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Stability of different mesoporous silica particles during an in vitro digestion

Abstract

Mesoporous silica materials have the ability to entrap drugs, nutrients and functional biomolecules and can be able to act as smart delivery systems capable to control and target the release of their cargo in a particular part of the gastrointestinal tract when administrated orally. However, the aptness of these encapsulation supports in in vivo oral controlled release relies on their chemical stability through the digestive tube. In this context, we have evaluated the stability of four different mesoporous silica particles, frequently used as encapsulating supports, during an in vitro digestion process comprising buccal, stomach and intestinal phases. Results showed that after 4 h of digestion, the textural properties of silica supports in the form of nanoparticles (MCM-41 and UVM-7 nanoparticles) were lost in varying degrees, whereas silica microparticles supports (MCM-41 and SBA-15 microparticles) endures better the digestion process. Moreover, the functionalization of the surface with N-1-(3-trimethoxysilylpropyl)diethylenetriamine, an organic moiety commonly used in the preparation of pH-responsive mesoporous silica particles, resulted in an improvement of the stability of the supports. (C) 2016 Elsevier Inc. All rights reserved.

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Stability of different mesoporous silica particles during an in vitro digestion

Author: Pérez-Esteve, Édgar,Ruiz Rico, María,Torre, Cristina De la,Llorca Martínez, Mª Empar,Sancenón Galarza, Félix,Marcos Martínez, María Dolores,Amoros del Toro, Pedro Jose,Guillen Villar, Carmen,Martínez Mañez, Ramón,Barat Baviera, José Manuel
Publisher: Elsevier
Year: 2016
DOI: 10.1016/j.micromeso.2016.05.004
Source: https://riunet.upv.es/bitstream/10251/78699/3/Author%20Version.pdf
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h p://dx.doi.o g/10.1016/j.mic omeso.2016.05.004
h p://hdl.handle.ne /10251/78699
Else ie
Pé ez-Es e e, É.; Ruiz Rico, M.; To e, CDL.; Llo ca Ma ínez, ME.; Sancenón Gala za, F.;
Ma cos Ma ínez, MD.; Amo os Del To o, PJ.... (2016). S abili y o di e en mesopo ous
silica pa icles du ing an in i o diges ion. Mic opo ous and Mesopo ous Ma e ials. 230:196-
207. doi:10.1016/j.mic omeso.2016.05.004.
Pé ez-Es e e e al. 2016. Mic opo Mesopo Ma e
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S abili y o di e en mesopo ous silica pa icles du ing an in i o
1
diges ion
2
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Édga Pé ez-Es e ea*, Ma ía Ruiz-Ricoa, C is ina de la To eb,c, Empa Llo cad, Félix Sancenónb,c,
4
Ma ía D. Ma cosb,c, Ped o Amo óse, Ca men Guilleme, Ramón Ma ínez-Máñezb,c,, José Manuel
5
Ba a a
6
a G upo de In es igación e Inno ación Alimen a ia, Uni e si a Poli ècnica de València. Camino
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de Ve a s/n, 46022, Spain
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b Ins i u o In e uni e si a io de In es igación de Reconocimien o Molecula y Desa ollo
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Tecnológico (IDM), Unidad Mix a Uni e si a Poli ècnica de València – Uni e sidad de Valencia.
10
Depa amen o de Química Uni e si a Poli ècnica de València, Camino de Ve a s/n, 46022,
11
Valencia, Spain
12
c CIBER de Bioingenie ía, Bioma e iales y Nanomedicina (CIBER-BBN)
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d G upo de Mic oes uc u a y Química de Alimen os. Depa amen o de Tecnología de
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Alimen os, Uni e si a Poli ècnica de València. Camino de Ve a s/n, 46022, Valencia, Spain
15
e Ins i u de Ciència dels Ma e ials (ICMUV), Uni e si a de València, P.O. Box 2085, 46071,
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Valencia, Spain
17
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*Co esponding au ho : edpees@up .es
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Pé ez-Es e e e al. 2016. Mic opo Mesopo Ma e
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Mesopo ous silica ma e ials ha e he abili y o en ap d ugs, nu ien s and unc ional
21
biomolecules and can be able o ac as sma deli e y sys ems capable o con ol and a ge
22
he elease o hei ca go in a pa icula pa o he gas oin es inal ac when adminis a ed
23
o ally. Howe e , he ap ness o hese encapsula ion suppo s in in i o o al con olled elease
24
elies on hei chemical s abili y h ough he diges i e ube. In his con ex , we ha e e alua ed
25
he s abili y o ou di e en mesopo ous silica pa icles, equen ly used as encapsula ing
26
suppo s, du ing an in i o diges ion p ocess comp ising buccal, s omach and in es inal
27
phases. Resul s showed ha a e 4 h o diges ion, he ex u al p ope ies o silica suppo s in
28
he o m o nanopa icles (MCM-41 and UVM-7 nanopa icles) we e los in a ying deg ees,
29
whe eas silica mic opa icles suppo s (MCM-41 and SBA-15 mic opa icles) endu es be e he
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diges ion p ocess. Mo eo e , he unc ionaliza ion o he su ace wi h N1-(3-
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ime hoxysilylp opyl)die hylene iamine, an o ganic moie y commonly used in he
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p epa a ion o pH- esponsi e mesopo ous silica pa icles, esul ed in an imp o emen o he
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s abili y o he suppo s.
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Keywo ds: mesopo ous silica pa icles, in i o diges ion, s abili y, amine- unc ionaliza ion
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Pé ez-Es e e e al. 2016. Mic opo Mesopo Ma e
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1. In oduc ion
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Mesopo ous Silica Pa icles (MSPs) a e ecei ing g ea a en ion in he ield o o al
39
con olled elease due o hei capabili y o imp o e d ug solubili y and s abili y in he
40
gas oin es inal ac (GIT), [1-2] as well as o dosage he ca go along ime (sus ained
41
con olled elease) in speci ic GIT places ( a ge ed con olled elease) [3-5]. These epo ed
42
ea u es, ha con e MSPs in unique sma deli e y sys ems, a e due o hei la ge loading
43
capaci y [6], low oxici y [7] and he ac ha hei su ace can be unc ionalized wi h
44
molecula /sup amolecula ensembles. This las ea u e allows he de elopmen o ga ed-MSPs
45
showing “ze o deli e y” and capable o elease hei ca go on-command in esponse o
46
speci ically designa ed ex e nal s imuli [8-10]. D ug deli e y/ o mula ion echnologies ha can
47
imp o e bioa ailabili y, d ug s abili y and subsequen ly inc ease d ug e ec i eness a e much
48
desi ed in he pha maceu ical sciences [11-12]. In ood echnology, encapsula ion o bioac i e
49
molecules (e.g. i amins, an ioxidan s, phy ochemicals, e c.) may imp o e hei biological
50
s abili y, acili a e componen s handling, mask unpleasan senso ial p ope ies and modula e
51
he bioaccessibili y o he molecule o in e es along he GIT [13].
52
Besides a high loading capaci y, con olled elease and biocompa ibili y, he sui abili y o
53
MSPs in o al con olled elease in in i o applica ions depend on he chemical s abili y o he
54
suppo s hough he whole diges i e ube. Howe e , i is known ha due o he me as abili y
55
o MSPs, silica can be biodeg aded in o silicic acids, including monome ic silicic acid and
56
a ious polysilicic acids wi h di e en polyme iza ion deg ees unde ha sh en i onmen s
57
p o oking a collapse o he po ous s uc u es [14]. In his line, Cauda, Schlossbaue & Bein
58
s udied he biodeg ada ion o colloidal mesopo ous silica nanopa icles (50 nm) in simula ed
59
body luid o ba e, globally unc ionalized, and su ace poly(e hylene glycol)-coa ed colloidal
60
mesopo ous silica nanopa icles in simula ed body luid (pH 7.4) o a pe iod o 1 mon h a 37
61
°C [15]. A e his pe iod o ime, he ex u al p ope ies o he mesopo ous sys em we e los
62
and po es we e blocked because he p ecipi a ion o ino ganic componen s om he
63
Pé ez-Es e e e al. 2016. Mic opo Mesopo Ma e
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simula ed body solu ion. The s abili y o he pa icles inc eased by su ace unc ionaliza ion
64
wi h poly(e hylene glycol). The deg ada ion beha iou o su ac an -ex ac ed mesopo ous
65
silica in simula ed body luid was also e alua ed by He and co-wo ke s p oposing a h ee-s age
66
deg ada ion p ocess comp ising a as bulk deg ada ion on hou -scale, a silicon concen a ion
67
dec ease s age due o a deposi ion o a calcium/magnesium silica e laye , and a la e
68
con inuous sus ained di usion beyond days [16]. The same yea , Lin, Abadee & Haynes,
69
e alua ed he s abili y o small mesopo ous silica nanopa icles (<50 nm) unc ionalised wi h
70
poly(e hylene glycol) in H2O, phospha e bu e solu ion (PBS) (pH 7.5), and Dulbecco’s
71
modi ied Eagle’s medium (DMEM) wi h 10% e al bo ine se um (FBS) (pH ca. 7.5) [17]. These
72
pa icles exhibi ed long e m s abili y in all hese media a bo h, oom and physiological
73
empe a u e. In a di e en a emp , El Mou abi e al. s udied he s abili y o mesopo ous
74
silica unde acidic condi ions and a loss o ex u al p ope ies o he suppo s was obse ed
75
[18]. The au ho s also ound ha he deg ada ion a e was dependen on he na u e o he
76
acidic media (phospho ic acid ha e s onge impac han hyd ochlo ic o sulphu ic acids) and
77
he kind o mesopo ous silica used in he s udy. Mo e ecen ly, Choi e al. s udied he
78
biodeg ada ion o SBA-15 in bo h, simula ed body luid and in i o [19]. These au ho s ha e
79
shown ha he deg ada ion a e o SBA-15 was a ec ed by he p esence o su ace unc ional
80
g oups and syn hesis me hodologies. Fu he mo e, in i o expe imen showed ha SBA-15
81
deg ade in he animal and po e s uc u e de o ma ion occu s as a unc ion o ime.
82
Mos o hese s udies e alua ed he s abili y o mesopo ous silica nanopa icles. Howe e ,
83
MSPs can be ab ica ed wi h a con olled size om 50 nm o a ew mic ons. When p epa ing
84
sma deli e y sys ems based on MSPs, pa icle size is e y impo an since i condi ions he
85
dis ibu ion and beha io o pa icles in li ing sys ems. In gene al, small MSPs can c oss
86
epi heliums, can be dis ibu ed in he body and be non-speci ically in e nalized by ce ain cells
87
[20]. In con a y, o e sized pa icles (mic opa icles) canno easily c oss physical memb anes in
88
he body, and hus la ge pa icle sizes a e p e e ed o de eloping o ally adminis a ed
89

Pé ez-Es e e e al. 2016. Mic opo Mesopo Ma e
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con olled elease de ices [4]. Ha ing in mind he impo ance o pa icle size in o al
90
adminis a ion, i may be o impo ance o s udy he s abili y o mesopo ous silica wi h mic o-
91
sized pa icles. Howe e , s abili y o la ge MSPs has been ba ely s udied. Mo eo e , as a as
92
we know, he e a e no s udies abou he e ec ha he consecu i e p esence o sali a (pH
93
7.5), gas ic (pH 1.2-2) and in es inal luids (pH 7.8-8) ha e on he s abili y o he small and
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la ge MSPs. Thus, no wi hs anding he wo ks de ailed abo e, a lack o in o ma ion abou he
95
deg adabili y/s abili y o MSPs wi h di e en sizes du ing a whole diges ion is s ill una ailable.
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The aim o his s udy was o e alua e he s abili y o di e en ba e and unc ionalised
97
mesopo ous silica pa icles di e ing in pa icle size, pa icle shape and po e s uc u e (po e
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size and wall hickness) du ing a simula ed in i o diges ion. Wi h his pu pose a deep
99
e alua ion o he s abili y o ex u al p ope ies o MSPs du ing he in i o diges ion was
100
pe o med. Desc ip i e s udies we e comple ed wi h he assessmen o po en ial cy o oxici y
101
o diges ed pa icles o hei deg ada ion p oduc s.
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2. Ma e ials and me hods
103
2.1 Chemicals
104
Te ae hylo hosilica e (TEOS), N-ce yl ime hylammonium b omide (CTAB ), Plu onic
105
P123 (P123), ie hanolamine (TEAH3), sodium hyd oxide (NaOH), hyd ochlo ic acid (HCl), N1-
106
(3- ime hoxysilylp opyl)die hylene iamine (N3), and all chemicals o he p epa a ion o he
107
simula ed diges i e luids we e p o ided by Sigma-Ald ich (Poole, Do se , UK). HPLC g ade
108
ace oni ile was p o ided by Scha lau (Ba celona, Spain). Rhodamine B was acqui ed om
109
Fluka (Missou i, USA).
110
Fo cell cul u e expe imen s, ypan blue solu ion (0.4%) cell cul u e g ade and dime hyl
111
sul oxide (DMSO), phospha e bu e ed saline (PBS) and Dulbecco's Modi ied Eagle's medium
112
(DMEM) wi h glucose, L-glu amine and py u a e o cell cul u e we e p o ided by Sigma-
113
Pé ez-Es e e e al. 2016. Mic opo Mesopo Ma e
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Ald ich (Poole, Do se , UK). Mc Coy’s 5a Medium and Ke a inocy e Se um F ee Medium, Fe al
114
Bo ine Se um (FBS) and ypsin we e pu chased om Gibco (Li e Technologies, Mad id, Spain).
115
Cell p oli e a ion eagen WST-1 was pu chased om Roche Applied Science (Ba celona,
116
Spain).
117
2.2 Mesopo ous silica pa icles syn hesis
118
Syn hesis o he ou di e en silica pa icles was ca ied ou ollowing he p ocedu es
119
desc ibed p e iously [4].
120
MCM-41 (M) was syn hesized ollowing he so-called “a ane ou e”, using CTAB as he
121
s uc u e-di ec ing agen and a mola a io ixed o
122
7TEAH3:2TEOS:0.52CTAB :0.5NaOH:180H2O. The p ocedu e consis ed in adding CTAB o a
123
solu ion o TEAH3 and NaOH con aining TEOS a 118 °C. A e dissol ing CTAB in he liquo ,
124
wa e was slowly added wi h igo ous s i ing a 70 °C o o m a whi e suspension. This
125
mix u e was aged a oom empe a u e o e nigh .
126
Nanopa icula ed MCM-41 (N) was syn hesized using he ollowing p ocedu e: NaOH was
127
added o he CTAB solu ion, ollowed by adjus ing he solu ion empe a u e o 95 °C. TEOS
128
was hen added d opwise o he su ac an solu ion. The mix u e was allowed o s i o 3 h o
129
gi e a whi e p ecipi a e.
130
UVM-7 (U) was syn hesised using, once again, he “a ane ou e”. The mola a io o he
131
eagen s in he mo he liquo was ixed a 7TEAH3:2TEOS:0.52CTAB :180H2O. The TEOS/TEAH3
132
mix u e was hea ed o 120 °C un il no elimina ion o e hanol was obse ed. The mix u e was
133
cooled o 90 °C and he CTAB was added g adually in small po ions, ollowed by wa e . The
134
mix u e was aged o 24 h.
135
The SBA-15 (S) sample was syn hesized using P123 as he s uc u e-di ec ing agen wi h
136
he eac an mola a ios: 0.017P123:1.0TEOS:6HCl:196H2O. The p epa a ion was ca ied
137
mixing an aqueous solu ion o P123 wi h HCl solu ion, and s i ing o 2 h, a e which he silica
138
sou ce, TEOS, was added. This inal mix u e was s i ed o a u he 20 h.
139
Pé ez-Es e e e al. 2016. Mic opo Mesopo Ma e
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A e he syn hesis, he di e en solids we e eco e ed, washed wi h deionised wa e ,
140
and ai -d ied a oom empe a u e. The as-syn hesized solids we e calcined a 550 °C using an
141
oxidan a mosphe e o 5 h in o de o emo e he empla e phase.
142
The pa icles we e also unc ionalised wi h N1-(3- ime hoxysilylp opyl)die hylene iamine
143
(N3). In pa icula , 1 g o he di e en MSPs we e suspended in 40 mL o ace oni ile and an
144
excess o N3 (4.3 mL, 15.0 moll g-1) was hen added. Final mix u es we e s i ed o 5.5 h a
145
oom empe a u e. Finally, he solids we e il e ed o , washed wi h 30 mL o deionised wa e ,
146
and d ied a oom empe a u e.
147
2.3 Simula ed diges ion p ocedu e
148
An in i o diges ion model consis ing o mou h, gas ic and in es inal phases desc ibed by
149
Ve san oo e al. was used o simula e he ypical chemical composi ion, pH and esidence
150
ime pe iods o each o he h ee main compa men s o he GIT [21]. A schema ic
151
ep esen a ion o he in i o diges ion model is p esen ed in Figu e 1. The pH alues o he
152
diges i e juices we e checked and, i necessa y, adjus ed o he app op ia e in e al wi h
153
NaOH (1 M) o HCl (37% w/w).
154
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Pé ez-Es e e e al. 2016. Mic opo Mesopo Ma e
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156
157
Figu e 1. Schema ic ep esen a ion o he in i o diges ion p ocess. The in i o diges ion model desc ibes a h ee-
158
s ep p ocedu e simula ing he diges i e p ocesses in mou h, s omach and small in es ine. In each compa men , he
159
ma ix is incuba ed a 37 °C o a ime ele an o he compa men . The diges ion is ini ia ed by addi ion o
160
a i icial sali a o he ma e ial. Subsequen ly, gas ic juices and in es inal luids a e added o simula e he diges i e
161
p ocesses in s omach and small in es ine, espec i ely. A e each o hese s eps, samples we e aken o conduc
162
cha ac e iza ion p ocedu es. Cha ac e iza ion ypically in ol es mic oscopy, PXRD, size dis ibu ion, ze a po en ial,
163
N2 adso p ion-deso p ion iso he ms, 29Si RMN, silicon analysis and biocompa ibili y using WST-1 es .
164
165
2.4 Cha ac e iza ion o he mesopo ous silica pa icles
166
All ma e ials, as syn he ized and a e a simula ed diges ion p ocess, we e cha ac e ized
167
by s anda d p ocedu es: i.e. X- ay di ac ion (XRD), N2 adso p ion-deso p ion iso he ms,
168
ansmission elec on mic oscopy (TEM), ield emission scanning elec on mic oscopy (FESEM),
169
Pé ez-Es e e e al. 2016. Mic opo Mesopo Ma e
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he o de N (wall hickness = 1.91), closely ollowed by M (wall hickness = 2.05) and U (wall
294
hickness = 2.22). The di e ences in wall hickness among N (less han 2 nm) and M and U
295
(mo e han 2 nm) migh be due o he syn hesis ou e. N and U ollow he a ane ou e o
296
syn hesis, a p ocedu e ha p o ides wide amewo k walls.
297
Fo i s pa , S wi h a wall hickness o 2.56 nm seemed o be he pa icle ha be e conse e
298
he hexagonal s uc u e o he pa icle. In ac he di ac og am o diges ed S was e y simila
299
han ha o he undiges ed pa icle meaning ha mesopo ous a angemen is p ese ed
300
du ing he in i o diges ion p ocedu e. In sho , he po e wall hickness seems o be he key
301
ac o o p ese e he mesos uc u e in eg i y, being he silica s abili y highly a ou ed when
302
he po e wall hickness inc eases.
303
Ni ogen so p ion da a (Fig 3) show a educ ion o he adso bed N2 olume in all solids,
304
which sugges ed ha he diges ion p ocedu e p o okes a loss o speci ic su ace a ea and po e
305
olume. This educ ion is mo e ma ked in he case o N (177 m2 g-1; 0.29 cm3 g-1) and U (372 m2
306
g-1; 0.78 cm3 g-1) ha in M (321 m2 g-1; 0.46 cm3 g-1) and S (368 m2 g-1; 0.62 cm3 g-1) in consonance
307
wi h XRD pa e ns. This loss o su ace a ea and po e olume as a consequence o he con ac
308
wi h biological media has also been obse ed by o he au ho s [15,18]. In hese wo ks, he
309
loss o ex u al p ope ies o silica suppo s was associa ed wi h a p og essi e elimina ion o
310
he po osi y by dissolu ion o he silica o by po e blockage due o p ecipi a ion o ino ganic
311
compounds on o he su ace o he po ous silica. The combined esul o silica edisolu ion and
312
sal p ecipi a ion has a ma ked e ec on he o m o he iso he ms. In ac , only SBA-15 shows
313
a e diges ion a N2 adso p ion-deso p ion iso he ms quali a i ely simila o he o iginal one,
314
wi h a well-de ined adso p ion s ep a ela i e p essu e alues in he 0.6-0.8 ange. In he case
315
o he emaining silica suppo s wi h hicke walls (M and U), he loss o su ace a ea and
316
olume seems o be mo e p onounced han he mesos uc u al diso de e idenced h ough
317
XRD. A his poin , p obably he exis ence o small mesopo es o samples M, N and U (ca. 2.5
318
nm) leads o an easie po e blocking h ough sal ep ecipi a ion wi h he subsequen
319

Pé ez-Es e e e al. 2016. Mic opo Mesopo Ma e
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signi ican loss o su ace and po e olume. In con as , he la ge alues o he oids and he
320
walls in he S suppo a ou s he p ese a ion o he mesos uc u e and hinde po e blocking.
321
322
323
Figu e 3. Ni ogen adso p ion-deso p ion iso he ms o mic opa icula ed MCM-41 (M) (a), nanopa icula ed MCM-
324
41 (N) (b), SBA-15 (S) (c) and UVM-7 (U) (d) be o e (i) and a e (ii) he in i o diges ion p ocedu e.
325
326
To u he unde s and which o hese mechanisms a e in ol ed in he diges ion-induced
327
silica deg ada ion, in pa allel o XRD and N2 abso p ion-deso p ion iso he ms expe imen s,
328
TEM and FESEM obse a ions o he ou silica suppo s we e ca ied ou . Figu e 4 shows
329
FESEM and TEM pic u es o di e en ba e pa icles be o e and a e he in i o diges ion
330
p ocess. This igu e allows obse ing no only he pa icle size and shape o he single pa icle,
331
bu also pa icle po osi y.
332
A e he diges ion, wo pa icles did no modi y hei appea ance (FESEM) and po e
333
in eg i y (TEM). These pa icles a e M and S which a e pa icle wi h size in he mic oscale. This
334
implies ha o hese pa icles he loss o o de obse ed in XRD was no p o oked by a
335
collapse o he mesos uc u e, bu p obably by he o ma ion o a small olume ac ion o
336
Pé ez-Es e e e al. 2016. Mic opo Mesopo Ma e
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“gel” consis ing mos ly o (SiOH2)n18 o he adso p ion o calcium and phospha e ions p esen
337
in he diges ion luids on he silica su ace o ming a hyd oxyapa i e phase [15, 23-25].
338
In con as , suppo s based on nanopa icula ed ma e ials, N and U biodeg aded wi h a
339
modi ica ion o he appea ance o bo h, su ace and po e s uc u e as a consequence o he
340
diges ion p ocedu e. Conc e ely, he mos a ec ed suppo was N. A e he whole diges ion
341
p ocess, N and U nanopa icles los he uni o mi y o po e s uc u e (see TEM images) and
342
despi e keeping i s pa icle size and shape, he e is a clea al e a ion o he su ace (FESEM). In
343
hose cases, besides he po e closu e p o oked by he appa i ion o new phases, he dec ease
344
o he mesos uc u e obse ed by XRD and N2 adso p ion-deso p ion iso he ms can also be
345
o igina ed, a leas pa ially, by po e collapse.
346
347
Pé ez-Es e e e al. 2016. Mic opo Mesopo Ma e
18
348
Figu e 4. Cha ac e iza ion o pa icle size, pa icle shape and po e sys em o ba e MSPs be o e and a e he in i o
349
diges ion p ocedu e (IDP). MCM-41 (M), MCM-41 nano (N) SBA-15 (S) and UVM-7 (U).
350
351
Silica deg ada ion necessa ily implies he b eak o siloxane bonds wi h he subsequen
352
gene a ion o silanol g oups and his was co obo a ed h ough he e olu ion o he 29Si NMR
353
spec a be o e and a e diges ion. Fo his s udy we selec ed wo samples (S and N) ha can
354
be conside ed as ep esen a i e o he wo obse ed beha iou s wi h low (solid S) and high
355
(solid N) biodeg ada ion acco ding o TEM images. The 29Si NMR spec a a e shown in Figu e 5.
356
While in he case o sample S, he diges ion does no a ec he p opo ion o Q4:Q3:Q2
357
(68:30:2) si es, a dec ease o he Q4 si es om 65% o 60% is obse ed in he case o he N
358
sample (Q4:Q3:Q2 om 65:31:4 o 60:33:7).
359
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360
361
Figu e 5. 29Si NMR spec a o SBA-15 (a) and nanopa icula e MCM-41 (b), be o e (i) and a e (ii) he in i o
362
diges ion p ocedu e.
363
364
Ha ing in mind hese esul s, i is appa en ha all s udied MSPs a e al e ed as a
365
consequence o he in i o diges ion p ocess. Howe e , he deg ada ion deg ee depends on
366
he ype and size o he pa icles. In his line, El Mou abi e al. s udied he s uc u e al e a ion
367
o se e al po ous silica suppo s di e ing in pa icle size, pa icle shape, po e-size dis ibu ion,
368
speci ic su ace a ea, po e olume and a e age o po e diame e caused by imme sion in acid
369
solu ions and ound ha he deg ada ion o he suppo s was no ob iously in luenced by
370
ex u al p ope ies o he pa icles [18]. Ne e heless, in ou s udy, i seems o be clea ha
371
pa icle size and wall hickness seem o be essen ial pa ame e s ha condi ion deg ada ion.
372
In o de o co ela e he impac o each o he phases o he diges ion wi h he pa icle’s
373
deg ada ion, a u he expe imen was done. Fo his MCM-41 nanopa icles (solid N) we e
374
selec ed gi en ha his was he mos a ec ed suppo by he whole diges ion p ocess. Fo his
375
pu pose, N was pu in con ac wi h wa e o 4 h. In pa allel, a ypical in i o diges ion p ocess
376
(4 h) was pe o med. A e each o hese s eps, samples we e washed and obse ed by TEM.
377
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Figu e 6 shows TEM mic og aphs o N a e 4 h in con ac wi h wa e (a) and a e each o he
378
phases o he in i o diges ion p ocess: buccal (b), gas ic (c) and in es inal (d). As obse ed,
379
he pa icle size (ca. 100 nm) did no a y along he diges ion sugges ing ha pa icle s uc u e
380
emains unal e ed a e he whole diges ion p ocess. Mo eo e , su ace and po osi y o MCM-
381
41 emained unchanged a e 4 h in wa e , meaning ha pa icles do no collapse easily in
382
wa e solu ion. Pa icles a e also in ac a e he 5 min o con ac wi h simula ed sali a.
383
Howe e , pa icles change d ama ically a e he 2 h o gas ic phase. In pa icula , a e his
384
diges ion s ep, pa icles loss clea ly hei sphe ical shape and o de ed po ous con o ma ion
385
and become i egula shaped sphe es wi h diso de ed po osi y. Li le di e ences among
386
pa icles obse ed a e gas ic and a e bo h, gas ic and in es inal phases we e obse ed
387
sugges ing ha once he diges i e solu ion is neu alized by he addi ion o in es inal juices,
388
he deg ada ion p ocess s opped.
389
390
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Figu e 6. TEM images showing pa icle size, pa icle shape and po e sys em o ba e MCM-41 nanopa icles
392
(solid N) a e 4 h in wa e , and buccal, gas ic and in es inal phases o he in i o diges ion p ocedu e.
393
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These indings con i m ha gas ic phase (pH 2) is he esponsi e o pa icle’s deg ada ion. The
395
ole o acids in po ous silica deg ada ion has p e iously been desc ibed [18]. These au ho s
396
ealised ha p o ons play a ole in he acidic al e a ion p ocess o silica. Mo eo e , hey
397
poin ed ou ha in acidic condi ions, anions (i.e. SO42-, Cl-, PO43-) p esen in he media can ac
398
as nucleophilic ca alys s accele a ing he deg ada ion eac ions. Ha ing in mind he
399

Pé ez-Es e e e al. 2016. Mic opo Mesopo Ma e
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composi ion o he wo luids comp ising gas ic phase o he diges ion (i.e. sali a and gas ic
400
juice) i can be say ha all hese deg ada i e species (i.e. NaSO4, NaH2PO4, HCl, NaCl, KCl, CaCl2
401
and NH4Cl) a e p esen in ou s udies.
402
403
3.3 E ec o in i o diges ion in mic os uc u e o amine- unc ionalised pa icles
404
To in es iga e i he unc ionaliza ion o he su ace o he pa icles wi h ce ain o ganic
405
molecules ha e any in luence in he p ese a ion o he s uc u e du ing he in i o diges ion,
406
he ou pa icles objec o s udy we e unc ionalised wi h N1-(3-
407
ime hoxysilylp opyl)die hylene iamine. This polyamine is one common o ganic molecule
408
used o p epa e capped mesopo ous silica pa icles able o modula e payload elease in
409
esponse o pH changes [26]. A e unc ionaliza ion, pa icles we e subjec ed o he diges ion
410
p ocess desc ibed in Figu e 1. Diges ed pa icles we e washed wi h wa e , d ied and
411
cha ac e ized by XRD, TEM and FESEM.
412
Figu e 2 shows XRD pa e ns o amine- unc ionalized pa icles be o e (ii) and a e (i ) he
413
in i o diges ion p ocess. In con as o ba e pa icles, unc ionalised pa icles showed he
414
same di ac ion peaks be o e and a e he diges ion, which indica e a p ese a ion o he
415
po ous s uc u e a e he diges ion p ocedu e. The s uc u e p ese a ion was con i med by
416
mic oscopic analysis. As obse ed in Figu e 7, mo phology, pa icle size and po ous s uc u e
417
o he di e en amine- unc ionalized suppo s is e y simila be o e and a e he in i o
418
diges ion p ocess. These s udies poin ou he ole played by amines in he p o ec ion o
419
po ous silica, especially in he nanopa icles (solids N and U), agains he a ack by acids and
420
chemical species p esen in he diges i e juices. The p e en ion o silica deg ada ion a e
421
o ganic unc ionaliza ion has also been obse ed by o he au ho s. Lin e al. ound ha
422
deg aded Si amoun s om 42 nm diame e silica nanopa icles we e g ea e han ha om
423
he equi alen pegyla ed nanopa icles a e bo h 10 days in deionized wa e and PBS a oom
424
empe a u e and 37 °C [17]. Cauda e al. also obse ed ha he a achmen o a poly(e hylene
425
Pé ez-Es e e e al. 2016. Mic opo Mesopo Ma e
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glycol)-laye on he ou e su ace o colloidal mesopo ous silica s abilized he pa icles by
426
educing he a e o deg ada ion in simula ed body luid a 37 °C o 1 mon h [15]. The
427
p e en i e e ec o unc ional g oups a ached o he su ace o he silica suppo s on he
428
deg ada ion o po ous silica could be a ibu ed o he capabili y o hese molecules o inhibi
429
he a ack caused by acids and ca aly ic anions as well as o p e en he adso p ion o
430
calcium/phospha e ca ions and he ea angemen o silicon species on a new “gel” ac ion on
431
he walls o he pa icles.
432
433
434
Figu e 7. Cha ac e iza ion o pa icle size, pa icle shape and po e sys em o amine- unc ionalised MSPs be o e and
435
a e he in i o diges ion p ocedu e. MCM-41 (M), MCM-41 nano (N) SBA-15 (S) and UVM-7 (U).
436
437
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In ou s udy, acco ding o CNH elemen al analysis da a, he pos - unc ionaliza ion deg ee
438
o ou samples was comp ised in he 0.14-0.15 mol o N1-(3- ime hoxysilylp opyl) g oups pe
439
100 g o sample. This alue suppose a densi y o unc ional g oups o ca. 1-1.5 g oups/nm2
440
assuming ha hei inco po a ion is e ec i e along he whole su ace (ex e nal and in e nal).
441
As i is well known, he leng h o his o ganic g oup cons i u es a se ious d awback o achie e a
442
good di usion and dispe sion along he mesopo es. Then, a ce ain accumula ion and
443
condensa ion o he o ganic g oups on he ex e nal su ace and in he en ance o he
444
mesopo es is expec ed. This ela i ely hick shell seems o be he esponsible o he s abili y
445
o he silica suppo s a e diges ion. Mo eo e , in ou case, amine g oups a ached o
446
pa icle’s su ace can also able o locally neu alize he acidic en i onmen c ea ed by HCl.
447
448
3.4 E ec o in i o diges ion in mac oscopic s uc u e
449
To de e mine he changes o MSPs s uc u es and agg ega ion s a e along he whole in i o
450
diges ion p ocedu e, con ocal lase scanning mic oscopy (CLSM) mic og aphs we e aken upon
451
s aining M, N, S and U suppo s a di e en s age o he diges ion wi h hodamine B (Fig 8).
452
This s udy e ealed ha all he pa icles ended o o m agg ega es in wa e . This end o
453
o m la ge agg ega es, especially obse ed in N and U, is in acco dance wi h esul s p e iously
454
epo ed [27,28]. Figu e 8 also allows obse ing ha o all pa icles he gas ic phase end o
455
p o oke an enla gemen o pa icles agg ega es, and ha in none o he cases diges ion
456
igge ed he loss o mac oscopic pa icle s uc u e.
457
458
Pé ez-Es e e e al. 2016. Mic opo Mesopo Ma e
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459
Figu e 8. Cha ac e iza ion o pa icle size and pa icle shape o ba e MSPs be o e and a e he in i o diges ion
460
p ocedu e. MCM-41 mic o (M), MCM-41 nano (N), SBA-15 (S) and UVM-7 (U).
461
462
Agg ega ion endency obse ed in gas ic phase o all pa icles was con i med by pa icle
463
size dis ibu ion measu emen s using ligh di ac ion. As shown in Figu e 9, acco ding o
464
pa icles’ g ain size in di e en diges i e media, S and M mic opa icles, exhibi ed a size
465
dis ibu ion in he ange 0.5-2 m, while size dis ibu ion o N and U anged om 5 up o 40
466
m. The inse g aphs o he same igu e shows size dis ibu ion o nano-sized silica p esen in
467
he diges ion luids. As p esumable, only wo samples (N and U) also shown pa icles in he
468
100-200 nm ange, co esponding o hose pa icles no pa icipa ing in he pa icle’s clus e s.
469
470