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##  167 results 

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### 2025

164 ., Wang Y, Liu J, Peters MM, Ishii R, Wang D, Chowdhury S, Parker KK, and Shakhnovich EI. 2025. “[Entropy-Driven Denaturation Enables Sustainable Protein Regeneration through Rapid Gel-Solid Transition](/publication/entropy-driven-denaturation-enables-sustainable-protein-regeneration-through-rapid-gel)”. Nature Communications, 16, 6907



 

 

164 ., Wang Y, Liu J, Peters MM, Ishii R, Wang D, Chowdhury S, Parker KK, and Shakhnovich EI. 2025. “[Entropy-Driven Denaturation Enables Sustainable Protein Regeneration through Rapid Gel-Solid Transition](/publication/entropy-driven-denaturation-enables-sustainable-protein-regeneration-through-rapid-gel)”. Nature Communications, 16, 6907



 

 

 

- add\_circle\_outline do\_not\_disturb\_on Abstract
- [ descriptionPublisher's Version](http://doi.org/10.1038/s41467-025-61959-9)
- [ picture\_as\_pdfEntropy-driven denaturati...](/sites/g/files/omnuum8351/files/2025-11/Entropy-driven%20denaturation%20enables%20sustainable%20protein%20regeneration%20through%20rapid%20gel-solid%20transition.pdf)
 
The upcycling of protein materials has long been hindered by the difficulty in restructuring them to usable forms. In contrast to proteins extracted using conventional organic denaturants, keratin treated with concentrated inorganic lithium bromide (LiBr)...



 

 

- [ descriptionPublisher's Version](http://doi.org/10.1038/s41467-025-61959-9)
- [ picture\_as\_pdfEntropy-driven denaturati...](/sites/g/files/omnuum8351/files/2025-11/Entropy-driven%20denaturation%20enables%20sustainable%20protein%20regeneration%20through%20rapid%20gel-solid%20transition.pdf)
 
 

163 ., Yang H, Wang Y, Jang Y, Shani K, Jiao Q, Peters MM, Parker KK, and Vlassak JJ. 2025. “[Biomimetic Hierarchical Fibrous Hydrogels With High Alignment and Flaw Insensitivity](/publication/biomimetic-hierarchical-fibrous-hydrogels-high-alignment-and-flaw-insensitivity)”. Matter, 8, 6



 

 

163 ., Yang H, Wang Y, Jang Y, Shani K, Jiao Q, Peters MM, Parker KK, and Vlassak JJ. 2025. “[Biomimetic Hierarchical Fibrous Hydrogels With High Alignment and Flaw Insensitivity](/publication/biomimetic-hierarchical-fibrous-hydrogels-high-alignment-and-flaw-insensitivity)”. Matter, 8, 6



 

 

 

- add\_circle\_outline do\_not\_disturb\_on Abstract
- [ descriptionPublisher's Version](http://doi.org/10.1016/j.matt.2025.102054)
 
Natural structural materials often feature intricate hierarchical architectures across various scales, from nanometers to hundreds of microns, resulting in exceptional strength, toughness, and flaw insensitivity. However, achieving similar microstructures...



 

 

- [ descriptionPublisher's Version](http://doi.org/10.1016/j.matt.2025.102054)
 
 

162 ., Lu F, Liou C, Ma Q, Wu Z, Xue B, Xia Y, Xia S, Trembley MA, Ponek A, Xie W, Shani K, Bortolin RH, Prondzynski M, Berkson P, Zhang X, Naya FJ, Bedi KC, Margulies KB, Zhang D, Parker KK, and Pu WT. 2025. “[Virally Delivered CMYA5 Enhances the Assembly of Cardiac Dyads](/publication/virally-delivered-cmya5-enhances-assembly-cardiac-dyads)”. Nature Biomedical Engineering , 8, 9, Pp. 109-26



 

 

162 ., Lu F, Liou C, Ma Q, Wu Z, Xue B, Xia Y, Xia S, Trembley MA, Ponek A, Xie W, Shani K, Bortolin RH, Prondzynski M, Berkson P, Zhang X, Naya FJ, Bedi KC, Margulies KB, Zhang D, Parker KK, and Pu WT. 2025. “[Virally Delivered CMYA5 Enhances the Assembly of Cardiac Dyads](/publication/virally-delivered-cmya5-enhances-assembly-cardiac-dyads)”. Nature Biomedical Engineering , 8, 9, Pp. 109-26



 

 

 

- add\_circle\_outline do\_not\_disturb\_on Abstract
- [ descriptionPublisher's Version](http://doi.org/10.1038/s41551-024-01253-z)
- [ picture\_as\_pdfVirally delivered CMYA5 e...](/sites/g/files/omnuum8351/files/2025-11/Virally%20delivered%20CMYA5%20enhances%20the%20assembly%20of%20cardiac%20dyads.pdf)
 
Cardiomyocytes derived from human induced pluripotent stem cells (hiPSC-CMs) lack nanoscale structures essential for efficient excitation–contraction coupling. Such nanostructures, known as dyads, are frequently disrupted in heart failure. Here we show...



 

 

- [ descriptionPublisher's Version](http://doi.org/10.1038/s41551-024-01253-z)
- [ picture\_as\_pdfVirally delivered CMYA5 e...](/sites/g/files/omnuum8351/files/2025-11/Virally%20delivered%20CMYA5%20enhances%20the%20assembly%20of%20cardiac%20dyads.pdf)
 
 

161 ., Yoshinaga D, Craven I, Feng R, Prondzynski M, Shani K, Tharani Y, Mayourian J, Joseph M, Walker D, Bortolin RH, Carreon CK, Boss B, Upton S, Parker KK, Pu WT, and Bezzerides VJ. 2025. “[Dysregulation of N-Terminal Acetylation Causes Cardiac Arrhythmia and Cardiomyopathy](/publication/dysregulation-n-terminal-acetylation-causes-cardiac-arrhythmia-and-cardiomyopathy)”. Nature Communications, 16, 3604



 

 

161 ., Yoshinaga D, Craven I, Feng R, Prondzynski M, Shani K, Tharani Y, Mayourian J, Joseph M, Walker D, Bortolin RH, Carreon CK, Boss B, Upton S, Parker KK, Pu WT, and Bezzerides VJ. 2025. “[Dysregulation of N-Terminal Acetylation Causes Cardiac Arrhythmia and Cardiomyopathy](/publication/dysregulation-n-terminal-acetylation-causes-cardiac-arrhythmia-and-cardiomyopathy)”. Nature Communications, 16, 3604



 

 

 

- add\_circle\_outline do\_not\_disturb\_on Abstract
- [ descriptionPublisher's Version](http://doi.org/10.1038/s41467-025-58539-2)
- [ picture\_as\_pdfDysregulation of N-termin...](/sites/g/files/omnuum8351/files/2025-11/Dysregulation%20of%20N-terminal%20acetylation%20causes%20cardiac%20arrhythmia%20and%20cardiomyopathy.pdf)
 
N-terminal acetyltransferases including NAA10 catalyze N-terminal acetylation, an evolutionarily conserved co- and post-translational modification. However, little is known about the role of N-terminal acetylation in cardiac homeostasis. To gain insight...



 

 

- [ descriptionPublisher's Version](http://doi.org/10.1038/s41467-025-58539-2)
- [ picture\_as\_pdfDysregulation of N-termin...](/sites/g/files/omnuum8351/files/2025-11/Dysregulation%20of%20N-terminal%20acetylation%20causes%20cardiac%20arrhythmia%20and%20cardiomyopathy.pdf)
 
 

160 ., Florindi C, Jang Y, Shani K, Moretti P, Bertarelli C, Lanzani G, Parker KK, Lodola F, and . 2025. “[A Cardiac Microphysiological System for Studying Ca2+ Propagation via Non-Genetic Optical Stimulation](/publication/cardiac-microphysiological-system-studying-ca2-propagation-non-genetic-optical)”. Journal of Visualized Experiments, 217



 

 

160 ., Florindi C, Jang Y, Shani K, Moretti P, Bertarelli C, Lanzani G, Parker KK, Lodola F, and . 2025. “[A Cardiac Microphysiological System for Studying Ca2+ Propagation via Non-Genetic Optical Stimulation](/publication/cardiac-microphysiological-system-studying-ca2-propagation-non-genetic-optical)”. Journal of Visualized Experiments, 217



 

 

 

- add\_circle\_outline do\_not\_disturb\_on Abstract
- [ descriptionPublisher's Version](http://doi.org/10.3791/67823)
 
*In vitro* cardiac microphysiological models are highly reliable for scientific research, drug development, and medical applications. Although widely accepted by the scientific community, these systems are still limited in longevity due to the absence of...



 

 

- [ descriptionPublisher's Version](http://doi.org/10.3791/67823)
 
 

159 ., Zimmerman JF, Drennan DJ, Ikeda J, Jin Q, Ardoña HAM, Kim SL, Ishii R, and Parker KK. 2025. “[Bioinspired Design of a Tissue-Engineered Ray With Machine Learning](/publication/bioinspired-design-tissue-engineered-ray-machine-learning)”. Science Robotics, 10, 99



 

 

159 ., Zimmerman JF, Drennan DJ, Ikeda J, Jin Q, Ardoña HAM, Kim SL, Ishii R, and Parker KK. 2025. “[Bioinspired Design of a Tissue-Engineered Ray With Machine Learning](/publication/bioinspired-design-tissue-engineered-ray-machine-learning)”. Science Robotics, 10, 99



 

 

 

- add\_circle\_outline do\_not\_disturb\_on Abstract
- [ descriptionPublisher's Version](http://doi.org/10.1126/scirobotics.adr6472)
- [ picture\_as\_pdfBioinspired design of a t...](/sites/g/files/omnuum8351/files/2025-11/Bioinspired%20design%20of%20a%20tissue-engineered%20ray%20with%20machine%20learning.pdf)
 
In biomimetic design, researchers recreate existing biological structures to form functional devices. For biohybrid robotic swimmers assembled with tissue engineering, this is problematic because most devices operate at different length scales than their...



 

 

- [ descriptionPublisher's Version](http://doi.org/10.1126/scirobotics.adr6472)
- [ picture\_as\_pdfBioinspired design of a t...](/sites/g/files/omnuum8351/files/2025-11/Bioinspired%20design%20of%20a%20tissue-engineered%20ray%20with%20machine%20learning.pdf)
 
 

 



### 2024

158., Romero AI, Jin Q, Parker KK, Alexander J, Wolfrum B, and Teshima TF. 2024. “[Toward Functional Biointerfaces With Origami-on-a-Chip](/publication/toward-functional-biointerfaces-origami-chip)”. Advanced Intelligent Systems, 6, 9



 

 

158., Romero AI, Jin Q, Parker KK, Alexander J, Wolfrum B, and Teshima TF. 2024. “[Toward Functional Biointerfaces With Origami-on-a-Chip](/publication/toward-functional-biointerfaces-origami-chip)”. Advanced Intelligent Systems, 6, 9



 

 

 

- add\_circle\_outline do\_not\_disturb\_on Abstract
- [ descriptionPublisher's Version](https://doi.org/10.1002/aisy.202400055)
- [ picture\_as\_pdfToward Functional Biointe...](/sites/g/files/omnuum8351/files/2025-11/Toward%20Functional%20Biointerfaces%20with%20Origami-on-a-Chip.pdf)
 
Studying the behavior of electroactive cells, such as firing dynamics and chemical secretion, is crucial for developing human disease models and therapeutics. Following the recent advances in cell culture technology, traditional monolayers are optimized...



 

 

- [ descriptionPublisher's Version](https://doi.org/10.1002/aisy.202400055)
- [ picture\_as\_pdfToward Functional Biointe...](/sites/g/files/omnuum8351/files/2025-11/Toward%20Functional%20Biointerfaces%20with%20Origami-on-a-Chip.pdf)
 
 

157., Prondzynski M, Berkson P, Trembley MA, Tharani Y, Shani K, Bortolin RH, Sweat ME, Mayourian J, Yucel D, Cordoves AM, Gabbin B, Hou C, Anyanwu NJ, Nawar F, Cotton J, Milosh J, Walker D, Zhang Y, Lu F, Liu X, Parker KK, Bezzerides VJ, and Pu WT. 2024. “[Efficient and Reproducible Generation of Human IPSC-Derived Cardiomyocytes and Cardiac Organoids in Stirred Suspension Systems](/publication/efficient-and-reproducible-generation-human-ipsc-derived-cardiomyocytes-and-cardiac)”. Nature Communications, 15, 5929



 

 

157., Prondzynski M, Berkson P, Trembley MA, Tharani Y, Shani K, Bortolin RH, Sweat ME, Mayourian J, Yucel D, Cordoves AM, Gabbin B, Hou C, Anyanwu NJ, Nawar F, Cotton J, Milosh J, Walker D, Zhang Y, Lu F, Liu X, Parker KK, Bezzerides VJ, and Pu WT. 2024. “[Efficient and Reproducible Generation of Human IPSC-Derived Cardiomyocytes and Cardiac Organoids in Stirred Suspension Systems](/publication/efficient-and-reproducible-generation-human-ipsc-derived-cardiomyocytes-and-cardiac)”. Nature Communications, 15, 5929



 

 

 

- add\_circle\_outline do\_not\_disturb\_on Abstract
- [ descriptionPublisher's Version](http://doi.org/10.1038/s41467-024-50224-0)
- [ picture\_as\_pdfEfficient and reproducibl...](/sites/g/files/omnuum8351/files/2025-11/Efficient%20and%20reproducible%20generation%20of%20human%20iPSC-derived%20cardiomyocytes%20and%20cardiac%20organoids%20in%20stirred%20suspension%20systems.pdf)
 
Human iPSC-derived cardiomyocytes (hiPSC-CMs) have proven invaluable for cardiac disease modeling and regeneration. Challenges with quality, inter-batch consistency, cryopreservation and scale remain, reducing experimental reproducibility and clinical...



 

 

- [ descriptionPublisher's Version](http://doi.org/10.1038/s41467-024-50224-0)
- [ picture\_as\_pdfEfficient and reproducibl...](/sites/g/files/omnuum8351/files/2025-11/Efficient%20and%20reproducible%20generation%20of%20human%20iPSC-derived%20cardiomyocytes%20and%20cardiac%20organoids%20in%20stirred%20suspension%20systems.pdf)
 
 

 



### 2023

156., Peters M, Brister J, Tang E, Zhang F, , Trackey P, Bone Z, Zimmerman JF, Jin Q, Burpo JF, and Parker KK. 2023. “[Self-Organizing Behaviors of Cardiovascular Cells on Synthetic Nanofiber Scaffolds](/publications/self-organizing-behaviors-cardiovascular-cells-synthetic-nanofiber)”. APL Bioengineering, 7, 4



 

 

156., Peters M, Brister J, Tang E, Zhang F, , Trackey P, Bone Z, Zimmerman JF, Jin Q, Burpo JF, and Parker KK. 2023. “[Self-Organizing Behaviors of Cardiovascular Cells on Synthetic Nanofiber Scaffolds](/publications/self-organizing-behaviors-cardiovascular-cells-synthetic-nanofiber)”. APL Bioengineering, 7, 4



 

 

 

- add\_circle\_outline do\_not\_disturb\_on Abstract
- [ descriptionPublisher's Version](https://pubs.aip.org/aip/apb/article/7/4/046114/2925594/Self-organizing-behaviors-of-cardiovascular-cells)
- [ picture\_as\_pdfself-organizing\_behaviors...](/sites/g/files/omnuum8351/files/diseasebiophysics/files/self-organizing_behaviors_of_cardiovascular_cells_on_synthetic_nanofiber_scaffolds.pdf)
 
In tissues and organs, the extracellular matrix (ECM) helps maintain inter- and intracellular architectures that sustain the structure–function relationships defining physiological homeostasis. Combining fiber scaffolds and cells to form engineered...



 

 

- [ descriptionPublisher's Version](https://pubs.aip.org/aip/apb/article/7/4/046114/2925594/Self-organizing-behaviors-of-cardiovascular-cells)
- [ picture\_as\_pdfself-organizing\_behaviors...](/sites/g/files/omnuum8351/files/diseasebiophysics/files/self-organizing_behaviors_of_cardiovascular_cells_on_synthetic_nanofiber_scaffolds.pdf)
 
 

155., Rodriguez-Millan M, Rubio I, Burpo FJ, Olmedo A, Loya JA, Parker KK, and Miguélez MH. 2023. “[Impact Response of Advance Combat Helmet Pad Systems](/publications/impact-response-advance-combat-helmet-pad-systems)”. International Journal of Impact Engineering, 181



 

 

155., Rodriguez-Millan M, Rubio I, Burpo FJ, Olmedo A, Loya JA, Parker KK, and Miguélez MH. 2023. “[Impact Response of Advance Combat Helmet Pad Systems](/publications/impact-response-advance-combat-helmet-pad-systems)”. International Journal of Impact Engineering, 181



 

 

 

- add\_circle\_outline do\_not\_disturb\_on Abstract
- [ descriptionPublisher's Version](https://www.sciencedirect.com/science/article/pii/S0734743X23002671)
- [ picture\_as\_pdfimpact\_response\_of\_advanc...](/sites/g/files/omnuum8351/files/diseasebiophysics/files/impact_response_of_advance_combat_helmet_pad_systems.pdf)
 
Combat helmets are designed to protect against ballistic threats and fragments of explosive devices. There are numerous types of helmet comfort foams available. However, pad systems have not been evaluated in combat helmets to understand to what extent...



 

 

- [ descriptionPublisher's Version](https://www.sciencedirect.com/science/article/pii/S0734743X23002671)
- [ picture\_as\_pdfimpact\_response\_of\_advanc...](/sites/g/files/omnuum8351/files/diseasebiophysics/files/impact_response_of_advance_combat_helmet_pad_systems.pdf)
 
 

154., Rodriguez-Millan M, Rubio I, Burpo FJ, Tse KM, Olmedo A, Loya JA, Parker KK, and Miguélez MH. 2023. “[Experimental and Numerical Analyses of Ballistic Resistance Evaluation of Combat Helmet Using Hybrid III Headform](/publications/experimental-and-numerical-analyses-ballistic-resistance-evaluation)”. International Journal of Impact Engineering, 179



 

 

154., Rodriguez-Millan M, Rubio I, Burpo FJ, Tse KM, Olmedo A, Loya JA, Parker KK, and Miguélez MH. 2023. “[Experimental and Numerical Analyses of Ballistic Resistance Evaluation of Combat Helmet Using Hybrid III Headform](/publications/experimental-and-numerical-analyses-ballistic-resistance-evaluation)”. International Journal of Impact Engineering, 179



 

 

 

- add\_circle\_outline do\_not\_disturb\_on Abstract
- [ descriptionPublisher's Version](https://www.sciencedirect.com/science/article/pii/S0734743X23001641?via%3Dihub)
- [ picture\_as\_pdfexperimental\_and\_numerica...](/sites/g/files/omnuum8351/files/diseasebiophysics/files/experimental_and_numerical_analyses_of_ballistic_resistance_evaluation_of_combat_helmet_using_hybrid_iii_headform.pdf)
 
Combat helmets are the primary system for protecting the head against ballistic impacts. Generally, combat helmets have been evaluated using a ballistic [plasticine](https://www.sciencedirect.com/topics/engineering/plasticine) head surrogate based on international standards. More realistic human head models have...



 

 

- [ descriptionPublisher's Version](https://www.sciencedirect.com/science/article/pii/S0734743X23001641?via%3Dihub)
- [ picture\_as\_pdfexperimental\_and\_numerica...](/sites/g/files/omnuum8351/files/diseasebiophysics/files/experimental_and_numerical_analyses_of_ballistic_resistance_evaluation_of_combat_helmet_using_hybrid_iii_headform.pdf)
 
 

153., Kim SL, Trembley M, Lee KY, Choi S, MacQueen LA, Zimmerman JF, H.C. de Wit L, Shani K, Henze D, Drennan D, Saifee S, Loh LJ, Liu X, Parker KK, and Pu WT. 2023. “[Spatiotemporal Cell Junction Assembly in Human IPSC-CM Models of Arrhythmogenic Cardiomyopathy](/publications/spatiotemporal-cell-junction-assembly-human-ipsc-cm-models)”. Stem Cell Reports, 18, Pp. 1-16



 

 

153., Kim SL, Trembley M, Lee KY, Choi S, MacQueen LA, Zimmerman JF, H.C. de Wit L, Shani K, Henze D, Drennan D, Saifee S, Loh LJ, Liu X, Parker KK, and Pu WT. 2023. “[Spatiotemporal Cell Junction Assembly in Human IPSC-CM Models of Arrhythmogenic Cardiomyopathy](/publications/spatiotemporal-cell-junction-assembly-human-ipsc-cm-models)”. Stem Cell Reports, 18, Pp. 1-16



 

 

 

- add\_circle\_outline do\_not\_disturb\_on Abstract
- [ descriptionPublisher's Version](https://www.cell.com/stem-cell-reports/fulltext/S2213-6711(23)00267-9#secsectitle0020)
- [ picture\_as\_pdfspatiotemporal\_cell\_junct...](/sites/g/files/omnuum8351/files/diseasebiophysics/files/spatiotemporal_cell_junction_assembly_in_human_ipsc-cm_models_of_arrhythmogenic_cardiomyopathy.pdf)
 
Arrhythmogenic cardiomyopathy (ACM) is an inherited cardiac disorder that causes life-threatening arrhythmias and myocardial dysfunction. Pathogenic variants in Plakophilin-2 (*PKP2*), a desmosome component within specialized cardiac cell junctions, cause...



 

 

- [ descriptionPublisher's Version](https://www.cell.com/stem-cell-reports/fulltext/S2213-6711(23)00267-9#secsectitle0020)
- [ picture\_as\_pdfspatiotemporal\_cell\_junct...](/sites/g/files/omnuum8351/files/diseasebiophysics/files/spatiotemporal_cell_junction_assembly_in_human_ipsc-cm_models_of_arrhythmogenic_cardiomyopathy.pdf)
 
 

 



 

 

 

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