对近年来国内外关于人造肉生产技术相关的专利申请状况进行了分析,通过对历年专利申请趋势、主要申请人和发明人、专利布局情况的统计和对重点专利技术内容的解析,力求能全面系统地反映包括植物蛋白肉和细胞培养肉生产技术、人造肉商品化技术、人造肉重塑成型技术领域专利技术的发展及现状,寻找相关专利技术在发展中还存在的问题,并针对这些问题提出了下一步的研究方向,以期对尽早实现我国人造肉的规模化生产提供参考。
赵鑫锐
,
王志新
,
邓宇
,
高茵
,
张国强
,
李雪良
,
周景文
,
堵国成
,
陈坚
. 人造肉生产技术相关专利分析[J]. 食品与发酵工业, 2020
, 46(5)
: 299
-305
.
DOI: 10.13995/j.cnki.11-1802/ts.023550
The status of patents related to the production of artificial meat is analyzed in this paper. Through the analyses of the trend of patent applications, the main applicants and inventors, the layout of patents and the key patents, the development of technologies using in the production of plant-based meat and cultured meat is reviewed and the neglected issues and the bottlenecks in the manufacture of commercial products is pointed out. Based on these analyses, the large-scale production of artificial meat would be achieved as soon as possible in China.
[1] 辛良杰, 李鹏辉, 范玉枝. 中国食物消费随人口结构变化分析[J]. 农业工程学报, 2018, 34(14): 296-302.
[2] TUOMISTO H L, DE MATTOS M J T. Environmental impacts of cultured meat production[J]. Environmental Science & Technology, 2011, 45(14): 6 117-6 123.
[3] ESHEL G, SHEPON A, MAKOV T, et al. Land, irrigation water, greenhouse gas, and reactive nitrogen burdens of meat, eggs, and dairy production in the United States[J]. Proceedings of the National Academy of Sciences of the United States of America, 2014, 111(33): 11 996-12 001.
[4] BRAINARD J. Agencies carve up cultured meat[J]. Science, 2018, 362(6418): 977.
[5] SAMARD S, RYU G H. A comparison of physicochemical characteristics, texture, and structure of meat analogue and meats[J]. Journal of the Science of Food and Agriculture, 2019, 99(6): 2 708-2 715.
[6] JIN Y, HE X Y, ANDOH-KUMI K, et al. Evaluating potential risks of food allergy and toxicity of soy leghemoglobin expressed in Pichia pastoris[J]. Molecular Nutrition & Food Research, 2018, 62(1): 1700297.
[7] CHUANG L T, CHEN D C, NICAUD J M, et al. Co-expression of heterologous desaturase genes in Yarrowia lipolytica[J]. New Biotechnology, 2010, 27(4): 277-282.
[8] GOLDSTEIN B, MOSES R, SAMMONS N, et al. Potential to curb the environmental burdens of American beef consumption using a novel plant-based beef substitute[J]. PloS One, 2017, 12(12): e0189029.
[9] 方芳, 王凤忠, 董元元. 素肉在食品工业中的应用及前景[J]. 核农学报, 2012, 26(3): 449.
[10] EDELMAN P D, MCFARLAND D C, MIRONOV V A, et al. In vitro-cultured meat production[J]. Tissue Engineering, 2005, 11(5-6): 659-662.
[11] POST M J. Cultured beef: medical technology to produce food[J]. Journal of the Science of Food and Agriculture, 2014, 94(6): 1 039-1 041.
[12] VERBRUGGEN S, LUINING D, VAN ESSEN A, et al. Bovine myoblast cell production in a microcarriers-based system[J]. Cytotechnology, 2018, 70(2): 503-512.
[13] VAN DER WEELE C, FEINDT P, VAN DER GOOT A J, et al. Meat alternatives: an integrative comparison[J]. Trends in Food Science & Technology, 2019, 88: 505-512.
[14] STEPHENS N, DI SILVIO L, DUNSFORD I, et al. Bringing cultured meat to market: Technical, socio-political, and regulatory challenges in cellular agriculture[J]. Trends in Food Science & Technology, 2018, 78: 155-166.
[15] YEKRANGSAFAKAR A, ACUN A, CHOI J W, et al. Hollow microcarriers for large-scale expansion of anchorage-dependent cells in a stirred bioreactor[J]. Biotechnology and Bioengineering, 2018, 115(7): 1 717-1 728.
[16] BEKKER G A, FISCHER A R H, TOBI H, et al. Explicit and implicit attitude toward an emerging food technology: The case of cultured meat[J]. Appetite, 2017, 108: 245-254.