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Using network analysis to explore the validity and influential items of the Parkinson's Disease Questionnaire-39

Abstract

Quality of life (QoL) in people with Parkinson´s disease (PD) is commonly measured with the PD questionnaire 39 (PDQ 39), but its factor structure and construct validity have been questioned. To develop effective interventions to improve QoL, it is crucial to understand the connection between different PDQ 39 items and to assess the validity of PDQ 39 subscales. With a new approach based on network analysis using the extended Bayesian Information Criterion Graphical Least Absolute Shrinkage and Selection Operator (EBICglasso) followed by factor analysis, we mostly replicated the original PDQ 39 subscales in two samples of PD patients (total N = 977). However, model fit was better when the “ignored” item was categorized into the social support instead of the communication subscale. In both study cohorts, “depressive mood”, “feeling isolated”, “feeling embarrassed”, and “having trouble getting around in public/needing company when going out” were identified as highly connected variables. This network approach can help to illustrate the relationship between different symptoms and direct interventional approaches in a more effective manner.

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Using network analysis to explore the validity and influential items of the Parkinson's Disease Questionnaire-39

Author: Schönenberg, Aline; Santos García, Diego; Mir Rivera, Pablo; Wu, Jian Jun; Heimrich, Konstantin G.; Mühlhammer, Hannah M.; Prell, Tino
Publisher: Nature Publishing Group; Nature Portfolio
Year: 2023
DOI: 10.1038/s41598-023-34412-4
Source: https://idus.us.es/bitstreams/59ce4471-1727-44b7-a0d8-9cdda714cf91/download
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Using ne wo k analysis o explo e
he alidi y and in luen ial
i ems o he Pa kinson’s Disease
Ques ionnai e‑39
Aline Schönenbe g
1*, Diego San os Ga cía
2, Pablo Mi
3,4,5, Jian‑Jun Wu
6,
Kons an in G. Heim ich
7, Hannah M. Mühlhamme
1,7 & Tino P ell
1
Quali y o li e (QoL) in people wi h Pa kinson´s disease (PD) is commonly measu ed wi h he PD
ques ionnai e‑39 (PDQ‑39), bu i s ac o s uc u e and cons uc alidi y ha e been ques ioned. To
de elop e ec i e in e en ions o imp o e QoL, i is c ucial o unde s and he connec ion be ween
di e en PDQ‑39 i ems and o assess he alidi y o PDQ‑39 subscales. Wi h a new app oach based
on ne wo k analysis using he ex ended Bayesian In o ma ion C i e ion G aphical Leas Absolu e
Sh inkage and Selec ion Ope a o (EBICglasso) ollowed by ac o analysis, we mos ly eplica ed
he o iginal PDQ‑39 subscales in wo samples o PD pa ien s ( o al N = 977). Howe e , model i was
be e when he “igno ed” i em was ca ego ized in o he social suppo ins ead o he communica ion
subscale. In bo h s udy coho s, “dep essi e mood”, “ eeling isola ed”, “ eeling emba assed”, and
“ha ing ouble ge ing a ound in public/needing company when going ou ” we e iden i ied as highly
connec ed a iables. This ne wo k app oach can help o illus a e he ela ionship be ween di e en
symp oms and di ec in e en ional app oaches in a mo e e ec i e manne .
Pa kinson’s disease (PD) is a ch onic p og essi e neu odegene a i e disease cha ac e ized by mo o - and non-
mo o symp oms a ec ing quali y o li e (QoL). Se e al scales ha e been p oposed o assess QoL o people
wi h PD1. Among he exis ing measu emen s, he 39-i em Pa kinson’s Disease Ques ionnai e (PDQ-39) is he
mos ho oughly es ed and applied ques ionnai e, and i is ecommended o assess heal h- ela ed QoL in PD2.
The PDQ-39 was de eloped in 1995 by Pe o e al.3,4 and consis s o 39 i ems, di ided in o 8 subscales: mobili y
(MOB, 10 i ems), ac i i ies o daily li ing (ADL, 6 i ems), emo ional well-being (EMO, 6 i ems), s igma (STI,
4 i ems), social suppo (SOC, 3 i ems), cogni ion (COG, 4 i ems), communica ion (COM, 3 i ems), and bod-
ily discom o (BOD, 3 i ems). Fo each i em, answe s a e gi en on a 5-poin Like scale: ne e , occasionally,
some imes, o en, and always. The sco es om each domain a e compu ed in o a sco e anging om 0 (bes ) o
100 (wo s ). In addi ion, a single index was desc ibed as o e all measu e o heal h- ela ed QoL4. The equen ly
ansla ed PDQ-39 is o e all conside ed eliable, alid, comp ehensi e, and sensi i e o change1,2. Howe e ,
se e al impo an psychome ic issues ega ding de ails o he PDQ‐39 ha e no been su icien ly add essed. In
pa icula , s udies add essing he alidi y o he PDQ-39’s dimensionali y ha e shown inconclusi e esul s5–7,wi h
i ems’ g oup assignmen ailing o ma ch he assumed PDQ‐39 subscales, and eigen alues o se e al ac o s only
ma ginally exceeding 17. The PDQ-39’s scale eliabili y was also subop imal o SOC, COG and BOD7. Con-
side ing hese aspec s is impo an , as eliabili y is c ucial in clinical s udies using he PDQ-39 as a measu e. In
addi ion o an o e all sum sco e, i is c i ical o comp ehend wha he subsco es ep esen . This is a ma e o
cons uc alidi y. Fo ins ance, in p e ious s udies, he COG subscale was mo e closely linked o dep ession
han o neu ocogni i e es s8 o wi h sleep dis u bances and hallucina ions9. The e o e, addi ional s udies a e
OPEN
1Depa men o Ge ia ics, Halle Uni e si y Hospi al, Halle (Saale), Ge many. 2Depa men o Neu ology, Complejo
Hospi ala io Uni e si a io de A Co uña (CHUAC), A Co uña, Spain. 3Unidad de T as o nos del Mo imien o,
Se icio de Neu ología y Neu o isiología Clínica, Ins i u o de Biomedicina de Se illa, Hospi al Uni e si a io
Vi gen del Rocío/Consejo Supe io de In es igaciones Cien í icas/Uni e sidad de Se illa, Se ille, Spain. 4Cen o
de In es igación Biomédica en Red Sob e En e medades Neu odegene a i as, Mad id, Spain. 5Depa amen o
de Medicina, Facul ad de Medicina, Uni e sidad de Se illa, Se ille, Spain. 6Depa men o Neu ology and
Na ional Clinical Resea ch Cen e o Aging and Medicine, Huashan Hospi al, Fudan Uni e si y, Shanghai,
China. 7Depa men o Neu ology, Jena Uni e si y Hospi al, Jena, Ge many. *email: aline.schoenenbe g@
uk-halle.de
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needed o assess he cons uc alidi y o he PDQ-39 o unde s and he i em alloca ion o he subscales, as well
as hei ela ion o each o he .
Ne wo k analysis is a ela i ely new and p omising me hod o modeling in e ac ions be ween la ge num-
be s o a iables. Ins ead o ying o educe he s uc u e o he a iables o hei sha ed in o ma ion (such as a
la en a iable), as is done in abo emen ioned modeling, he ne wo k es ima es he ela ion be ween all a iables
di ec ly10–12. Ne wo k elemen s (e.g., i ems o a sco e o symp oms) a e concep ualized as elemen s o a complex
in e ac ing dynamical sys em11. Ne wo ks consis o nodes ep esen ing obse ed a iables, and he ela ion-
ships ( o mally called edges) be ween hesenodes. Ins ead o isualizing he ela ionships o all a iables wi h
each o he , ne wo ks can be es ima ed using egula iza ion echniques o igina ing om he ield o machine
lea ning. Regula iza ion means ha edges ha a e likely o be spu ious a e emo ed om he model, leading
o ne wo ks ha a e spa se and easie o in e p e 10. Beyond he mo e con en ional me hods, his ne wo k
app oach has he added bene i o mapping ou he connec ions be ween di e en a iables in he ne wo k and
hus helps unde s and which symp oms a e linked. I may also p o ide an unde s anding o how sub-scales o
a ques ionnai e a e connec ed and which i ems a e c oss-domain b idges, hus p o iding iche in o ma ion
abou he ques ionnai e s uc u e10,13.
The pu pose o he cu en in es iga ion was wo- old. Fi s , we applied ne wo k analysis ollowed by con-
i ma o y ac o analyses (CFA) o e alua e he connec ion be ween PDQ-39 i ems and hei subscales. Speci i-
cally, we a emp ed o comp ehend whe he he subsec ions o he PDQ-39 a e embodied in he i em g oupings
in he ne wo k and which i ems ac as links be ween he a ious subsec ions. We especially employed ne wo k
analysis o a ain insigh in he c oss-domain linkages and o de ec e idence o subs i u e i em g oupings. Sec-
ondly, we sough o gain u he unde s anding in o he connec edness o dis inc i e PDQ-39 i ems and hei
pu po ed ole as a ge s o in e en ions o aise quali y o li e in PD.
Resul s
COPPADIS s udy. The ne wo k plo based on da a om he COPPADIS s udy (N = 694 PD pa ien s, see
Supplemen Table1) is displayed in Fig.1 and i s co esponding cen ali y measu es a e shown in Fig.2 ( abu-
la ed in de ail in Supplemen Table2). Visually, he ne wo k can be di ided in o se e al domains ha mos ly i
o he p oposed PDQ-39 subscales by Pe o e al.3. The hickes edges we e ound wi hin he espec i e domains,
al hough he bo de s be ween hese domains we e b idged by a ious c oss-domain associa ions. Fo example,
he i em “isola ed” connec s he i ems in he EMO subscale o he COC and SOC subscales.
When examining s eng h as a cen ali y measu e, high node s eng h indices we e seen o "need going ou ",
"d essing", "dep essed", and "isola ed". A e pe o ming he boo s apped cen ali y di e ence es (Supple-
men Table3), i became e iden ha he mos in luen ial i ems we e no di e en om one ano he in e ms o
hei cen ali y, so no de ini i e o de can be de e mined. Ne e heless, he i ems "need_going_ou ", "d essing",
"dep essed", "isola ed", "walking_mile", "emba assed", "Suppo _ iends", "close_ ela ion", "ge ing_public", and
"d inking_public" we e iden i ied as being he mos connec ed wi hin he ne wo k. Al e a ions in he alue o
hese poin s hus ha e a bea ing on o he nodes wi hin he ne wo k. Con e sely, i ems such as "anxious", "illu-
sions" and "ho _o _cold" (unpleasan ly ho o cold) appea o be less connec ed when aking in o conside a ion
hei s eng h as opposed o o he nodes. The expec ed in luence also e eals ha he i ems " equi e going ou ",
"ge ing d essed" and "dep essed" a e p o oundly in luen ial and well-connec ed nodes wi hin he ne wo k14.
In e ms o alidi y, i is wo h o no e ha acco ding o he ne wo k, some i ems we e connec ed o di -
e en subscales. Fo example, “igno ed” showed connec ions o bo h “communica e” (COM) and “suppo
iends”/“close ela ions” (SOC), as can be seen in he ne wo k plo and he edge weigh s in Supplemen Table3.
This can also be seen by a low i em- o- es co ela ion o = 0.386 o “igno ed” o i s subscale COM (Supple-
men Table4). Also “hold d ink” om he ADL subscale is mo e s ongly connec ed o “d inking public” om
he STI subscale han o he i ems o he ADL scale. “Hallucina ions” a e close ela ed o he “c amp” i em om
BOD han o he i ems o i s COG subscale. Fo an o e iew o de ailed edge s eng hs see Supplemen Table2.
Acco dingly, a CFA e ealed be e model i when “igno ed” was ca ego ized in o he SOC subscale han in o
he COM subscale (Supplemen Tables5 and 6).
Supplemen Figs.1–3 show he esul s o he accu acy and s abili y checks. O e all, he ne wo k model is
s able, many o he iden i ied edges and cen ali y measu es a e signi ican ly di e en om each o he . The case-
d opping boo s ap p ocedu e shows ha CS-Cs o node s eng h and edges we e 0.67 and 0.75, espec i ely.
Chen e al. s udy. A second sample om Chen e al. (N = 283, see Supplemen Table1 o a compa ison
o bo h s udy g oups) was used o con i m he indings o he COPPADIS s udy15. He e, he ne wo k plo (Sup-
plemen Fig.4) was o e all compa able o he COPPADIS s udy, al hough isual di e ences exis be ween he
wo ne wo k plo s. In he second ne wo k, s eng h was again high o “dep essed” as well as “emba assed”,
“communica ion”, “isola ed”, “ge ing_public”, “need_going_ou ”, “ang y”, “anxie y”, “emba assed”, and “d ess-
ing” (Supplemen Fig.5). When looking a cen ali y di e en es s using boo s apping me hods, node s eng h
did no di e signi ican ly be ween he i ems wi h highes s eng h lis ed abo e, sugges ing ha hey all ha e a
la ge amoun o ele an connec ions. Again, he i em “igno ed” showed connec ions o bo h “communica e”
(COM) and “suppo iends” / “close ela ions” (SOC). This was also con i med by CFA whe e he model i
was again be e when “igno ed” was ca ego ized in o SOC subscale han in o he COM subscale (Supplemen
Table7 and 8). Al hough he sample size o he s udy by Chen e al. was lowe han he COPPADIS s udy, he
ne wo k can s ill be ega ded as s able and in e p e able (Supplemen Figs.6–8). The case-d opping boo s ap
p ocedu e shows ha CS-Cs o node s eng h and edge we e 0.52 and 0.52, espec i ely.
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Discussion
As a as we a e awa e, his is he i s explo a ion o u ilize ne wo k analysis on he PDQ-39. Ne wo k analysis
can shed ligh on he heo e ical s uc u e o QoL and can expose po en ial a ge s o enhancemen in clini-
cal in e en ion s udies16. Ou s udy has wo signi ican esul s in e ms o ou esea ch goals. Fi s ly, we used
mul iple me hodological echniques o display ha he i em "igno ed" has a close ela ion o he SOC subscale
a he han o COM. Secondly, we iden i ied ne wo k hubs ha b ing o ligh symp oms ha ha e a s ong con-
nec ion wi hin he ne wo k and can likely ha e an impac on he QoL in PD All in all, al hough bo h CFA and
ne wo k analysis ende simila esul s in e ms o he composi ion o subscales, hey bo h b ing o h bene icial
knowledge o he examina ion o da a. Ne wo k analysis e alua es he in e connec ion be ween i ems ins ead
o de e mining hei pa icula impac on a sha ed la en a iable. This inco po a es mapping he mo emen o
da a ia, o ins ance, a hi d i em and u nishes ex a isual and s a is ical de ails on how i ems and subscales o
Figu e1. Ne wo k plo . Abb e ia ions: mobili y (MOB), ac i i ies o daily li ing (ADL), emo ional well-being
(EMO), s igma (STI), social suppo (SOC), cogni ion (COG), communica ion (COM), and bodily discom o
(BOD). Leisu e (Leisu e ac i i ies), Looking (Looking a e home), Ca y (Ca y shopping bags), Walking_mile
(Walking hal a mile), Walking_100 (Walking 100 ya ds), Ge ing_house (Ge ing a ound he house), Ge ing_
public (Ge ing a ound in public), Need_going_ou (Need company when going ou ), Wo y_ alling (Wo y
alling in public), Con ined_house (Con ined o he house), Washing (Washing), D essing (D essing), bu ons
(Do bu ons o shoe laces), W i ing (W i ing clea ly), Cu ing (Cu ing ood), Holdd ink (Hold a d ink wi hou
spilling), Dep essed (Dep essed), Isola ed (Isola ed and lonely), Weepy (Weepy o ea ul), Ang y (Ang y
o bi e ), Anxious (Anxious), Wo ied (Wo ied abou he u u e), Fel _conceal (Fel need o conceal PD),
D inking_public (A oid ea ing/d inking in public), Emba assed (Emba assed due o PD), Wo ied_ eac ions
(Wo ied people’s eac ions), Close ela ion (Close ela ionships), Suppo _pa ne (Suppo om pa ne ),
Suppo _ iends (Suppo om amily o iends), allen_asleep (Unexpec edly allen asleep), Concen a ion
(Concen a ion), Poo _memo y (Poo memo y), hallucina ions (D eams o hallucina ions), Speech (Speech),
communica e (Unable communica e p ope ly), igno ed (Fel igno ed), c amps (Pain ul c amps o spasms), Pain
(Pain in join s o body), ho _o _cold (Unpleasan ly ho o cold).
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a su ey a e in e wined. Consequen ly, CFA and ne wo k analysis can ei he be in ag eemen o no . The e o e,
ne wo k analysis may help di ec in e en ions by mapping he low o associa ion be ween he included i ems12,16.
In bo h s udy coho s, dep essi e mood, eeling isola ed, eeling emba assed, and ha ing ouble ge ing a ound
in public/needing company when going ou we e iden i ied as well-connec ed a iables. This app oach can help
iden i y impo an aspec s o he illness and di ec in e en ional app oaches in a mo e e ec i e manne .
The PDQ-39 assesses di e en symp oms and unc ions wi h a Like -scaled a ing. I is wo h o no e ha
he symp om cen ali y and he mean alue o he symp om a e di e en aspec s and cons uc s which a e only
weakly associa ed17. Fo example, he alue o a PDQ-39 i em can change wi hou ele an changes wi hin he
ne wo k, because he ne wo k po ays he connec ions be ween i ems and he in luence hey ha e on each o he
in e ms o co-occu ence. Thus, di e en conclusions abou single PDQ-i ems o subscales can be d awn when
looking a cen ali y measu es o symp om se e i y o PDQ-39 i ems18. Fo example, “dep essi e” and “need
company when going ou ” bo h ha e high s eng h in he ne wo k. Howe e , mean alue o “need company when
going ou ” was lowe han o “dep essi e” (Supplemen Table1). I ems in he PDQ-39 ha we e de e mined as
being cen al in he ne wo k a e well-connec ed i ems ha a e linked o many o he symp oms o he disease,
hus hey may be conside ed ele an o he whole concep o QoL, bu see also he limi a ions sec ion o he
in e p e a ion o ne wo k analysis. Consequen ly, aiming a hese i ems speci ically could po en ially esul in
mo e success ul and e icien in e en ions, e en hough i is only possible o con i m he causal in e ence wi h
clinical ials and long- e m da a16,19. Gi en he es ic ed esou ces in medical ca e and he need o e icien
he apies, indings om ne wo k analysis can suppo he de elopmen o e ec i e and ailo ed in e en ions, as
i isually and s a is ically displays which i ems a e linked; his p o ides esea che s wi h a help ul s a ing poin
o de elop ailo ed hypo heses19. Ou indings om he COPPADIS s udy da a poin s o ou a eas ha should
Figu e2. Cen ali y plo . Abb e ia ions: Leisu e (Leisu e ac i i ies), Looking (Looking a e home), Ca y
(Ca y shopping bags), Walking_mile (Walking hal a mile), Walking_100 (Walking 100 ya ds), Ge ing_house
(Ge ing a ound he house), Ge ing_public (Ge ing a ound in public), Need_going_ou (Need company
when going ou ), Wo y_ alling (Wo y alling in public), Con ined_house (Con ined o he house), Washing
(Washing), D essing (D essing), bu ons (Do bu ons o shoe laces), W i ing (W i ing clea ly), Cu ing (Cu ing
ood), Holdd ink (Hold a d ink wi hou spilling), Dep essed (Dep essed), Isola ed (Isola ed and lonely),
Weepy (Weepy o ea ul), Ang y (Ang y o bi e ), Anxious (Anxious), Wo ied (Wo ied abou he u u e),
Fel _conceal (Fel need o conceal PD), D inking_public (A oid ea ing/d inking in public), Emba assed
(Emba assed due o PD), Wo ied_ eac ions (Wo ied people’s eac ions), Close ela ion (Close ela ionships),
Suppo _pa ne (Suppo om pa ne ), Suppo _ iends (Suppo om amily o iends), allen_asleep
(Unexpec edly allen asleep), Concen a ion (Concen a ion), Poo _memo y (Poo memo y), hallucina ions
(D eams o hallucina ions), Speech (Speech), communica e (Unable communica e p ope ly), igno ed (Fel
igno ed), c amps (Pain ul c amps o spasms), Pain (Pain in join s o body), ho _o _cold (Unpleasan ly ho o
cold).
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be he ocus o a en ion; hese include “needing company when going ou ”, “d essing”, “isola ed” and ea ing
dep ession as hese we e s ongly in e linked in he ne wo k. Dep ession in pa icula has p e iously been iden i-
ied as a p edic o o poo e QoL in PD20. Howe e , i is in e es ing ha ocusing on “d essing” (high cen ali y)
a he han on “cu ing” o “w i ing” (low cen ali y) as o he aspec s o daily ac i i ies appea s o ha e a as e
e ec on well-being and o e all QoL in his g oup o PD pa ien s. O cou se, indings om one coho canno be
ully gene alized o o he coho s o PD pa ien s, as a i udes, belie s, and aspec s ega ded as impo an migh
di e om coun y o coun y. This can be seen by sligh ne wo k di e ences be ween he Spanish COPPADIS
coho and he Chinese coho . While “dep essed” can be conside ed highly connec ed in bo h coho s, “com-
munica ion” o example was mo e well-connec ed in he Chinese han in he Spanish coho . Al hough cul u al
aspec s may play a ole o hese di e ences, i is wo h o men ion ha also PD- ela ed cha ac e is ics ma kedly
di e ed be ween bo h coho s. People in he Chinese coho we e younge , had poo e mo o unc ion, mo e
dep essi e symp oms and poo e cogni i e unc ion (Supplemen Table1).
Conce ning he in luence o dep ession on QoL, o u u e s udies, i would be p omising o addi ionally
include measu es o dep ession in he ne wo k analysis in o de o unde s and which dep essi e symp oms a e
closely linked wi h QoL in PD pa ien s. Also he inclusion o o he PD- ela ed ac o s, such as mo o unc ion
o disease s age, o a ne wo k could p o ide use ul insigh o gain be e unde s anding o QoL and ea men
op ions in PD. Fo ins ance, i we know how anxie y o o he non-mo o symp oms a e associa ed wi h QoL in
ne wo ks, we could de elop a ge ed and mo e e icien in e en ions wi h be e ou comes. Howe e , i is wo h
o no e ha a he cu en s a e o i s me hodical de elopmen , ne wo k analysis is jus one echnique beside
o he explo a i e app oaches and needs jus i ica ion by con i ma o y analysis me hods.
Addi ionally, using se e al app oaches we ound ha “igno ed” seems o be mo e closely ela ed o he SOC
subscale a he han he COM subscale. This was demons a ed in he ne wo k analyses and con i med by CFA
as well as C onbach’s Alpha in bo h samples. This is wo h o no e as i in luences he alidi y o he sepa a e
PDQ-39 subscales and suppo s ha e idence ega ding he psychome ic p ope ies o some o he PDQ-39
subscales is ques ionable8. The PDQ-39 was ini ially de eloped om a 65-i em ques ionnai e, which was es ed
in a la ge sample. A ac o analysis om his sample ound 10 ac o s, and 2 ac o s we e emo ed by he au ho s
because hey we e ega ded as epe i i e3. Howe e , se e al s udies ha e shown ha some i ems do no co ela e
well wi h hei espec i e subscales5,7,8. In pa icula , i ems om he COG subscale equen ly co ela e mo e
s ongly wi h o he domains7,8. This was also he case in ou analysis which sugges s ha “hallucina ions” a e
associa ed wi h BOD i ems a he han wi h he o he COG i ems. This means ha he PDQ-39 subscales should
be used wi h cau ion as ou come measu e o heal h- ela ed QoL in PD ials.
Limi a ions. Ou s udy has se e al limi a ions. As explained, cen ali y measu es o espec i e PDQ-39
i ems should be gene alized wi h cau ion, as hey migh depend on he s udied coho (e.g., di e en inclu-
sion and exclusion c i e ia e c.) and hei clinical and cul u al backg ound. Addi ionally, he in e p e a ion o
cen ali y indices o psychological da a is highly deba ed, which is why we op ed agains epo ing all a ailable
indices (such as be weenness o closeness, as hese a e no ecommended o psychological da a)19,21,22. Howe e ,
when assessing s eng h and expec ed in luence, we adhe ed o he s eps desc ibed by Epskamp e al.10 o ensu e
in e p e abili y o he esul s. This includes using boo s apping me hods o assess he s abili y and signi ican
di e ence o indices. Howe e , while cen ali y indices can be use ul o iden i y impo an a eas o an illness o
a psychosocial cons uc o imp o e e ec i eness o in e en ions, hey should be in e p e ed wi h cau ion and
should be aken as an explo a i e app oach. As Dablande and Hinne19 s a e, in ne wo k analysis—especially
in undi ec ed ne wo ks—i is di icul o assess he di ec ion o in o ma ion low h ough he ne wo k. Unless a
ne wo k is con i med wi h longi udinal da a o a clinical ial, i only p o ides in o ma ion abou which i ems
a e linked bu canno di e en ia e whe he i em A in luences i em B o ice- e sa, Dablande and Hinne19 call
his he p oblem o i ems being a “ oo o lea ” node. The e o e, ne wo k analysis is a use ul ool o map ou he
bidi ec ional connec ions be ween symp oms and o gene a e an unde s anding o which i ems and sub-scales
a e ela ed, bu he hypo heses i may gene a e should be ollowed-up wi h con i ma o y me hods. Also e ec s
o di e en language e sions o he PDQ-39 migh cause di e ences in ne wo k pa e ns be ween di e en
coho s. The used samples a e no ully ep esen a i e o he PD popula ion due o inclusion and exclusion c i-
e ia (i.e., age limi , no demen ia, no se e e como bidi ies, e c.). In addi ion, he es ima ion o a s able ne wo k
usually equi es la ge sample sizes and his limi s i s applicabili y o smalle local coho s. Ne wo k analysis
emains an explo a i e app oach, bu —as o all explo a i e me hods—con i ma o y analysis me hods a e a ail-
able (e.g., o es i a ge ing cen al PDQ-39 symp oms uly has a la ge downs eam e ec on o e all QoL).
Conclusion
In wo independen s udy coho s o PD pa ien s, ne wo k analysis iden i ied dep essi e mood, eeling isola ed,
eeling emba assed, and ha ing ouble ge ing a ound in public/needing company when going ou as well-
connec ed i ems o he PDQ-39, meaning ha hese i ems a e closely in e wined wi h o he PDQ-39 i ems. Ou
esul s hus help unde s and how di e en aspec s o QoL a e linked in PD pa ien s. Addi ionally, we con i m
p e ious conce ns ega ding he alidi y o he PDQ-39 subscales, especially he SOC, COM and BOD and COG
subscales. These esul s highligh he need o use he PDQ-39 subscales wi h cau ion as ou come measu e o
heal h- ela ed QoL in s udies wi h PD pa ien s.
Me hods
Samples. We used da a om wo independen samples o PD pa ien s wi hou PD demen ia:
Da a om he COho o Pa ien s wi h PA kinson’s DIsease in Spain (COPPADIS) s udy was used o es ima e
he PDQ-39 ne wo k. In he COPPADIS s udy, PD pa ien s we e ec ui ed om 35 cen e s in Spain be ween

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Janua y 2016 and No embe 2017 (N = 694 pa ien s)23. The desc ip i e s a is ic o he coho is gi en in Supple-
men Table1. Dis ibu ions o PDQ-39 on he i em and scale le el a e gi en in Supplemen Table4.
Addi ionally, we used da a om a Chinese obse a ional s udy o 283 people wi h PD ec ui ed om he
Depa men o Neu ology o Huashan hospi al a ilia ed wi h Fudan Uni e si y, Shanghai, China, be ween Ma ch
and Augus 201215. The desc ip i e s a is ic o he coho is gi en in Supplemen Table1.
E hics app o al. Da a collec ion o he COPPADIS s udy was app o ed by he espec i e e hics com-
mi ees o each ec ui ing cen e (45 cen e s in Spain, e.g. Hospi ala io Uni e si a io de Fe ol, A Co uña, see
San os-Ga cía e al. (2015)17 o he ull lis ); he s udy by Chen e al. was app o ed by he e hics commi ee o
Huashan Hospi al, Shanghai. Da a collec ion was pe o med acco ding o he Decla a ion o Helsinki and all
included pa icipan s p o ided w i en in o med consen 15,23.
S a is ical analyses. All analyses we e conduc ed using IBM SPSS s a is ics (Ve sion 25), JASP (Ve sion
0.16), and R (Ve sion 4.1.1), especially he R packages boo ne (Ve sion 1.5)10 and qg aph (Ve sion 1.9)24. Fo a
de ailed desc ip ion o ne wo k analysis in R, see Cos an ini e al.25 and Epskamp e al.10. Desc ip i e s a is ics
we e used o ini ially desc ibe he coho s.
As desc ibed abo e, ne wo ks con ain wo undamen al componen s: nodes, meaning he a iables en e ed
in o he ne wo k model, and edges. Edges desc ibe he ela ionship be ween wo nodes. He e, we compu ed an
undi ec ed and weigh ed ne wo k model. The s eng h o he ela ionship be ween nodes is indica ed in e ms
o edge weigh s, wi h blue edges indica ing posi i e ela ions and ed edges indica ing nega i e ela ions. Edge
weigh s (i.e., s eng h o he ela ion be ween nodes) a e e lec ed by he hickness o he edge, wi h hicke lines
indica ing s onge ela ionships24. We used a ne wo k app oach based on he Gaussian G aphical Model as in o-
duced by Lau i zen26, in which each edge ep esen s he pa ial co ela ion coe icien be ween wo nodes while
condi ioning on he o he a iables in he ne wo k10. The nodes a e posi ioned using he F uch e man-Reingold
algo i hm, which o ganizes he ne wo k based on he s eng h o he connec ions be ween nodes. Nodes wi h
s ong simila i y a e posi ioned close oge he . In a simple co ela ion ne wo k, all signi ican and non-signi ican
edges a e shown, causing a jumbled ne wo k wi h much noise. The e o e, ins ead o using simple co ela ions,
we used a egula ized es ima ion me hod called he Ex ended Bayesian In o ma ion C i e ion G aphical Leas
Absolu e Sh inkage and Selec ion Ope a o (EBICglasso)10 o es ima e he pa ial co ela ions be ween all a i-
ables and sh ink he absolu e weigh s o ze o. Hence, edge weigh s which we e sh unken o exac ly ze o do no
ha e o be es ed agains ze o anymo e, alle ia ing he p oblem o mul iple es ing. Consequen ly, he ne wo k
p oduced a model ha is spa se and easie o in e p e , which is especially help ul as he numbe o nodes and
edges in a ne wo k may in luence he skewness o cen ali y measu es19. As he PDQ-39 con ains a high numbe
o i ems, he ex ended Bayesian In o ma ion C i e ia (EBIC) was used as an in o ma ion c i e ion ha akes bo h
model complexi y and model i in o accoun 27. The hype pa ame e was se a 0.528. Missing da a was handled
using he “exclude pai wise me hod”. As Is o anu and Epskamp29 showed in se e al da a simula ions, ans o -
ma ion o no malize o de ed ca ego ical da a did no imp o e ne wo k accu acy, hus we did no pe o m his
s ep and analyzed he da a as is. Thus, as he PDQ-39 con ains o dinal da a, we
In addi ion o isualizing he ela ionships be ween a iables, he ne wo k can also be desc ibed s a is ically
in e ms o edge weigh s and cen ali y measu es. Cen ali y e e s o he ela i e impo ance o a node and i s
connec ion o o he nodes wi hin he ne wo k. O no e, he cen ali y o a node does no equal i s mean alue,
as i does no ep esen symp om se e i y (as pe cei ed by he espec i e s udy pa icipan ) pe se, bu a he
an i em’s connec edness wi h o he i ems in he ne wo k17. A node wi h high cen ali y is he e o e highly con-
nec ed o o he nodes, and changes in his node can be expec ed o quickly sp ead o o he nodes. Nodes wi h
low cen ali y ha e less in luence on he ne wo k. As a deba e exis s on he applicabili y o cen ali y indices o
psychome ic o medical da a19,21,22, we decided o include only s eng h and expec ed in luence as indica o s o
cen ali y. These a e he mos sui able o ou ype o da a, especially when pai ed wi h an EBICglasso app oach
and boo s apping o assess hei s abili y28–30.
The s eng h (also called deg ee in unweigh ed ne wo ks) is he sum o all di ec associa ions a node has wi h
o he nodes. I e lec s he bundled in o ma ion low o a node in he ne wo k, al hough in undi ec ed ne wo ks
i is no clea whe he his s eng h is oo ed in he a iable being a p edic o o o he a iables, o a consequence
o o he i ems19. Clinically, a node wi h a high s eng h has he po en ial o ep esen an impo an ea u e ( o
example as an i em o a psychological cons uc ), because a change in he alue o his node has a s ong di ec
and quick e ec on o he nodes wi hin he ne wo k. We used a boo s apping app oach o iden i y signi ican
di e ences in he s eng h cen ali y measu e o he a iables wi hin each ne wo k10.
To iden i y highly in luen ial nodes mo e eliably, i may be necessa y o dis inguish be ween posi i e and
nega i e edges and he e o e he expec ed in luence cen ali y measu es was de eloped14. The expec ed in luence
he e o e assesses he node´s cumula i e in luence wi hin he ne wo k.
Finally, measu es o ne wo k accu acy and s abili y we e calcula ed. A case-d opping boo s ap p ocedu e was
used o examine he s abili y o node s eng h. This app oach assumes ha a ne wo k is s able i a la ge p opo -
ion o he sample can be excluded om he da ase wi hou obse ing signi ican changes in he indices. Fo a
s able ne wo k, he Co ela ion S abili y Coe icien (CS-C) should lie abo e 0.510. A nonpa ame ic boo s ap
p ocedu e based on 95% con idence in e als (CIs) was used o assess he edge weigh s s abili y, wi h na ow
95% CIs indica ing a mo e us wo hy ne wo k10. Boo s ap s abili y di e ence es was used o es o s a is ical
signi icance bo h be ween edge-weigh s ha we e non-ze o and be ween nodes in e ms o s eng h cen ali y10.
Based on he indings om ne wo k analyses, con i ma o y ac o analyses (CFA) using JASP (Ve sion 0.16)
we e conduc ed wi h a diagonally weigh ed leas squa e (DWLS) es ima o . Goodness-o - i was e alua ed using
he χ2 s a is ic o exac i , compa a i e i index (CFI), Tucke –Lewis index (TLI), and oo mean squa e e o o
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app oxima ion (RMSEA). TLI and CFI should be > 0.90, and RMSEA < 0.08 o an accep able i . As no uni e sally
ag eed-upon cu -o is de ined o app op ia e ac o loadings—some esea che s sugges a cu -o o 0.431,32, o h-
e s de ine a cu -o o 0.633,34—we did no de ine a cu -o o ac o loadings in ou analysis. Ins ead, we ocus on
o e all model i as desc ibed abo e and in e p e he associa ions be ween i ems and hei espec i e ac o s in
line wi h he con ex and he esul s om ne wo k analysis. As QoL is a highly complex cons uc and he PDQ-
39 con ains a mul i ude o symp oms ha may in luence i , some a ia ion in ac o loadings is o be expec ed.
O no e, he inclusion o adi ional ac o analysis me hods and ne wo k analysis is bene icial as bo h con-
ibu e aluable in o ma ion ha may be conco dan bu none heless di e s in i s in e p e a ion. Unlike ac o
analysis, whe e a da a s uc u e is es ima ed o assess an unde lying la en a iable ha he included da a aims o
explain, ne wo k analysis conside s he ela ion be ween di e en i ems and how hey a e associa ed wi h each
o he , his includes a po en ial display o in o ma ion low om one i em o ano he ia a hi d i em. The eby,
ne wo k analysis can u he mo e map ou he associa ions be ween di e en sub-scales o a ques ionnai e and
iden i y b idging a iables ha connec di e en aspec s o an illness12,16.
Da a a ailabili y
Da a unde lying he analyses a e a ailable om he co esponding au ho s om he espec i e s udies15,23.
Recei ed: 16 May 2022; Accep ed: 29 Ap il 2023
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Acknowledgemen
We hank he COPPADIS S udy G oup as well as Jian-Jun Wu and Colleagues o hei ho ough da a acquisi ion
and managemen , and o p o iding us wi h hei da a o his analsysis.
Au ho con ibu ions
T.P. design, execu ion, analysis, w i ing. A.S. analysis, edi ing o inal e sion o he manusc ip . D.S.G. da a
p epa a ion, edi ing o inal e sion o he manusc ip . P.M. da a p epa a ion, edi ing o inal e sion o he
manusc ip . J.J.W. da a p epa a ion, edi ing o inal e sion o he manusc ip . K.H. edi ing o inal e sion o
he manusc ip . H.M.M. analysis, w i ing.
Funding
Open Access unding enabled and o ganized by P ojek DEAL. Funding o K.H. was p o ided by heGe -
man Resea ch Founda ion(DFG) as pa o he Clinician Scien is -P og am O ganAge(413668513). TP, HMM
and KH ecei ed unding oma Bundesminis e ium ü Bildung und Fo schung (BMBF, Fede al Minis y o
Educa ion and Resea ch) g an (01GY1804). T.P. ecei ed unding om a Bundesminis e ium ü Bildung und
Fo schung (BMBF, Fede al Minis y o Educa ion and Resea ch) g an (01GY2301). P.M. ecei ed g an s om
heSpanish Minis y o Science and Inno a ion [RTC2019-007150-1], he Ins i u o de Salud Ca los III-Fondo
Eu opeo de Desa ollo Regional (ISCIII-FEDER) [PI18/01898], he Conseje ía de Economía, Inno ación, Ciencia
y Empleo de la Jun a de Andalucía [CVI-02526, CTS-7685], and he Conseje ía de Salud y Bienes a Social de la
Jun a de Andalucía [PI-0471-2013, PE-0210-2018, PI-0459-2018, PE-0186-2019], J.J.W. ecei ed unding om
heNa ional Heal h Commission o he People’s Republic o China (G an No. P o20211231084249000238), and
o Shanghai Municipal Science and Technology Majo P ojec s (G an No. 2018SHZDZX01, 21S31902200).
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