Previous studies have shown that selective synthetic cell receptors can be produced by cell imprinting on polymer layers. However, knowledge on the fundamental detection mechanisms remains limited. In this article, while using yeast cells (Saccharomyces cerevisiae) as model cells, the factors influencing cellular recognition by surface-imprinted polymers (SIPs) are studied by means of spectroscopic and microscopy techniques and a transducer platform based on interfacial thermal transport, the so-called heat-transfer method (HTM). These analyses indicate that cell imprinting creates selective binding sites on the surface of the SIP layer in the form of binding cavities that match the cells in shape and size. Also, we show that phospholipid m...
Since their conception 50 years ago, molecularly imprinted polymers (MIPs) have seen extensive devel...
In this work, we present a new technique for the sensitive and facile detection of Saccharomyces str...
Molecularly imprinted polymer (MIP)-based thermal sensing has proven to be a very interesting tool f...
Previous studies have shown that selective synthetic cell receptors can be produced by cell imprinti...
Previous studies have shown that selective synthetic cell receptors can be produced by cell imprinti...
Cell imprinting on polymer layers produces synthetic receptors, so called surface imprinted polymers...
Surface imprinting involves the synthesis of thin polymer layer in the presence of a template specie...
The strong affinity of biological receptors for their targets has been studied for many years. Nonco...
Surface-imprinted polymers allow for specific cell detection based on simultaneous recognition of th...
Surface imprinted polymers (SIPs) are versatile receptors in bioanalytical applications for the sele...
Surface-imprinted polymers allow for specific cell detection based on simultaneous recognition of th...
In this article, we describe a novel straightforward method for the specific identification of viabl...
In this article, we describe a novel straightforward method for the specific identification of viabl...
Previous work has indicated that surface imprinted polymers (SIPs) allow for highly specific cell de...
Since their conception 50 years ago, molecularly imprinted polymers (MIPs) have seen extensive devel...
In this work, we present a new technique for the sensitive and facile detection of Saccharomyces str...
Molecularly imprinted polymer (MIP)-based thermal sensing has proven to be a very interesting tool f...
Previous studies have shown that selective synthetic cell receptors can be produced by cell imprinti...
Previous studies have shown that selective synthetic cell receptors can be produced by cell imprinti...
Cell imprinting on polymer layers produces synthetic receptors, so called surface imprinted polymers...
Surface imprinting involves the synthesis of thin polymer layer in the presence of a template specie...
The strong affinity of biological receptors for their targets has been studied for many years. Nonco...
Surface-imprinted polymers allow for specific cell detection based on simultaneous recognition of th...
Surface imprinted polymers (SIPs) are versatile receptors in bioanalytical applications for the sele...
Surface-imprinted polymers allow for specific cell detection based on simultaneous recognition of th...
In this article, we describe a novel straightforward method for the specific identification of viabl...
In this article, we describe a novel straightforward method for the specific identification of viabl...
Previous work has indicated that surface imprinted polymers (SIPs) allow for highly specific cell de...
Since their conception 50 years ago, molecularly imprinted polymers (MIPs) have seen extensive devel...
In this work, we present a new technique for the sensitive and facile detection of Saccharomyces str...
Molecularly imprinted polymer (MIP)-based thermal sensing has proven to be a very interesting tool f...