich)—sal model was
used o induce myoca dial emodeling in he g oup FIB,
as p e iously desc ibed.30 B ie ly, unila e al neph ec omy
was pe o med and o h ee ollowing weeks DOCA was
adminis e ed once a week om he day o su ge y in
he depo dose—20 mg/week, subcu aneously (s.c.); dis-
sol ed in 0.2 mL o peanu oil). Du ing he same pe iod,
sal in ake was inc eased by adding sodium chlo ide and
po assium chlo ide in o he d inking wa e (0.9% NaCl
and 0.3% KCl). In he g oup CON, sham ope a ion was
pe o med. Du ing he ollowing 3 weeks, a ehiculum
(peanu oil; Sigma-Ald ich) was adminis e ed s.c. once a
week (0.2 mL/week s.c.) and no sal was added o he
d inking wa e . All a s we e scanned using he same MR
scanne and he p o ocol desc ibed abo e. The animals
we e scanned a day be o e (baseline) and 14 days a e
he su ge y. A week a e he second MRI scan, each ani-
mal was sac i iced, he hea was apidly excised, washed
om he blood in a cold phospha e bu e ed saline (PBS;
Sigma-Ald ich) and ixed in o malin o 24 h. Then, he
hea was cu pe pendicula ly o he hea axis, ou inely
p ocessed and comple ely embedded in o o malin- ixed
pa a in-embedded specimens. His opa hological exami-
na ion was pe o med by hema oxylin-eosin s aining and
Goldne g een special s aining. The ca diac emodeling
was assessed in acco dance wi h he ecommenda ions
o he Eu opean Socie y o Ca diology.31 The ex en o
ca diac ib osis was quan i ied by expe ’s manual anno-
a ion o he whole slice images in he QuPa h so wa e32
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374 VITOUŠ e al.
and epo ed as a io o ib o ic issue a ea o he o al
sample a ea.
The MRI p o ocol was an ex ended e sion o he
one desc ibed in Sec ion 2.3. The p oposed 2D and
3D acquisi ion was ca ied ou wice—be o e and a e
adminis a ion o a con as agen (CA), o subsequen
myoca dial ex acellula olume (ECV – ela i e olume
o he in a ascula plus in e s i ial space) es ima ion,
see below. In addi ion, o acqui e addi ional independen
in o ma ion abou he myoca dial issue s a e, ana omi-
cal scans we e done be o e he T1 quan i ica ion scans
by u ilizing endo ’s In aga e FLASH sequence (a e o-
spec i ely sel -ga ed Ca esian FLASH sequence) o assess
ana omical as well as physiological p ope ies o he le
chambe (myoca dial ac ional olume (MFV) and ejec-
ion ac ion (EF)).
TheMFVwascompu edasa ac iono hemyoca dial
mass in he en i e le chambe measu ed in dias ole. The
EF was compu ed as a a io o ejec ed blood olume (di -
e ence o end-dias olic and end-sys olic olume), and he
end-dias olic olume. Endo- and epi-ca dial ou lines we e
d awn manually in each slice o each animal and mea-
su emen . Only le chambe pa ame e s we e assessed.
A e he ana omical and p econ as T1-mapping
scans (2D and 3D), a CA (Gado is , Baye GmbH) was
adminis e ed in a enously in o he ail ein as a bolus
using a linea in usion pump (Ha a d Appa a us), injec-
ion speed 1 mL/min, dose 0.2 mmol/kg weigh . The
pos con as T1-mappingscans(2Dand3D)we e henpe -
o med s a ing 5 minu es a e he con as -agen admin-
is a ion. E alua ion o emodeling was based on ECV
de i ed om he es ima ed p econ as and pos con as
T1 maps. The images o T1 mapping we e econs uc ed
using he op imal egula iza ion weigh s, ound in he
expe imen s on a heal hy a desc ibed abo e, adjus ed o
heacquisi ionleng husedhe e(10min o 2Dand15min
o 3D). A delay a e he con as -agen adminis a ion
is needed o each he s eady s a e o equal in a- and
ex a- ascula con as -agen concen a ion (he e, he 2D
T1-quan i ica ion acquisi ion s a ed 5 min and he 3D
me hod15mina e heCAadminis a ion).Basedonp e-
ious wo k and clinical p ac ice,19,33 he ECV is expec ed
oinc easewi h he emodelledca diac issue,as hein e -
s i ial space is expanded by ex acellula ma ix allowing
i o accommoda e mo e CA han he heal hy issue. The
ECV was calcula ed as33:
ECV =(1−HCT)R1 issue pos −R1 issue p e
R1blood pos −R1blood p e ,(3)
whe e R1 s ands o elaxa ion a es (1/T1) o he issue
and blood be o e and a e he CA adminis a ion, HCT
is hema oc i . Hema oc i was measu ed o each animal
a each MRI ime poin by aking blood samples om he
ail ein.
3RESULTS
3.1 Phan om measu emen s
The esul s o he phan om expe imen a e summa ized
in Table 2. The ag eemen wi h he e e ence me hod was
wi hin 9 % in he whole in e al o he es ed T1 alues o
he 2D and 11 % o he 3D me hod. Wi h his le el o con-
idence, we ha e used he ull-leng h 2D and 3D da ase s
as a e e ence o he in i o expe imen s.
3.2 Resul s om a heal hy a
The mean ela i e e o s (uppe ows in Figu es 3and 4)
show hee ec s o egula iza ionweigh s o di e en le -
els o sho ening he acquisi ion (columns). The posi ions
o he op imal egula iza ion weigh s ( iangles) show
ha a sho e acquisi ion (highe le el o unde sampling)
equi es highe egula iza ion weigh s.
The T1-es ima ion e o s in Figu es 3and 4sugges
he acquisi ion leng hs equi ed o a gi en choice o
he accep able e o . Fo example, i we se he maxi-
mum accep able T1-es ima ion e o wi h espec o he
ull-leng h acquisi ion o 5%, we can sho en he acqui-
si ion o app oxima ely 5 min o he 2D acquisi ion
and o somewhe e be ween 7 and 9 min o he 3D
(eigh slices) acquisi ion as can be seen in Figu e 5.Fo
TABLE 2 Phan om, T1 es ima es in eigh ials.
Me hod ROI 1 ROI 2 ROI 3 ROI 4 ROI 5 ROI 6 ROI 7 ROI 8
G ound u h 2D IR (ms) 74.5 97.3 148 175 316 668 808 2503
Full-leng h 2D IR (ms) 72.7 94.3 156 188 334 726 873 2465
Rela i e e o 2D IR (%) −2.5 −3.0 5.3 7.2 5.7 8.8 8.1 −1.5
Full-leng h 3D IR (ms) 75 95 144 191 331 741 852 2425
Rela i e e o 3D IR (%) 1.0 −2.5 −2.4 9.3 4.7 11.0 5.4 −3.1
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VITOUŠ e al. 375
λ
λ
FIGURE 3 Heal hy a , wo-dimensional acquisi ion. Top: Mean ela i e e o s (%) o di e en spa ial and empo al egula iza ion
weigh s (𝜆spa ial,𝜆 empo al) o ou di e en acquisi ion du a ions (columns): 18, 10, 4, 2 min. The minima a e ma ked wi h a iangle. Bo om:
T1 maps o he op imal egula iza ion weigh s.
FIGURE 4 Heal hy a , h ee-dimensional acquisi ion. Top: Mean ela i e e o s o di e en spa ial and empo al egula iza ion
weigh s (𝜆spa ial,𝜆 empo al) o ou di e en acquisi ion du a ions (columns): 45, 20, 10, 5 min. The minima a e ma ked wi h a iangle.
Bo om: T1 maps o he op imal egula iza ion weigh s.
he myoca dial- emodeling expe imen below, acquisi ion
leng hs o 10 ( o 2D) and 15 ( o 3D) min we e chosen, o
s ay sa ely unde he 5 % e o h eshold.
3.3 Resul s om he a model
o myoca dial- emodeling
Thee ec o myoca dial emodelingwase alua edby i s
compa ing he CON and FIB g oups a he baseline MRI
(day 0, no signi ican di e ence expec ed) and hen a he
second MRI (day 14, signi ican di e ence expec ed). The
unpai edle - ailT- es wasused o allexaminedpa ame-
e s EF, MFV and ECV. The esul s can be seen in Table 3.
Acco ding o he expec a ions, o he EF and MFV,
he e was no signi ican di e ence be ween he con ol
and ea ed g oups a baseline MRI (EF: p=0.50, MFV:
p=0.89) and he e was a signi ican di e ence be ween
he g oups a he second MRI ime poin (EF: p<0.05,
MFV: p<0.05).
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376 VITOUŠ e al.
FIGURE 5 Mean ela i e e o s o he es ed acquisi ion
leng hs and hei co esponding op imal egula iza ion weigh s.
The chosen 5% e o limi is shown in g ay colo .
TABLE 3 Table summa izing he esul ing ejec ion ac ion
(EF), myoca dial ac ional olume (MVF) and ex acellula
olume (ECV).
Exam MRI 1 MRI 2
G oup CON FIB CON FIB
EF 80 ±579±481±288±2
MVF 61 ±260 ±160 ±367 ±2
ECV 2D, 10 min 26 ±524±423±528±7
ECV 2D, 5 min 27 ±526 ±522 ±527 ±4
ECV 3D, 15 min 27 ±625±624±627±6
ECV 3D, 7.5 min 30 ±726 ±731 ±728 ±6
No e: All p esen ed alues shown in pe cen age, mean ±SD.
The ECV was e alua ed o a 10-min 2D and a
15-min 3D T1-quan i ica ion acquisi ion. In line wi h he
expec a ions, he e was no signi ican di e ence be ween
he con ol and ea ed g oups a baseline MRI (2D: p=
0.99, 3D: p=0.99) and he e was a signi ican di e ence
be ween he g oups a he second MRI ime poin (2D:
p<0.05,3D:p<0.05).ExampleECVmapscanbeseenin
Figu e 6.
Secondly he same assessmen was made o sho e
acquisi ions, whe e bo h he 2D and 3D we e sho ened
o one hal (5 and 7.5 min, espec i ely). The e was no
signi ican di e ence be ween he con ol and he ea ed
g oups a baseline MRI (2D: p=0.58, 3D: p=0.99), bu
he ewasasigni ican di e encebe ween heg oupsa he
second MRI ime poin only o he 2D (p<0.05), no o
3D (p=0.75) case.
His ological examina ion e ealed eg essi e changes
in he myoca dium a a ious s ages, including oci o
nec osis and ma u ing sca issue (classi ied as eplace-
men ,pe i ascula o in e s i ial ib osis31).Thesechanges
we e only obse ed in he FIB g oup. The spa ial dis ibu-
ion o emodeling lesions is a he nonuni o m and can
be seen on example in Figu e 7.
4DISCUSSION
The phan om expe imen clea ly e ealed ha he
T1-quan i ica ion e o was lowe in 2D han in 3D expe -
imen s. This co esponds o a lowe numbe o adials pe
econs uc ion o one slice in he 3D case. In gene al no
sys ema ic end o T1 de ia ion was obse ed. I migh ,
howe e , appea when quan i ying longe T1 compo-
nen s, which would be unde es ima ed, as was shown o
example in Re e ence 29. On he o he hand such long T1
componen sa eunlikely oappea inca diacapplica ions.
The expe imen s on he eco dings om a heal hy
a showed he e ec o acquisi ion leng h and egula -
iza ion on he accu acy o he T1 es ima es (Figu es 3
and 4). As expec ed, highe egula iza ion weigh s we e
needed o sho e acquisi ion leng h, ha is, mo e
unde sampled da a.
Ou p econ as T1es ima eso myoca diumincon ol
a s (1550 ±120 ms) we e in line wi h some li e a u e al-
ues o MR scanne s wi h he same B0: 1534 ±151 ms o
a sel -ga ed IR algo i hm desc ibed abo e.6Howe e , s ill
o hesameB
0 he T1 es ima es a e known o depend on
he acquisi ion scheme and me hod. The hea a e o he
animals in he FIB g oup du ing exam 2 was o e all lowe
han ha o he CON g oup. This migh be an addi ional
ac o a ec ing myoca dial T1, as co ela ion o T1 and
hea a e (al hough only in he ange o se e al pe cen )
has been epo ed in mice p e iously.22
Ou measu ed ECV was o e all sligh ly la ge ( o he
secondMRIexamina ion:23 ±4%in CONg oupand 28 ±
6%in FIB g oup, Figu e 6) han o example in6(18 ±
2.1%in heal hy a s and 22.43 ±2.51%in FIB g oup).
This may be possibly a ibu ed o he young age o ou
a s (9 weeks in ou case s. 14 weeks in Re e ence 6).
This hypo hesis is suppo ed by he esul s o ECV in he
baseline expe imen s, (done a he age o 7-weeks), whe e
we ob ained e en la ge ECVs (25 ±4%). The dec ease
o ECV in he CON g oup wi h inc easing age can also
be obse ed in Table 3. This age- ela ed dec ease o ECV
migh ac agains he emodeling- ela ed ECV inc ease in
he FIB g oup.
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