Person: Liu, Qihan
Email Address
AA Acceptance Date
Birth Date
Research Projects
Organizational Units
Job Title
Last Name
First Name
Name
Search Results
Publication Traction force microscopy of engineered cardiac tissues
(Public Library of Science, 2018) Pasqualini, Francesco; Agarwal, Ashutosh; O'Connor, Blakely; Liu, Qihan; Sheehy, Sean P.; Parker, KevinCardiac tissue development and pathology have been shown to depend sensitively on microenvironmental mechanical factors, such as extracellular matrix stiffness, in both in vivo and in vitro systems. We present a novel quantitative approach to assess cardiac structure and function by extending the classical traction force microscopy technique to tissue-level preparations. Using this system, we investigated the relationship between contractile proficiency and metabolism in neonate rat ventricular myocytes (NRVM) cultured on gels with stiffness mimicking soft immature (1 kPa), normal healthy (13 kPa), and stiff diseased (90 kPa) cardiac microenvironments. We found that tissues engineered on the softest gels generated the least amount of stress and had the smallest work output. Conversely, cardiomyocytes in tissues engineered on healthy- and disease-mimicking gels generated significantly higher stresses, with the maximal contractile work measured in NRVM engineered on gels of normal stiffness. Interestingly, although tissues on soft gels exhibited poor stress generation and work production, their basal metabolic respiration rate was significantly more elevated than in other groups, suggesting a highly ineffective coupling between energy production and contractile work output. Our novel platform can thus be utilized to quantitatively assess the mechanotransduction pathways that initiate tissue-level structural and functional remodeling in response to substrate stiffness.
Publication A Bioinspired and Hierarchically Structured Shape-Memory Material
(Springer Science and Business Media LLC, 2020-08-31) Cera, Luca; Gonzalez, Grant; Liu, Qihan; Choi, Suji; Chantre, Christophe O.; Lee, Juncheol; Gabardi, Rudy; Choi, Myung Chul; Shin, Kwanwoo; Parker, KevinShape memory polymeric materials lack long-range molecular order enabling more controlled and efficient actuation mechanisms. Here, we develop a hierarchical structured keratin-based system that has long-range molecular order and shape memory properties in response to hydration. We explore the metastable reconfiguration of keratin secondary structure – alpha-helix-to-beta-sheet transition – as an actuation mechanism to design a high-strength shape memory material that is biocompatible and processable through fiber spinning and 3D printing. We extract keratin protofibrils from animal hair and subject them to shear stress to induce their self-organization into a nematic phase, which recapitulates the native hierarchical organization of the protein. This self-assembly process can be tuned to create materials with desired anisotropic structuring and responsiveness. Our combination of bottom-up assembly and top-down manufacturing allows for the scalable fabrication of strong and hierarchically structured shape memory fibers and 3D printed scaffolds with potential applications in bioengineering and smart textiles.
Publication Recreating the heart's helical structure-function relationship with focused rotary jet spinning
(American Association for the Advancement of Science (AAAS), 2022-07-08) Chang, Huibin; Liu, Qihan; Zimmerman, John F.; Lee, Keel Yong; Jin, Qianru; Peters, Michael M.; Rosnach, Michael; Choi, Suji; Kim, Sean L.; Ardoña, Herdeline Ann M.; MacQueen, Luke A.; Chantre, Christophe O.; Motta, Sarah E.; Cordoves, Elizabeth M.; Parker, KevinHelical alignments within the heart's musculature have been speculated to be important in achieving physiological pumping efficiencies. Testing this possibility is difficult, however, because it is challenging to reproduce the fine spatial features and complex structures of the heart's musculature using current techniques. Here we report focused rotary jet spinning (FRJS), an additive manufacturing approach that enables rapid fabrication of micro/nanofiber scaffolds with programmable alignments in three-dimensional geometries. Seeding these scaffolds with cardiomyocytes enabled the biofabrication of tissue-engineered ventricles, with helically aligned models displaying more uniform deformations, greater apical shortening, and increased ejection fractions compared with circumferential alignments. The ability of FRJS to control fiber arrangements in three dimensions offers a streamlined approach to fabricating tissues and organs, with this work demonstrating how helical architectures contribute to cardiac performance.