Lin Qiu
4 Papers
Lin Qiu is an academic researcher. The author has contributed to research in topics: Medicine & Fibroin. The author has an hindex of 1, co-authored 3 publications.
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Papers
Analysis of 3D transient heat conduction in functionally graded materials using a local semi-analytical space-time collocation scheme
TL;DR: In this article , a local semi-analytical space-time collocation scheme, combined with the localized space time method of fundamental solutions (LSTMFS) and transformed function, is proposed for simulating 3D transient heat transfer in functionally graded materials.
4
Comprehensive bioinformatics analysis combined with experimental validation to screen biomarkers for malignant transformation of oral leukoplakia.
TL;DR: External validation showed that the model based on LAPTM4B, NR3C1, and COX6A1 had high accuracy in diagnosing OLK malignant transformation.
2
A 3D-printed acinar-mimetic silk fibroin-collagen-astragalus polysaccharide scaffold for tissue reconstruction and functional repair of damaged parotid glands.
Han Liu,Lin Qiu,Haoyuan Li,Yanli Tang,Fang Wang,Yangyang Song,Yiwei Pan,Ruixin Li,Xing Yan +8 more
Abstract: Salivary glands are the principal organs responsible for secreting saliva in the oral cavity. Tumors, trauma, inflammation, and other factors can cause functional or structural damage to the glands, leading to reduced saliva secretion. In this study, we innovatively prepared a acinar-mimetic silk fibroin-collagen-astragalus polysaccharide (SCA) scaffold using low-temperature three-dimensional (3D) printing and freeze-drying techniques. We evaluated the material properties and cell compatibility of the scaffold in vitro and implanted it into the damaged parotid glands (PG) of rats to assess its efficacy in tissue reconstruction and functional repair. The results demonstrated that the SCA scaffold featured a porous structure resembling natural acini, providing an environment conducive to cell growth and orderly aggregation. It exhibited excellent porosity, water absorption, mechanical properties, and biocompatibility, fulfilling the requirements for tissue engineering scaffolds. In vitro, the scaffold facilitated adhesion, proliferation, orderly polarization, and spherical aggregation of PG cells. In vivo, the SCA scaffold effectively recruited GECs locally, forming gland-like acinar structures that matured gradually, promoting the regeneration of damaged PGs. The SCA scaffold developed in this study supports tissue reconstruction and functional repair of damaged PGs, making it a promising implant material for salivary gland regeneration.
Silk Fibroin/Collagen/Hydroxyapatite Scaffolds Obtained by 3D Printing Technology and Loaded with Recombinant Human Erythropoietin in the Reconstruction of Alveolar Bone Defects.
Hangrui Liu,Chao Wang,Xiaoqian Sun,Chaojun Zhan,Zi-mu Li,Lin Qiu,Rui Luo,Hao Liu,XiaoDi Sun,Ruixin Li,Jun Zhang +10 more
TL;DR: Wang et al. as mentioned in this paper used 3D printing technology to create a composite biomaterial for the reconstruction of irregular mandible defects, and this biomaterial is promising for clinical reconstruction of alveolar bone defects.