Exploring in vitro gastric digestion of whey protein by time-domain nuclear magnetic resonance and magnetic resonance imaging

被引:32
作者
Deng, Ruoxuan [1 ,2 ]
Janssen, Anja E. M. [2 ]
Vergeldt, Frank J. [3 ]
Van As, Henk [3 ]
de Graaf, Cees [1 ]
Mars, Monica [1 ]
Smeets, Paul A. M. [1 ,4 ]
机构
[1] Wageningen Univ & Res, Div Human Nutr & Hlth, Wageningen, Netherlands
[2] Wageningen Univ & Res, Lab Food Proc Engn, Wageningen, Netherlands
[3] Wageningen Univ & Res, Lab Biophys, Wageningen, Netherlands
[4] Univ Utrecht, Univ Med Ctr Utrecht, Brain Ctr, Image Sci Inst, Utrecht, Netherlands
关键词
Time-domain NMR; MRI; Whey protein; Gel; In vitro; Gastric digestion; GEL STRUCTURE; NMR; WATER; MRI; RELAXOMETRY; CAPACITY; KINETICS; IMPACT;
D O I
10.1016/j.foodhyd.2019.105348
中图分类号
O69 [应用化学];
学科分类号
081704 ;
摘要
Gastric digestion is crucial for protein breakdown. Although it has been widely studied with in vitro models, verification in vivo remains a big challenge. Magnetic resonance imaging (MRI) has the potential to bridge this gap. Our objective was to use the transverse relaxation time (T-2) and rate (R-2 = T-2(-1)) to monitor hydrolysis of protein-rich food during in vitro gastric digestion. Whey protein solution and heat-induced hydrogels were digested by means of simulated gastric fluid (SGF). Free amino groups (-NH2 groups) and protein concentration in the supernatant were measured. T-2 and R-2 of the digestion mixture were determined by time-domain nuclear magnetic resonance (TD-NMR) and MRI. Subsequently, relative amplitudes (TD-NMR) for different T-2 values and T-2 distribution (MRI) were determined. For the solution, protein concentration and T-2 did not change during digestion. For the gels, water in supernatant and gel phase could be discriminated on the basis of their T-2 values. During digestion, R-2 of supernatant correlated positively with protein (-NH2 groups) concentration in SGF. Also, the decrease in relative amplitude of gel fraction correlated linearly with the increase of supernatant protein concentration. MRI T-2-mapping showed similar associations between R-2 of supernatant and protein (-NH2 groups) concentration. In conclusion, T-2-measurements by TD-NMR and MRI can be used to monitor in vitro gastric digestion of whey protein gels; TD-NMR measurements contributed to interpreting the MRI data. Thus, MRI has high potential for monitoring in vivo gastric digestion and this should be further pursued.
引用
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页数:9
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共 40 条
[1]  
[Anonymous], 1983, Numerical treatment of inverse problems in differential and integral equations Vol
[2]   Volumetric neuroimage analysis extensions for the MIPAV software package [J].
Bazin, Pierre-Louis ;
Cuzzocreo, Jennifer L. ;
Yassa, Michael A. ;
Gandler, William ;
McAuliffe, Matthew J. ;
Bassett, Susan S. ;
Pham, Dzung L. .
JOURNAL OF NEUROSCIENCE METHODS, 2007, 165 (01) :111-121
[3]   The foodomics approach for the evaluation of protein bioaccessibility in processed meat upon in vitro digestion [J].
Bordoni, Alessandra ;
Laghi, Luca ;
Babini, Elena ;
Di Nunzio, Mattia ;
Picone, Gianfranco ;
Ciampa, Alessandra ;
Valli, Veronica ;
Danesi, Francesca ;
Capozzi, Francesco .
ELECTROPHORESIS, 2014, 35 (11) :1607-1614
[4]   NMR comparison of in vitro digestion of Parmigiano Reggiano cheese aged 15 and 30 months [J].
Bordoni, Alessandra ;
Picone, Gianfranco ;
Babini, Elena ;
Vignali, Massimiliano ;
Danesi, Francesca ;
Valli, Veronica ;
Di Nunzio, Mattia ;
Laghi, Luca ;
Capozzi, Francesco .
MAGNETIC RESONANCE IN CHEMISTRY, 2011, 49 :S61-S70
[5]   Gastric Digestion In Vivo and In Vitro: How the Structural Aspects of Food Influence the Digestion Process [J].
Bornhorst, Gail M. ;
Singh, R. Paul .
ANNUAL REVIEW OF FOOD SCIENCE AND TECHNOLOGY, VOL 5, 2014, 5 :111-132
[6]   Assignments of Proton Populations in Dough and Bread Using NMR Relaxometry of Starch, Gluten, and Flour Model Systems [J].
Bosmans, Geertrui M. ;
Lagrain, Bert ;
Deleu, Lomme J. ;
Fierens, Ellen ;
Hills, Brian P. ;
Delcour, Jan A. .
JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 2012, 60 (21) :5461-5470
[7]   INFOGEST static in vitro simulation of gastrointestinal food digestion [J].
Brodkorb, Andre ;
Egger, Lotti ;
Alminger, Marie ;
Alvito, Paula ;
Assuncao, Ricardo ;
Ballance, Simon ;
Bohn, Torsten ;
Bourlieu-Lacanal, Claire ;
Boutrou, Rachel ;
Carriere, Frederic ;
Clemente, Alfonso ;
Corredig, Milena ;
Dupont, Didier ;
Dufour, Claire ;
Edwards, Cathrina ;
Golding, Matt ;
Karakaya, Sibel ;
Kirkhus, Bente ;
Le Feunteun, Steven ;
Lesmes, Uri ;
Macierzanka, Adam ;
Mackie, Alan R. ;
Martins, Carla ;
Marze, Sebastien ;
McClements, David Julian ;
Menard, Olivia ;
Minekus, Mans ;
Portmann, Reto ;
Santos, Claudia N. ;
Souchon, Isabelle ;
Singh, R. Paul ;
Vegarud, Gerd E. ;
Wickham, Martin S. J. ;
Weitschies, Werner ;
Recio, Isidra .
NATURE PROTOCOLS, 2019, 14 (04) :991-1014
[8]   Rapid quantification of muscle fat content and subcutaneous adipose tissue in fish using MRI [J].
Collewet, Guylaine ;
Bugeon, Jerome ;
Idier, Jerome ;
Quellec, Stephane ;
Quittet, Benjamin ;
Cambert, Mireille ;
Haffray, Pierrick .
FOOD CHEMISTRY, 2013, 138 (2-3) :2008-2015
[9]   Water holding capacity and swelling of casein hydrogels [J].
de Kruif, C. G. ;
Anema, Skelte G. ;
Zhu, Changjun ;
Havea, Palatasa ;
Coker, Christina .
FOOD HYDROCOLLOIDS, 2015, 44 :372-379
[10]   A combined rheology and time domain NMR approach for determining water distributions in protein blends [J].
Dekkers, Birgit L. ;
de Kort, Daan W. ;
Grabowska, Katarzyna J. ;
Tian, Bei ;
Van As, Henk ;
van der Goot, Atze Jan .
FOOD HYDROCOLLOIDS, 2016, 60 :525-532