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Synergistic Modification Effects of κ‐Carrageenan on Gel Properties and <scp>3D</scp> Printing Accuracy of Shiitake Mushroom Protein Isolate/Konjac Glucomannan Composite Gel System

Yuanzhang ZhaoCollege of Light Industry and Food Engineering Nanjing Forestry University Nanjing ChinaQinghui CaoCollege of Light Industry and Food Engineering Nanjing Forestry University Nanjing ChinaAripov Takhir FatixovichInstitute of Bioorganic Chemistry Academy of Sciences of Uzbekistan Tashkent UzbekistanGayibov Ulugbek GapparjanovichInstitute of Bioorganic Chemistry Academy of Sciences of Uzbekistan Tashkent UzbekistanHongying DuCollege of Light Industry and Food Engineering Nanjing Forestry University Nanjing China
2026en
ABI

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ABSTRACT Developing gel materials that combine adequate mechanical strength with high‐precision 3D printability is a prerequisite for customized 3D‐printed soft food fabrication. This study systematically investigates the impact of κ‐carrageenan (KC) on the textural properties and 3D printing performance of shiitake mushroom protein isolate/konjac glucomannan (SMPI/KGM) composite gels. Rheological analysis showed that appropriate KC addition significantly increased the storage modulus ( G ′), loss modulus ( G ″), and apparent viscosity of the gels, while also conferring pronounced shear‐thinning behavior. Microstructural and spectroscopic analyses suggested that KC incorporation promoted the formation of a dense and uniform three‐dimensional network, which may be associated with hydrogen‐bond‐related changes and noncovalent network rearrangement among SMPI, KGM, and KC. As a result, gel hardness was markedly improved to approximately 400 gf, and the water‐holding capacity approached 100%. However, when the KC concentration exceeded 0.8%, excessive KC addition increased the brittleness tendency and reduced the balance between rigidity and deformability. Among all treatments, 0.6% KC yielded the best 3D printing performance. An appropriate amount of KC effectively improved the rheological properties, structural integrity, and printability of SMPI/KGM composite gels, with 0.6% identified as the optimal concentration based on comprehensive printing formability rather than hardness alone. These findings provide a theoretical and experimental basis for the design of fungal protein‐based 3D‐printable gel materials for personalized food fabrication and soft gel food applications.

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