Results 161 to 170 of about 12,679,354 (288)
Unravelling the Role Played by Non-covalent Interactions in the Action Mechanism of PCDDs within Cells. [PDF]
Ruano L +5 more
europepmc +1 more source
Engineered red blood cell‐derived extracellular vesicles (eRBCEVs) are synthesized via controlled microfluidic assembly from native RBC lipids, enabling tunable encapsulation of proteins, nucleic acids, nanoparticles, and viral vectors. The platform demonstrates reproducible nanoscale architecture, preserved membrane composition, and functional cargo ...
Chiranth K. Nagaraj +23 more
wiley +1 more source
Editorial: Experimental and theoretical investigation of non-covalent interactions in potential bioactive compounds. [PDF]
Thamotharan S, Percino MJ, Gil DM.
europepmc +1 more source
Gonzalez Martinez and collaborators develop a strategy to formulate high performance GelMA‐based bioinks with low solids contents. The resulting bioinks enable 3D bioprinting at 37 °C of high‐fidelity structures with tunable mechanical properties that support high cell viability and function.
David A. González‐Martínez +8 more
wiley +1 more source
Constructing a photoferroelectric semiconductor by regulating non-covalent interactions through halogen substitution. [PDF]
He Y +8 more
europepmc +1 more source
How deeply should we analyze non-covalent interactions? [PDF]
Clark T.
europepmc +1 more source
Biocompatible hydrogels with covalently embedded near‐infrared phosphorescent probes enable local tissue pO2 quantification by means of Cherenkov‐excited luminescence imaging (CELI), where optical excitation occurs within tissues upon irradiation with high‐energy electron beams.
Simin Belali +7 more
wiley +1 more source
Non-Covalent Interactions Between Quercetin and Rice Bran Protein: Mechanisms and Functional Properties. [PDF]
Wang S, Yu D, Wang T, Zhou L, Han X.
europepmc +1 more source
Interactive Exploration of Non-Covalent Interactions with the NGL Viewer [PDF]
Alexander S. Rose, Stephen K. Burley
openaire +1 more source
Mitochondria‐targeted nanotherapies emerge as a promising strategy for combating aging‐associated neurodegenerative disorders (NDs) by restoring mitochondrial function, reducing oxidative stress, and improving neuronal survival. Recent advances in nanotechnology, therapeutic delivery, and translational research are highlighted, providing insights into ...
Dnyandev G. Gadhave +8 more
wiley +1 more source

