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Doloff, J. C.

Publications and source records attributed to Doloff, J. C..

3 recordsLinked to original sources

Precision in Spinal Cord Injury Research: A Novel Electromagnetic Impactor for a Consistent Porcine Model

PurposeReplicating spinal cord injury (SCI) in large animals is necessary for evaluating therapeutics for potential human translation, yet there is currently no commercial, standardized device for inducing SCI. We present the fabrication and testing of a custom impactor device for producing repeatable contusion SCI in porcine models. MethodsWe first designed and built the device. Mechanical modeling was subsequently utilized to calibrate our benchtop testing setup. Benchtop verification was performed to measure impact force post calibration. We then used the device to generate a contusion SCI model in 2 pigs and the results were compared to an uninjured pig. Intraoperative ultrasound was used to visualize a hematoma in the injured spinal cord. Hematoxylin-eosin (H&E) and Massons trichrome staining were used to confirm injury presence on ex vivo spinal cord samples. ResultsMechanical modeling forces matched benchtop impact forces within 1.4 N, indicating successful calibration of the testing setup. Our device demonstrated repeatability and the potential for modulating injury severity on the benchtop. Impactor forces were demonstrated across a range from 12.8 to 67.6 N, with variability remaining within 0.2 to 0.7 N standard deviation. The device induced two contusion injuries of different severity in vivo, confirmed by intraoperative ultrasound imaging and post-excision histology of the spinal cord. ConclusionOur impactor device is a major advancement towards producing repeatable and titratable contusions in large animal SCI models.

bioengineering↗

mRNA lipid nanoparticle-incorporated nanofiber-hydrogel composite generates a local immunostimulatory niche for cancer immunotherapy

Hydrogel materials have emerged as versatile platforms for various biomedical applications. Notably, the engineered nanofiber-hydrogel composite (NHC) has proven effective in mimicking the soft tissue extracellular matrix, facilitating substantial recruitment of host immune cells and the formation of a local immunostimulatory microenvironment. Leveraging this feature, here we report an mRNA lipid nanoparticle (LNP)-incorporated NHC microgel matrix, termed LiNx, by incorporating LNPs loaded with mRNA encoding tumour antigens. Harnessing the potent transfection efficiency of LNPs in antigen-presenting cells (APCs), LiNx demonstrates remarkable immune cell recruitment, antigen expression and presentation, and cellular interaction. These attributes collectively create an immunostimulating milieu and yield a potent immune response achievable with a single dose, comparable to the conventional three-dose LNP immunization regimen. Further investigations reveal that the LiNx not only generates heightened Th1 and Th2 responses but also elicits a distinctive Type 17 T helper cell-mediated response pivotal for bolstering antitumour efficacy. Our findings elucidate the mechanism underlying LiNxs role in potentiating antigen-specific immune responses, presenting a new strategy for cancer immunotherapy.

bioengineering↗

Immunologic comparisons of strain and induction method in an improved mouse model of intrauterine fibrosis

Intrauterine adhesions are growths of fibrotic tissue within the uterine cavity and can arise from a variety of tissue-damaging stimuli. Immune cells are known to mediate fibrotic responses, but specific mechanisms require further elucidation. Here, we compared intrauterine fibrosis development and immune responses across different mouse strains and induction methods. We aimed to identify a consistent and more clinically relevant mouse model of intrauterine fibrosis, whether immune responses differ in response to different stimuli, and which potential key immune cell populations are responsible for intrauterine fibrosis susceptibility. Intrauterine fibrosis induction methods were compared using surgical curettage or transcervically administered chemical (quinacrine) models. Measurements of tissue morphology and collagen gene expression indicate BALB/c mice are more susceptible than C57BL/6 mice to intrauterine fibrosis. In chemically induced BALB/c uterine tissues, gene expression and flow cytometry data show greater pro-inflammatory macrophage responses, implicating a possible role in fibrogenesis consistent with human intrauterine adhesion data. Findings from this study demonstrate the importance of mouse strain selection in studies of intrauterine adhesions. Furthermore, we show that a new hormone-synchronized, chemically induced mouse model can more uniformly and reliably provoke fibrotic tissue response. This model may allow for greater elucidation of mechanisms involved in intrauterine adhesion development, and exploratory therapeutic studies for treatment intervention.

bioengineering↗