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Dwyer, R. M.

Publications and source records attributed to Dwyer, R. M..

5 recordsLinked to original sources

Evaluation of adipose-derived stromal cell infused modified-hyaluronic acid scaffolds for post cancer breast reconstruction

IntroductionPrimary breast cancer surgery can compromise aesthetics and quality-of-life for breast cancer patients. While breast reconstruction improves these outcomes, current methods are limited by suboptimal aesthetic outcomes and potential complication risks. There is an urgent clinical need for improved approaches to post surgical reconstruction for breast cancer patients. Adipose-derived stromal cells (ADSCs) with biological scaffolds are being widely evaluated for tissue engineering applications in the field of reconstruction. AimsThis study aimed to assess the biomechanical properties, biocompatibility, adipogenic potential of ADSCs encapsulated in modified hyaluronic acid derivatives in vitro; and efficacy and tissue integration of this construct in vivo in a murine breast cancer and reconstruction model. MethodsADSCs were obtained, with informed consent, from female breast cancer patients undergoing autologous breast reconstruction or cosmetic procedures (n=8) aged 47{+/-}12 years. Modified hyaluronic acid solution was combined with 1x106 ADSCs/mL and crosslinked using hydrogen peroxide and horseradish peroxidase. Youngs modulus, cell viability and adipogenic potential of the cell-loaded hydrogels were assessed in vitro. In vivo, hydrogels combined with murine ADSCs were grafted into a murine breast cancer model and tissues were harvested for immunohistochemistry after 4 weeks. ResultsADSCs were characterised via morphology, Colony forming unit-fibroblast (CFU-F) assay, flow cytometry and multilineage differentiation. The cell-loaded hydrogels had a compressive Youngs modulus of 7.35{+/-}0.96 kPa after 21 days in culture, similar to human breast adipose tissue ([~]10 kPa). High ADSC viability was observed after 21 days in culture, and ADSCs differentiated into mature adipocytes. After 4 weeks in vivo, hydrogels exhibited adipocytes, vascular endothelium, and pericyte-like cells. ConclusionThis study demonstrates the potential suitability of modified hyaluronic acid hydrogels encapsulating ADSCs for adipose tissue engineering for post breast cancer reconstruction.

bioengineering↗

Investigation of immune response to Mesenchymal Stromal Cell-derived Extracellular Vesicles in the cancer setting

Mesenchymal Stromal Cell derived extracellular vesicles (MSC-EVs) may retain the cancer targeting and immune privilege of MSCs. The immense potential MSC-EVs hold as tumour-targeted therapeutics warrants an understanding of potential adverse events to support clinical translation. This study aimed to determine whether MSC-EVs would elicit an immune response following administration in tumour-bearing immunocompetent animals. Secreted EVs were isolated from both human and murine bone marrow derived MSCs and characterized. hMSC-EVs or mMSC-EVs were administered intravenously into 4T1 breast tumour-bearing Balb/c mice or healthy controls. Tumour tissue, draining lymph nodes and spleens were harvested, dissociated into a single cell suspension and flow cytometry performed targeting T cells, myeloid derived suppressor cells (MDSCs), macrophages, dendritic cells and natural killer (NK) cells. The 4T1 model immune profile was first determined by comparing the spleen of tumour-bearing animals to healthy controls. T cells were increased in tumour-bearing animals (CD4+/CD25+ p=0.041; CD8+/CD25+ p=0.02). A significant elevation of GR-1+ MDSCs (p=0.002), CD11b+ macrophages (p=0.023) and CD11c+ dendritic cells (p=0.001) was also observed. In contrast, CD27+ NK cells were significantly decreased compared to the spleen of healthy animals (p=0.006). Collectively this data validated the immune profile and supported the determination of any changes in response to hMSC-EVs or mMSC-EVs administration. No significant activation of CD4+ (p=0.20) or CD8+ (p=0.57) T cells were seen in tumour tissue in both groups. The percentage of GR-1+ MDSCs (28% vs 27%, p=0.92), CD11b+, CD11c+ and CD27+ cells were similar regardless of EV origin. No significant changes in T cells, MDSCs, macrophages, dendritic or NK cells were observed in the lymph node or spleen of animals that received hMSC-EV versus mMSC-EVs. In conclusion, human MSC-EVs elicited no discernible immune response in mice, supporting the hypothesis that MSC-EVs retain the immune privilege of the secretory cell. This reinforces the therapeutic potential of MSC-EVs.

cancer biology↗

Hyaluronic acid hydrogels: Establishing a sustained delivery system for extracellular vesicles

Extracellular vesicles (EVs) are versatile transporters of genetic cargo with enormous potential in the therapeutic setting. Scalable production of EVs, and routes to overcome rapid clearance are required. Biocompatible hydrogels may support precise, localized delivery of EVs to target sites. This study aimed to establish sustained production of EVs in a scalable 3D dynamic bioreactor and to fabricate hydrogels using tyramine-modified hyaluronic acid (HA-TA) to study EV integration and release patterns. MDA-MB-231 cells transduced with lentiviral GFP fused with CD63, were cultured in a 20kD dynamic hollow fiber bioreactor and GFP-EVs harvested over five weeks. GFP-EVs were characterized by Nanoparticle Tracking Analysis(NTA), Western Blot(WB) and Transmission Electron Microscopy(TEM). Tyramine modified hyaluronic acid(HA-TA) hydrogels were formulated via enzymatic crosslinking using hydrogen peroxide and horseradish peroxidase, to investigate EV release patterns in static and dynamic conditions. Hydrogel swelling was recorded at 1-72 hrs and hydrogels were loaded with GFP-EVs to assess distribution and release by Scanning Electron Microscopy(SEM) and NTA respectively. GFP-EV uptake was assessed by confocal microscopy. Longitudinal GFP expression was demonstrated in transduced cells and released EVs throughout bioreactor culture. TEM and NTA demonstrated successful isolation of EVs of 30-200 nm in size with intact lipid bilayers (average 4x109 EVs/harvest). Initial harvests exhibited subpopulations of larger EVs, which disappeared upon serum withdrawal. WB verified the presence of EV markers CD63, TSG101, and CD81. HA-TA hydrogels were successfully formed and swelling assays revealed the requirement for higher concentrations of HA-TA and crosslinkers for scaffold stability and continued swelling. GFP-EVs were successfully incorporated into the hydrogels with variable release patterns observed over time, depending on EV concentration and hydrogel formulation. EV clusters in hydrogels were visualized by SEM. Investigation of GFP-EV release patterns under static and dynamic conditions highlighted a significant increase in release under fluid flow conditions. Efficient transfer of released EVs to recipient cells was also demonstrated in vitro. The data demonstrate the potential for scalable production of engineered EVs in serum free conditions and subsequent incorporation into HA-TA hydrogels for sustained release. These biocompatible hydrogels hold promise for tuneable delivery of therapeutic EVs in a variety of disease settings.

bioengineering↗

Unprecedented Cytotoxicity of Transition Metal Metallacarboranes on Triple Negative Breast Cancer Cells and a Vertebrate Cancer Model

Metallacarboranes have long been the subject of attention in the context of medicinal chemistry because of their promising characteristics and unconventional interactions with biological entities. The metal centre has been shown to have a significant influence on the internalisation and cytotoxicity of compounds in human cell lines. Additionally, specific nanomolar concentrations of metallacarboranes have demonstrated toxic effects on MDA-MB-231 cells under in vitro and in vivo conditions. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=110 SRC="FIGDIR/small/635527v1_ufig1.gif" ALT="Figure 1"> View larger version (67K): org.highwire.dtl.DTLVardef@116eb95org.highwire.dtl.DTLVardef@1c4a181org.highwire.dtl.DTLVardef@474c3forg.highwire.dtl.DTLVardef@dec88c_HPS_FORMAT_FIGEXP M_FIG C_FIG

biochemistry↗

miR-379-3p counteracts cancer cachexia through regulation of pyrimidinergic receptor, mitochondrial stress and interferon response.

Cancer cachexia is a highly prevalent wasting syndrome in cancer patients. Inflammation is hallmarks of symptomatic cachexia, however early stages of cachexia are not well understood, including differences between biological sexes. In a mouse model of early cachexia, muscle from males showed strong mitochondrial defects, whereas females were characterized by inflammatory and stress response. We demonstrate a novel link between the increase in purinergic receptor P26Y, and dysregulated Ca2+ homeostasis, mitochondrial dysfunction and damage, and inflammation during early stages of cancer cachexia. Low levels of miR-379-3p were associated with poor survival of patients with lung cancer. Restoring miR-379-3p levels in mice prevented loss of muscle mass and function. miR-379-3p targeted P2r6y and restored mitochondrial content and function, inhibited type II interferon response, and regulated the expression of Ca2+-related and apoptotic markers. This supports miR-379-3p as a hub regulating multiple processes underlying cachexia and represent a therapeutic target for cancer patients.

cancer biology↗