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Lang, J. K.

Publications and source records attributed to Lang, J. K..

5 recordsLinked to original sources

Modeling Mechanical Activation of Macrophages During Pulmonary Fibrogenesis for Targeted Anti-Fibrosis Therapy

Pulmonary fibrosis, as seen in idiopathic pulmonary fibrosis (IPF) and COVID-induced pulmonary fibrosis, is an often-fatal lung disease. Increased numbers of immune cells such as macrophages were shown to accumulate in the fibrotic lung, but it is unclear how they contribute to the development of fibrosis. To recapitulate the macrophage mechanical activation in the fibrotic lung tissue microenvironment, we developed a fibrotic microtissue model with cocultured human macrophages and fibroblasts. We show that profibrotic macrophages seeded on topographically controlled stromal tissue constructs become mechanically activated. The resulting co-alignment of macrophages, collagen fibers and fibroblasts promote widespread fibrogenesis in micro-engineered lung tissues. Anti-fibrosis treatment using pirfenidone disrupts the polarization and mechanical activation of profibrotic macrophages, leading to fibrosis inhibition. Pirfenidone inhibits the mechanical activation of macrophages by suppressing integrin M{beta}2 (CD11b/CD18) and Rho-associated kinase 2, which is a previously unknown mechanism of action of the drug. Together, these results demonstrate a potential pulmonary fibrogenesis mechanism at the tissue level contributed by mechanically activated macrophages. We propose the coculture, force-sensing microtissue model as a powerful tool to study the complex immune-stromal cell interactions and the mechanism of action of anti-fibrosis drugs.

bioengineering↗

Neutrophil-driven cardiac damage during invasive Streptococcus pneumoniae infection is regulated by CD73

Streptococcus pneumoniae (pneumococcus)-induced cardiac events are one of the life-threatening infection outcomes of invasive pneumococcal disease. S. pneumoniae has the ability to invade the myocardium and damage cardiomyocytes, however the contribution of the immune response during this process is not fully understood. We previously found that polymorphonuclear cells (PMNs) are crucial for host defense against S. pneumoniae lung infection and that extracellular adenosine (EAD) production, by exonucleosidases CD39 and CD73, controlled the anti-bacterial functions of these cells. The objective of this study was to explore the role of PMNs and the EAD-pathway in host cardiac damage during invasive pneumococcal infection. Upon intra-peritoneal (i.p.) injection with invasive S. pneumoniae TIGR4 strain, hearts of C57BL/6 mice showed an increased influx of PMNs as determined by flow cytometry. However, the increased PMN numbers failed to contain the bacterial burden in the heart and showed positive correlation with serum levels of the cardiac damage marker Troponin-1. Influx of PMNs into the heart was associated with constant presence of neutrophil degranulation products in the cardiac tissue. Depletion of PMNs prior infection reduced pneumococcal burden in the heart and lowered the Troponin-1 levels thus, indicating their role in cardiac damage. While exploring the mechanisms underlying the damaging PMN response, we found that by 24hpi, there was a significant reduction in the expression of CD39 and CD73 on cardiac PMNs. The role of CD73 in regulating cardiac damage was tested in vivo using CD73-/- mice which had significantly higher bacterial burden and cardiac damage compared to wild type mice despite similar PMN numbers. The role of CD73 expression on PMNs was also tested ex vivo using the HL-1 cardiomyocyte cell line which upon S. pneumoniae infection, showed increased cell death in presence of CD73-/- PMNs. Our findings have identified a detrimental role for PMNs in cardiac damage during invasive pneumococcal infection that is in part driven by reduced expression of EAD-producing enzymes in late disease stages.

immunology↗

Surface engineering enhances the therapeutic potential of extracellular vesicles following acute myocardial infarction

Structured AbstractO_ST_ABSObjectivesC_ST_ABSThe objective of the study was to assess the therapeutic efficacy of targeting remote zone cardiomyocytes with cardiosphere-derived cell (CDC) extracellular vesicles (EVs) in acute myocardial infarction. BackgroundCardiomyocyte (CM) cell death plays a significant role in left ventricular (LV) remodeling and cardiac dysfunction following myocardial infarction (MI). While EVs secreted by CDCs have shown efficacy in promoting cardiac repair in preclinical models of MI, their translational potential is limited by their biodistribution. We hypothesized that targeting therapeutic EVs to CMs would result in further reduction of cardiomyocyte (CM) cell death in vivo and improvement in cardiac function post-MI. MethodsCDC-derived EVs were engineered to express a CM-specific binding peptide (CMP) on their surface and characterized for size, morphology, and protein expression. Mice with acute MI underwent delivery of human CDC EVs, CMP-EVs and placebo in a double-blind study. LVEF was assessed by echo at 1- and 28-days post-MI and tissue samples processed for assessment of EV biodistribution and histological endpoints. ResultsCMP-EVs demonstrated superior cardiac targeting and retention when compared with control EVs 24 hours post MI. While intramyocardial administered CDC-EVs improved LVEF compared with placebo at 4 weeks, mice treated with CMP-EVs demonstrated a significant improvement in LVEF compared with non-targeted EVs. Likely accounting for their augmented therapeutic efficacy, CMP-EVs demonstrated enhanced reduction of remote zone cardiomyocyte apoptosis. ConclusionsTargeting CMP-EVs to CMs post-MI improved cardiac function compared with unmodified EVs demonstrating a strategy to further optimize therapeutic EV delivery to increase efficacy and decease off-target effects. Condensed AbstractExtracellular vesicles (EVs) offer several potential advantages over small molecule therapeutics for cardiovascular disease (CVD). However, their potential is limited by their biodistribution and lack of specificity. We engineered cardiosphere-derived cells (CDCs) to express Lamp2b fused to a cardiomyocyte specific peptide (CMP), generating EVs with increased cardiomyocyte uptake and cardiac retention. CMP-EVs enhanced cardiac function following acute MI and further reduced remote zone apoptosis when compared with unmodified CDC-EVs. This work highlights a role for targeting therapeutic EVs to cardiomyocytes following injury and serves as a proof-of-concept study for the utility of EV surface engineering in the treatment of CVD.

bioengineering↗

Extracellular vesicle microRNA cargo engineering reveals critical mechanisms underlying therapeutic efficacy

BackgroundExtracellular vesicles (EVs) are key mediators of intercellular communication and function to transfer biological cargo, including microRNA (miR), from donor to recipient cells. EVs isolated from cardiosphere-derived cells (CDCs) have demonstrated therapeutic efficacy in pre-clinical models of ischemic heart disease, highlighting them as promising vectors for the treatment of CVD. Importantly, it has not yet been established whether miR cargo is necessary for the observed therapeutic benefit of CDC-EVs following acute MI (AMI). MethodsCDCs were transfected with siRNA against Drosha, the initial endonuclease in the miRNA biogenesis pathway, to generate miR depleted DROSHA-EVs. EVs were characterized by size, morphology, and protein/miR expression. The role of EV miRNA on cardiac target cell apoptosis, proliferation and angiogenesis was examined using a series of in vitro assays. Mice with acute MI underwent delivery of human CDC EVs, DROSHA-EVs and placebo in a double-blind study. LVEF was assessed by echo at 1- and 28-days post-MI and tissue samples processed for assessment of histological endpoints. In vitro sufficiency assays were performed using a combinatorial approach with individual candidate miRs to identify clusters exhibiting synergistic efficacy. ResultsDROSHA-EVs exhibited global downregulation of miRNA cargo but were otherwise indistinguishable from wild-type CDC-EVs. miR cargo was responsible for mediating the beneficial effects of human CDC-EV treatment on cardiomyocyte apoptosis, fibroblast proliferation and angiogenesis in vitro. DROSHA-EVs were unable to promote recovery following AMI on a functional or histological level, highlighting the critical role of EV miRNAs in cardioprotection following ischemic injury. A potentially therapeutic miR cluster, miR-146a-370-126a, was identified which acted synergistically to reduce cardiomyocyte apoptosis and was sufficient to render inert EVs into therapeutic vectors. ConclusionsThese results demonstrate for the first time that miRNAs are required for the regenerative potential of CDC-EVs following AMI and identify a novel miR cluster with therapeutic implications.

bioengineering↗

Fast 3D printing of large-scale biocompatible hydrogel models

Large scale cell-laden hydrogel models hold great promise for tissue repair and organ transplantation, but their fabrication is faced with challenges in achieving clinically-relevant size and hierarchical structures. 3D bioprinting is an emerging technology, but its application in large, solid hydrogel fabrication has been limited by the slow printing speed that can affect the part quality and the biological activity of the encapsulated cells. Here we present a Fast hydrogeL prOjection stereolithogrAphy Technology (FLOAT) that allows the creation of a centimeter-sized, multiscale solid hydrogel model within minutes. Through precisely controlling the photopolymerization condition, we established low suction force-driven, high-velocity flow of the hydrogel prepolymer that supports the continuous replenishment of the prepolymer solution below the curing part and the nonstop part growth. We showed that this process is unique to the hydrogel prepolymer without externally supplemented oxygen. The rapid printing of centimeter-sized hydrogel models using FLOAT was shown to significantly reduce the part deformation and cellular injury caused by the prolonged exposure to the environmental stresses in layer-by-layer based printing methods. Media perfusion in the printed vessel network was shown to promote cell survival and metabolic function in the deep core of the large-sized hydrogel model over long term. The FLOAT is compatible with multiple photocurable hydrogel materials and the printed scaffold supports the endothelialization of prefabricated vascular channels. Together, these studies demonstrate a rapid 3D hydrogel printing method and highlight the potential of this method in the fabrication of large-sized engineered tissue models.

bioengineering↗