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Development Of Antioxidant Active Films Containing Tocopherols To Extend The Shelf Life Of Fish

Abstract

With the purpose of develop active films for fish, five natural products with antioxidant properties containing tocopherols were selected and their antioxidant activity in vitro was tested using the DPPH method. In addition these antioxidants were also tested directly on the salmon muscle using the TBARS method. Besides, thermal degradation and differential scanning calorimetry tests allow us to select the products for incorporation into the polymer matrix. Then, two natural products have been selected and incorporated in low density polyethylene films. Film 2 and Film 3, which contain product C at 1 and 5% respectively, presented a reduction in lipid oxidation up to 30% for Film 2 and to 40% for Film 3. Film 4, which contains 5% of product D, reduced lipid oxidation during storage around 30–35 %. The results showed that Film 3 was the most effective to salmon conservation at long-term storage. These films could be used as future active packaging by the food industry for the salmon conservation to extend its shelf life

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Development Of Antioxidant Active Films Containing Tocopherols To Extend The Shelf Life Of Fish

Author: Barbosa Pereira, Letricia; Cruz, José Manuel; Sendón García, Raquel; Rodríguez Bernaldo de Quirós, Ana Isabel; Ares-Fuentes, Ana María; Castro-López, Mar; Abad, María José; Maroto, Julio; Paseiro Losada, Perfecto
Publisher: Elsevier
Year: 2012
DOI: 10.1016/j.foodcont.2012.09.036
Source: https://minerva.usc.es/bitstreams/640f5577-c19f-4d2c-9c4e-291438f4ec91/download
Accep ed Manusc ip
De elopmen O An ioxidan Ac i e Films Con aining Tocophe ols To Ex end The
Shel Li e O Fish
Le icia Ba bosa-Pe ei a, José Manuel C uz, Raquel Sendón, Ana Rod íguez
Be naldo de Qui ós Ana A es, Ma Cas o-López, Ma ia José Abad, Julio Ma o o,
Pe ec o Pasei o-Losada
PII: S0956-7135(12)00536-1
DOI: 10.1016/j. oodcon .2012.09.036
Re e ence: JFCO 2954
To appea in: Food Con ol
Recei ed Da e: 23 Ap il 2012
Re ised Da e: 17 Sep embe 2012
Accep ed Da e: 25 Sep embe 2012
Please ci e his a icle as: Ba bosa-Pe ei aL., C uzJ.M., SendónR., Ana A esA.R.B.d.Q., Cas o-
LópezM., AbadM.J., Ma o oJ. & Pasei o-LosadaP., De elopmen O An ioxidan Ac i e Films
Con aining Tocophe ols To Ex end The Shel Li e O Fish, Food Con ol (2012), doi: 10.1016/
j. oodcon .2012.09.036.
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Highligh s
• The na u al compounds used could eplace syn he ic an ioxidan s in ood
indus y.
• The inco po a ion o an ioxidan p oduc s in o plas ic ma ices esul s in ac i e
ilms.
• The addi ion o hese compounds in o LDPE ex ensi ely inhibi ed lipid
oxida ion o salmon muscle.
• Ac i e ilms con aining ocophe ols could be used o de elop a p omising ac i e
packaging o be applied in ood p ese a ion by ood indus y.
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DEVELOPMENT OF ANTIOXIDANT ACTIVE FILMS CONTAINING 1
TOCOPHEROLS TO EXTEND THE SHELF LIFE OF FISH 2
3
Le icia Ba bosa-Pe ei aa, José Manuel C uz b, Raquel Sendón a*, Ana Rod íguez 4
Be naldo de Qui ós, Ana A esc, Ma Cas o-Lópezc, Ma ia José Abadc, Julio Ma o od, 5
Pe ec o Pasei o-Losadaa. 6
* [email p o ec ed]s 7
Phone numbe : +34881814964 8
Fax: +34 881815106 9
a Depa men o Analy ical Chemis y, Nu i ion and Food Science. Facul y o 10
Pha macy. Uni e si y o San iago de Compos ela, E-15782. San iago de Compos ela. 11
Spain. 12
b Depa men o Chemical Enginee ing. Indus ial Engenee ing School. Uni e si y o 13
Vigo. E-36310 Vigo. Spain. 14
c G oup o Polyme s, Uni e si y o A Co uña, CIT- Campus de Es ei o, s/n. 15403-15
Fe ol. 16
d Cen o Tecnológico del Ma , Bouzas. Vigo. Spain 17
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18
Abs ac 19
20
Wi h he pu pose o de elop ac i e ilms o ish, i e na u al p oduc s wi h 21
an ioxidan p ope ies con aining ocophe ols we e selec ed and hei an ioxidan 22
ac i i y in i o was es ed using he DPPH me hod. In addi ion hese an ioxidan s we e 23
also es ed di ec ly on he salmon muscle using he TBARS me hod. Besides, he mal 24
deg ada ion and di e en ial scanning calo ime y es s allow us o selec he p oduc s 25
o inco po a ion in o he polyme ma ix. Then, wo na u al p oduc s ha e been 26
selec ed and inco po a ed in low densi y polye hylene ilms. Film 2 and Film 3, which 27
con ain p oduc C a 1 and 5 % espec i ely, p esen ed a educ ion in lipid oxida ion up 28
o 30 % o Film 2 and o 40 % o Film 3. Film 4, which con ains 5 % o p oduc D, 29
educed lipid oxida ion du ing s o age a ound 30-35 %. The esul s showed ha Film 3 30
was he mos e ec i e o salmon conse a ion a long- e m s o age. These ilms could 31
be used as u u e ac i e packaging by he ood indus y o he salmon conse a ion o 32
ex end i s shel li e. 33
34
Keywo ds: Lipid oxida ion, na u al an ioxidan s, ocophe ols, ac i e ilms, LDPE, 35
salmon.36
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1. In oduc ion 37
38
Sea ood has ecen ly ecei ed mo e a en ion om consume s as impo an 39
sou ce o nu i ional componen s (unsa u a ed a y acids, mine als and i amins) ha 40
ha e posi i e bene i s in nu i ion and human heal h. The nu i ional signi icance o ish 41
and ish oils in ake is due o hei high con en o essen ial long-chain omega-3 42
polyunsa u a ed a y acids (PUFAs), such as eicosapen aenoic acid (EPA) and 43
docosahexaenoic acid (DHA), which p o ec agains hea disease, cance , hype ension, 44
heuma oid a h i is, dep ession, diabe es, among o he heal h bene i s (Richa ds & 45
Hul in, 2002; Sidhu, 2003). The high con en o PUFAs in ish muscle, as well he 46
p esence o ele an p ooxidan compounds, p omo e he de elopmen o enzyma ic and 47
non-enzyma ic ancidi y leading o o ganolep ic, physical and nu i ional quali y losses 48
in ood (F ankel, 1993; McClemen s & Decke , 2000; E ickson, 1997). 49
Lipid oxida ion is he main cause o spoilage o ish du ing i s p ocessing and 50
s o age, being a key ac o in he shel li e o ood (F ankel, 1993; F ankel 1998b; 51
F ankel, 1998a). As a consequence o his de e io a ion p ocess, hyd ope oxides a e 52
o med (p ima y oxida ion) which a e uns able and decompose ela i ely quickly in o 53
aldehydes, ke ones, alcohols, acids, es he s o hyd oca bons (seconda y oxida ion). 54
These seconda y oxida i e p oduc s a e esponsible o changes in colo , ex u e, odo 55
and la o in ood (McClemen s & Decke , 2000; E ickson, 1997). 56
The use o an ioxidan s is an e ec i e way o p e en o minimize lipid 57
oxida ion in ood p oduc s, delaying he o ma ion o oxic oxida ion p oduc s 58
main aining he nu i ional quali y and p olonging hei shel li e (Huang, Ou, & P io , 59
2005). An ioxidan s ac by inhibi ing he oxida ion o lipids and o he molecules 60
a oiding he damaging e ec s o oxida ion in animal issues. The majo mechanisms o 61

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ac ion in p o ec ing he ood om he oxida ion p ocess include he ee adical 62
sca enging and chain b eaking by inhibi ing he ini ia ion o p opaga ion phases o ee 63
adical chain eac ions o lipid oxida ion, me al chela ion and single oxygen quenching 64
(Huang, Ou, & P io , 2005; Aidos, Masbe na -Ma inez, Lu en, Boom, & an de Pad , 65
2002). 66
An ioxidan s may be p esen na u ally as ood componen s as in he case o 67
ocophe ols o added du ing ood p ocessing (Choe, & Min, 2009). In many si ua ions, 68
ood p ocessing is esponsible o he loss o hese endogenous compounds ac i i y and 69
equi ed he addi ion o syn he ic an ioxidan s such as 2 (3)- e -bu yl-4-me hoxyphenol 70
(BHA), bu yla ed hyd oxy oluene (BHT ) and p opyl galla e, which a e widely used in 71
he ood indus y. In ecen yea s, se e al s udies ha e shown e idence o some oxici y 72
by syn he ic an ioxidan s such BHT and BHA ha may possess ca cinogenic e ec s a 73
high le els (Wa enbe g, 1986; Ka l, 1984) (EFSA, 2012; EFSA, 2011). Fo his eason, 74
and o human heal h bene i s, he use o na u al an ioxidan s such as ocophe ols, 75
asco bic acid o na u al ex ac s wi h high le els o polyphenols a e inc easingly used as 76
an ioxidan s in ood. Besides, hese na u al compounds a e being e ec i e in he 77
p e en ion and/o ea men o diseases caused by ee adicals (Shahidi, & Zhong, 78
2010; F ankel, 1996). 79
Tocophe ols a e an ioxidan s ex ensi ely used as ood addi i es by being 80
e ec i e, a soluble and inhibi o s o oxida ion eac ions because hei e icien chain-81
b eaking capaci y, demons a ing e ec i eness agains lipid pe oxida ion and o he 82
oxida i e si ua ions caused by he p esence o ee adicals (Ohka su, Kajiyama, & A ai, 83
2001; B igelius-Flohé, & T abe , 1999). To p e en and/o delay he ood spoilage, 84
an ioxidan s a e di ec ly added as ood addi i es o could be added indi ec ly h ough 85
he packaging ma e ial, using wha is known as ac i e packaging. 86
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Ac i e packaging ep esen s a new packaging concep wi h g ea in e es in ood 87
indus y. This sys em allows he elease o he ac i e componen s in o he ood and has 88
shown g ea po en ial in he p ese a ion o he ood quali y being an al e na i e o 89
adi ional packaging. An ioxidan s such as BHT, BHA and α- ocophe ol ha e been 90
inco po a ed in plas ic ma e ials in o de o p o ec he polyme ma ix om deg ada ion 91
du ing p ocessing. The α- ocophe ol has been used in di e en si ua ions o s abilize 92
plas ic ma e ials such as low densi y polye hylene (LDPE) and polyp opylene (PP) 93
p o ing o be a good p ese a i e o hese ma e ials (Wessling, Nielsen, & Giacin, 94
2000). 95
Ne e heless, he possibili y o an ioxidan compounds mig a ing om he 96
plas ic ma e ial being in con ac wi h ood has been obse ed. A s udy pe o med by 97
Wessling, Nielsen, Leu én, and Jäge s ad, (1999) sugges s ha LDPE spiked wi h α-98
ocophe ol can be used as ac i e packaging, o oods wi h high a con en , eleasing 99
he an ioxidan and ex ending he shel li e o he p oduc . 100
The aim o his s udy is o e alua e and compa e he an ioxidan e ec i eness o 101
di e en na u al an ioxidan p oduc s ob ained comme cially which con ains 102
ocophe ols, on he s abili y o salmon du ing e ige a ed s o age. Besides, he mos 103
sui able an ioxidan o hei inco po a ion in o LDPE is selec ed. Wi h he esul s 104
ob ained, he p oduc s o be used in he de elopmen o ac i e packaging wi h 105
an ioxidan p ope ies we e selec ed and s udies we e conduc ed o assessmen o hei 106
e ec i eness in he delay o lipid oxida ion in he salmon muscle. 107
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108 2. Ma e ials and me hods 109
110
2.1. Chemicals 111
112
2(3)- e -bu yl-4-hyd oxyanisole (BHA) (98 %, CAS No. [25013-16-5]); 113
bu yla ed hyd oxy oluene (BHT) (99.0 %, CAS No. [128-37-0]); sodium azide (99.0 %, 114
CAS No. [26628-22-8]); 2- hioba bi u ic acid (TBA) (≥98 %, CAS No. [504-17-6]) and 115
ichlo oace ic acid (TCA) (pu iss. p.a. 99.5 %, CAS No. [76-03-9]) we e pu chased 116
om Sigma-Ald ich (S einheim, Ge many). 1,1,3,3- e ae hoxyp opane (TEP) (pu um 117
≥95 % (GC), CAS No. [122-31-6]) and 2, 2-diphenyl-1-pic ylhyd azyl (DPPH) 118
(TECHN ≥85 %, CAS No. [1898-66-4]) we e supplied by Fluka Chemie AG (Buchs, 119
Swi ze land). Me hanol (GC≥ 99.9%, CAS No. [67-56-1]); o hophospho ic acid (85 % 120
GR o analysis, CAS No. [7664-38-2]) and e hanol (absolu e o analysis, CAS No. 121
[64-17-5]) we e p o ided by Me ck (Da ms ad , Ge many). I ganox® 1076 (CAS No. 122
[2082-79-3]) and I ga os® 168 (CAS No. [31570-04-4]) we e kindly supplied by Ciba-123
Geigy, Swi ze land. 124
125
2.2. Comme cial p oduc s con aining na u al an ioxidan s 126
127
The na u al p oduc s wi h an ioxidan ac i i y used, TOCOBIOL®, 128
TOCOBIOL® GL, NUTRABIOL®-T90, TOCOBIOL® PV, NUTRABIOL®-T50 PV, 129
we e supplied by Bio ecnologías Aplicadas, S.L., BTSA, (Mad id, Spain). The 130
p esen a ion o he p oduc s TOCOBIOL ®, TOCOBIOL ® GL, NUTRABIOL ®-T90 131
was in oil o m and p oduc s TOCOBIOL ® PV, NUTRABIOL ®-T50 PV we e in 132
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powde o m. Table 1 shows he composi ion o he di e en na u al an ioxidan s es ed. 133
This in o ma ion was p o ided by he company. 134
135
2.3. Ma e ials 136
137
2.3.1. Fish sample 138
Salmon (Salmo sala ) was selec ed o be used in he an ioxidan e ec i eness 139
assays. The salmon was supplied o he labo a o y, in ozen slices wi h a hickness 140
be ween 1 and 1.5 cm, by he company Elabo ados FREIREMAR SA. 141
Fo he an ioxidan e ec i eness assessmen , salmon was de os ed a oom 142
empe a u e and i s skin and bones emo ed om he lesh. To p e en mic obial 143
spoilage du ing s o age, a small quan i y o sodium azide (app ox. 1 mg) was added on 144
he su ace o salmon. 145
146
2.3.2. P ocessing o polyme o mula ions 147
Se e al o mula ions o he an ioxidan compounds wi h LDPE ma ix we e 148
p epa ed. The ecipes o o mula ions a e shown in Table 2. The ma ix used was a low 149
densi y polye hylene (LDPE), p o ided by Repsol YPF (MFI; 20 g min-1; densi y; 919
150
kg m-3). Only he an ioxidan s compounds wi h a sui able he mal s abili y we e mixed 151
wi h he polyme . 152
Blends wi h LDPE and an ioxidan s we e p epa ed in an in e nal mixe 153
B abende W50EHT a 150 ºC. Besides he na u al an ioxidan s, he comme cial 154
an ioxidan s IRGAFOS® 168 (seconda y an ioxidan ) and IRGANOX® 1076 (p ima y 155
an ioxidan ) we e also added in he usual p opo ions in indus y in o de o p e en he 156
oxida ion o polyme ma ix. 157
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ob ained o he abili y o DPPH adical sca enging by na u al an ioxidan p oduc s 302
(Table 1) was compa ed wi h e e ence an ioxidan s BHA and BHT, usually used in 303
ood indus y. The EC50 alues ob ained o na u al p oduc s A, B, C, D, E we e 1.49 ± 304
0.075, 0.435 ± 0.050, 0.401 ± 0.062, 3.25 ± 0.095 and 0.704 ± 0.047 espec i ely, 305
whe eas o he syn he ic an ioxidan s BHT and BHA we e 2.53 ± 0.085 and 0.273 ±
306
0.025 g L-1 espec i ely. Resul s o he an ioxidan ac i i y de e mined by DPPH 307
me hod a e shown in Table 3.The EC50 alues ob ained o he syn he ic an ioxidan s 308
used as e e ence, BHA and BHT, a e in ag eemen wi h alues ound in he li e a u e 309
(C uz, Moldes, Bus os, To ado & Dominguez, 2007). 310
The esul s ob ained indica e ha all an ioxidan ex ac s es ed p esen ed 311
an ioxidan ac i i y and he na u al p oduc wi h highes adical sca enging ac i i y was 312
p oduc C ollowed by B, E, A and D which had he lowes an ioxidan ac i i y among 313
he p oduc s s udied. 314
Excep o D, all he p oduc s es ed demons a e highe an ioxidan ac i i y 315
compa ed o BHT, syn he ic an ioxidan commonly used in ood indus y. 316
An ioxidan s p oduc s B and C ha e displayed highe an ioxidan ac i i y 317
p esen ing EC50 alues o 0.435 and 0.401 g L-1 espec i ely, compa able o he 318
e e ence syn he ic an ioxidan BHA which p esen ed an EC50 o 0.273 g L-1. 319
Compa ing he h ee TOCOBIOL® p oduc s, he mos ac i e was B ollowed by 320
A and inally D. 321
The highes an ioxidan capaci y p esen ed by p oduc B may be due o he ac 322
ha in i s composi ion in addic ion o 25 % o TOCOBIOL® p oduc also includes 25 % 323
o he syn he ic an ioxidan p opyl galla e, used in he ood indus y due o i s high 324
an ioxidan ac i i y (Ma inez-Tome, Jimenez, Ruggie i, F ega, S abbioli, & Mu cia, 325

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2001), and he e o e showed g ea e an ioxidan ac i i y han he p oduc A (EC50 o 326
1.49 g L-1). 327
P oduc D was less e ec i e in adical sca enging because i is composed by 328
only 65 % o TOCOBIOL® p oduc which is he esponsible o i s an ioxidan ac i i y. 329
Compa ing bo h NUTRABIOL® p oduc s, C p oduc p esen s he highes adical 330
sca enging capaci y o ee adicals because is he one which con ains highes 331
pe cen age o ocophe ols. 332
O he wo p oduc s es ed in powde o m, an ioxidan E showed highes 333
an ioxidan capaci y wi h an EC50 alue o 0.704 g L-1 because o i s high pe cen age o 334
ocophe ols (50.3 %). The same was obse ed o he oils, he p oduc wi h highes 335
p opo ion o ocophe ols, p oduc C (90.2 %), was he mos e ec i e, i.e. p esen ed he 336
highes an ioxidan ac i i y wi h an EC50 alue o 0.401 g L-1. 337
338
3.2. An ioxidan e ec i eness o comme cial p oduc s di ec ly on salmon 339
To e alua e he e ec i eness o hese compounds di ec ly on ood, salmon was 340
selec ed and lipid oxida ion was e alua ed du ing s o age a 4 °C. 341
The s udy was di ided in o wo pa s and samples we e analyzed a di e en 342
days. In he i s pa o his s udy he an ioxidan p oduc s in he oil o m we e es ed 343
and in he second one an ioxidan p oduc s in powde o m. In each assay he e was a 344
con ol es p epa ed as samples bu wi hou he addi ion o comme cial p oduc s
345
an ioxidan p oduc s. 346
347
3.2.1. E alua ion o an ioxidan e ec i eness o he oil p oduc s 348
The an ioxidan e ec i eness o he di e en p oduc s es ed in he salmon 349
muscle was de e mined by he TBARS me hod. The da a ob ained wi h he 3 oils 350
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applied a 2 di e en concen a ions used on he salmon muscle a e shown in Table 3
351
4a. 352
Lipid oxida ion o salmon muscle samples inc eased du ing he s o age in 353
di e en deg ees being he con ol es (wi hou addi ion o an ioxidan ) which showed 354
high TBARS alues. 355
All an ioxidan s applied in his assay educed lipid oxida ion in salmon 356
compa ed o he con ol es . A he lowes concen a ion o he s udy (30 µg·dm-2), 357
p oduc B showed be e e ec i eness, educing no ably lipid oxida ion compa ed o 358
con ol assay. Fo he C an ioxidan , also a highe concen a ion o an ioxidan 359
employed in he salmon muscle (125 µg·dm-2) lowe an ioxidan e ec was obse ed. 360
A e 10 days he an ioxidan e ec p esen ed by he wo concen a ions o p oduc C is 361
app oxima ely he same, wi h TBARS alues a ound 2.4 mg MDA kg-1 sample, which 362
co esponds o a educ ion in lipid oxida ion a ound 40 % espec o con ol assay. 363
Analyzing he da a ob ained, i can be seen ha he oil, ha which p esen ed be e 364
an ioxidan e ec in salmon is B p oduc B, and o he wo concen a ions e alua ed, 365
he highe is he concen a ion used highe he an ioxidan e ec i eness. B1 and B2 366
concen a ions educed lipid oxida ion abou 70 % being B2 sample sligh ly mo e 367
e ec i e. An ioxidan s A and B applied a he highes concen a ion, i.e. 125 mg dm-2 368
(A2 and B2), emain oxida ion alues below 1 mg kg-1 MDA o sample which is 369
equi alen o a de e io a ion educ ion in ood a ound 75 % compa ed o con ol assay. 370
Fo compounds A and B i can be seen ha he highe he concen a ion used he g ea e 371
educ ion o oxida ion in ish was obse ed, while in he p oduc C his e ec was no 372
obse ed. Fo compounds A and B i can be seen ha he highe he concen a ion used, 373
he g ea e educ ion o oxida ion in ish was obse ed, while in he p oduc C his 374
e ec was no obse ed. This could be due o ha C was he compound wi h highes 375
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concen a ion o ocophe ols (see Table 1) and p esen ed he highes EC50 in he DPPH 376
me hod (EC50 = 0.401 g L-1), and subsequen ly, when applied o he ood a he same 377
concen a ions ha we e used wi h o he p oduc s, i could ha e a p ooxidan e ec 378
caused by his high amoun o ocophe ols. Nume ous au ho s ha e desc ibed his 379
p ooxida i e e ec o α- ocophe ols a e applying his p oduc a high concen a ions 380
(F ankel, 1996; B igelius-Flohé, & T abe , 1999; Huang, F ankel, & Ge man, 1994). A 381
e y high concen a ions, he p ooxidan e ec o α- ocophe oloccu s du ing he 382
induc ion pe iod o p ima y oxida ion whe e hyd ope oxides a e o med in la ge 383
amoun s. This happens because a high concen a ions, α- ocophe ol loses i s ac i i y o 384
inhibi he o ma ion o hese hyd ope oxides demons a ing a low e ec i eness in he 385
p ima y oxida ion inhibi ion. Howe e his e ec was no obse ed in he seconda y 386
oxida ion whe e a signi ican ly delaying o seconda y p oduc s o ma ion is e i ied 387
(Huang e al., 1994; Ta azoli, W igh , & O’B ien, 2005; Tong, Sasaki, McClemen s, & 388
Decke , 2000). Thus, he esul s ob ained using he C an ioxidan p oduc could be due 389
o a possible loss o ac i i y o he compound as esul o he la ge amoun o 390
ocophe ols p esen in high concen a ions because only a small amoun o α-391
ocophe ols consumed in he oxida ion eac ion and a la ge pa emains a ailable o 392
u he eac ions ha occu simul aneously and leads o an oxida ion enhancemen 393
(Fus e , Lampi, Hopia, & Kamal-Eldin, 1998; Decke , Wa ne , Richa ds, & Shahidi, 394
2005). 395
396
3.2.2. E ec i eness o p oduc s in powde o m 397
TBARS alues ob ained om salmon addi i a ed wi h wo comme cial p oduc s 398
in powde o m wi h an ioxidan p ope ies, D and E, a wo di e en concen a ions a e 399
displayed in Table 3 4b. 400
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Analyzing he da a ob ained in his assay and, aking in o accoun ha he 401
con ol was no much oxidized, which makes di icul he compa a i e, imp o emen s 402
we e obse ed in he conse a ion o ish addi i a ed wi h an ioxidan p oduc s in he
403
concen a ions a he concen a ions 1 and 2 (30 and 125 mg dm-2 espec i ely), excep 404
o he D2. An ioxidan e ec i eness o p oduc E in ish muscle inc eased wi h he 405
inc easing o he concen a ion employed. A e 3 days o s o age, he an ioxidan 406
e ec i eness was highe han 50% compa ed o con ol es . 407
On he se en h day o ial, he deg ee o inhibi ion emained o he D1, E1 and 408
E2 bu in less pe cen age (52, 22 and 40 % espec i ely). Powde E showed an EC50 o 409
0.70 g L-1 in he DPPH me hod indica ing he s ong an ioxidan / adical sca enge 410
ac i i y as well ha he p oduc had an ioxidan ac i i y in i o. This an ioxidan e ec 411
was con i med when applied di ec ly in o he salmon muscle and consequen ly migh be 412
conside ed as a possible ex ac o be used in ish conse a ion. This an ioxidan e ec 413
was con i med when applied di ec ly in o he salmon muscle and consequen ly could be 414
conside ed as a possible an ioxidan p oduc o be used in ish conse a ion. 415
An ioxidan D displayed he highes EC50 o he i e compounds es ed being he 416
p oduc which showed lowe an ioxidan ac i i y in DPPH assay. Howe e , added a 417
concen a ion o 30 mg dm-2 (D1) on he sample o salmon demons a ed an ioxidan 418
e ec in he 7 days o s o age, while a highe concen a ion (D2) a possible p ooxidan 419
e ec was obse ed because lipid oxida ion did no dec ease. Compound D seems o be 420
an example o an ioxidan ha al hough i did no demons a e g ea an ioxidan ac i i y 421
by he indi ec me hod (EC50 EC50= 3.25 g L-1), i was e ec i e agains lipid 422
pe oxida ion o ood (Table 34b). The e o e, me hods o de e mine ee adical 423
sca enging such as DPPH me hod a e e y use ul o make a sc eening o he 424
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an ioxidan s, howe e o e i y hei e ec i eness in ood, me hods o e alua e he ood 425
de e io a ion mus be used. 426
The an ioxidan e ec i eness in ood depends on a a ie y o ac o s such as 427
pola i y, solubili y and me als quenching ac i i y as well as he in e ac ion wi h o he 428
ood componen s (Roginsky, & Lissi, 2005; Decke e al., 2005). An ioxidan D 429
p esen s a e y simila beha io o ha obse ed wi h he an ioxidan oil C in e ms o a 430
possible p o-oxidan e ec o inhibi ion o an ioxidan ac i i y when applied a high 431
concen a ions. 432
433
3.3. The mal s abili y and an ioxidan e ec i eness o compounds 434
435
The he mal s abili y o he i e an ioxidan s was e alua ed and he mos sui able 436
ones, ha is, which do no su e he mal deg ada ion a he LDPE p ocessing 437
empe a u e, we e chosen o blending wi h polyme ma ix. 438
Figu e 1 displays he he mog ams ob ained om he TGA expe imen s. The A 439
and B compounds ha e a lowe he mal s abili y han o he s. The deg ada ion p ocess o 440
A and B an ioxidan s s a om 100 ºC, whe eas in he o he ones (C, D and E), i 441
begins a 250 ºC (see onse in each cu e) app oxima ely. Keeping in mind ha LDPE 442
p ocessing empe a u e is a ound 150 ºC (indica ed by he a ow in he g aph), he A
443
and B an ioxidan s an ioxidan s A and B we e uled ou o blend wi h he polyme . 444
Then, he an ioxidan ac i i y o he di e en LDPE / an ioxidan blends was e alua ed 445
measu ing he OIT by DSC. The oxida ion induc ion ime inc eases wi h he inc ease o 446
an ioxidan amoun . This e ec is obse ed wi h h ee an ioxidan s, C (Blends LDPE 1-447
3), D (Blends LDPE 4-6) and E (Blends LDPE 7-9) (Figu e 2). Compa ing same 448

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o mula ions, he an ioxidan ac i i y is qui e simila in blends wi h an ioxidan C and E 449
( he maximum ime assayed) bu i is much lowe wi h D compound. 450
On he o he hand, hese esul s e eal a beha io o s udied an ioxidan s as long- e m 451
an ioxidan . The e o e, OIT alues inc ease wi h inc easing na u al an ioxidan le els, 452
cha ac e is ic beha io o phenolic compounds. Howe e phospha e s abilize s alone do 453
no inc ease he OIT o polye hylene in he empe a u e ange o 180-210 ºC (Phease, 454
Billingham, & Bigge , 2000). 455
To p e en he ma ix oxida ion du ing he ex usion and he p ema u e 456
consump ion o he na u al an ioxidan s, he wo comme cial an ioxidan s (IRGANOX® 457
1076 and IRGAFOS® 168) we e added o he polyme blends. The OIT da a o samples 458
LDPE 10 and LDPE 11 ( he maximum ime assayed) shown an a ailable le el o 459
an ioxidan in he ilm o be eleased o ish. 460
Based on he esul s ob ained, he na u al an ioxidan s ha should be selec ed o 461
inco po a e in he ilms o be es ed in he salmon packaging assay would be C and E. 462
Once hese wo p oduc s a e cons i u ed by he same ac i e p inciple Nu abiol® bu in 463
di e en p opo ions, and o he pu pose o es ing wo di e en p oduc s wi h di e en 464
composi ions in an ioxidan ac i e compounds, he p oduc s selec ed o inco po a e o 465
LPDE ilms we e C and D. Thus, wo di e en o mula ions in ocophe ols can be 466
e alua ed as well as hei e ec i eness agains lipid pe oxida ion ge ing mo e 467
in o ma ion abou he possible applica ion o hese an ioxidan p oduc s as ing edien s 468
o ac i e ilms. 469
In summa y, he C and D an ioxidan s oge he wi h he comme cial an ioxidan s 470
(I ga os® 178 and I ganox® 1076 a 0.2 and 0.4 % espec i ely) we e chosen o p epa e 471
he LDPE ac i e ilms. The ac i e ilms o mula ions selec ed we e: Film 2 and 3 472
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inco po a ed wi h na u al p oduc C a 1 % and 5 % espec i ely; Film 4 wi h na u al 473
p oduc D a 5 %. Film 1 wi h only comme cial an ioxidan s was used as con ol. 474
475
3.4 E alua ion o an ioxidan e ec i eness o he ac i e ilms. 476
477
When inco po a ed in o he plas ic ma ix, compounds wi h an ioxidan ac i i y 478
will no be a ailable as in p e ious assays, which we e added di ec ly in o ish muscle. 479
In addi ion, du ing ilms p ocessing, ha occu s a high empe a u es and agg essi e 480
condi ions, he ac i e compounds could be educed and i s an ioxidan capaci y be 481
a ec ed. The e o e, based on he esul s o di ec adding es s, comme cial p oduc s 482
which showed e idences o g ea e ec i eness in inhibi ion o lipid oxida ion in salmon 483
we e selec ed. Bo h o he p oduc s exhibi ed be e esul s a lowe concen a ions and a 484
possible p o-oxidan e ec when applied a he highes concen a ion demons a ing 485
hei high ac i i y. 486
Compound C showed a high an ioxidan ac i i y applied an ioxidan ac i i y 487
when applied a low concen a ion, a high an ioxidan ac i i y by DPPH me hod and in 488
i s composi ion con ains a high pe cen age o ocophe ols. The e o e i was inco po a ed 489
in o he plas ic ma ix a wo di e en concen a ions (1 % and 5 %). Compound D was 490
inco po a ed in o he plas ic ma ix only a he highes concen a ion o 5 % because 491
showed less an ioxidan ac i i y by DPPH me hod (EC50 = 3.25 g L-1). 492
The an ioxidan e ec o ilms addi i a ed wi h selec ed p oduc s was 493
de e mined by he capaci y o inhibi lipid oxida ion in salmon muscle du ing s o age a 494
4 °C by TBARS me hod. 495
Figu e 3 shows he malondialdehyde alues (TBARS) TBARS alues, exp essed 496
as mg MDA Kg-1 o sample, ob ained in he salmon muscle packed wi h he h ee ilms 497
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addi i a ed wi h he na u al p oduc s con aining ocophe ols compa ed o con ol ilm 498
(Film 1). Resul s showed ha lipid oxida ion inc eased in all samples du ing s o age bu 499
a di e en a es. Con ol es p esen ed a maximum o oxida ion o app oxima ely 5.8 500
mg MDA kg-1, while he samples packed wi h ac i e ilms p esen ed TBARS alues 501
ha a ied o e a ange o anging wi hin 3-4 mg MDA kg-1. 502
Salmon packed wi h ilms spiked wi h an ioxidan p oduc C in he wo 503
concen a ions o ac i e ing edien applied a 1 and 5 % (Film 2 and Film 3 504
espec i ely), expe imen ed an impo an lipid oxida ion dec ease, and he g ea es 505
an ioxidan e ec was e i ied a highe concen a ion used es ed. 506
In he i s days o assay, he e we e no impo an di e ences be ween he wo 507
concen a ions used bu a e he 7 h day di e ences we e mo e ema kable. A he i s 508
days o assay, no main di e ences be ween he wo concen a ions es ed was obse ed, 509
howe e , a e he 7 h day, di e ences we e mo e ema kable. A 7 h day, lipid 510
oxida ion was educed a ound 25 % o Film 3, while o Film 2 his dec ease was less 511
han 10 % compa ed o con ol (Film 1). A e day 11 o assay, Film 3 showed an 512
oxida ion dec ease o a ound 40 %. In he same pe iod less educ ion, a ound 15 %, was 513
obse ed o he Film 2, which a he end o he assay oxida ion was dec eased by 30 %. 514
TBARS alues o ish packed wi h Film 4 which con ains 5 % o an ioxidan p oduc D 515
also showed a signi ican educ ion in lipid oxida ion o salmon h oughou en i e assay 516
compa ed o con ol, inc easing ood s abili y. Du ing he i s 7 days o s udy, a 517
educ ion a ound 40 % was obse ed o Film 4, and a e ha , oxida ion dec easing 518
emained cons an a ound 30-35 % un il he end o he assay. 519
Compa ing he cu es o he ilms spiked wi h he wo p oduc s applied in his 520
s udy a he same concen a ion (5 %), i can be poin ed ou ha bo h ilms showed 521
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impo an an ioxidan e ec i eness and he e we e no impo an di e ences no main 522
di e ences be ween he wo compounds. 523
The e was a small di e ence in he i s days o e he i s days o analysis 524
whe e Film 4 (which con ains TOCOBIOL®® PV) was mo e e ec i e han Film 3, 525
while a he end o he assay Film 3 is he mos e ec i e ilm. This may be due o he 526
high amoun s o ocophe ols p esen s in Film 3 (p oduc C). 527
Ac i e ilms used had shown an inhibi o y e ec on he lipid oxida ion p ocess 528
compa able o he e ec obse ed wi h di ec addi ion o an ioxidan s o he ish 529
muscle. 530
Resul s ob ained wi h Films 2 and 3 con i m he e ec i eness o compound C as 531
well as he highe concen a ion inco po a ed in o he ilms g ea e he e ec i eness o 532
hem. 533
Resul s also con i med he high an ioxidan e ec o compound D, which 534
al hough did no showed high an ioxidan ac i i y in he ee adical sca enging me hod 535
(DPPH), i showed g ea e ec i eness agains salmon lipid oxida ion.536
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Figu e cap ions
Figu e 1.
TGA he mog ams o an ioxidan compounds desc ibed in Table 1.
Figu e 2.
OIT o LDPE blends desc ibed in Table 2.
Figu e 3.
Lipid oxida ion (TBARS) in salmon packed wi h an ioxidan ilms s o ed a 4 °C du ing
21 days (Film 1: con ol; Film 2: 1% an ioxidan C; Film 3: 5% an ioxidan C; Film 4:
5% an ioxidan D).

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Tables
Table 1.
An ioxidan p oduc
s composi ion
Oils wi h an ioxidan p ope ies
Powde s wi h an ioxidan p ope ies
TOCOBIOL
®
B – TOCOBIOL
®
GL C – NUTRABIOL
®
-T90 D – TOCOBIOL
®
-PV E – NUTRABIOL
®
-T50 PV
Monoglyce ides
Res : Vege able oil
18.6 %
9.70 %
4.30 %
19.8 %
Tocobiol:
Tocophe ols
S e ols
Squalene
Monoglyce ides
Res : ege able oil
P opyl galla e
Excipien s:
Leci hin
P opylene glycol
25.0 %
18.6 %
9.70 %
4.30 %
19.8 %
25.0 %
35.0 %
15.0 %
Tocophe ols
Alpha- ocophe ol
Gamma and Be a- ocophe ol
Del a- ocophe ol
Vege able oil
90.2 %
15.5 %
63.3 %
21.1 %
9.80 %
Tocobiol
Tocophe ols
S e ols
Squalene
Monoglyce ides
Res : ege able oil
Excipien :
Silica gel
65.0 %
18.6 %
9.70 %
4.30 %
19.8 %
35.0 %
Tocophe ols
Alpha- ocophe ol
Gamma and Be a- ocophe ol
Del a- ocophe ol
Vege able oil
Excipien :
Silica gel
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Table 2. 1
LDPE o mula ions 2
Na u al an ioxidan s Comme cial an ioxidan s
Fo mula ions C D E IRGAFOS 168 IRGANOX 1076
LDPE 1 5%
LDPE 2 1%
LDPE 3 0.5%
LDPE 4 5%
LDPE 5 1%
LDPE 6 0.5%
LDPE 7 5%
LDPE 8 1%
LDPE 9 0.5%
LDPE 10 0.2% 0.4%
LDPE 11 5% 0.2% 0.4%
3
Table 3. 4
F ee adical sca enging ac i i y 5
An ioxidan EC50 (g L-1)
A 1.49 ± 0.075
B 0.435 ± 0.050
C 0.401 ± 0.062
D 3.25 ± 0.095
E 0.704 ± 0.047
BHT 2.53 ± 0.085
BHA 0.273 ± 0.025
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Table 34a.
TBARS da a ob ained om salmon muscle in con ac wi h di e en concen a ions (30
and 125 mg dm-2, o samples 1 and 2 espec i ely) o an ioxidan oils (desc ibed in
Table 1) du ing s o age a 4 °C.
TBARS (mg malondialdehyde kg-1 salmon muscle)
Time (days) Con ol A1 B1 C1 A2 B2 C2
0 0.31±0.12 0.31±0.12 0.31±0.12 0.31±0.12 0.31±0.12 0.31±0.12 0.31±0.12
3 2.2±0.21 0.83±0.41 1.2±0.12 2.2±0.41 0.61±0.05 0.49±0.09 2.4±0.38
7 3.9±0.17 2.6±0.04 0.57±0.08 2.0±0.29 0.68±0.09 0.63±0.10 2.9±0.16
10 3.9±0.17 3.5±0.14 1.0±0.21 2.4±0.05 1.1±0.25 0.79±0.12 2.3±0.01
Table 34b.
TBARS alues ob ained om salmon muscle in con ac wi h di e en concen a ions
(30 and 125 mg dm-2, o samples 1 and 2 espec i ely) o an ioxidan powde s
(desc ibed in Table 1) du ing s o age ime a 4 °C.
TBARS (mg malondialdehyde kg-1 salmon muscle)
Time (days) Con ol D1 E1 D2 E2
0 0.21±0.19 0.21±0.19 0.21±0.19 0.21±0.19 0.21±0.19
3 2.4±0.90 0.66±0.27 0.96±0.32 0.68±0.43 0.52±0.01
7 2.5±0.43 1.2±0.56 2.0±0.11 5.2±0.48 1.5±0.64
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1
0
20
40
60
80
100
50 150 250 350 450 550 650
Loss mass (%)
Tempe a u e (ºC)
E
D
B
C
A
Figu e 1.
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LDPE 1 LDPE 2 LDPE 3 LDPE 4 LDPE 5 LDPE 6 LDPE 7 LDPE 8 LDPE 9 LDPE 10 LDPE 11
0
50
100
150
200
250
C e ec
D e ec
E e ec
Syne gic e ec
OIT(min)
Blend nomencla u e
Figu e 2

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Figu e 3.