Effects of lysine and arginine addition combined with high-pressure microfluidization treatment on the structure, solubility, and stability of pork myofibrillar proteins
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Xueyi Li | Zhaoming Wang | Hongjun Li | Hongbin Lin | Zhicheng Wu | Dong Zhang | Min Xu | Ping Liu | Yizhi Wang | Jinggang Ruan | Jie Zhao
[1] Y. Wang,et al. l-Arginine and l-lysine retard aggregation and polar residue modifications of myofibrillar proteins: Their roles in solubility of myofibrillar proteins in frozen porcine Longissimus lumborum. , 2022, Food chemistry.
[2] Yimin Zhang,et al. Improving myofibrillar proteins solubility and thermostability in low-ionic strength solution: A review. , 2022, Meat science.
[3] Jiaxin Chen,et al. Impact of different ionic strengths on protein-lipid co-oxidation in whey protein isolate-stabilized oil-in-water emulsions. , 2022, Food chemistry.
[4] T. Arakawa,et al. Classification of protein solubilizing additives by fluorescence assay. , 2022, International journal of biological macromolecules.
[5] M. Zhang,et al. Impact of salt content and hydrogen peroxide-induced oxidative stress on protein oxidation, conformational/morphological changes, and micro-rheological properties of porcine myofibrillar proteins. , 2021, Food chemistry.
[6] V. Orsat,et al. An overview of different homogenizers, their working mechanisms and impact on processing of fruits and vegetables , 2021, Critical reviews in food science and nutrition.
[7] Zhifei He,et al. Aggregation and deaggregation: The effect of high-pressure homogenization cycles on myofibrillar proteins aqueous solution. , 2021, International journal of biological macromolecules.
[8] Qian Chen,et al. High-intensity ultrasound improves the physical stability of myofibrillar protein emulsion at low ionic strength by destroying and suppressing myosin molecular assembly , 2021, Ultrasonics sonochemistry.
[9] Qian Liu,et al. Filamentous myosin in low-ionic strength meat protein processing media: Assembly mechanism, impact on protein functionality, and inhibition strategies , 2021, Trends in Food Science & Technology.
[10] Xiaoming Zhang,et al. Gelation and microstructural properties of fish myofibrillar protein gels with the incorporation of L-lysine and L-arginine at low ionic strength. , 2021, Journal of the science of food and agriculture.
[11] Z. Tu,et al. Investigation of the effect of oxidation on the structure of β-lactoglobulin by high resolution mass spectrometry. , 2021, Food chemistry.
[12] Yan‐ping Li,et al. Effect of sodium bicarbonate and sodium chloride on aggregation and conformation of pork myofibrillar protein. , 2021, Food chemistry.
[13] B. Kong,et al. Effect of ultrasound-assisted immersion thawing on emulsifying and gelling properties of chicken myofibrillar protein , 2021 .
[14] Hongmei Fang,et al. Role of ultrasound and l-lysine/l-argnine in improving the physical stability of myosin-soybean oil emulsion , 2021 .
[15] Zhifei He,et al. Insights into the structural characteristic of rabbit glycated myofibrillar protein with high solubility in low ionic strength medium , 2021 .
[16] Oguz K. Ozturk,et al. Latest developments in the applications of microfluidization to modify the structure of macromolecules leading to improved physicochemical and functional properties , 2021, Critical reviews in food science and nutrition.
[17] H. Dai,et al. Effect of phospholipids on the physicochemical properties of myofibrillar proteins solution mediated by NaCl concentration , 2021 .
[18] M. Zeng,et al. Physicochemical and rheological changes of oyster (Crassostrea gigas) protein affected by high-pressure homogenization , 2020 .
[19] Hongju He,et al. Physicochemical and structural changes in myofibrillar proteins from porcine longissimus dorsi subjected to microwave combined with air convection thawing treatment. , 2020, Food chemistry.
[20] C. Álvarez,et al. Optimising the use of proteins from rich meat co-products and non-meat alternatives: Nutritional, technological and allergenicity challenges. , 2020, Food research international.
[21] Xiuyun Guo,et al. Manipulating interfacial behaviour and emulsifying properties of myofibrillar proteins by L‐Arginine at low and high salt concentration , 2020, International Journal of Food Science & Technology.
[22] Zhifei He,et al. Study on the mechanism of KCl replacement of NaCl on the water retention of salted pork. , 2020, Food chemistry.
[23] Ying Hu,et al. Effects of in vitro oxidation on myofibrillar protein charge, aggregation, and structural characteristics. , 2020, Food chemistry.
[24] Yuhao Zhang,et al. Suppression mechanism of l-arginine in the heat-induced aggregation of bighead carp (Aristichthys nobilis) myosin: The significance of ionic linkage effects and hydrogen bond effects , 2020 .
[25] M. Keršienė,et al. Formulating protein-based beverages used for the dysphagia diets of the elderly: Viscosity, protein quality, in vitro digestion and consumers' acceptability. , 2020, Journal of the science of food and agriculture.
[26] Ying Hu,et al. Effect of in vitro oxidation on the water retention mechanism of myofibrillar proteins gel from pork muscles. , 2020, Food chemistry.
[27] E. Dorta,et al. Oxidation of myofibrillar proteins induced by peroxyl radicals: Role of oxidizable amino acids. , 2019, Food research international.
[28] D. Mcclements,et al. Effects of l-arginine and l-histidine on heat-induced aggregation of fish myosin: Bighead carp (Aristichthys nobilis). , 2019, Food chemistry.
[29] Cuiping Yu,et al. Application of high-pressure homogenization for improving the physicochemical, functional and rheological properties of myofibrillar protein. , 2019, International journal of biological macromolecules.
[30] Xinglian Xu,et al. High-pressure homogenization combined with sulfhydryl blockage by hydrogen peroxide enhance the thermal stability of chicken breast myofibrillar protein aqueous solution. , 2019, Food chemistry.
[31] Guang-hong Zhou,et al. Effect of the disruption chamber geometry on the physicochemical and structural properties of water-soluble myofibrillar proteins prepared by high pressure homogenization (HPH) , 2019, LWT.
[32] Xiaoxu Zhu,et al. Conformational and charge changes induced by l-Arginine and l-lysine increase the solubility of chicken myosin , 2019, Food Hydrocolloids.
[33] Zhaoming Wang,et al. Effect of peroxyl radicals on the structure and gel properties of isolated rabbit meat myofibrillar proteins , 2018, International Journal of Food Science & Technology.
[34] Yadong Zheng,et al. l-Lysine and l-arginine inhibit myosin aggregation and interact with acidic amino acid residues of myosin: The role in increasing myosin solubility. , 2018, Food chemistry.
[35] E. Márquez‐Ríos,et al. Effect of pulsed ultrasound on the physicochemical characteristics and emulsifying properties of squid (Dosidicus gigas) mantle proteins. , 2017, Ultrasonics sonochemistry.
[36] Z. Peng,et al. The solubility and conformational characteristics of porcine myosin as affected by the presence of L-lysine and L-histidine. , 2015, Food chemistry.
[37] W. Xia,et al. Pressure-induced changes of silver carp (Hypophthalmichthys molitrix) myofibrillar protein structure , 2014, European Food Research and Technology.
[38] M. F. Can,et al. Cost-effectiveness of animal protein consumption in Turkey , 2022, Ciência Rural.
[39] Xinglian Xu,et al. Use of high-intensity ultrasound to improve emulsifying properties of chicken myofibrillar protein and enhance the rheological properties and stability of the emulsion , 2020 .