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Cross-linked methyl cellulose films with murta fruit extract for antioxidant and antimicrobial active food packaging

Abstract

The authors acknowledge the Financial support of CONICYT through the Project FONDEF “Programa IDeA Ciencia Aplicada” (Project CA13I10334) and “Programa de Financiamiento Basal para Centros Científicos y Tecnológicos de Excelencia” (Project FB0807).

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Cross-linked methyl cellulose films with murta fruit extract for antioxidant and antimicrobial active food packaging

Author: López de Dicastillo, Carol,Bustos, Fernanda,Guarda, Abel,Galotto, María José
Publisher: Elsevier
DOI: http://dx.doi.org/10.13039/501100002848
Source: https://digital.csic.es/bitstream/10261/376871/1/FOODHYD2016-Lopezdedicastillo.pdf
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C oss-linked me hyl cellulose ilms wi h mu a ui ex ac o an ioxidan and
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an imic obial ac i e ood packaging
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Ca ol López de Dicas illo*, Fe nanda Bus os, Abel Gua da, Ma ia José Galo o
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Food Packaging Labo a o y (Laben-Chile), Depa men o Science and Food Technology, Facul y o
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Technology, Cen e o he De elopmen o Nanoscience and Nano echnology (CEDENNA), Uni e sidad de
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San iago de Chile (USACH), San iago, Chile
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*Co esponding au ho : a[email p o ec ed]l
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ABSTRACT
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The use o biopolyme s as subs i u es o non-deg adable adi ional plas ics is an in e es ing
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al e na i e pa icula ly o sho - e m applica ions, such as ood packaging. Addi ionally,
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ac i e packaging has a ac ed much a en ion as an inno a i e echnology o ood
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conse a ion. Thus, he unc ionali y o biocomposi e ilms based on me hylcellulose (MC)
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and mu a ui (MU) (Ugni molinae Tu cz) ex ac was s udied. Mu a ui is a na i e
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Chilean be y and good sou ce o an ioxidan and an imic obial compounds. Fi s , a MU
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ex ac wi h he highes an ioxidan abili y and polyphenolic con en was selec ed, and ac i e
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MC ilms we e p epa ed by cas ing using glu a aldehyde (GA) o imp o e hei wa e
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esis ance. The e ec s o GA concen a ion and inco po a ion o MU ex ac on ma e ial
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p ope ies and an imic obial and an ioxidan ac i i ies we e examined. The addi ion o GA
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g ea ly dec eased swelling index, imp o ed mechanical p ope ies and an ioxidan and
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an imic obial ac i i ies achie ed highes po en ial when GA was added a lowes
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concen a ion.
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Keywo ds: Na u al ex ac s, ac i e packaging, elease, me hyl cellulose, c osslinking.
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Chemical compounds s udied in his a icle: 2,2´-azinobis(3-e hylbenzo hiazoline-6-
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sulphona e) (ABTS) (PubChem CID 90658258); polye hylene glycol (PubChem CID
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24762); glu a aldehyde (PubChem CID 3485); gallic acid (PubChem CID 370); T olox
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(PubChem CID 40634); Folin-Ciocal eu´s phenol eagen (PubChem CID 516996);
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anhyd ous sodium ca bona e (PubChem CID 10340).
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1. In oduc ion
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Du ing he las yea s, he esea ch on he de elopmen o ac i e ma e ials wi h
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an imic obial and an ioxidan p ope ies has inc eased eno mously wi h he pu pose o
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p o ec ood om oxida i e eac ions and mic obial g ow h. Fu he mo e, he applica ion o
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na u al ing edien s is a new end in he ood indus y and ood esea ch, i.e., na u al
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p ese a i es de i ed om na u al sou ces, ins ead o syn he ic subs ances and he educ ion
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o addi i es in oods. Na u al subs ances such as α- ocophe ol, essen ial oils and plan
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ex ac s ha e been inco po a ed in o polyme s o he p epa a ion o ac i e packages
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(Galo o, Gua da, & Lopez de Dicas illo, 2015; Gómez Es aca, Lopez de Dicas illo,
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He nandez Muñoz, Ca ala, & Ga a a, 2014). On he o he hand, he p oduc ion and he
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use o plas ics h oughou he wo ld ha e g own eno mously, wo sening en i onmen al
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impac and p oblems o he was e disposal. The use o biopolyme s as subs i u es o non-
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deg adable syn he ic polyme s is becoming a sus ainable al e na i e, pa icula ly in e es ing
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o sho - e m applica ions, such as ood packaging. Thus, he de elopmen o biodeg adable
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ac i e packaging con aining na u al ex ac s de i ed om plan s is one in e es ing s a egy
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la gely conside ed by he ood packaging indus y (Coope , 2013, Seydim & Sa ikus, 2006;
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Song, Lee, Al-Mijan, & Song, 2014). One al e na i e o de elop bio-based ma e ials is by
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ilm coa ing mul ilaye . A ilm coa ing is a hin polyme -based coa be ween 20-10 µm
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applied o a solid suppo . Biobased coa ings o e ex a ad an ages such as low cos s due o
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he educ ion on amoun o polyme , educing e ms o CO2 emissions, and he p ocessing
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empe a u es a e lowe , which is e y use ul o a oid he mal deg ada ion o ac i e agen s.
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Fo indus ial p ocesses, he echniques can be ex usion o co-ex usion o mul ilaye ilms,
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lamina ion, and mainly oll-d ying o he sol en emo al o he polyme solu ion
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(Debeau o , Quezada-Gallo, & Voilley, 1998; Va ianinen, Vaha-Nissi, M., & Ha lin,
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2014).
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Among he biopolyme s, anionic linea polysaccha ides de i ed om cellulose, such as
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me hyl cellulose (MC), a e e y p omising because hey a e en i onmen ally iendly due o
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hei biodeg adabili y. In he ood indus y, MC ilms p omise impo an po en ial o be used
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o packaging applica ions due o hei excellen ilm-making p ope ies, la ge a ailabili y,
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low cos , anspa ency, high-s eng h and easy abili y o be p ocessed (Aminabha i,
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Balundgi, & Cassidy, 2008; Coope , 2013; Rimdusi , Jingjid, Dam ongsakkul,
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Tip ipako n, & Takeichi, 2008). Me hyl cellulose a e polysaccha ides composed o linea
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chains o β(14) glucosidic uni s wi h me hyl subs i uen s ha p o ides ilms ha a e wa e
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soluble and oil-and g ease esis an and wi h e icien oxygen and lipid ba ie p ope ies
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(Pa k & Ruckens ein, 2001; Ga cía, Pino i, Ma ino, & Za i zky, 2004; Nispe os-
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Ca iedo, 1994).
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MC ilms, like mos ilms based on biopolyme s, a e highly sensi i e o en i onmen al
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condi ions and due o hei hyd ophilic na u e, physical p ope ies a e e y suscep ible o
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mois u e and biodeg adabili y. As a esul , se e al esea che s ha e de eloped new
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o mula ions h ough small chemical modi ica ions o hese polyme s, such as c osslinking
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p ocesses which p omo e co alen linkages be ween polyme chains. C osslinking is one o he
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mos popula me hods used o modi y wa e -soluble polyme s in o de o achie e desi ed
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p ope ies. MC can be c oss-linked by means o di e en me hods, such as adia ion o by using
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con enien chemical c oss-linke s consis ing on aldehydes, polyepoxy compounds, and e en
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ea ca echins (A ala, 2002; Wach, Mi omo, Nagasawa, & Yoshii, 2003; Yu, Tsai, Lin, Lin,
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& Mi, 2015).
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Glu a aldehyde, GA, is a widely used c oss-linke which o ms a s ong co alen
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a achmen on o a polyme su ace, p o iding he way o a igid s uc u e (He nández-
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Muñoz, Villalobos, & Chi al , 2004; Lee e al., 2005; Mansu , Sadahi a, Souza, &
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Mansu , 2008; Pa k, Bae, & Rhee, 2000). Some polyme cha ac e is ics could be al e ed
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by c osslinking such as pe meabili y, mechanical p ope ies and d ug eleasing. The e ec
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o addi ion o c oss-linke s on compounds ha a e desi ed o be eleased has been al eady
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s udied, bu mainly wi h pha maceu ical applica ions (Aiedeh, Taha, Al-Hia i, Bus anji, &
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Alkha ib, 2006; Ranjha, & Qu eshi, 2014; López de Dicas illo, Jo dá, Ca alá, Ga a a,
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& He nández, 2011a; Ma inez, Ca es, Ra i, Li, & Chaiko , 2014; Teng, Campello, &
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Wu, 2011).
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In he de elopmen o ac i e ma e ials i is impo an o each a con olled elease o ac i e
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componen s o he ood o p o ec i om oxida ion o mic obial spoilage, enhancing ood
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sa e y and shel li e. In his wo k, he e ec o c osslinking on he elease o an ioxidan
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compounds om ac i e packaging was e alua ed. Release o hese ac i e agen s will be
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comple ely dependen on he swelling deg ee o he polyme . Due o i s hyd ophillici y,
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me hyl cellulose was chosen in his wo k o be he polyme ma ix in he de elopmen o
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ac i e ma e ials o ood packaging sys ems (Cala ayud e al., 2013; Lopez de Dicas illo e
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al., 2011b). On he o he hand, GA was selec ed as c oss-linke agen due o i s p o en
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e ec i eness in o he wo ks and o a oid deg ada ion o phenolic compounds p opi ia ed by
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i adia ion (Beaulieu, D´Ap ano, & Lac oix, 1999, Hi ashima e al., 2013, Pa k e al.,
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2001; Rimdusi e al., 2008). And inally, polye hylene glycol was inco po a ed as
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plas icize . The use o plas icize is e y impo an on he ma e ials de elopmen wi h
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biodeg adable polyme s because hey dec ease he in e molecula in e ac ions among he
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unc ional g oups o he backbone chains, esul ing in inc eased lexibili y and ex ensibili y.
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In ood indus y, polye hylene glycol (PEG) has been widely used o MC p oduc s o
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olling, cas ing, o ex uding p ocesses because i p o ides se e al ad an ages due o
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chemical in e ac ions be ween MC and PEG s uc u es (Pa k e al., 2001; Sa ka , &
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Walke , 1995).
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Ugni Molinae, also known as “mu a”, “mu illa”, “uñi” o “Chilean c anbe y”, is a na i e
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plan om Chile, wes e n A gen ina, and ce ain egions o Boli ia. I is a wild sh ub o he
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My aceae amily ha bea s a oma ic ed globula ui ha is said o combine he swee ness
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o a s awbe y wi h he pungency o a gua a and he ex u e o a d ied bluebe y. P e ious
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s udies ha e shown mu a ui is composed by high le els o la an-3-ols, such as ca echin
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and epica echin, la onols, such as que ce in and que ce in-3-glucoside, and
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hyd oxycinnamic acid, such as ca eic acid-3-glucoside. The o he compounds we e
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an hocyanins, like cyanidin-3-glucoside and peonidin-3-glusocide, u in, gallic acid,
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que ci in, lu eolin, kaemp e ol, p-couma ic and my ice in, ha could a o d in e es ing
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an imic obial and an ioxidan ac i i ies o ood p o ec ion (Al a o e al., 2013; Junquei a-
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Gonçal es e al., 2015; Ruiz e al., 2010; Sch eckinge , Lo on, Lila, & Gonzalez de
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Mejia, 2010).
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2. Ma e ials and me hods
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2.1. Ma e ials and Reagen s
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Me hyl cellulose (MC) was ob ained om Reu e S. L. (San iago, Chile), 2,2´-azinobis(3-
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e hylbenzo hiazoline-6-sulphona e) (ABTS), Folin Ciocal eu phenol eagen , anhyd ous
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sodium ca bona e, Gallic acid, 6-hyd oxy-2,5,7,8- e ame hylch oman-2-ca boxylic acid
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(T olox) and polye hylene glycol (PEG) (a e age molecula weigh 190-210) we e pu chased
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om Sigma Ald ich Quimica S.A. Ugni Molinae ui , commonly known as mu a be y ui ,
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MU, was ob ained om “Na i o Li e”, an USDA and IMO o ganic g ade ce i ied company,
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whose ui s we e al eady d ied and milled.
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G am-posi i e bac e ia Lis e ia innocua ATCC33090 was ob ained om Labo a o y
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Mic obiologics (Uni e si y o Chile, Chile) and s o ed in T yp one soy b o h (TSB) a -80
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°C un il needed. Fo expe imen al use, he s ock cul u es we e main ained on T yp one soy
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aga (TSA) slan s a 4 °C, and o expe imen a ion, a loop ul o each s ain was ans e ed
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o 10 ml o TSB and incuba ed a 37 °C o 18 h o ob ain esh ea ly-s a iona y phase cells.
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2.2. Na i e F ui S udies - An ioxidan Ac i i y and Polyphenolic Con en
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Mu a ui powde was ex ac ed unde e hanol, e hanol 50% and dis illed wa e in o de
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o s udy he pola i y o he mos an ioxidan compounds and ind he ex ac wi h highes
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an ioxidan capaci y. The ex ac ion was ca ied ou a 40 °C du ing 3 h in an E lenmeye
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lask in a shaking incuba o a 150 pm. Then he mix u es we e cen i uged and he uppe
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phases we e e alua ed h ough ABTS me hod and Folin Ciocal eu es in o de o measu e
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an ioxidan capaci y (as adical sca enging capaci y) and polyphenolic con en , espec i ely.
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Folin-Ciocal eu me hod was done acco ding o he me hod o Single on e al., 1999, wi h
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some modi ica ions (Single on, O ho e , & Lamuela-Ra en ós, 1999). Gallic acid was
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used as he s anda d o he calib a ion cu e and polyphenol con en (PC) was exp essed as
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gallic acid equi alen s (GA).
150
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ABTS me hod was done acco ding o p e ious wo ks (Lopez de Dicas illo, Cas o-
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Lopez, Lasagabas e , Lopez-Vila iño, & Gonzalez-Rod iguez, 2013). ABTS assay is
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based on he inhibi ion o he adical ca ion 2,2´-azinobis(3-e hylbenzo hiazoline-6-
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sulphona e), ABTS+•, by an ioxidan s, which has a cha ac e is ic wa eleng h abso p ion
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spec um wi h maximum a 715 nm. This ca ionic adical is neu alized ei he by di ec
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educ ion ia elec on ans e o by adical quenching ia H a om ans e (P io , Wu, &
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Schaich, 2005). The pe cen age inhibi ion alues we e calcula ed using equa ion 1:
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% Inhibi ion= % I = (Acon ol – Asample) /Acon ol * 100 (1)
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Sca enging ac i i ies o he adicals we e exp essed as T olox equi alen s pe g am o
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mu a ui sample.
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2.3. Ob aining Na u al Ex ac
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In o de o ob ain a ui ex ac wi h high concen a ion o be inco po a ed o ilm
164
de elopmen , mu a ui was ex ac ed wi h e hanol 50% (20 mg/mL) a 40 ºC du ing 3 h.
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The mix u e was cen i uged, il e ed and concen a ed o a inal concen a ion o 100 mg
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mu a/ mL.
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2.4. Films P epa a ion
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MC ilms we e p epa ed by solu ion-ex ension-e apo a ion (“cas ing”). This echnique
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has he ad an age o educing he he mal deg ada ion o he na u al ex ac wi h espec o
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con en ional ex usion and can be compa ed o ilm-coa ing echniques (Hong, Lee, & Son,
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2005; Va ianinen e al., 2014). 1 g o MC was dissol ed in 100 mL e hanol 70% by hea ing
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a 70 ºC (1% w/ ) wi h cons an s i ing un il o al dissolu ion. In o de o imp o e he wa e
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esis ance o MC ilms, he polyme was c oss-linked wi h glu a aldehyde a di e en
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concen a ions, 10, 15 and 20 % espec o polyme weigh . The pH o he mix u e was
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adjus ed o 3 using a HCl solu ion (1 M), and la e he solu ion was cooled o 40 ºC o a ound
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2 h unde agi a ion (Pa k e al., 2011; Plie a e al., 2006). Then, 233 µL o polye hylene
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glycol (PEG) (25% w/w o MC) was added as plas icize . In he case o he ac i e ma e ials,
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be o e he addi ion o PEG, addi ionally 2.5 mL o mu a be y ex ac (MU) (0.25:1 w . a io
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MU:MC) ob ained on p e ious sec ion was added o he mix u e. Films we e cas on a 20 cm
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diame e su ace pe i dish in a chambe a 55 ºC o e nigh . The inal ilms we e ca. 75-90
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μm hick.
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2.5. Physical Cha ac e iza ion o C oss-linked MC Films
186
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2.5.1. Scanning Elec onic Mic oscopy (SEM) s udies
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SEM mic og aphs o ac i e ilms we e ob ained om a JSM-5410 Jeol Scanning
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Mic oscope wi h accele a ing ol age a 10 kV. Fi s ly, ilms we e ac u a ed using Tensile
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Tes e because h ough c yo- ac u e was no possible o ob ain samples. A e , samples we e
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coa ed wi h gold palladium using a Spu e ing Sys em Humme 6.2 and SEM mic og aphs
192
o he su ace and he c oss-sec ion o he ma e ials we e aken.
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194
2.5.2. Op ical P ope ies
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The ilm colo was de e mined wi h a Konica Minol a model CR-410 colo ime e . The
196
ilm specimen was placed on he su ace o a s anda d whi e pla e, and he CIELAB colo
197
space was used o de e mine he pa ame e s L*, a*, and b*. The colo was also exp essed
198
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also a educ ion o his peak. When compa ed o MC ilm, he p esence o he plas icize
342
PEG was obse ed by he p esence o a new peak a 1350 cm-1 (C-H bending) (Shameli e
343
al., 2012).
344
Fig. 2B shows he FTIR o mu a ex ac , GA, MC and he ac i e ma e ial
345
MC_10GA_MU as an example, since all ac i e ma e ials p esen ed he same spec a. I was
346
possible o obse e mu a ex ac p esen ed a cha ac e is ic peak a a simila wa enumbe o
347
GA. Thus, he inco po a ion o mu a ui ex ac in he case o ac i e ma e ials was
348
pe cei ed only by he inc ease in abso bance o his peak a ound 1720 cm-1.
349
350
3.2.4. Swelling Resul s
351
Table 3 only p esen s swelling index (SI) esul s o c oss-linked ilms since MC ilms no
352
c oss-linked we e quickly swelled and comple ely dissol ed in wa e wi hin 1 h.
353
As i was expec ed, he inco po a ion o GA induced he chemical c osslinking o me hyl
354
cellulose which was based on he gene a ion o co alen bonds ha main ained he in eg i y
355
o he polyme ic ne wo k and educed polyme chain lexibili y and mobili y. C oss-linked
356
MC ilms wi h and wi hou mu a ui ex ac we e highly s able when imme sed in wa e ,
357
he shape did no change bu ilms swelled and hei su ace a ea inc eased. Fu he mo e, SI
358
alues dec eased as GA concen a ion inco po a ion inc eased. Films wi h 20% GA showed
359
e y low alues o SI, sugges ing ha he hyd ophillici y o c oss-linked ilms was g ea ly
360
educed.
361
362
363
364

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On he o he hand, he inco po a ion o mu a ex ac dec eased he e iciency o he
365
c osslinking p ocess and esul ed in a conside able inc ease on swelling index alues in he
366
case o ac i e ma e ials. P obably some hyd oxyl g oups om an ioxidan compounds o
367
mu a ex ac a e eac ing wi h glu a aldehyde molecules, dec easing c osslinking e iciency
368
(Yu e al., 2015). GA, as a dialdehyde, can unde go a a ie y o eac ions, and he mos
369
common a e nucleophilic addi ion eac ions. Taken in o accoun ha mu a ui ex ac is
370
composed o la onoids and o ganic acids, he main eac ions would be be ween he ca bonyl
371
g oups o GA molecule and he hyd oxyl g oups o hese molecules h ough nucleophilic
372
addi ions o he ca bon-oxygen double bonds. Reac ions o aldehydes wi h alcohols p oduce
373
ei he hemiace als (a unc ional g oup consis ing o one —OH g oup and one —OR g oup
374
bonded o he same ca bon) o ace als (a unc ional g oup consis ing o wo —OR g oups
375
bonded o he same ca bon), depending upon condi ions.
376
377
3.2.5. The mal P ope ies
378
The mal s abili y o MC and ac i e MC ilms we e e alua ed by TGA. The he mog ams
379
and hei de i a i e o he weigh loss o all MC-based ma e ials a e shown in Fig. 3.
380
The mog ams clea ly show he maximum decomposi ion o ma e ials occu ed a
381
app oxima ely 361 °C, co esponding o me hyl cellulose deg ada ion (Rimdusi e al.,
382
2012; Tjong, Xu, & Meng, 1999). I can be no iced ha he inco po a ion o plas icize
383
inc eased he he mal s abili y a ound 20 °C (381 and 362 °C deg ada ion empe a u es o
384
plas icized MC_PEG and unplas icized MC, espec i ely). On he o he hand, he
385
inco po a ion o GA dec eased his e ec , and his e ec was no p opo ional o GA con en
386
as maximum deg ada ion empe a u e alues o all c oss-linked ma e ials we e e y simila ,
387
18
app oxima ely a 361 °C, as Fig. 3A and B show. In his case, c osslinking a e no gene a ing
388
new bonds he mally mo e esis an o hea han ini ial bonds exis ing in MC ne wo k.
389
In gene al, he he mal decomposi ion o c oss–linked MC based ilms ollowed mul is ep
390
decomposi ion. The i s s ep was he e apo a ion o he esidual sol en om cas ing me hod
391
(e hanol-dis illed wa e ) wi h i s maximum a ound 80 ºC (~3-6 % w ). This was ollowed by
392
a decomposi ion p ocess a app oxima ely a 260 ºC, which co esponds o he new linkage
393
deg ada ion o mo e he mo-sensi i e compounds, wi h lowe molecula weigh s
394
co esponding o c osslinking p ocess. Finally he he mal MC deg ada ion p e iously
395
men ioned.
396
The inco po a ion o mu a ex ac did no o e any addi ional p o ec ion o he polyme .
397
No mally he inco po a ion o an ioxidan s inc eases he mal polyme s abili y bu he
398
opposi e e ec obse ed in his wo k was al eady seen in o he wo ks (A ie a, Lopez,
399
Fe ándiz, & Pel ze , 2013, Lopez de Dicas illo, Alonso, Ca alá, Ga a a, & He nandez-
400
Muñoz, 2010). A TGA s udy o me hyl cellulose wi h mu a ex ac wi hou c osslinking
401
was ca ied ou o obse e he deg ada ion p ocesses. As Fig.3B shows, simila deg ada ion
402
p ocesses we e displayed when compa ed o ac i e c oss-linked ma e ials. MU ex ac was
403
also analyzed, showing a b oad deg ada ion band ha s a s a 120 ºC app oxima ely, wi h a
404
maximum a app oxima ely 200 ºC. This deg ada ion can be associa ed o he
405
“ca ameliza ion” p ocess o he suga s om he la onoids o MU ex ac , mainly la onols,
406
such as my ice in and que ce in, which a e pa ially glycosyla ed (Shene e al., 2008). So,
407
his peak a 250 °C can be associa ed o a c osslinking e ec o ca bonyl g oups om
408
la onoids om his ui ex ac . This ac has been shown ecen ly in some wo ks (Yu e
409
al., 2015; Benbe aieb, Ka bowiak, B achais, & Debeau o , 2015).
410
411
19
3.2.6. Mechanical P ope ies
412
The ensile p ope ies including elonga ion a b eak (EB), Young´s modulus (YM) and
413
ensile s eng h (TS) o all he ilms de eloped we e e alua ed, and he esul s a e shown in
414
Fig. 4. As i was expec ed, he alue o YM o MC_PEG dec eased conside ably due o i s
415
plas icizing e ec . Ne e heless, as he inc ease o YM alues o all c oss-linked ilms
416
shows, he inco po a ion o GA led o a ema kable inc ease in igidi y due o i s c oss-linke
417
unc ion.
418
Resul s e ealed c oss-linking p ocesses also had a signi ican e ec on inc easing he
419
mechanical s eng h o he ilms. The MC chains mobili y dec eased due o he s ong
420
in e ac ion be ween polyme ic ma ix and c oss-linke GA, enhancing he polyme s eng h
421
bu educing he lexibili y o he co esponding ilms. This e ec esul ed in an enhancemen
422
o TS alues and a ema kable educ ion in EB alues. Simila esul s we e obse ed when
423
MC was c oss-linked wi h ea-ca echins (Yu e al., 2015). Yu e al. showed he igid a oma ic
424
and he e ocyclic ings om la onoids can physically c oss-link MC. Such inc ease in TS
425
was also obse ed o gela in-soy p o ein ilms in he p esence o e ulic acid and que ce in
426
(Benbe aieb e al., 2015). In his wo k, la onols, such as que ce in and my ice in, om
427
mu a ex ac could be he eason o he highes alues o TS ob ained in he case o ac i e
428
ilms. The inco po a ion o MU ex ac had also a singula e ec inducing ilms o a
429
conside able inc ease on EB alues. This e ec could be due o he inc ease in polyme
430
chains mobili y caused by he p esence o some componen s om mu a ex ac be ween
431
polyme ic chains ha inc eased he lexibili y. This plas icizing e ec can be no iced also
432
om YM esul s. I is in e es ing ha when GA was a highes concen a ion his e ec was
433
diminished, as i some MU ex ac componen s we e eac ing wi h GA molecules.
434
435
20
3.3. An ioxidan ac i i y esul s
436
437
Fig. 5 p esen s he adical sca enging ac i i ies o MC ma e ials exposed o ABTS+·
438
solu ion exp essed as T olox equi alen s. As i was expec ed, ilms wi hou he inco po a ion
439
o MU ex ac did no show an ioxidan ac i i y, as Fig. 5 shows in he case o ilm wi h 20%
440
GA (MC_20GA), as an example.
441
The elease o an ioxidan componen s o MU ex ac om ma e ials ad anced owa ds
442
an equilib ium alue ha co esponded o 50.6, 40.4 and 32.4 % o he nominal alue o
443
ma e ials wi h 10, 15 and 20% GA, espec i ely. The ex en o elease a equilib ium depends
444
on he compa ibili y o he mig an wi h bo h he ood simulan and he polyme ic ilm. The
445
kine ics o all ac i e c oss-linked ma e ials p esen ed simila p o iles, ollowing an
446
“exponen ial g ow h o a maximum” ype p o ile. The inco po a ion o PEG, as plas icize ,
447
su ely acili a ed he elease o ac i e agen s because molecula and polyme chain
448
mo emen s we e enhanced. Se e al wo ks ha e used plas icize s o modi y polyme
449
p ope ies ela ed o he mass anspo o ac i e agen s (Lopez de Dicas illo, A es-Pe nas,
450
Cas o-López, Vila iño, & Gonzalez-Rod íguez, 2013; Siepmann, Sielpmann, Wal he ,
451
MacRae, & Bodmeie , 2008). The e ec o he GA concen a ion was clea ly no iceable,
452
diminishing an ioxidan ac i i y o ma e ials as GA concen a ion inc eased. This was
453
p obably due o he eac ions be ween an ioxidan compounds om na u al ex ac and GA
454
ha dec eased hei a ailabili y, and his ac was al eady e idenced by o he esul s, such as
455
mechanical p ope ies. An ioxidan ac i i y o ilms was p opo ional o an ioxidan s eleased
456
om ac i e biocomposi es o adical solu ion. This is he eason he kine ic p o ile o adical
457
sca enging ac i i ies o ma e ials p esen ed he same p o ile as common ac i e compound
458
elease om ac i e ma e ials (Lopez de Dicas illo e al., 2011a,b; Masche oni, Guilla d,
459
21
Nalin, Mo a, & Pie gio anni, 2010). Release o componen s om polyme ma ix is also
460
based on swelling deg ee o polyme s. As Table 2 indica es, highes swelling deg ee was
461
ob ained om ma e ials wi h 10% GA, as well as he highes an ioxidan ac i i y.
462
The ex en o he an ioxidan ac i i y can be cha ac e ized by he pa i ion coe icien , K,
463
which is de ined as he a io o he amoun o an ioxidan s e ained in he polyme ic phase
464
ela i e o he concen a ion o eleased an ioxidan s. As Fig. 5 shows, K coe icien s alues
465
ob ained we e e y simila and app oxima ely equal o alue 1, which co esponds when
466
equilib ium is eached ending up in a simila concen a ion o an ioxidan s in he polyme
467
han in he ood. Ne e heless, esul s showed highes an ioxidan ex en elease occu ed
468
when GA was lowes because as GA concen a ion inc eased, mo e an ioxidan compounds
469
we e e ained in he polyme s due o eac ions be ween an ioxidan molecules and GA.
470
471
3.4. An imic obial ac i i y esul s
472
473
Table 4 shows he an imic obial esul s ob ained o ac i e MC ilms de eloped wi h MU
474
ex ac agains Lis e ia innocua. The dilu ion me hod clea ly displayed ha ilms con aining
475
MU ex ac we e able o signi ican ly educe he g ow h o bac e ia om he i s day o
476
con ac . As obse ed in Table 4, he dilu ion me hod was use ul o quan i y he bac e ial
477
educ ion caused by ilms. Resul s showed a dec ease in mic obial g ow h o all samples
478
assayed including he blank ilm wi h highes GA con en . This ilm may con ain esidual
479
GA which can elease om he ilms o educe he g ow h o bac e ia because GA p esen s
480
some an imic obial ac i i y.
481
As i was expec ed, an imic obial esul s ollowed he same endency as an ioxidan
482
ac i i y. Films wi h lowes GA concen a ion p esen ed highes an imic obial powe ,
483

22
educing almos 4 logs, and esul ed in he mos e icien an imic obial ilm. In spi e o i s
484
in e es ing p ope ies, speci ic mig a ion es s should be ca ied ou be o e any applica ion o
485
ensu e ood sa e y.
486
487
4. Conclusions
488
489
In his wo k ac i e ilms based on me hyl cellulose (MC) and mu a ui ex ac (MU)
490
we e ob ained h ough cas ing p ocess. MC polyme was c oss-linked wi h glu a aldehyde
491
(GA) a di e en concen a ions owing o s udy he e ec o c osslinking deg ee on physical
492
p ope ies o he polyme and he elease o ac i e compounds. The mal p ope ies we e
493
sligh ly a ec ed by he inco po a ion o GA and MU, bu he he mal s abili y o he
494
de eloped ma e ials is s ill app op ia e o he in ended use. C osslinking p ocesses inc eased
495
mechanical s eng h and dec eased swelling index o de eloped ma e ials and he amoun o
496
ac i e agen s a ailable om MU ex ac in he polyme ma ixes. As GA concen a ion
497
inco po a ed inc eased, swelling index, an ioxidan and an imic obial ac i i ies o ac i e
498
ma e ials dec eased.
499
500
Acknowlegmen s
501
The au ho s acknowledge he Financial suppo o CONICYT h ough he P ojec
502
FONDEF “P og ama IDeA Ciencia Aplicada” (P ojec CA13I10334) and “P og ama de
503
Financiamien o Basal pa a Cen os Cien íficos y Tecnológicos de Excelencia” (P ojec
504
FB0807).
505
506
Re e ences
507
23
508
Aiedeh, K. M., Taha, M. O., Al-Hia i, Y., Bus anji, Y., & Alkha ib, H. S. (2006). E ec o ionic
509
c osslinking on he d ug elease p ope ies o chi osan diace a e ma ices. Jou nal o
510
Pha maceu ical Sciences, 96, 38-43.
511
512
Al a o, S., Mu is, A., Palma, R., Qui oz, A., Seguel, I., & Scheue mann, E. (2013). In luence
513
o geno ype and ha es yea on polyphenol con en and an ioxidan ac i i y in mu illa
514
(Ugni molinae Tu cz) ui . Jou nal o Soil Science and Plan Nu i ion, 13, 67-78.
515
516
Aminabha i, T. M., Balundgi, R. H., & Cassidy, P. E. (2008). A e iew on biodeg adable
517
plas ics. Polyme -Plas ics Technology and Enginee ing, 29, 235-262.
518
519
A ancibia-A ila, P., Toledo, F., We ne , E., Suhaj, M., Leon owicz, H., Leon owicz, M.,
520
Ma inez-Ayala, A., Pasko, P., & Go ins ein, S. (2011). Pa ial cha ac e iza ion o a new
521
kind o chilean mu illa-like be ies. Food Resea ch In e na ional. 44, 2054-2062.
522
523
A ie a, M. P., Lopez, P., Fe ándiz, S., & Pel ze , M. A. (2013). Cha ac e iza ion o PLA-
524
limonene blends o ood packaging applica ions. Polyme Tes ing, 32, 760-768.
525
526
Beaulieu, M.; D´Ap ano, M. B., & Lac oix, M. (1999). Dose a e e ec o gamma i adia ion
527
on phenolic compounds, polyphenol oxidase, and b owning o mush ooms (Aga icus
528
bispo us). Jou nal o Ag icul u al and Food Chemis y, 47, 2537-2543.
529
530
Benbe aieb, N.; Ka bowiak, T., B achais, C. H., & Debeau o , F. (2015). Coupling y osol,
531
que ce in o e ulic acid and elec on beam i adia ion o c oss-link chi osan-gela in ilms:
532
A s uc u e- unc ion app oach. Eu opean Polyme Jou nal, 67, 113-127.
533
534
Be gonzi, M., Bilia, A., Ba i, L., Mazzi, G., & Vincie i, F. (2007). S udies on he in e ac ions
535
be ween some la onols and cyclodex ins. Bioo ganic & Medicinal Chemis y Le e s, 17,
536
5744–5748.
537
538
24
Cala ayud, M., Lopez de Dicas illo, C., Lopez-Ca ballo, G., Velez, D., He nandez-Muñoz, P.,
539
& Ga a a, R. (2013). Ac i e ilms based on cocoa ex ac wi h an ioxidan , an imic obial
540
and biological applica ions. Food Chemis y, 139, 51-58.
541
542
Coope , T. A. (2013). De elopmen s in bioplas ic ma e ials o packaging ood, be e ages and
543
o he as -mo ing consume goods. In N. Fa me (Ed.), T ends Pack Food, Be e ages and
544
O he Fas -Mo ing consume goods (FMCG) (pp. 108-152). Woodhead Publishing, UK.
545
546
Debeau o , F., Quezada-Gallo, J. A., & Voilley, A. (1998). Edible ilms and coa ings:
547
omo ow´s packaging: a e iew. C i ical Re iews in Food Science, 38, 299-313.
548
549
Galo o, M. J., Gua da, A., Lopez de Dicas illo, C. An imic obial Ac i e Polyme s in Food
550
Packaging. In G. Ci illo, F. Iemma, & U. G. Spi izzi (Eds.), Func ional Polyme s in Food
551
Science, edi ion no1. Sc i ene Publishing Edi o ial, New Je sey, USA. 2015.
552
553
Ga cía, M. A., Pino i, A., Ma ino, M. N., & Za i zky, N. M. (2004). Cha ac e iza ion o
554
composi e hyd ocolloid ilms. Ca bohyd a e Polyme s, 56, 339-345.
555
556
Gómez Es aca, J., Lopez de Dicas illo, C., He nandez Muñoz, P., Ca ala, P., Ga a a, R. (2014).
557
Ad ances in an ioxidan ac i e ood packaging. T ends in Food Science & Technology. 35,
558
42-51.
559
560
Hause , C., Peñaloza, A., Rod iguez, F., Gua da, A., & Galo o, M. J. (2014). P omising
561
an imic obial and an ioxidan ex ac s o mu a lea es (Ugni molinae Tu cz): Shel -li e
562
ex ension and ood sa e y. Food Packaging and Shel Li e, 1, 77-85.
563
564
He nández-Muñoz, P., Villalobos, R., & Chi al , A. (2004). E ec o c oss-linking using
565
aldehydes on p ope ies o glu enin- ich ilms, Food Hyd ocolloids, 18, 403-411.
566
567
Hi ashima, F. K., Fabb i, A. D. T., Sag e i, J. M. A., Nunes, T. C. F., Gal ao, N. S., Lan e -
568
Ma quez, U. M., & Saba o, S. F. (2013). In luence o gamma i adia ion on phenolic
569
25
compounds o minimally p ocessed baby ca o s. 2013 In e na ional Nuclea A lan ic
570
Con e ence – INAC 2013. ISBN: 978-85-99141-05-2.
571
572
Hong, S., Lee, J., & Son, S. (2005). P ope ies o polysaccha ide-coa ed polyp opylene ilms
573
as a ec ed by biopolyme and plas icize ypes. Packaging Technology and Science, 18, 1-
574
9.
575
576
Junquei a-Gonçal ez, M. P., Yañez, L., Mo ales, C., Na a o, M., Con e as, R. A., & Zuñiga,
577
G. E. (2015). Isola ion and cha ac e iza ion o phenolic compounds and an hocyanins om
578
mu a (Ugni Molinae Tu cz.) ui s. Assesmen o an ioxidan and an ibac e ial ac i i y.
579
Molecules, 20, 5698-5713.
580
581
Lee, M., Lee, S., Ma, Y., Pa k, S., Bae, D., Ha, S., & Song, B. (2005). E ec o plas icize and
582
c osslinking agen on he physical p ope ies o p o ein ilms. Jou nal o Food Science and
583
Nu i ion, 10, 88-91.
584
585
Lopez de Dicas illo, C., Alonso, J. M., Ca alá, R., Ga a a, R., & He nandez-Muñoz, P. (2010).
586
Imp o ing he an ioxidan p o ec ion o packaged ood by inco po a ing na u al la onoids
587
in o e hylene- inyl alcohol copolyme (EVOH) ilms. Jou nal o Ag icul u al and Food
588
Chemis y, 58, 10958-10964.
589
590
López de Dicas illo, C., Jo dá, M., Ca alá, R., Ga a a, R., & He nández, P. (2011a).
591
De elopmen o ac i e poly inyl alcohol/β-cyclodex in composi es o sca enge undesi able
592
ood componen s. Jou nal o Ag icul u al and Food Chemis y, 59, 11026-11033.
593
594
Lopez de Dicas illo, C., Ne in, C., Al a o, P., Ca ala, R., Ga a a, R., & He nandez-Muñoz, P.
595
(2011b). De elopmen o new an ioxidan ac i e packaging ilms based on e hylene inyl
596
alcohol copolyme (EVOH) and g een ea ex ac , Jou nal o Ag icul u al and Food
597
Chemis y, 59, 7832-7840.
598
599
32
Table 3
723
Swelling esul s.
724
Sample
Swelling Index (SI)
MC_10GA
156 ± 4.8 e
MC_15GA
88.9 ± 7.6 b
MC_20GA
78.7 ± 0.9 a
MC_10GA_MU
237.7 ± 1.6
MC_15GA_MU
131.6 ± 2.3 d
MC_20GA_MU
105.6 ± 1.6 c
Lowe case le e s a- indica e signi ican di e ences in
725
swelling among he ma e ials.
726
727
728

33
Table 4
729
An imic obial ac i i y o de eloped ilms.
730
Reduc ion
Film
UFC/mL
% Reduc ion
Log Cycles
Con ol
7 x 107
-
-
MC_20GA
1 x 107
85,7
0,85
MC_10GA_MU
1 x 104
99,9
3,85
MC_15GA_MU
6,8 x 104
99,9
3,01
MC_20GA_MU
7 x 104
99.9
3
731
732
34
Figu e cap ions
733
734
Fig. 1. C oss-sec ion SEM images o he MC ilms de eloped: A: MC; B: MC_PEG; C:
735
MC_10GA; D: MC_10GA_MU; E: MC_20GA; F: MC_20GA_MU.
736
737
Fig. 2. FTIR spec a o : (A) i) MC; ii) MC_10GA; iii) MC_15GA; i ) MC_20GA; (B) i)
738
MC; ii) MC_15GA_MU; iii) mu a ex ac ; and i ) GA.
739
740
Fig. 3. A) TGA and de i a i e cu es (inse ) o he weigh loss o MC-based ma e ials
741
wi hou MU ex ac and GA; B) TGA de i a i e cu es o ac i e MC-based ma e ials and
742
MU ex ac .
743
744
Fig. 4. Young´s modulus (YM), Tensile s eng h (TS) and Elonga ion a b eak (EB) o MC
745
de eloped ma e ials (le e s a- indica e signi ican di e ences in each p ope y alues among he samples
746
in a mechanical p ope y).
747
748
Fig. 5. ABTS+· adical sca enge ac i i ies o mu a ui MC ilms.
749
750
35
751
752
A
E
C
D
B
F
36
753
37
754
755

38
756
757
758
MC MC_PEG 10GA 15GA 20GA 10GA_MU15GA_MU20GA_MU
YM (N/mm2)
0
200
400
600
800
1000
Young´s Modulus
MC MC_PEG 10GA 15GA 20GA 10GA_MU15GA_MU20GA_MU
TS ( N/mm2)
0
2
4
6
8
10
12
14
16
18
Tensile S eng h
MC MC_PEG 10GA 15GA 20GA 10GA_MU15GA_MU20GA_MU
EB (%)
0
10
20
30
40
50
60
70
Elonga ion a b eak
a
e
cd de
bb
c
aa
c
b
b
e
c
cc
a
e
d
c
bc ab
39
759
760
ime (hou s)
0,0 2,0 4,0 6,0 23,0 23,5 24,0 24,5
AA (mg T olox/g ilm)
0,0
0,3
0,6
0,9
3,0
4,0
5,0
MC_20GA
MC_10GA_MU
MC_15GA_MU
MC_20GA_MU
K = 3.1
K = 4
K = 4.8