Journal Article10.1021/acs.biomac.3c00749
Efficient Myogenic Activities Achieved through Blade-Casting-Assisted Bioprinting of Aligned Myoblasts Laden in Collagen Bioink.
SuHyeok Lee,WonJin Kim,GeunHyung Kim +2 more
3
TL;DR: The results demonstrated the effectiveness of combining mechanical stimulation through blade casting with 3D bioprinting in promoting aligned cell structures, enhancing cellular functions, and driving muscle tissue regeneration.
read more
Abstract: This study investigated mechanical stimulation combined with three-dimensional (3D) bioprinting as a new approach for introducing biophysical and biological cues for tissue regeneration. A blade-casting method in conjunction with bioprinting was employed to fabricate bioengineered skeletal muscle constructs using a bioink composed of C2C12 myoblasts and collagen type-I. Various printing process parameters were selected and optimized to achieve a highly organized cell alignment within the constructs. The resulting cell-aligned constructs demonstrated remarkable improvement in actin filament alignment and cell proliferation compared with conventionally printed cell-laden constructs. This improvement can be attributed to the synergistic effects of mechanotransduction, facilitating the cellular response to mechanical cues and the alignment of fibrillated collagen, which plays a significant role in modulating cellular functions and promoting muscle tissue regeneration. Furthermore, we assessed the impact of blade casting combined with 3D bioprinting on gene expression. The expression levels of myogenesis-related genes were substantially upregulated, with an approximately 1.6-fold increase compared to the constructs fabricated without the blade-casting technique. The results demonstrated the effectiveness of combining mechanical stimulation through blade casting with 3D bioprinting in promoting aligned cell structures, enhancing cellular functions, and driving muscle tissue regeneration.
read more
Chat with Paper
AI Agents for this Paper
Find similar papers on Google Scholar, PubMed and Arxiv
Write a critical review of this paper
Analyze citations of this paper to find unaddressed research gaps
Citations
3D Nanofiber-Assisted Embedded Extrusion Bioprinting for Oriented Cardiac Tissue Fabrication
Huiquan Wu,Feng Xu,Hang Jin,Mingcheng Xue,Wangzihan Zhang,Jianhui Yang,Junyi Huang,Yuqing Jiang,Bin Qiu,Bin Lin,Qiang Gao,Songyue Chen,Daoheng Sun +12 more
TL;DR: Researchers developed 3D nanofiber-assisted embedded bioprinting (3D-NFEP) to fabricate oriented cardiac tissue with low-viscosity bioink, overcoming isotropic culture limitations, and demonstrated its feasibility for multilayer cell printing and cardiac tissue engineering applications.
3
Enhanced Myogenic Differentiation of Human Adipose‐Derived Stem Cells via Integration of 3D Bioprinting and In Situ Shear‐Based Blade Coating
Won-Jin Kim,Hanjun Hwangbo,Geum-Sook Heo,Dongryeol Ryu,GeunHyung Kim +4 more
TL;DR: This study integrates 3D bioprinting and shear-based blade coating to enhance myogenic differentiation of human adipose-derived stem cells, restoring muscle volume and functionality in volumetric muscle loss defects in mice.
Nanocomposite Hydrogel Bioinks for 3D Bioprinting of Tumor Models
Yue Wang,Yixiong Duan,Bai Yang,Yunfeng Li +3 more
TL;DR: Researchers developed a nanocomposite hydrogel bioink for 3D bioprinting tumor models, achieving high survival rates and rapid growth of ovarian and colorectal cancer cells, and demonstrating therapeutic effects of gemcitabine on ovarian tumors.
References
Analysis of relative gene expression data using real-time quantitative pcr and the 2(-delta delta c(t)) method
TL;DR: The 2-Delta Delta C(T) method as mentioned in this paper was proposed to analyze the relative changes in gene expression from real-time quantitative PCR experiments, and it has been shown to be useful in the analysis of realtime, quantitative PCR data.
168.2K
Calcium's Role in Mechanotransduction during Muscle Development
TL;DR: How diverse mechanical stimuli cause changes in calcium homeostasis by affecting membrane channels and the intracellular stores, which in turn regulate multiple pathways that impart these effects and control the fate of muscle tissue is discussed in detail.
3D bioprinting for engineering complex tissues.
TL;DR: Combined with recent advances in human pluripotent stem cell technologies, 3D-bioprinted tissue models could serve as an enabling platform for high-throughput predictive drug screening and more effective regenerative therapies.
1.5K
Bioinks for 3D bioprinting: an overview
P. Selcan Gungor-Ozkerim,P. Selcan Gungor-Ozkerim,Ilyas Inci,Ilyas Inci,Yu Shrike Zhang,Yu Shrike Zhang,Yu Shrike Zhang,Ali Khademhosseini,Mehmet R. Dokmeci +8 more
TL;DR: In this review, an in-depth discussion of the different bioinks currently employed for bioprinting are provided, and some future perspectives in their further development are outlined.
Collagen tissue engineering: development of novel biomaterials and applications.
TL;DR: The complex scenario of collagen characteristics, types, fibril arrangement, and collagen structure-related functions (in a variety of connective tissues including bone, cartilage, tendon, skin and cornea) are addressed in this review.