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Katzschmann, R.

Publications and source records attributed to Katzschmann, R..

4 recordsLinked to original sources

Cell-Dense Bioink Design for Xolography: Coupling Refractive Index-Matching with Increased Photoreactivity

Bioxolography enables high-resolution fabrication of geometrically complex, cell-laden constructs for tissue engineering. However, tissue-relevant cell densities conflict with the optical transparency required for efficient dual-color volumetric printing. In this work, we extend the Bioxolography toolbox to include refractive index (RI) matching for cell-laden bioresins using iodixanol (IDX). Remarkably, IDX enhances optical transparency and boosts reactivity -- a phenomenon unique to Xolography. Yet, excessive IDX compromises dual-color efficiency through increased absorption and undesired UV-only curing, underscoring a central trade-off between optical clarity and photochemical performance. Systematic tuning of resin compositions along an iso-refractive index line demonstrated the versatility of Bioxolography, with IDX enhancing polymerization and 4-Hydroxy-TEMPO providing biocompatible inhibition. Optimizing composition and printing parameters yielded GelMA hydrogels with cell densities up to 5{middle dot}106 cells{middle dot}mL-1. Cell-laden prints achieved sub-100 {micro}m resolution and complex geometries such as channels and gyroids. Using skeletal muscle tissue as a model, we validated RI matched Bioxolography as a promising strategy for tissue engineering by demonstrating cell alignment along printed grooves and formation of mature muscle fibers characterized by MyoHC+ staining and fusion index. By integrating physical, chemical, and biological perspectives, this work advances Xolography toward biomaterials development and reinforces its position as an emerging volumetric (bio)printing technology. Table of Contents O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=175 SRC="FIGDIR/small/729865v1_ufig1.gif" ALT="Figure 1"> View larger version (86K): org.highwire.dtl.DTLVardef@19c0380org.highwire.dtl.DTLVardef@1a9e920org.highwire.dtl.DTLVardef@84210org.highwire.dtl.DTLVardef@294112_HPS_FORMAT_FIGEXP M_FIG C_FIG For printing higher cell density bioresins with Xolography, iodixanol (IDX) is added for refractive index-matching. The addition leads to an unexpected additional effect with increased reactivity in the dual-color photopolymerization. With careful adjustment of the resin composition and the printing parameters, Bioxolography is proven as a viable tool for tissue engineering.

bioengineering↗

Volumetric 3D Printing and Melt-Electrowriting to Fabricate Implantable Reinforced Cardiac Tissue Patches

Cardiac patches for repairing myocardial defects require mechanically stable materials that prevent bleeding and can be implanted via suturing. The current clinical standard, bovine pericardial patches (BPPs), serve this purpose but do not degrade or integrate with the myocardium, limiting their long-term effectiveness. Therefore, we have developed the Reinforced engineered Cardiac tissue Patch (RCPatch). This multimaterial patch consists of a stiffness-tuned, cardiomyocyte-infiltrated 3D metamaterial and a suturable, hydrogel-infiltrated mesh to reduce permeability and bleeding. We first designed and computationally optimized anisotropic metamaterials using a generative modelling approach and fabricated them from biodegradable poly({varepsilon}-caprolactone) (PCL) via volumetric 3D printing (VP). The metamaterial supported the infiltration of cardiomyocytes, which maintained cell viability and contractility in vitro. In a second step, we enhanced implantability and reduced blood permeability through the patch by combining a melt-electrowritten (MEW) mesh with a fibrin hydrogel. Finally, in an acute large animal trial, the RCPatch was used on an induced myocardial defect, where it withstood intraventricular blood pressure and enabled partial hemodynamic recovery. Our findings establish a scalable framework for fabricating cardiac tissue patches that integrate mechanical reinforcement with biological function, offering a surgically implantable, and potentially regenerative solution for intraventricular myocardial repair. Table of Contents (ToC) O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=179 SRC="FIGDIR/small/642643v1_ufig1.gif" ALT="Figure 1"> View larger version (64K): org.highwire.dtl.DTLVardef@66293dorg.highwire.dtl.DTLVardef@11d9122org.highwire.dtl.DTLVardef@235d16org.highwire.dtl.DTLVardef@1b46911_HPS_FORMAT_FIGEXP M_FIG C_FIG This study presents an implantable intraventricular cardiac patch (RCPatch) combining volumetric 3D-printed metamaterials with melt-electrowritten (MEW) meshes. The design integrates tunable stiff structures with soft, cell-laden hydrogels. The RCPatch withstood suturing, intraventricular pressure, and cardiac contraction in an acute large animal myocardial defect model. The patch prevented bleeding and enabled partial hemodynamic recovery, demonstrating its potential for myocardial repair.

bioengineering↗

Bilayered Biofabrication Unlocks the Potential of Skeletal Muscle for Biohybrid Soft Robots

The emerging field of biohybrid robotics aims to create the next generation of soft and sustainable robots by using engineered biological muscle tissues integrated with soft materials as artificial muscles (bio-actuators). Both cardiac and skeletal muscle cells can be used for biohybrid actuation. Generally, cardiac bio-actuators take the shape of thin cellular films, while locomotive skeletal muscle bio-actuators form bulk tissues. The geometry of a bio-actuator should be optimized for the type of desired motion, e.g., thin film layers are optimal for swimming actuators mimicking fish. Until now, the geometry of skeletal muscle bio-actuators has been constrained to ring- or block-like tissues generally differentiated around a pair of pillars due to the need to oppose the contraction force exerted during the skeletal muscle differentiation process. In this work, we extend the possible geometry of skeletal muscle bio-actuators by demonstrating a bilayered design that mimics the motion of jellyfish. We take advantage of a volumetric printing method, i.e., xolography, which allows us to micropattern poly(ethylene glycol) diacrylate and gelatin methacrylate hydrogels to serve as scaffolds for seeding a layer of the skeletal muscle cell matrix. We demonstrate the locomotion speed of our bio-actuators is 3.4x faster than previously reported counterparts. In addition, our skeletal bio-actuators outperform most cardiac ones. Further optimization of our bilayer biofabrication for improved reproducibility of the maturation process of the skeletal muscle tissue will pave the way for the next generation of performant skeletal muscle-based actuators for biohybrid robots.

bioengineering↗

Integrated Closed-loop Control of Bio-actuation for Proprioceptive Bio-hybrid Robots

Biohybrid robots are emergent soft robots that combine engineered artificial structures and living biosystems to exploit unique characteristics of biological cells and tissues. Skeletal muscle tissue-based bio-actuators can respond to externally applied stimuli, such as electrical fields. However, current bio-actuation systems rely on open-loop control strategies that lack knowledge of the actuators state. The regulation of output force and position of bio-hybrid robots requires self-sensing control systems that combine bio-actuators with sensors and control paradigms. Here, we propose a soft, fiber-shaped mechanical sensor based on a composite with piezoresistive properties that efficiently integrates with engineered skeletal muscle tissue and senses its contracting states in a cell culture environment in the presence of applied electrical fields. After testing the sensors insulation and biocompatibility, we characterized its sensitivity for typical strains (<1%) and proved its ability to detect motions from contractile skeletal muscle tissue constructs. Finally, we showed that the sensor response can feed an autonomous control system, thus demonstrating the first proprioceptive bio-hybrid robot that can sense and respond to its contraction state. In addition to inspiring intelligent implantable systems, informative biomedical models, and other bioelectronic systems, the proposed technology will encourage strategies to exceed the durability, design, and portability limitations of biohybrid robots and confer them decisional autonomy, thus driving the paradigm shift between bio-actuators and intelligent bio-hybrid robots. One Sentence SummaryIntegrating soft mechanical sensors into engineered skeletal muscle tissue enables bio-hybrid robots with proprioception.

bioengineering↗