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Windenbach, E.

Publications and source records attributed to Windenbach, E..

2 recordsLinked to original sources

Catch & Release - rapid cost-effective protein purification from plants using a DIY GFP-Trap-protease approach

The purification of proteins is the foundation to study their structure, function, biochemical properties, and interaction partners. In plant research, unique challenges arise from the complexity of plant tissues, interference of secondary metabolites, and sometimes the low abundance of target proteins. Many conventional plant protein purification methods rely on expensive reagents, multi-step procedures, and labor-intensive workflows, limiting their feasibility for many applications. Here, we present the "Catch & Release" system, a cost-effective, fast and reliable one-step purification workflow for the isolation of soluble and membrane-bound proteins from plant tissues. The Catch & Release toolbox includes a vector set, a homemade GFP-trap and homemade proteases. Catch & Release vectors streamline cloning and transgenic plant selection through the Fluorescence-Accumulating Seed Technology (FAST), which marks positive transformants with a strongly fluorescing seed coat. Each plasmid consists of four, easy to exchange, modules: a plant promoter, a cloning dropout marker, protease cleavage sites, and seven different epitope tags, including an innovative dual-fluorescent tag, providing flexibility for diverse experimental needs. The in vivo functionality of all modules has been confirmed. Besides enabling standard molecular biological experimentation, our vector set in combination with homemade GFP-trap and proteases enables efficient and rapid isolation of soluble and high molecular weight membrane proteins directly from plants. By following our detailed reagent preparation instructions, purification costs can be decreased hundred-fold compared to the commercially available options.

plant biology↗

Developing and characterising decellularized extracellular matrix hydrogels to bio-fabricate female reproductive tissues

This study investigated the development and characterization of decellularized extracellular matrix (dECM) hydrogels tailored for the bio-fabrication of female reproductive tissues, specifically targeting cortex, endometrium, medulla, and oviduct tissues. We aimed to evaluate the cytocompatibility, biomechanical properties, and overall efficacy of these dECMs in promoting cell viability, proliferation, and differentiation. Our findings revealed that these dECMs exhibited high biocompatibility with embryo development and cell viability, supporting micro vascularization and cellular differentiation without the need for external growth factors. These hydrogels displayed biomechanical properties that closely mimicked native tissues, which was vital for maintaining their functional integrity and supporting cellular activities. The printability assessments showed that dECMs, particularly those from cortex tissues, achieved high precision in replicating the intended structures, though challenges such as low porosity remained. The bioprinted constructs demonstrated robust cell growth, with over 97% viability observed by day 7, indicating their suitability for cell culture. This work represented a significant advancement in reproductive tissue bio-fabrication, demonstrating the potential of dECM-based hydrogels in creating structurally and functionally viable tissue constructs. By tailoring each dECM to match the unique biomechanical properties of different tissues, we paved the way for more effective and reliable applications in reproductive medicine and tissue engineering. HighlightsO_LIDeveloped decellularized extracellular matrix (dECM) bio-inks for bio-fabrication of female reproductive tissues. C_LIO_LIDemonstrated high biocompatibility with embryo development and cell viability. C_LIO_LIAchieved accurate bioprinting, maintaining structural integrity. C_LIO_LIPromoted micro vascularization and cell differentiation without added growth factors. C_LI

bioengineering↗