Characterisation of new sources of acrylamide in food marketed in Belgium

被引:0
作者
Szternfeld, Philippe [1 ]
Van Leeuw, Virginie [1 ]
Scippo, Marie-Louise [2 ]
Vinkx, Christine [3 ]
Van Hoeck, Els [1 ]
Joly, Laure [1 ]
机构
[1] Sciensano, Chem & Phys Hlth Risks Dept, Brussels, Belgium
[2] Univ Liege, Lab Food Anal, FARAH Vet Publ Hlth, Liege, Belgium
[3] Fed Publ Serv Hlth Food Chain Safety & Environm, Brussels, Belgium
来源
FOOD ADDITIVES & CONTAMINANTS PART B-SURVEILLANCE | 2025年 / 18卷 / 01期
关键词
Acrylamide; food; monitoring; Belgium; LC-MS/MS; PROCESSING CONDITIONS; EXTRACTION;
D O I
10.1080/19393210.2024.2440362
中图分类号
O69 [应用化学];
学科分类号
081704 ;
摘要
This study provides occurrence data for acrylamide in various foodstuffs, including those covered by Recommendation (EU) 2019/1888, from 210 samples purchased on the Belgian market. Detection frequencies exceeded 84% in potato-based products other than fries, vegetable crisps, black olives, cocoa powders, coffee substitutes and cereals and snacks. Large variations in acrylamide levels were found in cereals and snacks, with no correlation between cereal type or processing. Snacks containing chia did not show higher acrylamide levels than other cereal-based snacks. Maximum levels found were 4389 and 3063 mu g kg(-1) in coffee substitutes and vegetable crisps, respectively. Potato-based products contained 2 to 27 times less acrylamide when prepared in oven, compared to deep fryer processing. Artificially oxidised "Californian-style" black olives contained five times more acrylamide than "Greek-style" olives. In bread, pastries, nuts, oilseeds, dried fruits and confectionaries, detection frequencies varied from 27 to 69% and the average acrylamide content was <30 <mu>g kg(-1).
引用
收藏
页码:86 / 98
页数:13
相关论文
共 49 条
[11]  
Biedermann Maurus, 2002, Mitteilungen aus Lebensmitteluntersuchung und Hygiene, V93, P653
[12]  
Breitling-Utzmann C., 2023, CHEM REACTIONS FOODS
[13]  
Breitling-Utzmann CM, 2019, DEUT LEBENSM-RUNDSCH, V115, P265
[14]   Assessment of black ripe olive processing for acrylamide mitigation [J].
Brenes-Alvarez, M. ;
Ramirez, E. M. ;
Garcia-Garcia, P. ;
Medina, E. ;
Brenes, M. ;
Romero, C. .
LWT-FOOD SCIENCE AND TECHNOLOGY, 2024, 198
[15]  
Bureau of Chemical Safety, 2012, cassia plants in health tea J. Jpn J Food Chem Saf
[16]   Influence of processing conditions on acrylamide content in black ripe olives [J].
Casado, Francisco J. ;
Montano, Alfredo .
JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 2008, 56 (06) :2021-2027
[17]   Influence of California-Style Black Ripe Olive Processing on the Formation of Acrylamide [J].
Charoenprasert, Suthawan ;
Mitchell, Alyson .
JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 2014, 62 (34) :8716-8721
[18]   Reassessment of the acrylamide risk: Belgium as a case-study [J].
Claeys, Wendie ;
De Meulenaer, Bruno ;
Huyghebaert, Andre ;
Scippo, Marie-Louise ;
Hoet, Peter ;
Matthys, Christophe .
FOOD CONTROL, 2016, 59 :628-635
[19]   Australian survey of acrylamide in carbohydrate-based foods [J].
Croft, M ;
Tong, P ;
Fuentes, D ;
Hambridge, T .
FOOD ADDITIVES AND CONTAMINANTS PART A-CHEMISTRY ANALYSIS CONTROL EXPOSURE & RISK ASSESSMENT, 2004, 21 (08) :721-736
[20]   Acrylamide in snack foods [J].
Das, Amit Baran ;
Srivastav, Prem Prakas .
TOXICOLOGY MECHANISMS AND METHODS, 2012, 22 (03) :163-169