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result(s) for
"Kenyon, Norma Sue"
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Experimental Models of COVID-19
by
Paidas, Michael J.
,
Roy, Sabita
,
Kenyon, Norma Sue
in
ACE2
,
Angiotensin-converting enzyme 2
,
Animal models
2022
COVID-19 is the most consequential pandemic of the 21
st
century. Since the earliest stage of the 2019-2020 epidemic, animal models have been useful in understanding the etiopathogenesis of SARS-CoV-2 infection and rapid development of vaccines/drugs to prevent, treat or eradicate SARS-CoV-2 infection. Early SARS-CoV-1 research using immortalized
in-vitro
cell lines have aided in understanding different cells and receptors needed for SARS-CoV-2 infection and, due to their ability to be easily manipulated, continue to broaden our understanding of COVID-19 disease in
in-vivo
models. The scientific community determined animal models as the most useful models which could demonstrate viral infection, replication, transmission, and spectrum of illness as seen in human populations. Until now, there have not been well-described animal models of SARS-CoV-2 infection although transgenic mouse models (i.e. mice with humanized ACE2 receptors with humanized receptors) have been proposed. Additionally, there are only limited facilities (Biosafety level 3 laboratories) available to contribute research to aid in eventually exterminating SARS-CoV-2 infection around the world. This review summarizes the most successful animal models of SARS-CoV-2 infection including studies in Non-Human Primates (NHPs) which were found to be susceptible to infection and transmitted the virus similarly to humans (e.g., Rhesus macaques, Cynomolgus, and African Green Monkeys), and animal models that do not require Biosafety level 3 laboratories (e.g., Mouse Hepatitis Virus models of COVID-19, Ferret model, Syrian Hamster model). Balancing safety, mimicking human COVID-19 and robustness of the animal model, the Murine Hepatitis Virus-1 Murine model currently represents the most optimal model for SARS-CoV-2/COVID19 research. Exploring future animal models will aid researchers/scientists in discovering the mechanisms of SARS-CoV-2 infection and in identifying therapies to prevent or treat COVID-19.
Journal Article
Multi-Organ Histopathological Changes in a Mouse Hepatitis Virus Model of COVID-19
by
Paidas, Michael J.
,
Barry, Ariel Faye
,
Norenberg, Michael D.
in
Alveoli
,
Amino acids
,
Animal models
2021
Infection with SARS-CoV-2, the virus responsible for the global COVID-19 pandemic, causes a respiratory illness that can severely impact other organ systems and is possibly precipitated by cytokine storm, septic shock, thrombosis, and oxidative stress. SARS-CoV-2 infected individuals may be asymptomatic or may experience mild, moderate, or severe symptoms with or without pneumonia. The mechanisms by which SARS-CoV-2 infects humans are largely unknown. Mouse hepatitis virus 1 (MHV-1)-induced infection was used as a highly relevant surrogate animal model for this study. We further characterized this animal model and compared it with SARS-CoV-2 infection in humans. MHV-1 inoculated mice displayed death as well as weight loss, as reported earlier. We showed that MHV-1-infected mice at days 7–8 exhibit severe lung inflammation, peribronchiolar interstitial infiltration, bronchiolar epithelial cell necrosis and intra-alveolar necrotic debris, alveolar exudation (surrounding alveolar walls have capillaries that are dilated and filled with red blood cells), mononuclear cell infiltration, hyaline membrane formation, the presence of hemosiderin-laden macrophages, and interstitial edema. When compared to uninfected mice, the infected mice showed severe liver vascular congestion, luminal thrombosis of portal and sinusoidal vessels, hepatocyte degeneration, cell necrosis, and hemorrhagic changes. Proximal and distal tubular necrosis, hemorrhage in interstitial tissue, and the vacuolation of renal tubules were observed. The heart showed severe interstitial edema, vascular congestion, and dilation, as well as red blood cell extravasation into the interstitium. Upon examination of the MHV-1 infected mice brain, we observed congested blood vessels, perivascular cavitation, cortical pericellular halos, vacuolation of neuropils, darkly stained nuclei, pyknotic nuclei, and associated vacuolation of the neuropil in the cortex, as well as acute eosinophilic necrosis and necrotic neurons with fragmented nuclei and vacuolation in the hippocampus. Our findings suggest that the widespread thrombotic events observed in the surrogate animal model for SARS-CoV-2 mimic the reported findings in SARS-CoV-2 infected humans, representing a highly relevant and safe animal model for the study of the pathophysiologic mechanisms of SARS-CoV-2 for potential therapeutic interventions.
Journal Article
Long-Term Sequelae of COVID-19 in Experimental Mice
by
Cosio, Daniela S.
,
Jayakumar, Arumugam R.
,
Paidas, Michael J.
in
Animals
,
Apoptosis
,
Astrocytes
2022
We recently reported acute COVID-19 symptoms, clinical status, weight loss, multi-organ pathological changes, and animal death in a murine hepatitis virus-1 (MHV-1) coronavirus mouse model of COVID-19, which were similar to that observed in humans with COVID-19. We further examined long-term (12 months post-infection) sequelae of COVID-19 in these mice. Congested blood vessels, perivascular cavitation, pericellular halos, vacuolation of neuropils, pyknotic nuclei, acute eosinophilic necrosis, necrotic neurons with fragmented nuclei, and vacuolation were observed in the brain cortex 12 months post-MHV-1 infection. These changes were associated with increased reactive astrocytes and microglia, hyperphosphorylated TDP-43 and tau, and a decrease in synaptic protein synaptophysin-1, suggesting the possible long-term impact of SARS-CoV-2 infection on defective neuronal integrity. The lungs showed severe inflammation, bronchiolar airway wall thickening due to fibrotic remodeling, bronchioles with increased numbers of goblet cells in the epithelial lining, and bronchiole walls with increased numbers of inflammatory cells. Hearts showed severe interstitial edema, vascular congestion and dilation, nucleated red blood cells (RBCs), RBCs infiltrating between degenerative myocardial fibers, inflammatory cells and apoptotic bodies and acute myocyte necrosis, hypertrophy, and fibrosis. Long-term changes in the liver and kidney were less severe than those observed in the acute phase. Noteworthy, the treatment of infected mice with a small molecule synthetic peptide which prevents the binding of spike protein to its respective receptors significantly attenuated disease progression, as well as the pathological changes observed post-long-term infection. Collectively, these findings suggest that COVID-19 may result in long-term, irreversible changes predominantly in the brain, lung, and heart.
Journal Article
Immunology: Insulin auto-antigenicity in type 1 diabetes
2005
Wilson discusses the avidity of the lymph-node T-cell clones we described that recognize the insulin A1-15 fragment. He questions whether large enough concentrations of insulin would be available in situ for antigenic stimulation of T cells, given the amount of peptide required to stimulate the clones and their degree of responsiveness.
Journal Article
Expanded T cells from pancreatic lymph nodes of type 1 diabetic subjects recognize an insulin epitope
by
Ricordi, Camillo
,
Hering, Bernhard J.
,
Kent, Sally C.
in
Alleles
,
Amino Acid Sequence
,
Autoimmune diseases
2005
Insulin sparks autoimmunity
Autoimmune reactions, in which the body's white blood cells harm its own tissues, cause many diseases including diabetes, multiple sclerosis and arthritis. It is not known why immune cells target certain organs, and in particular for childhood diabetes, why only insulin-producing cells are killed. Nakayama
et al
. now report that this may be because insulin itself is a primary autoantigen for autoimmune diabetes. In NOD mice, the standard animal model for diabetes, when the part of the insulin molecule that gives rise to autoantibodies is altered, autoimmune diabetes disappears. This also suggests that deletional immune therapy could be a practical proposition. The possible clinical relevance of this work is confirmed by a separate study by Kent
et al
. of human patients with type 1 diabetes. T lymphocytes found in the draining lymph nodes around the pancreas specifically recognize part of the insulin protein. This has implications for antigen specific therapies and islet-cell transplantation in diabetes.
In autoimmune type 1 diabetes, pathogenic T lymphocytes are associated with the specific destruction of insulin-producing β-islet cells
1
,
2
. Identification of the autoantigens involved in triggering this process is a central question. Here we examined T cells from pancreatic draining lymph nodes, the site of islet-cell-specific self-antigen presentation
3
. We cloned single T cells in a non-biased manner from pancreatic draining lymph nodes of subjects with type 1 diabetes and from non-diabetic controls. A high degree of T-cell clonal expansion was observed in pancreatic lymph nodes from long-term diabetic patients but not from control subjects. The oligoclonally expanded T cells from diabetic subjects with DR4, a susceptibility allele for type 1 diabetes
4
, recognized the insulin A 1–15 epitope restricted by DR4. These results identify insulin-reactive, clonally expanded T cells from the site of autoinflammatory drainage in long-term type 1 diabetics, indicating that insulin may indeed be the target antigen causing autoimmune diabetes.
Journal Article
Insulin auto-antigenicity in type 1 diabetes (Reply)
by
Hering, Bernhard
,
Ricordi, Camillo
,
Kent, Sally C.
in
brief-communications-arising
,
Humanities and Social Sciences
,
multidisciplinary
2005
Wilson
discusses the avidity of the lymph-node T-cell clones we described
1
that recognize the insulin A1–15 fragment. He questions whether large enough concentrations of insulin would be available
in situ
for antigenic stimulation of T cells
2
, given the amount of peptide required to stimulate the clones and their degree of responsiveness.
Journal Article