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Lack of linkages among fruiting depth, weight, and maturity in irrigated truffle fungi marks the complexity of relationships among morphogenetic stages

Abstract

The highly prized black truffle (Tuber melanosporum) has become a model species for ectomycorrhizal fungi biology. However, several questions concerning its reproductive phase remain unanswered. To provide new hypotheses on the fruitbody formation process, we have explored the causal links among development characters of black truffle fruitbodies that are primarily linked to either the mating process, fruitbody growing stage, or maturation. Path analysis was applied to test causal models outlining the relationships among fruitbody development characters such as fruiting depth, weight, shape, and spore maturity. These characters were investigated over a two-season survey and three soil typologies (plus peat-based substrate) under irrigated conditions. We found a clear and generalized relationship between fruitbody weight and shape. Among clusters of fruitbodies we found a positive relationship between the weight of the largest fruitbody and the weight of the remaining fruitbodies. However, no generalized relationships among characters linked to different development stages appeared. Our results were noticeably consistent across soil typologies, both for fruitbodies growing singly and in clusters, indicating that early-developing fruitbody characters did not influence characters linked to subsequent morphogenetic stages. The lack of links among stages opens new perspectives for pre-harvest quality management with stage-specific cultivation practices. Garcia-Barreda, S.; Sánchez, S.; Marco, P.; Benucci, G.M.N.; González, V.

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Lack of linkages among fruiting depth, weight, and maturity in irrigated truffle fungi marks the complexity of relationships among morphogenetic stages

Author: Garcia-Barreda, S.; Benucci, G.M.N.; Sánchez, S.; Marco, P.; González, V.
Year: 2021
DOI: 10.3390/jof7020102
Source: https://zaguan.unizar.es/record/99759/files/texto_completo.pdf
Fungi
Jou nal o
A icle
Lack o Linkages among F ui ing Dep h, Weigh , and Ma u i y
in I iga ed T u le Fungi Ma ks he Complexi y o
Rela ionships among Mo phogene ic S ages
Se gi Ga cia-Ba eda 1,2,* , Se gio Sánchez 1, Ped o Ma co 1, Gian Ma ia NiccolòBenucci 3
and Vicen e González 4


Ci a ion: Ga cia-Ba eda, S.; Sánchez,
S.; Ma co, P.; Benucci, G.M.N.;
González, V. Lack o Linkages among
F ui ing Dep h, Weigh , and Ma u i y
in I iga ed T u le Fungi Ma ks he
Complexi y o Rela ionships among
Mo phogene ic S ages. J. Fungi 2021,
7, 102. h ps://doi.o g/10.3390/
jo 7020102
Academic Edi o s: Ra aella
Ma ia Bales ini and
Pie e-Emmanuel Cou y
Recei ed: 18 Janua y 2021
Accep ed: 28 Janua y 2021
Published: 1 Feb ua y 2021
Publishe ’s No e: MDPI s ays neu al
wi h ega d o ju isdic ional claims in
published maps and ins i u ional a il-
ia ions.
Copy igh : © 2021 by he au ho s.
Licensee MDPI, Basel, Swi ze land.
This a icle is an open access a icle
dis ibu ed unde he e ms and
condi ions o he C ea i e Commons
A ibu ion (CC BY) license (h ps://
c ea i ecommons.o g/licenses/by/
4.0/).
1Unidad de Recu sos Fo es ales, Cen o de In es igación y Tecnología Ag oalimen a ia de A agón (CITA),
Ins i u o Ag oalimen a io de A agón—IA2 (CITA-Uni e sidad de Za agoza), A da. Mon añana 930,
50059 Za agoza, Spain; [email p o ec ed] (S.S.); [email p o ec ed] (P.M.)
2Cen o de In es igación y Expe imen ación en T u icul u a de la Dipu ación de Huesca (CIET),
Polígono Faba do s/n, 22430 G aus, Spain
3Depa men o Plan s, Soil and Mic obial Sciences, Michigan S a e Uni e si y, Eas Lansing, MI 48824, USA;
[email p o ec ed]
4Unidad de P o ección Vege al, Cen o de In es igación y Tecnología Ag oalimen a ia de A agón (CITA),
Ins i u o Ag oalimen a io de A agón—IA2 (CITA-Uni e sidad de Za agoza), A da. Mon añana 930,
50059 Za agoza, Spain; [email p o ec ed]
*Co espondence: sga [email p o ec ed]
Abs ac :
The highly p ized black u le (Tube melanospo um) has become a model species o
ec omyco hizal ungi biology. Howe e , se e al ques ions conce ning i s ep oduc i e phase emain
unanswe ed. To p o ide new hypo heses on he ui body o ma ion p ocess, we ha e explo ed
he causal links among de elopmen cha ac e s o black u le ui bodies ha a e p ima ily linked
o ei he he ma ing p ocess, ui body g owing s age, o ma u a ion. Pa h analysis was applied
o es causal models ou lining he ela ionships among ui body de elopmen cha ac e s such
as ui ing dep h, weigh , shape, and spo e ma u i y. These cha ac e s we e in es iga ed o e a
wo-season su ey and h ee soil ypologies (plus pea -based subs a e) unde i iga ed condi ions.
We ound a clea and gene alized ela ionship be ween ui body weigh and shape. Among clus e s
o ui bodies we ound a posi i e ela ionship be ween he weigh o he la ges ui body and
he weigh o he emaining ui bodies. Howe e , no gene alized ela ionships among cha ac e s
linked o di e en de elopmen s ages appea ed. Ou esul s we e no iceably consis en ac oss soil
ypologies, bo h o ui bodies g owing singly and in clus e s, indica ing ha ea ly-de eloping
ui body cha ac e s did no in luence cha ac e s linked o subsequen mo phogene ic s ages. The lack
o links among s ages opens new pe spec i es o p e-ha es quali y managemen wi h s age-speci ic
cul i a ion p ac ices.
Keywo ds:
Tube melanospo um; hypogeous ui bodies; ui body o ma ion; mo phological ai s;
pa h analysis; u le cul i a ion
1. In oduc ion
The Eu opean black u le (Tube melanospo um Vi ad., Pezizales) is an ec omyco -
hizal ungus ha in na u e mos ly g ows in associa ion wi h Angiospe m plan s (e.g.,
Fagaceae). In cul i a ed o cha ds, he mos common hos s a e Que cus species. T u le
cul i a ion has ad anced g ea ly in ecen yea s, al hough i is no comple ely domes ica ed
ye , and many biological and ecological aspec s o he se e al p ocesses in ol ed s ill need
cla i ica ion [
1
,
2
]. Black u le has also a ac ed a en ion as a model ec omyco hizal
ascomyce ous species o genomic s udies, esea ch on he ma ing p ocess and popula ion
gene ic s uc u e, on ui body (FB) nu i ion o on a oma [
2
–
5
]. Black u le ui ing is a
mul igene-media ed p ocess ha ollows speci ic and o ganized di e en ia ion pa e ns
J. Fungi 2021,7, 102. h ps://doi.o g/10.3390/jo 7020102 h ps://www.mdpi.com/jou nal/jo
J. Fungi 2021,7, 102 2 o 16
and equi es se e al mon hs o each comple ion [
3
,
6
,
7
]. The sequen ial mo phogene ic
s ages leading o he FB o ma ion can be classi ied in o ma ing p ocess, FB g owing s age,
and ma u a ion [
1
,
6
–
8
]. Howe e , e y li le is known abou he in insic o en i onmen al
signaling pa hways egula ing u le FB mo phogenesis [1,7,9,10].
The ma ing p ocess ( om he s imula ion o he o ma ion o he ma ing s uc u es o
he ma ing i sel ) ypically happens h oughou la e sp ing, appa en ly in se e al lushes [
1
]
(Table 1). The p ecise loca ion along he mycelial ne wo k whe e he ma ing e en be ween
mycelia o opposi e ma ing ypes happens will de e mine he soil dep h o he ull-g own
FB [
2
,
11
]. A e he ma ing e en , he FB s a s o de elop and i s s uc u e becomes
g adually complex as he weigh apidly inc eases [
7
,
8
]. G owing below g ound, he FB
swelling and i s inal shape will be in luenced by he soil mechanical cons ain s, wi h
a ele an ole o he cha ac e is ic py amidal wa s o he pe idium [
6
]. A he end o
he in ense g ow h s age, he FB has p ac ically achie ed i s inal size. I is hen, ha he
ma u a ion s age begins, wi h he spo es acqui ing hei cha ac e is ic pigmen a ion and
he FB de eloping i s unique a oma [
7
,
12
,
13
]. Ma u a ion begins in la e au umn, and he
subsequen senescence p ocesses se he momen in which dogs can localize he ipe FB.
The FBs a e ha es ed du ing se e al mon hs h oughou he win e , e idencing ha he
ola ile compounds ha a ac dogs a e no o med simul aneously in all FBs [
5
] (Table 1).
Each one o he spo s localized by a dog is exca a ed by he ha es e : in mos o he digs
only one FB appea s (single FBs), whe eas in o he s, a clus e o FBs g ow in e y close
p oximi y. Li le scien i ic a en ion is usually paid o u le FBs g owing in clus e s [
14
,
15
],
al hough g owing wi hin hese clus e s could ei he a ec FB o ma ion pa e ns o could
ade o wi h size due o localized esou ce deple ion o inhibi ion mechanisms.
Table 1.
Rela ions be ween mo phogene ic s ages and ui body de elopmen cha ac e s (based on
Za i i e al. [7]).
S age o
F ui body Mo phogenesis Associa ed De elopmen Cha ac e s Pe iod
Fo ma ion o ma ing
s uc u es (game es),
ma ing, and ea ly s age o
ui body di e en ia ion
(hyphal s age)
F ui ing dep h May–June
F ui body g ow h:
de elopmen and swelling
(pe idial, eined, ascal and
spo al s ages)
Weigh , shape July–ea ly No embe
Ma u a ion (pigmen ed
s age). Ripening
(a oma de elopmen )
Spo e ma u i y, ha es ing da e No embe –Ma ch
The ou come o he FB o ma ion p ocess elies upon how his sequence o s ages
(ma ing, g owing and ma u a ion) p oceeds. The de elopmen al pa e ns o FBs a e
a ec ed no only by en i onmen al bu also by endogenous ac o s a di e en s ages,
such as he exp ession o ce ain enzymes ela ed wi h melanin-syn hesis pa hways [
10
,
16
].
This aises he ques ion o whe he he momen and condi ions in which a mo phogene ic
s age occu s migh in luence he ollowing ones. Resea ch on he ela ionships among
FB de elopmen cha ac e s could help shed ligh on his aspec . As ou lined abo e, a
numbe o FB de elopmen cha ac e s ha include ui ing dep h, weigh , shape, and
spo e ma u i y can be p ima ily linked o pa icula mo phogene ic s ages (Table 1). Since
hese cha ac e s de ine o in luence he comme cial quali y s anda ds o u le FBs [
17
],
unde s anding he ela ionships among de elopmen cha ac e s and he p ocesses ha
shape hem may also open new pe spec i es o p e-ha es quali y managemen h ough
imp o ed a ming p ac ices.
J. Fungi 2021,7, 102 3 o 16
He e, we aimed o: (i) build a causal model o explain how de elopmen cha ac e s
o u le FB in luence one ano he , and (ii) es whe he hese ela ionships a e consis en
ac oss di e en soils and dig ypologies (single FBs and FB clus e s). We es ed se e al
al e na i e models o each dig ypology in h ee eplica e blocks along a soil ex u e
g adien ha is ep esen a i e o common u le o cha d soils, and compa ed hese mine al
soils wi h he FBs g owing wi hin a pea -based subs a e amendmen . The causal models
we e buil conside ing he linkages be ween he s udied cha ac e s and he sequen ial
mo phogene ic s ages o u le FBs: ui ing dep h linked o he ma ing p ocess, weigh
and shape linked o he g owing s age, and spo e ma u i y linked o ma u a ion [
1
,
7
,
8
]
(Table 1). We hypo hesized ha : (i) ui ing dep h would ha e a posi i e e ec on weigh
and ma u i y, because soil dep h bu e s ex eme alues in empe a u e and wa e con en ,
which a e pa icula ly a iable in Medi e anean clima es [
18
,
19
]; (ii) no ela ionship
be ween weigh and ma u i y would appea , because dogs usually localize ull-de eloped
ipe FBs o sizes om less han 10 g o mo e han 100 g; (iii) shape o small FBs would
we mo e ounded, because hey need o make and occupy less soil olume and a e less
likely o ace mechanical cons ain s du ing g ow h; (i ) in FB clus e s, he weigh o he
la ges FB would show a nega i e ela ionship wi h he weigh o he emaining FBs, due
o he local esou ce deple ion o inhibi ion mechanisms hypo hesized by Moo e e al. [
20
];
and ( ) di e ences among soils and wi h subs a e would a ec ela ionships among FB
de elopmen cha ac e s, since soil p ope ies and localized subs a e amendmen s a e able
o in luence hese cha ac e s [21].
2. Ma e ials and Me hods
2.1. Expe imen al Si e
The s udy was conduc ed in a 15-ha u le o cha d es ablished in 2001 wi h
Que cus ilex
subsp. ballo a and Que cus aginea seedlings (a anged in ows 2:1) inocula ed wi h T.
melanospo um [
21
]. The expe imen al si e is loca ed in Gúda -Ja alamb e coun y (Te uel
p o ince, eas e n Spain, 1150 m a. s. l.). The clima e is Con inen al Medi e anean, wi h a
mean annual ain all o 519 mm and a mean annual empe a u e o 11.1
◦
C, ypical o Span-
ish u le-p oducing egions [
22
]. The expe imen al si e is placed in he piedmon o Gúda
moun ain ange, wi h calca eous soils de eloped on C e acic clayey limes one in he uppe
pa (block 3) and on Te ia y sil s ones/sands ones in he lowe pa
(block 1) (Table S1).
In all he blocks, he 0–30 cm soil ho izon in which almos all u les g ow is a homoge-
neous plow laye c ea ed a e epea ed illage ope a ions (du ing u le cul i a ion and
p e iously du ing many decades o ce eal cul i a ion).
T u les a e ha es ed by he owne once a week h oughou he ui ing season
(No embe o Ma ch). Each yea , when he ui ing season is o e , he soil shallowly illed,
and a pea -based subs a e is applied in en spo s a ound each ee [
21
]. The o cha d is
i iga ed wi h a sp inkling sys em om Ap il o Oc obe du ing he d y pe iods wi h
sca ce ain all.
Pea -based amendmen is aimed a inc easing ui ing dep h and shape o FBs [
21
].
In he expe imen al si e, he pea -based amendmen is being applied by he g owe ollow-
ing he mos common p ocedu e used in Spain. The localized applica ion o pea -based
subs a e a ound he hos ees in ol es digging onconical holes abou 25 cm deep, illing
hem wi h abou 1.5 L o a Eu opean Sphagnum pea -based subs a e (Tu ba u
®
om
P oja , Qua de Poble , Spain): A black pea —whi e pea —coi —pe li e mix 11–5–3–1,
wi h pH aised o 7.5) and e-co e ing he subs a e wi h soil [
21
]. G inded ipe u le FBs
a e mixed wi h he subs a e be o e being inco po a ed in o he soil. Annually, pa o he
FBs g ow in he bulk soil whils ano he pa appea wi hin he subs a e spo s.
J. Fungi 2021,7, 102 4 o 16
2.2. Expe imen al Design and Da a Collec ion
In he expe imen al si e, h ee eplica e blocks o 0.25 ha wi h di e en soil ex u es
we e selec ed in a soil g adien along a 300-m-leng h ansec line, wi h block 1 ha ing
sandy loam ex u e, block 2 ha ing loam ex u e and block 3 ha ing loam/clay loam ex u e
(Table S1). Al hough in he wild black u le is ound in almos e e y ype o ex u e,
his ex u e g adien is ep esen a i e o he ange o common soil ex u es in black u le
cul i a ion [23]. The h ee blocks we e managed wi h he same ag onomic p ac ices.
Du ing he 2016–2017 and he 2017–2018 ui ing seasons each block was su eyed
se en imes om No embe o Ma ch. A o al o 604 single FBs and 308 FB clus e s
we e measu ed a e being sys ema ically localized and ha es ed by he g owe wi h
he aid o ained dogs (Tables S2 and S3). F ui ing dep h was eco ded as he dep h in
he soil o he bo om pa o he deepes FB in he dig, a 10 cm in e als. The shape
was e alua ed as a combina ion o sphe ici y ( a io be ween measu ed diame e s), and
isually-es ima ed lobula i y (pe cen su ace occupied by lobules) and a e age heigh o
lobules (in ela ion o FB size). This esul ed in a shape index wi h nine ca ego ies, wi h
highe alues indica ing highe -p iced ound, egula shapes (Table S4). A spo e ma u i y
index was calcula ed as he p opo ion ( om 0 o 1) o asci con aining ma u e (i.e., da k
b own) spo es, bu his index is only a ailable o single FBs. Fo each FB, a hymenial
sample eaching 5–10 mm unde he pe idium was aken wi h a scalpel, and a minimum o
50 andomly selec ed asci we e coun ed in each sample unde ligh mic oscope, ollowing
Zeppa e al. [
24
]. F esh weigh was measu ed o he nea es 0.1 g a e gen ly emo ing
soil and subs a e wi h a b ush. Weigh was measu ed in e e y FB in season 2017–2018,
whe eas o 2016–2017 only he weigh o single FBs is a ailable. The esea ch da ase is
a ailable as Supplemen a y File S2.
The weigh o FBs g owing in clus e s du ing season 2016–2017 was es ima ed h ough
a pa ial leas squa es eg ession model i ed wi h he comple e da ase om season
2017–2018
(n= 1047). This model was i ed wi h se en componen s, mainly based on FB
maximum and minimum diame e . I accoun ed o 97% o he a iabili y in he FB weigh
o season 2017–2018 (Table S5, Figu e S1). I was alida ed wi h he a ailable 2016–2017
measu emen s (single FBs, n= 275). The eg ession be ween log- ans o med p edic ed
and ac ual alues o season 2016–2017 was highly signi ican (p< 0.001) and p esen ed a R
2
alue o 0.96.
2.3. S a is ical Analysis
The causal ela ionships among FB de elopmen cha ac e s we e e alua ed using he
d-sep me hod o pa h analysis [
25
], wi h he aid o he R package ggm [
26
]. Pa h analysis
has been applied o s udy causal pa e ns be ween mo phological, physiological, and
ecological a ibu es in plan biology and ag onomy [
25
,
27
]. The d-sep me hod judges i
a pa icula model is consis en wi h he expe imen al da a. Fo each model, i in ol es:
(i) speci ying a causal hypo hesis in he o m o a di ec ed acyclic g aph, (ii) iden i ying
he se o independence claims (basis se ) implied in he model, (iii) calcula ing he null
p obabili y associa ed wi h each claim, (i ) combining hese p obabili ies using Fishe ’s
C s a is ic, and ( ) compa ing his C wi h he ixed signi icance le el [
25
]. I a pa h
model exhibi ed a p- alue o Fishe ’s C highe han 0.05, i was conside ed consis en
wi h he da a [
25
]. When mo e han one pa h model was consis en wi h he da a, hey
we e compa ed wi h he Akaike’s In o ma ion C i e ion co ec ed o small sample size,
AICc[28].
We sepa a ely analyzed single FBs and FB clus e s, o assess whe he he s eng h
and pa e n o he ela ionships among de elopmen cha ac e s was consis en be ween
bo h dig ypologies. Since pea shows dis inc i e and unique ea u es in compa ison wi h
mine al soils [
29
]— ha p o oking di e ences in u le ui ing dep h, FB weigh , shape
and occu ence o clus e s [
21
]—FBs g owing wi hin he pea -based subs a e ac oss he
h ee blocks we e g ouped and analyzed sepa a ely om mine al soils. The bulk soil o each
eplica e block (BS1, BS2 and BS3) was analyzed sepa a ely o assess whe he he na u e o
J. Fungi 2021,7, 102 5 o 16
he ela ionships among cha ac e s was gene al ac oss soils, since he weigh and shape o
FBs can be in luenced by soil p ope ies [
21
]. Since ou s udy is no aimed a cha ac e izing
yea - o-yea a iabili y, FBs om bo h sampled ui ing seasons we e combined.
Fo single FBs, we buil h ee al e na i e pa h models o es he ela ionships among
he day o he season in which he FB was ha es ed (ha es ing da e, HD), ui ing dep h,
weigh , shape and spo e ma u i y. The h ee al e na i e models assumed a ela ionship
be ween weigh and shape, as well as an e ec o HD on weigh and ma u i y, which a e
widely accep ed by g owe s and esea che s. Model A assumed ha cha ac e s linked o
a pa icula mo phogene ic s age a e no in luenced by hose linked o p e ious s ages
(Table 1). Model B assumed ha weigh is in luenced by ui ing dep h, and ha spo e
ma u i y is in luenced by ui ing dep h and weigh . Model C assumed ha weigh and
shape a e in luenced by ui ing dep h, and ha ma u i y is in luenced by ui ing dep h
and weigh (Figu e S2).
The h ee models we e compa ed ollowing he d-sep me hod ou lined abo e. Once
selec ed a bes - i model, each o i s cons i uen pa hs was modelled wi h gene alized
addi i e models, in o de o allow o non-linea ela ionships and di e en ypes o e o
dis ibu ion [
30
]. A Poisson e o dis ibu ion was used o ui ing dep h and shape,
assessing he model i h ough o e dispe sion. A Gaussian (no mal) dis ibu ion was
used o weigh and ma u i y. In hese models, he assump ions o no mal dis ibu ion and
cons an a iance we e assessed, wi h weigh being log- ans o med o mo e closely mee
he assump ions. The analyses we e conduc ed wi h he R package mgc [31,32].
Fo each pa h in he bes - i model, we p esen he p- alue, he shape o he es i-
ma ed ela ionship and he pe cen de iance explained by each a iable, calcula ed as he
educ ion in de iance a e d opping ha e m while main aining he same smoo hing
pa ame e s h oughou . The la e is aimed a compa ing he ela i e con ibu ion o each
a iable, because we a oided s anda diza ion o keep he ela ionships be ween cha ac e s
wi h i s o iginal shape.
Fo FB clus e s, we buil i e al e na i e pa h models o es he ela ionships among
HD, ui ing dep h, weigh and shape o he la ges FB in he clus e , and combined weigh
o all he o he FBs in he clus e (Figu e S3). Ma u i y was no included due o da a
una ailabili y. All he models assumed a weigh -shape ela ionship o he la ges FB, as
well as an e ec o HD on weigh . Models A–C assumed ha cha ac e s o he la ges FB a e
no in luenced by he weigh o he emaining FBs, whe eas models D and E assumed ha
he weigh and shape o he la ges FB a e in luenced by he weigh o he emaining FBs.
Models A and D assumed ha nei he weigh no shape is in luenced by ui ing dep h
(which is linked o a p e ious s age); models B and E assumed ha weigh is in luenced
by ui ing dep h; and model C assumed ha bo h weigh and shape a e in luenced by
ui ing dep h. When analyzing he bes - i pa h models, a Gamma e o dis ibu ion was
used o he weigh o he emaining FBs.
3. Resul s
3.1. Single F ui bodies
The h ee pa h models p oposed (Figu e S2) we e consis en wi h he collec ed da a
o he pea -based subs a e amendmen (he ea e called subs a e) and he bulk soil o
he h ee eplica e blocks (p> 0.05, Table 2). Howe e , in he subs a e, BS2 and BS3, model
A eached a much lowe AIC
c
alue and a much highe weigh , indica ing ha , acco ding
o Shipley [
28
] c i e ion, model A allowed a much be e i o he da a (Table 2). In BS1,
models B and C p esen ed simila AIC
c
alues, much lowe han ha o model A (Table 2).
Howe e , only model B is shown as he bes - i ing model because he equa ion pa ame e s
a e e y simila , and in bo h cases he pa hs linking ui ing dep h wi h o he a iables a e
no s a is ically signi ican (Figu e 1).

J. Fungi 2021,7, 102 6 o 16
Table 2.
Model i o he h ee compe ing pa h models (Figu e S2) o ui bodies g owing singly in
he pea -based subs a e and in he bulk soil o each block. Bold le e s indica e he models selec ed
acco ding o he model weigh (C: Fische ’s C s a is ic, d : deg ees o eedom, P: null p obabili y, K:
numbe o pa ame e s needed o i he model, AICc: Akaike alue, W: model weigh ).
Model C (d , P) K AICc W
Subs a e
A 12.5 (14, 0.56) 11.6 36.9 0.80
B 9.7 (8, 0.28) 14.5 40.7 0.12
C 8.2 (6, 0.23) 15.5 41.4 0.08
Bulk soil o block 1
A 22.3 (14, 0.07) 10.5 45.6 0.05
B 9.9 (8, 0.27) 13.5 40.8 0.50
C 7.5 (6, 0.28) 14.5 41.1 0.45
Bulk soil o block 2
A 7.9 (14, 0.90) 10.6 31.0 0.83
B 5.2 (8, 0.74) 13.6 35.6 0.08
C 3.3 (6, 0.77) 14.3 35.7 0.08
Bulk soil o block 3
A 10.9 (14, 0.69) 10.5 34.6 0.89
B 9.0 (8, 0.35) 13.5 40.3 0.05
C 6.7 (6, 0.35) 14.2 40.1 0.06
Figu e 1.
Bes - i pa h models showing he causal links among de elopmen cha ac e s in FBs g owing singly in pea -based
subs a e (
a
), and he bulk soil o block 1 (
b
), block 2 (
c
) and block 3 (
d
). Solid lines indica e signi ican links be ween he
a iables, dashed lines indica e non-signi ican links included in he model, black lines indica e posi i e ela ionships and
g ey lines nega i e ela ionships. The hickness o an a ow is p opo ional o he pe cen age o de iance explained by a
pa icula a iable.
The bes - i pa h models o each soil ypology (Figu e 1) sha ed he ollowing ea u es:
(i) ui ing dep h did no show a signi ican ela ionship wi h any o he cha ac e , (ii) FB
weigh showed a s ong nega i e ela ionship wi h he shape index (i.e., bigge FBs ha ing
mo e i egula , less ounded shapes; Table S4), and (iii) he HD showed a s ong posi i e
ela ionship wi h spo e ma u i y (Tables 3and 4, Figu es S4–S7). The HD showed a
signi ican and nega i e ela ionship wi h FB weigh in he subs a e, BS2 and BS3, bu
no signi ican ela ionship in BS1. F ui body weigh showed a signi ican and nega i e
J. Fungi 2021,7, 102 7 o 16
ela ionship wi h ma u i y in BS1, which was no ound in any o he soil (Tables 3and 4;
Figu es S4–S7). The same associa ions be ween de elopmen cha ac e s we e obse ed in
he bi a ia e analyses (Figu e 2).
Table 3.
Null p obabili y (P) and pe cen de iance explained (D
2
) o each pa h in he bes - i model
o ui bodies g owing singly in subs a e and he bulk soil o Soil blocks 2 (BS2) and 3 (BS3).
Response P edic o Subs a e BS2 BS3
PD2PD2PD2
Weigh 1Ha es ing da e <0.001 5.8 0.03 3.6 0.04 4.1
Shape Weigh <0.001 16.4 <0.001 21.9 <0.001 28.7
Ma u i y Ha es ing da e <0.001 40.8 <0.001 35.5 <0.001 34.2
1Va iable log- ans o med.
Table 4.
Null p obabili y (P) and pe cen de iance explained by each a iable (D
2
) o each pa h in
he bes - i model o ui bodies g owing singly in he bulk soil o block 1.
Response P edic o P D2
Weigh 1Ha es ing da e 0.13 -
F ui ing dep h 0.20 -
Shape Weigh <0.001 23.6
Ma u i y Ha es ing da e <0.001 22.7
Weigh 0.01 4.2
F ui ing dep h 0.47 -
1Va iable log- ans o med.
The bes - i pa h models did no explain mo e han 6% o he a iabili y in FB weigh in
any soil ypology, while hey explained 16–29% o he a iabili y in he shape index and 23–
41% o he a iabili y in he spo e ma u i y (Tables 3and 4). In hese bes - i pa h models,
he a iabili y in FB weigh was exclusi ely explained by HD, whe eas he a iabili y
in shape was explained by he weigh and he a iabili y in spo e ma u i y was mainly
explained by HD, wi h weigh also con ibu ing o explain he a iabili y o ma u i y in
BS1 (Tables 3and 4). The ela ionship be ween weigh and shape was nega i e, wi h clea
di e ences be ween FBs smalle han 25 g and FBs la ge han
50 g (Figu es S4–S7).
The
ela ionship be ween weigh and ma u i y in BS1 was nega i e bu pla eauing abo e 10 g,
co esponding o a mean FB diame e o 2.5–3 cm (Figu e S5).
3.2. F ui body Clus e s
Among he i e al e na i e pa h models p oposed (Figu e S3), model D was he one
ha eached lowe AICc alue and highe weigh o all he analyzed soil ypologies,
indica ing ha , acco ding o Shipley [
28
] c i e ion, model D allowed he bes i o he da a
(Table 5).
The bes - i pa h models o each soil ypology (Figu e 3) sha ed he ollowing ea u es:
(i) ui ing dep h did no show a signi ican ela ionship wi h any o he cha ac e , (ii) he
weigh o he la ges FB in a clus e showed a s ong posi i e ela ionship wi h he com-
bined weigh o all he o he FBs in he clus e , and (iii) he HD did no show a signi ican
ela ionship wi h he weigh o he la ges FB in he
dig (Table 6, Figu es S8–S11
). In he
subs a e and BS2, he weigh o he la ges FB in he clus e showed a s ong nega i e
ela ionship wi h i s shape index (Table 6, Figu es S8 and S10). In he subs a e he HD
showed a signi ican and nega i e ela ionship wi h he weigh o he emaining FBs in
he clus e (Table 6; Figu e S8). Finally, in BS2 he shape index o he la ges FB o he
clus e showed a signi ican and posi i e ela ionship wi h he weigh o he emaining
FBs (Table 6; Figu e S10)
. The same associa ions be ween de elopmen cha ac e s a e sug-
ges ed by he bi a ia e analyses, al hough in some cases concealed by he ac ha o he
a iables as he HD a e also in ol ed in he ela ionship (Figu e 4).
J. Fungi 2021,7, 102 8 o 16
Figu e 2.
Sca e plo da a o he de elopmen cha ac e s in he single ui bodies o he s udied blocks. Pea son’s
co ela ion coe icien is epo ed o each bi a ia e ela ionship. BS1–BS3: bulk soil o blocks 1–3.
J. Fungi 2021,7, 102 9 o 16
Table 5.
Model i o he i e compe ing pa h models (Figu e S3) o ui body clus e s in he subs a e
and in he bulk soil o each block. Bold le e s indica e he models selec ed acco ding o he model
weigh (C: Fische ’s C s a is ic, d : deg ees o eedom, P: null p obabili y, K: numbe o pa ame e s
needed o i he model, AICc: Akaike alue, W: model weigh ).
Model C (d , P) K AICc W
Subs a e
A 74.9 (14, <0.001) - - -
B 60.0 (10, <0.001) - - -
C 61.7 (8, <0.001) - - -
D 6.6 (10, 0.76) 13.3 35.2 0.85
E 2.6 (6, 0.86) 16.4 38.6 0.15
Bulk soil o block 1
A 22.3 (14, 0.07) 8.4 43.6 0.11
B 18.0 (10, 0.06) 10.5 46.1 0.03
C 17.1 (8, 0.03) - - -
D 10.4 (10, 0.41) 10.8 39.7 0.81
E 7.4 (6, 0.29) 13.2 45.8 0.04
Bulk soil o block 2
A 29.4 (14, 0.009) - - -
B 26.7 (10, 0.003) - - -
C 20.7 (8, 0.008) - - -
D 7.6 (10, 0.67) 11.2 39.9 0.99
E 6.9 (6, 0.33) 13.7 50.0 0.01
Bulk soil o block 3
A 19.3 (14, 0.15) 8.2 87.7 <0.01
B 12.7 (10, 0.24) 10.2 59.4 0.39
C 12.2 (8, 0.14) 11.2 70.1 <0.01
D 9.5 (10, 0.49) 10.5 58.6 0.60
E 0.8 (6, 0.99) 12.6 78.9 <0.01
Figu e 3.
Bes - i pa h models showing he causal links among de elopmen cha ac e s in FBs g owing in clus e s in
pea -based subs a e (
a
), and he bulk soil o block 1 (
b
), block 2 (
c
) and block 3 (
d
). Solid lines indica e signi ican links
be ween he a iables, dashed lines indica e non-signi ican links included in he model, black lines indica e posi i e
ela ionships and g ey lines nega i e ela ionships. The hickness o an a ow is p opo ional o he pe cen age o de iance
explained by a pa icula a iable. FB: ui body.
J. Fungi 2021,7, 102 16 o 16
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