The biomimetic mineralization of metal-organic framework (MOF) material on living cells is reported. ZIF-8 can be crystallized on a living cell surface as an exoskeleton that offers physical protection while allowing transport of essential nutrients, thus maintaining cell viability. The MOF shell prevents cell division, leading to an artificially induced pseudo-hibernation state. Cellular functions can be fully restored upon MOF removal
The formation of biofunctionalized metal–organic frameworks (MOFs) by growing them on a variety of m...
A platform based on a metal-organic framework (MOF) bearing free carboxylic acid groups has been dev...
Utilizing metal-organic frameworks (MOFs) as a biological carrier can lower the amount of the active...
The biomimetic mineralization of metal–organic framework (MOF) material on living cells is reported....
Mammalian cells are protected by a membrane; however, cellular membrane is fragile and easy to break...
Mammalian cells are promising agents for cell therapy, diagnostics, and drug delivery. For full util...
Many living organisms are capable of producing inorganic materials of precisely controlled structure...
Metal-organic framework (MOF) coatings on cells enhance viability in cytotoxic environments. Here, w...
Many living organisms are capable of producing inorganic materials of precisely controlled structure...
Metal–organic frameworks (MOFs) are a class of coordination polymers, consisting of metal ions or cl...
Biomimetic mineralization with metal–organic frameworks (MOF), typically zeolitic imidazolate framew...
A bioactive synthetic porous shell was engineered to enable cells to survive in an oligotrophic envi...
Metal-organic frameworks (MOFs) are well-defined crystalline organometallic compounds produced by hy...
Organelles, or subcellular structures, are the fundamental functional units in almost all eukaryotic...
Metal-organic frameworks (MOFs) have found increasingapplicationsin the biomedical field due to thei...
The formation of biofunctionalized metal–organic frameworks (MOFs) by growing them on a variety of m...
A platform based on a metal-organic framework (MOF) bearing free carboxylic acid groups has been dev...
Utilizing metal-organic frameworks (MOFs) as a biological carrier can lower the amount of the active...
The biomimetic mineralization of metal–organic framework (MOF) material on living cells is reported....
Mammalian cells are protected by a membrane; however, cellular membrane is fragile and easy to break...
Mammalian cells are promising agents for cell therapy, diagnostics, and drug delivery. For full util...
Many living organisms are capable of producing inorganic materials of precisely controlled structure...
Metal-organic framework (MOF) coatings on cells enhance viability in cytotoxic environments. Here, w...
Many living organisms are capable of producing inorganic materials of precisely controlled structure...
Metal–organic frameworks (MOFs) are a class of coordination polymers, consisting of metal ions or cl...
Biomimetic mineralization with metal–organic frameworks (MOF), typically zeolitic imidazolate framew...
A bioactive synthetic porous shell was engineered to enable cells to survive in an oligotrophic envi...
Metal-organic frameworks (MOFs) are well-defined crystalline organometallic compounds produced by hy...
Organelles, or subcellular structures, are the fundamental functional units in almost all eukaryotic...
Metal-organic frameworks (MOFs) have found increasingapplicationsin the biomedical field due to thei...
The formation of biofunctionalized metal–organic frameworks (MOFs) by growing them on a variety of m...
A platform based on a metal-organic framework (MOF) bearing free carboxylic acid groups has been dev...
Utilizing metal-organic frameworks (MOFs) as a biological carrier can lower the amount of the active...