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Identifying fibrogenic cells following salivary gland obstructive injury.识别唾液腺阻塞性损伤后的纤维化细胞。
Front Cell Dev Biol. 2023 May 23;11:1190386. doi: 10.3389/fcell.2023.1190386. eCollection 2023.
2
Microfluidic Formulation of Topological Hydrogels for Microtissue Engineering.用于微组织工程的拓扑水凝胶的微流体制备。
Chem Rev. 2022 Nov 23;122(22):16839-16909. doi: 10.1021/acs.chemrev.1c00798. Epub 2022 Sep 15.
3
Magnetic bioassembly platforms towards the generation of extracellular vesicles from human salivary gland functional organoids for epithelial repair.用于从人唾液腺功能性类器官生成细胞外囊泡以进行上皮修复的磁性生物组装平台。
Bioact Mater. 2022 Feb 16;18:151-163. doi: 10.1016/j.bioactmat.2022.02.007. eCollection 2022 Dec.
4
MUC1 and Polarity Markers INADL and SCRIB Identify Salivary Ductal Cells.MUC1 和极性标志物 INADL 和 SCRIB 鉴定涎腺导管细胞。
J Dent Res. 2022 Jul;101(8):983-991. doi: 10.1177/00220345221076122. Epub 2022 Mar 8.
5
Alginate Hydrogel Microtubes for Salivary Gland Cell Organization and Cavitation.用于唾液腺细胞组织和空化的藻酸盐水凝胶微管
Bioengineering (Basel). 2022 Jan 15;9(1):38. doi: 10.3390/bioengineering9010038.
6
RGDSP-Decorated Hyaluronate Hydrogels Facilitate Rapid 3D Expansion of Amylase-Expressing Salivary Gland Progenitor Cells.RGDSP 修饰透明质酸水凝胶促进淀粉酶表达的唾液腺祖细胞的快速 3D 扩增。
ACS Biomater Sci Eng. 2021 Dec 13;7(12):5749-5761. doi: 10.1021/acsbiomaterials.1c00745. Epub 2021 Nov 15.
7
Immunosuppressed Miniswine as a Model for Testing Cell Therapy Success: Experience With Implants of Human Salivary Stem/Progenitor Cell Constructs.免疫抑制小型猪作为测试细胞治疗成功与否的模型:人唾液干/祖细胞构建体植入的经验
Front Mol Biosci. 2021 Sep 30;8:711602. doi: 10.3389/fmolb.2021.711602. eCollection 2021.
8
Salivary Gland Tissue Engineering Approaches: State of the Art and Future Directions.唾液腺组织工程方法:现状与未来方向。
Cells. 2021 Jul 8;10(7):1723. doi: 10.3390/cells10071723.
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Budding epithelial morphogenesis driven by cell-matrix versus cell-cell adhesion.由细胞-基质与细胞-细胞黏附相互作用驱动的上皮形态发生。
Cell. 2021 Jul 8;184(14):3702-3716.e30. doi: 10.1016/j.cell.2021.05.015. Epub 2021 Jun 15.
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3D Printing of Neural Tissues Derived from Human Induced Pluripotent Stem Cells Using a Fibrin-Based Bioink.使用基于纤维蛋白的生物墨水对源自人类诱导多能干细胞的神经组织进行3D打印。
ACS Biomater Sci Eng. 2019 Jan 14;5(1):234-243. doi: 10.1021/acsbiomaterials.8b01235. Epub 2018 Dec 6.

微流控同轴 3D 生物打印载细胞微纤维和微管用于唾液腺组织工程。

Microfluidic coaxial 3D bioprinting of cell-laden microfibers and microtubes for salivary gland tissue engineering.

机构信息

Department of Bioengineering, Rice University, Houston, TX 77005, USA; Department of Diagnostic and Biomedical Sciences, School of Dentistry, The University of Texas Health Science Center at Houston, Houston, TX 77054, USA.

Department of Diagnostic and Biomedical Sciences, School of Dentistry, The University of Texas Health Science Center at Houston, Houston, TX 77054, USA; Department of Biology, University of Puerto Rico-Mayagüez, Mayagüez 00682, Puerto Rico.

出版信息

Biomater Adv. 2023 Nov;154:213588. doi: 10.1016/j.bioadv.2023.213588. Epub 2023 Aug 14.

DOI:10.1016/j.bioadv.2023.213588
PMID:37634337
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11214436/
Abstract

Replacement therapy for the salivary gland (SG) remains an unmet clinical need. Xerostomia ("dry mouth") due to hyposalivation can result from injury or disease to the SG, such as salivary acinar death caused by radiation therapy (RT) for head and neck squamous cell carcinoma (HNSCC). Currently, only palliative treatments exist for xerostomia, and many patients endure deteriorated oral health and poor quality of life. Tissue engineering could offer a permanent solution for SG replacement by isolating healthy SG tissues prior to RT, expanding its cells in vitro, and recreating a functional salivary neogland for implantation post-RT. 3D bioprinting methods potentiate spatial cell deposition into defined hydrogel-based architectures, mimicking the thin epithelia developed during the complex branching morphogenesis of SG. By leveraging a microfluidics-based bioprinter with coaxial polymer and crosslinker streams, we fabricated thin, biocompatible, and reproducible hydrogel features that recapitulate the thin epithelia characteristics of SG. This flexible platform enabled two modes of printing: we produced solid hydrogel fibers, with diameters <100 μm, that could be rastered to create larger mm-scale structures. By a second method, we generated hollow tubes with wall thicknesses ranging 45-80 μm, total tube diameters spanning 0.6-2.2 mm, and confirmed tube patency. In both cases, SG cells could be printed within the thin hydrogel features, with preserved phenotype and high viability, even at high density (5.0 × 10 cells/mL). Our work demonstrates hydrogel feature control across multiple length scales, and a new paradigm for addressing SG restoration by creating microscale tissue engineered components.

摘要

唾液腺 (SG) 的替代疗法仍然是一个未满足的临床需求。由于唾液分泌减少导致的口干(“口干”)可由 SG 的损伤或疾病引起,例如头颈部鳞状细胞癌 (HNSCC) 放射治疗 (RT) 引起的唾液腺实质细胞死亡。目前,对于口干症只有姑息性治疗方法,许多患者忍受口腔健康恶化和生活质量下降。组织工程可以通过在 RT 之前分离健康的 SG 组织、在体外扩增其细胞以及在 RT 后重新创建功能性唾液新腺来为 SG 替代提供永久性解决方案。3D 生物打印方法通过将细胞沉积到定义明确的水凝胶基结构中,从而增加空间细胞沉积,模拟 SG 复杂分支形态发生过程中发育的薄上皮。通过利用具有同轴聚合物和交联剂流的基于微流控的生物打印机,我们制造了薄的、生物相容性的和可重复的水凝胶特征,再现了 SG 的薄上皮特征。该灵活平台支持两种打印模式:我们产生了直径 <100 μm 的固体水凝胶纤维,可以进行光栅化以创建更大的毫米级结构。通过第二种方法,我们生成了壁厚为 45-80 μm、总管直径为 0.6-2.2 mm 且证实了管通畅性的空心管。在这两种情况下,SG 细胞都可以打印在薄的水凝胶特征内,保持表型和高活力,即使在高密度(5.0×10 细胞/mL)下也是如此。我们的工作证明了跨多个长度尺度的水凝胶特征控制,并通过创建微尺度组织工程组件来解决 SG 恢复的新范例。