日期:
2020 年 — 2026 年
2020
2021
2022
2023
2024
2025
2026
影响因子:

Tension anisotropy drives fibroblast phenotypic transition by self-reinforcing cell-extracellular matrix mechanical feedback.

张力各向异性通过细胞-细胞外基质的自我增强机械反馈驱动成纤维细胞表型转变

Alisafaei Farid, Shakiba Delaram, Hong Yuan, Ramahdita Ghiska, Huang Yuxuan, Iannucci Leanne E, Davidson Matthew D, Jafari Mohammad, Qian Jin, Qu Chengqing, Ju David, Flory Dashiell R, Huang Yin-Yuan, Gupta Prashant, Jiang Shumeng, Mujahid Aliza, Singamaneni Srikanth, Pryse Kenneth M, Chao Pen-Hsiu Grace, Burdick Jason A, Lake Spencer P, Elson Elliot L, Huebsch Nathaniel, Shenoy Vivek B, Genin Guy M

A Micro-Engineered Heart Tissue Model of Desmin-related Cardiomyopathy Caused by Mutant αB Crystallin.

由突变αB晶状体蛋白引起的结蛋白相关心肌病的微工程心脏组织模型。

Kargar Gaz Kooh Yasaman, Bahmani Bahareh, Zhao Chen, Malayath Ganesh, Hayem Leah, Jin Hanxun, Ramahdita Ghiska, Jiang Huanzhu, Santiago Perez Javier, Chou Hsin Yi, Ma Xiucui, Genin Guy M, Rawnsley David, Diwan Abhinav, Huebsch Nathaniel

Engineered tissue geometry and Plakophilin-2 regulate electrophysiology of human iPSC-derived cardiomyocytes

工程组织几何形状和 Plakophilin-2 调节人类 iPSC 衍生心肌细胞的电生理学

Daniel W Simmons, Ganesh Malayath, David R Schuftan, Jingxuan Guo, Kasoorelope Oguntuyo, Ghiska Ramahdita, Yuwen Sun, Samuel D Jordan, Mary K Munsell, Brennan Kandalaft, Missy Pear, Stacey L Rentschler, Nathaniel Huebsch

Substrate mechanics unveil early structural and functional pathology in iPSC micro-tissue models of hypertrophic cardiomyopathy

基质力学揭示了肥厚型心肌病iPSC微组织模型中的早期结构和功能病理

Jingxuan Guo,Huanzhu Jiang,David Schuftan,Jonathan D Moreno,Ghiska Ramahdita

Hydrogel-Assisted Double Molding Enables Rapid Replication of Stereolithographic 3D Prints for Engineered Tissue Design

水凝胶辅助双模成型可快速复制立体光刻 3D 打印以用于工程组织设计

Daniel W Simmons, David R Schuftan, Ghiska Ramahdita, Nathaniel Huebsch

Dynamic mechanobiology of cardiac cells and tissues: Current status and future perspective

心脏细胞和组织的动态力学生物学:现状与展望

Wang, Chenyan; Ramahdita, Ghiska; Genin, Guy; Huebsch, Nathaniel; Ma, Zhen

Mechanical Resistance to Micro-Heart Tissue Contractility unveils early Structural and Functional Pathology in iPSC Models of Hypertrophic Cardiomyopathy

机械阻力对微心脏组织收缩力的揭示:肥厚型心肌病iPSC模型中早期结构和功能病理的发现

Guo, Jingxuan; Jiang, Huanzhu; Schuftan, David; Moreno, Jonathan D; Ramahdita, Ghiska; Aryan, Lavanya; Bhagavan, Druv; Silva, Jonathan; Huebsch, Nathaniel