Biologically Inspired Molecular Adhesives towards Multifunctional Biomaterials a...
Biologically Inspired Molecular Adhesives towards Multifunctional Biomaterials and Microreactors
Recombinant proteins, including enzymes and antibodies, have revolutionized many sectors of biochemistry and biotechnology. In this project I propose a groundbreaking technology to control the supramolecular assembly of proteins i...
ver más
Descripción del proyecto
Recombinant proteins, including enzymes and antibodies, have revolutionized many sectors of biochemistry and biotechnology. In this project I propose a groundbreaking technology to control the supramolecular assembly of proteins in space and time to better mimic cellular organization and create a next generation of protein living materials for biocatalysis and medicine.
The core idea is to mimic cellular multiprotein assemblies and microreactors on the bench, by compartmentalizing multiple proteins in space. Increasing evidence indicates that cells can coordinate crucial functions by forming membrane-less compartments via liquid-liquid phase separation of proteins and nucleic acids. Most of the proteins involved in this process consist of globular regions and disordered domains, which are enriched in specific aminoacids and pilot highly controlled self-assembly. In this project we will conjugate functional globular proteins with sequences that mimic the disordered biological domains and act as molecular Velcros, thereby coupling biochemical functions with phase separation in space and time. Using a combination of microfluidic technology and in silico analysis, we will develop sequences capable to control not only the dynamic process of phase separation but also the phenotype of the resulting compartments, including selective recruitment of molecules, physical properties and response to specific switches.
This project will deliver adaptive compartments with unprecedented control of composition, environment, biochemical function and stimulus-responsiveness, going towards the development of networks of open microreactors, superior enzymes for green chemistry as well as smart materials for drug delivery. Moreover, the results will generate new knowledge on natural supramolecular structures that are associated with both functional biology and aberrant aggregates involved in devastating disorders such as Alzheimer’s and Parkinson’s disease.
Seleccionando "Aceptar todas las cookies" acepta el uso de cookies para ayudarnos a brindarle una mejor experiencia de usuario y para analizar el uso del sitio web. Al hacer clic en "Ajustar tus preferencias" puede elegir qué cookies permitir. Solo las cookies esenciales son necesarias para el correcto funcionamiento de nuestro sitio web y no se pueden rechazar.
Cookie settings
Nuestro sitio web almacena cuatro tipos de cookies. En cualquier momento puede elegir qué cookies acepta y cuáles rechaza. Puede obtener más información sobre qué son las cookies y qué tipos de cookies almacenamos en nuestra Política de cookies.
Son necesarias por razones técnicas. Sin ellas, este sitio web podría no funcionar correctamente.
Son necesarias para una funcionalidad específica en el sitio web. Sin ellos, algunas características pueden estar deshabilitadas.
Nos permite analizar el uso del sitio web y mejorar la experiencia del visitante.
Nos permite personalizar su experiencia y enviarle contenido y ofertas relevantes, en este sitio web y en otros sitios web.