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Gullbrand, S. E.

Publications and source records attributed to Gullbrand, S. E..

4 recordsLinked to original sources

ZNF865 Regulates Senescence and Cell Cycle for Applications to Cell Engineering and Gene Therapy

Zinc finger (ZNF) proteins represent the largest group of regulatory proteins within eukaryotic genomes. However, despite their broad regulatory function, the majority of ZNF protein function remains unknown. Recently, we discovered ZNF865, which has no in-depth publications and has not been functionally characterized. Utilizing CRISPR-guided gene modulation, we show that ZNF865 regulates key cellular and molecular processes associated with healthy cell function by primarily regulating cellular senescence, cell cycle progression, and protein processing. As a result, regulating this gene acts as a primary titratable regulator of cell activity, and we demonstrate the potential of targeted ZNF865 regulation as a tool to control senescence and protein production in multiple clinically relevant cell types for cell engineering/tissue engineering/gene therapy applications. We demonstrate its ability to rescue human senescent cell populations, boost T-cell activity, and dramatically deposit more cartilaginous tissue in a whole organ tissue-engineered intervertebral disc. Overall, we present novel biology and regulatory mechanisms of senescence and cell cycle that were previously unknown and display the power of CRISPR-cell engineering to enhance cell engineering strategies treating disease.

bioengineering↗

Anti-Inflammatory Tension-Activated Repair Patches Improve Repair After Intervertebral Disc Herniation

Conventional treatment for intervertebral disc herniation alleviates pain but does not repair the annulus fibrosus (AF), resulting in a high incidence of recurrent herniation and persistent disfunction. The lack of repair and the acute inflammation that arise after injury further compromises the disc and can result in disc-wide degeneration in the long term. To address this clinical need, we developed tension-activated repair patches (TARPs) for annular repair and the local delivery of bioactive anti-inflammatory factors. TARPs transmit physiologic strains to mechanically-activated microcapsules (MAMCs) embedded within, which activate and release encapsulated biomolecules in response to physiologic loading. Here, we demonstrate that the TARP design modulates implant biomechanical properties and regulates MAMC mechano-activation. Next, the FDA-approved anti-inflammatory molecule, interleukin 1 receptor antagonist, Anakinra, was loaded in TARPs and the effects of TARP-mediated annular repair and Anakinra delivery was evaluated in a model of annular injury in the goat cervical spine. TARPs showed robust integration with the native tissue and provided structural reinforcement at the injury site that prevented disc-wide aberrant remodeling resulting from AF detensioning. The delivery of Anakinra via TARP implantation improved the retention of disc biochemical composition through increased matrix deposition and retention at the site of annular injury. Anakinra delivery additionally attenuated the inflammatory response associated by scaffold implantation, decreasing osteolysis in adjacent vertebrae and preserving disc cellularity and matrix organization throughout the AF. These results demonstrate the translational and therapeutic potential of this novel TARP system for the treatment of intervertebral disc herniations. One Sentence SummaryTension-activated repair patches delivering bioactive anti-inflammatory factors improve healing in an in vivo goat cervical disc injury model.

bioengineering↗

Developmental Morphogens Direct Human Induced Pluripotent Stem Cells Towards an Annulus Fibrosus-like Cell Phenotype

Therapeutic interventions for intervertebral disc herniation remain scarce due to the inability of endogenous annulus fibrosus (AF) cells to respond to injury and drive tissue regeneration. Unlike other orthopaedic tissues, such as cartilage, delivery of exogenous cells to the site of annular injury remains underdeveloped, largely due to a lack of an ideal cell source and the invasive nature of cell isolation. Human induced pluripotent stem cells (iPSCs) can be differentiated to specific cell fates using biochemical factors and are, therefore, an invaluable tool for cell therapy approaches. While differentiation protocols have been developed for cartilage and fibrous connective tissues (e.g., tendon), the signals that regulate the induction and differentiation of human iPSCs towards the annulus fibrosus fate remain unknown. Here, we screened a number of candidate factors (and their combinations) and assessed the transcriptomic signatures of key signaling factors involved in embryonic AF development and differentiated function. The transcriptional signatures of treated cells were compared to those of mature human AF cells, and conditions that promoted expression of annulus fibrosus extracellular matrix genes and key transcription factors involved in embryonic AF development were identified. These findings represent an initial approach to guide human induced pluripotent stem cells towards an annulus fibrosus-like fate for cellular delivery strategies.

cell biology↗

MXtrodes: MXene-infused bioelectronic interfaces for multiscale electrophysiology and stimulation

Soft bioelectronic interfaces for mapping and modulating excitable networks at high resolution and at large scale can enable paradigm-shifting diagnostics, monitoring, and treatment strategies. Yet, current technologies largely rely on materials and fabrication schemes that are expensive, do not scale, and critically limit the maximum attainable resolution and coverage. Solution processing is a cost-effective manufacturing alternative, but biocompatible conductive inks matching the performance of conventional metals are lacking. Here, we introduce MXtrodes, a novel class of soft, high-resolution, large-scale bioelectronic interfaces enabled by Ti3C2 MXene and scalable solution processing. We show that the electrochemical properties of MXtrodes exceed those of conventional materials, and do not require conductive gels when used in epidermal electronics. Furthermore, we validate MXtrodes in a number of applications ranging from mapping large scale neuromuscular networks in humans to delivering cortical microstimulation in small animal models. Finally, we demonstrate that MXtrodes are compatible with standard clinical neuroimaging modalities.

bioengineering↗