| [1] |
Gathercole J, Maes E, Thomas A,et al. Unlocking the bioactivity of meat proteins:comparison of meat and meat hydrolysate via simulated gastrointestinal digestion[J]. Journal of Proteomics,2023,273:104806.
|
| [2] |
芦鑫,路风银,孙强,等. 植物蛋白肉感官品质与营养安全研究进展[J]. 粮食与油脂,2024,37(6):6-10.
|
| [3] |
Guo Q, Zhang M, Mujumdar A S. Progress of plant-derived non-starch polysaccharides and their challenges and applications in future foods[J]. Comprehensive Reviews in Food Science and Food Safety,2024,23(4):e13361.
|
| [4] |
丁可盈,金晶,任玉,等. 3D打印技术在食品中的研究进展[J]. 南京农业大学学报,2025,48(1):70-84.
|
| [5] |
王媛. 基于大豆蛋白/魔芋多糖各向异性凝胶支架制备细胞培养肉[D]. 南昌:南昌大学,2024.
|
| [6] |
Seah J S H, Singh S, Tan L P,et al. Scaffolds for the manufacture of cultured meat[J]. Critical Reviews in Biotechnology,2022,42(2):311-323.
|
| [7] |
郭赟. 黄酮类化合物对猪肌肉干细胞增殖分化及细胞培养肉质构特性的影响[D]. 南京:南京农业大学,2022.
|
| [8] |
Lee S H, Choi J. Three-dimensional scaffolds,materials,and fabrication for cultured meat applications:a scoping review and future direction[J]. Food Hydrocolloids,2024,152:109881.
|
| [9] |
Stout A J, Rittenberg M L, Shub M,et al. A Beefy-R culture medium:replacing albumin with rapeseed protein isolates[J]. Biomaterials,2023,296:122092.
|
| [10] |
Lee M, Choi W, Lee J M,et al. Flavor-switchable scaffold for cultured meat with enhanced aromatic properties[J]. Nature Communications,2024,15:5450.
|
| [11] |
Jang S W, Han J H, Kim Y R,et al. Eggshell membrane as a natural food-grade scaffold for cultured meat[J]. Innovative Food Science Emerging Technologies,2024,95:103734.
|
| [12] |
Mariano E, Lee D Y, Lee J,et al. A review on the characterization of edible scaffolds for cultured meat:physical,chemical,biocompatibility,and food safety evaluation methods[J]. Food Chemistry,2025,469:142493.
|
| [13] |
You K H, Xie L H, Li J X,et al. Versatile platforms of mussel-inspired agarose scaffold for cell cultured meat[J]. Journal of Advanced Research,2025,77:193-206.
|
| [14] |
Zhao H X, Li L H, Ding S,et al. Effect of porous structure and pore size on mechanical strength of 3D-printed comby scaffolds[J]. Materials Letters,2018,223:21-24.
|
| [15] |
Chen Y C, Ding S J, Bassey A P,et al. Effect of gelatin concentration and freezing temperature on porous scaffolds for cultured meat[J]. Food Bioscience,2024,60:104343.
|
| [16] |
Zheng Y Y, Shi Y F, Zhu H Z,et al. Quality evaluation of cultured meat with plant protein scaffold[J]. Food Research International,2022,161:111818.
|
| [17] |
Seo J W, Jung W K, Park Y H,et al. Development of cultivable alginate fibers for an ideal cell-cultivated meat scaffold and production of hybrid cultured meat[J]. Carbohydrate Polymers,2023,321:121287.
|
| [18] |
Kim M, Kim W, Lee C,et al. Sustainable aligned gelatin-chitosan cryogel scaffolds as a cost-effective platform for steak-like cultured meat[J]. Food Hydrocolloids,2025,163:111149.
|
| [19] |
Chen Y C, Zhang W H, Ding X,et al. Programmable scaffolds with aligned porous structures for cell cultured meat[J]. Food Chemistry,2024,430:137098.
|
| [20] |
Xin Q P, Niu R H, Chen Q H,et al. Stable cytoactivity of piscine satellite cells in rice bran-gelatin hydrogel scaffold of cultured meat[J]. International Journal of Biological Macromolecules,2024,277:134242.
|
| [21] |
Avegnon K L M, Bedke A M, Minyard J D,et al. Use of negative thermal expansion to design scaffolds for cultured meat[J]. Materials Design,2024,242:112992.
|
| [22] |
Wang X, Wang M L, Xu Y Q,et al. A 3D-printable gelatin/alginate/ε-poly-l-lysine hydrogel scaffold to enable porcine muscle stem cells expansion and differentiation for cultured meat development[J]. International Journal of Biological Macromolecules,2024,271:131980.
|
| [23] |
Chen X H, Li L Z, Chen L,et al. Tea polyphenols coated sodium alginate-gelatin 3D edible scaffold for cultured meat[J]. Food Research International,2023,173:113267.
|
| [24] |
Bezjak D, Orellana N, Valdivia G,et al. Global transcriptome profiles provide insights into muscle cell development and differentiation on microstructured marine biopolymer scaffolds for cultured meat production[J]. Scientific Reports,2024,14:10931.
|
| [25] |
Gome G, Chak B, Tawil S,et al. Cultivation of bovine mesenchymal stem cells on plant-based scaffolds in a macrofluidic single-use bioreactor for cultured meat[J]. Foods,2024,13(9):1361.
|
| [26] |
Niu R H, Xin Q P, Xu E B,et al. Nanostarch-stimulated cell adhesion in 3D bioprinted hydrogel scaffolds for cell cultured meat[J]. ACS Applied Materials Interfaces,2024,16(18):23015-23026.
|
| [27] |
Hong S J, Kim D H, Ryoo J H,et al. Influence of gelatin on adhesion,proliferation,and adipogenic differentiation of adipose tissue-derived stem cells cultured on soy protein-agarose scaffolds[J]. Foods,2024,13(14):2247.
|
| [28] |
Sood A, Singhmar R, Son Y,et al. Tuning the efficacy of decellularized apple by coating with alginate/gelatin to behave as a bioscaffold for cultured meat production[J]. Food Research International,2024,177:113907.
|
| [29] |
Lu H Y, Ying K Q, Shi Y,et al. Bioprocessing by decellularized scaffold biomaterials in cultured meat:a review[J]. Bioengineering,2022,9(12):787.
|
| [30] |
Woo K M, Chen V J, Ma P X. Nano-fibrous scaffolding architecture selectively enhances protein adsorption contributing to cell attachment[J]. Journal of Biomedical Materials Research Part A,2003,67A(2):531-537.
|
| [31] |
Su L S, Jing L Z, Zeng S J,et al. Sorghum prolamin scaffolds-based hybrid cultured meat with enriched sensory properties[J]. Journal of Agricultural and Food Chemistry,2024,72(42):23355-23365.
|
| [32] |
Mariano E, Lee D Y, Yun S H,et al. Crusting-fabricated three-dimensional soy-based scaffolds for cultured meat production:a preliminary study[J]. Food Chemistry,2024,452:139511.
|
| [33] |
Su L S, Jing L Z, Zeng X J,et al. 3D-printed prolamin scaffolds for cell-based meat culture[J]. Advanced Materials,2023,35(2):2207397.
|
| [34] |
Chen Z Y, Xiong W L, Guo Y Z,et al. Three-dimensional pore structure of the decellularized parsley scaffold regulates myogenic differentiation for cell cultured meat[J]. Journal of Food Science,2024,89(9):5646-5658.
|
| [35] |
Chen Y W, Dai W J, Xiong W L,et al. Regulation of myogenic differentiation of myoblasts by groove structure for the design of cell culture meat scaffolds[J]. Food Bioscience,2024,59:103819.
|
| [36] |
Park S, Hong Y, Park S,et al. Designing highly aligned cultured meat with nanopatterns-assisted bio-printed fat scaffolds[J]. Journal of Biosystems Engineering,2023,48(4):503-511.
|
| [37] |
Wu X M, Han W M, Hou L Y,et al. Glutenin-chitosan 3D porous scaffolds with tunable stiffness and systematized microstructure for cultured meat model[J]. International Journal of Biological Macromolecules,2024,267:131438.
|
| [38] |
邵薇. 魔芋葡甘露聚糖-海藻酸钠多孔支架的制备及其在细胞培养肉上的应用[D]. 杨凌:西北农林科技大学,2024.
|
| [39] |
Kawecki N S, Chen K K, Smith C S,et al. Scalable processes for culturing meat using edible scaffolds[J]. Annual Review of Food Science and Technology,2024,15(1):241-264.
|
| [40] |
陈晓红. 构建用于细胞培养肉的海藻酸钠-明胶@茶多酚3D可食用支架[D]. 杨凌:西北农林科技大学,2023.
|
| [41] |
方佳华. 维生素C对猪肌肉干细胞增殖及分化的作用研究及细胞培养肉应用[D]. 无锡:江南大学,2023.
|
| [42] |
Wang Y F, Zhong Z H, Munawar N,et al. 3D edible scaffolds with yeast protein:a novel alternative protein scaffold for the production of high-quality cell-cultured meat[J]. International Journal of Biological Macromolecules,2024,259:129134.
|
| [43] |
Lee H, Kim D, Choi K H,et al. Animal-free scaffold from brown algae provides a three-dimensional cell growth and differentiation environment for steak-like cultivated meat[J]. Food Hydrocolloids,2024,152:109944.
|
| [44] |
Lee J Y, Kamel J, Yadav C J,et al. Production of plant-based,film-type scaffolds using alginate and corn starch for the culture of bovine myoblasts[J]. Foods,2024,13(9):1358.
|
| [45] |
Fang H C, Yu W, Gao B Y,et al. Preparation of novel double cross-linked hydrogels of dietary fibers and proteins from soybeans as scaffolds for cultured meat[J]. Food and Bioprocess Technology,2025,18(2):1601-1613.
|
| [46] |
Zhu G X, Gao D F, Li L Z,et al. Generation of three-dimensional meat-like tissue from stable pig epiblast stem cells[J]. Nature Communications,2023,14:8163.
|
| [47] |
Wang Y F, Wang S C, Zhuang D,et al. Quercetin-enriched animal-free scaffolds for promoted cell proliferation and differentiation in cultured meat production[J]. Food Chemistry,2025,464:141622.
|
| [48] |
Niu R H, Xin Q P, Lao J H,et al. Topological polymeric glucosyl nanoaggregates in scaffold enable high-density piscine muscle tissue[J]. Biomaterials,2025,314:122819.
|