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Serack, F. E.

Publications and source records attributed to Serack, F. E..

2 recordsLinked to original sources

Probing the effects of polysaccharide hydrogel composition on the viability and pro-angiogenic function of human adipose-derived stromal cells

Cell therapies harnessing the pro-vascular regenerative capacities of mesenchymal stromal cell (MSC) populations, including human adipose-derived stromal cells (hASCs), have generated considerable interest as an emerging treatment strategy for peripheral arterial disease (PAD) and its progression to critical limb ischemia (CLI). There is evidence to support that polysaccharide hydrogels can enhance therapeutic efficacy when applied as minimally-invasive delivery systems to support MSC survival and retention within ischemic tissues. However, there has been limited research to date on the effects of hydrogel composition on the phenotype and function of encapsulated cell populations. Recognizing this knowledge gap, this study compared the pro-angiogenic function of hASCs encapsulated in distinct but similarly-modified natural polysaccharide hydrogels composed of methacrylated glycol chitosan (MGC) and methacrylated hyaluronic acid (MHA). Initial in vitro studies confirmed high viability (>85%) of the hASCs following encapsulation and culture in the MGC and MHA hydrogels over 14 days, with a decrease in the cell density observed over time. Moreover, higher levels of a variety of secreted pro-angiogenic and immunomodulatory factors were detected in conditioned media samples collected from the hASCs encapsulated in the MGC-based hydrogels compared to the MHA hydrogels. Subsequent testing focused on comparing hASC delivery within the MGC and MHA hydrogels to saline controls in a femoral artery ligation-induced CLI (FAL-CLI) model in athymic nu/nu mice over 28 days. For the in vivo studies, the hASCs were engineered to express tdTomato and firefly luciferase to quantitatively compare the efficacy of the two platforms in supporting the localized retention of viable ASCs through longitudinal cell tracking with bioluminescence imaging (BLI). Interestingly, hASC retention was significantly enhanced when the cells were delivered in the MHA hydrogels as compared to the MGC hydrogels or saline. However, laser Doppler perfusion imaging (LDPI) indicated that the restoration of hindlimb perfusion was similar between the treatment groups and controls. These findings were corroborated by endpoint immunofluorescence (IF) staining showing similar levels of CD31+ cells in the ligated limbs at 28 days in all groups. Overall, this study demonstrates that enhanced MSC retention may be insufficient to augment vascular regeneration, emphasizing the complexity of designing biomaterials platforms for MSC delivery for therapeutic angiogenesis. In addition, the data points to a potential challenge in approaches that seek to harness the paracrine functionality of MSCs, as strategies that increase the secretion of immunomodulatory factors that can aid in regeneration may also lead to more rapid MSC clearance in vivo.

bioengineering↗

Delivery of human adipose-derived stromal cells within mechanically resilient hydrogels induces adverse outcomes in a femoral artery ligation model in athymic nu/nu mice

The delivery of human adipose-derived stromal cells (hASCs) to ischemic tissues represents a promising strategy to promote vascular regeneration for patients with critical limb ischemia (CLI). Building on previous work, this study focused on the in vivo characterization of a hydrogel cell delivery platform for hASCs composed of peptide-functionalized methacrylated glycol chitosan (MGC-RGD) and a terminally acrylated triblock copolymer of poly(ethylene glycol) and poly(trimethylene carbonate) (PEG(PTMC-A)2) in athymic nu/nu mice with femoral artery ligation-induced critical limb ischemia (FAL-CLI). This immunodeficient mouse strain was selected to enable human cell transplantation in a model with conserved monocyte/macrophage function, recognizing that macrophages are key regulators of the biomaterial implant response, as well as vascular repair and regeneration. The hASCs were engineered to co-express tdTomato and firefly luciferase to enable longitudinal cell tracking using bioluminescence imaging (BLI). Interestingly, the hASCs were better retained following delivery in saline compared to hydrogel delivery. However, laser Doppler perfusion imaging (LDPI) analysis indicated that the restoration of hindlimb perfusion was similar between the two cell treatment groups. Critically, delivery of the hASCs within the hydrogels was associated with adverse outcomes only observed within this treatment group, including severe swelling, discoloration, and necrosis, which necessitated early euthanasia of some mice. CD45 staining supported that the combination of the cells and the hydrogels induced an inflammatory host response. These findings contrast with previous positive results when the platform was tested for hASC delivery in more severely immunocompromised NOD/SCID mice with FAL-CLI, as well as allogeneic rat ASC delivery in a healthy immunocompetent rat model. Overall, this study emphasizes the potential importance of testing cell delivery platforms in pre-clinical disease models that have retained host immune cell function, especially for immunomodulatory cell populations such as ASCs.

bioengineering↗